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    <title>eLife: latest articles by subject</title>
    <link>https://elifesciences.org</link>
    <description>Articles published by eLife, filtered by given subjects</description>
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      <title>Cell-cycle-resolved Hi-C reveals unexpected plasticity of A/B compartments across interphase</title>
      <link>https://elifesciences.org/articles/110073</link>
      <description>The spatial organization of chromatin into active (A) and inactive (B) nuclear compartments is fundamental to genome regulation, yet their cell-cycle dynamics remain largely unexplored. Most research on chromatin dynamics during the cell cycle has primarily focused on events surrounding mitosis, providing only limited insight into chromatin behavior during S-phase. To address this gap, we developed a simple, drug-free approach that combines the Fucci cell-cycle indicator with in situ Hi-C to comprehensively analyze A/B compartment dynamics throughout interphase in mouse embryonic stem cells (mESCs). Unexpectedly, and contrary to prevailing views, we found that A/B compartment strength increased abruptly upon S-phase entry, stabilized during S-phase, and subsequently declined in late S/G2. This abrupt strengthening, which we termed ‘compartment maturation’, required passage through the G1/S transition but was independent of active DNA synthesis. This maturation involved substantial architectural remodeling, particularly within the A compartment, which consolidated into a more organized structure as individual A domains rearranged to form long-range interactions. Moreover, compartment maturation was not limited to mESCs but was also evident across different developmental contexts in mice. Based on these observations, we propose a revised, stepwise model of nuclear compartmentalization during cell-cycle progression, consisting of four distinct stages: chromosome unfolding (G1), chromatin maturation (G1/S), stabilization (S phase), and refolding (G2). These findings reveal the unexpected plasticity of A/B compartments and underscore the G1/S transition as a critical period for their reorganization.</description>
      <author>ichiro.hiratani@riken.jp (Asami Oji)</author>
      <author>ichiro.hiratani@riken.jp (Hisashi Miura)</author>
      <author>ichiro.hiratani@riken.jp (Ichiro Hiratani)</author>
      <author>ichiro.hiratani@riken.jp (Linda Choubani)</author>
      <author>ichiro.hiratani@riken.jp (Rory T Cerbus)</author>
      <author>ichiro.hiratani@riken.jp (Saori Takahashi)</author>
      <author>ichiro.hiratani@riken.jp (Takako Ichinose)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.110073</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 06 Oct 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-10-06T00:00:00Z</dc:date>
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    <item>
      <title>Correction: Degradation of LMO2 in T cell leukaemia results in collateral breakdown of transcription complex partners and causes LMO2-dependent apoptosis</title>
      <link>https://elifesciences.org/articles/113186</link>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.113186</guid>
      <category>Cancer Biology</category>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Mon, 21 Sep 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-09-21T00:00:00Z</dc:date>
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    <item>
      <title>Ribosomal RNA methylation by GidB modulates discrimination of mischarged tRNA</title>
      <link>https://elifesciences.org/articles/102752</link>
      <description>Despite redundant cellular pathways to minimize translational errors, errors in protein synthesis are common. Pathways and mechanisms to minimize errors are classified as pre-ribosomal or ribosomal. Pre-ribosomal pathways are primarily concerned with the appropriate charging of tRNAs with their cognate amino acids. By contrast, the ribosomal decoding center is considered ‘blind’ to mischarged tRNAs since these have cognate codon•anti-codon pairing. Here, we identified that in mycobacteria, deletion of the 16S ribosomal RNA methyltransferase &lt;i&gt;gidB&lt;/i&gt; led to increased ribosomal discrimination of mischarged tRNAs. Discrimination only occurred in mycobacteria enriched from environments or genetic backgrounds with high rates of mistranslation. GidB deletion was necessary, but not sufficient for reducing mistranslation due to misacylation. Analysis of new cryo-EM structures of the &lt;i&gt;M. smegmatis&lt;/i&gt; ribosomes derived from wild-type and &lt;i&gt;gidB&lt;/i&gt;-deleted strains point to the interaction between the base methylated by GidB on the 16S RNA and an asparagine on the ribosomal S12 protein that, when mistranslated to aspartate, may be involved in altering translational fidelity. Our data suggest a mechanism by which mycobacterial ribosomes can discriminate mischarged tRNAs and that 16S rRNA differential methylation by GidB may act to prevent catastrophic translational error.</description>
      <author>jfraser@fraserlab.com (Babak Javid)</author>
      <author>jfraser@fraserlab.com (Hemant Joshi)</author>
      <author>jfraser@fraserlab.com (Hong-Wei Su)</author>
      <author>jfraser@fraserlab.com (Iris D Young)</author>
      <author>jfraser@fraserlab.com (James S Fraser)</author>
      <author>jfraser@fraserlab.com (Jiayao Hong)</author>
      <author>jfraser@fraserlab.com (Mohamad T Dandan)</author>
      <author>jfraser@fraserlab.com (Yuemeng Chen)</author>
      <author>jfraser@fraserlab.com (Yu-Xiang Chen)</author>
      <author>jfraser@fraserlab.com (Zhuo Bi)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.102752</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Microbiology and Infectious Disease</category>
      <pubDate>Fri, 04 Sep 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-09-04T00:00:00Z</dc:date>
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    <item>
      <title>Nucleation-dependent propagation of Polycomb modifications emerges during the &lt;i&gt;Drosophila&lt;/i&gt; maternal to zygotic transition</title>
      <link>https://elifesciences.org/articles/108371</link>
      <description>During zygotic genome activation in &lt;i&gt;Drosophila&lt;/i&gt;, broad domains of Polycomb-modified chromatin are rapidly established across the genome. Here, we investigate the spatial and temporal dynamics by which Polycomb group (PcG) histone modifications, H3K27me3 and H2Aub, emerge during early embryogenesis. Using ChIP-seq and live imaging of CRISPR-engineered GFP-tagged PcG components, we show that PRC2-dependent H3K27me3 accumulates adjacent to a subset of E(z)-bound prospective Polycomb response elements (PREs) beginning in nuclear cycle 14 (NC14), with patterns indicative of nucleation followed by spreading. Surprisingly, PRE-binding factors Pho, Combgap, and GAGA-factor are excluded from interphase nuclei prior to NC10, despite nuclear localization of E(z) throughout early interphases. Loss-of-function studies further demonstrate that GAGA-factor is largely dispensable for PcG domain establishment, whereas the pioneer factor Zelda is required for proper deposition of H3K27me3 and H2Aub at a subset of Polycomb domains. The role of Zelda at Polycomb domains is context-dependent; a subset of targets requires Zelda not for E(z) recruitment, but instead to license an E(z)-loaded PRE to deposit H3K27me3. Our findings support a model where licensing of PcG domains is an initial step in the regulatory processes governing Polycomb-regulated developmental genes.</description>
      <author>shelby.blythe@northwestern.edu (Corinne Croslyn)</author>
      <author>shelby.blythe@northwestern.edu (Eleanor A Degen)</author>
      <author>shelby.blythe@northwestern.edu (Isabella V Soluri)</author>
      <author>shelby.blythe@northwestern.edu (Natalie Gonzaga-Saavedra)</author>
      <author>shelby.blythe@northwestern.edu (Shelby A Blythe)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.108371</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Developmental Biology</category>
      <pubDate>Thu, 13 Aug 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-08-13T00:00:00Z</dc:date>
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    <item>
      <title>Gene dosage imbalance disrupts systemic metabolism in the Dp16 Down syndrome mouse model</title>
      <link>https://elifesciences.org/articles/110476</link>
      <description>Gene dosage imbalance resulting from an extra copy of human chromosome 21 (Hsa21) contributes to numerous clinical features in Down syndrome (DS). While dysregulated metabolism has long been noted in DS, the underlying cause is poorly understood and vastly understudied. To fill this critical knowledge gap, we conducted a comprehensive metabolic analysis of Dp(16)1Yey/+mice (abbreviated Dp16), a segmental duplication model carrying ~58% of the triplicated Hsa21 gene orthologs. Our multi-tissue transcriptomic analyses reveal shared and sex-specific increases in expression dosage of the triplicated genes in white and brown adipose tissues, liver, skeletal muscle, and hypothalamus. Despite sexual dimorphism in body weight, body temperature, food intake, and physical activity, Dp16 males and females share striking core phenotypes of pronounced insulin resistance, glucose intolerance, impaired lipid clearance, and dyslipidemia. Functional assessments, combined with biochemical, transcriptomic, and metabolomic analyses reveal tissue signatures of immune activation and a pro-inflammatory state, ER and oxidative stress, fibrosis, impaired glucose and fatty acid catabolism, altered lipid and bile acid profiles, and reduced mitochondrial respiratory capacity in Dp16 mice. These concerted changes disrupt homeostatic mechanisms that underpin metabolic health, contributing to systemic metabolic dysfunction. An obesogenic diet further exacerbates insulin resistance in Dp16 males and females despite divergent weight gain. The collective phenotypes broadly reflect the metabolic profile of DS. Our extensive molecular, biochemical, and physiological data provide an essential foundation for genetic dissection of dosage-sensitive genes affecting glucose and lipid metabolism, and for testing therapeutic strategies to improve metabolic outcomes in DS.</description>
      <author>gwwong@jhmi.edu (Christy M Nguyen)</author>
      <author>gwwong@jhmi.edu (Dylan C Sarver)</author>
      <author>gwwong@jhmi.edu (Fangluo Chen)</author>
      <author>gwwong@jhmi.edu (G William Wong)</author>
      <author>gwwong@jhmi.edu (Marcus M Seldin)</author>
      <author>gwwong@jhmi.edu (Muzna Saqib)</author>
      <author>gwwong@jhmi.edu (Susan Aja)</author>
      <author>gwwong@jhmi.edu (Y Eugene Yu)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.110476</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Physiology</category>
      <pubDate>Mon, 03 Aug 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-08-03T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Cluster size determines internal structure of transcription factories in human cells</title>
      <link>https://elifesciences.org/articles/103955</link>
      <description>Transcription is a fundamental cellular process and the first step of gene expression. In human cells, it depends on the binding to chromatin of various proteins, including RNA polymerases and numerous transcription factors (TFs). Observations indicate that these proteins tend to form macromolecular clusters, known as &lt;i&gt;transcription factories&lt;/i&gt;, whose morphology and composition are still debated. While some microscopy experiments have revealed the presence of &lt;i&gt;specialised factories&lt;/i&gt;, composed of similar TFs transcribing families of related genes, sequencing experiments suggest instead that mixed clusters may be prevalent, as a panoply of different TFs binds promiscuously to the same chromatin region. The mechanisms underlying the formation of specialised or mixed factories remain elusive. With the aim of finding such mechanisms, here we develop a chromatin polymer model mimicking the chromatin binding-unbinding dynamics of different types of complexes of TFs. Surprisingly, both specialised (i.e. demixed) and mixed clusters spontaneously emerge, and which of the two types forms depends mainly on cluster size. The mechanism promoting mixing is the presence of non-specific interactions between chromatin and proteins, which become increasingly important as clusters become larger. This result, that we observe both in simple polymer models and more realistic ones for human chromosomes, reconciles the apparently contrasting experimental results obtained. Additionally, we show how the introduction of different types of TFs strongly affects the emergence of transcriptional networks, providing a pathway to investigate transcriptional changes following gene editing or naturally occurring mutations.</description>
      <author>gnegro2@ed.ac.uk (Antonio Suma)</author>
      <author>gnegro2@ed.ac.uk (Davide Marenduzzo)</author>
      <author>gnegro2@ed.ac.uk (Giada Forte)</author>
      <author>gnegro2@ed.ac.uk (Giuseppe Gonnella)</author>
      <author>gnegro2@ed.ac.uk (Giuseppe Negro)</author>
      <author>gnegro2@ed.ac.uk (Massimiliano Semeraro)</author>
      <author>gnegro2@ed.ac.uk (Peter Cook)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.103955</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Physics of Living Systems</category>
      <pubDate>Mon, 20 Jul 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-07-20T00:00:00Z</dc:date>
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    </item>
    <item>
      <title>Linking germline telomere removal to global programmed DNA elimination in &lt;i&gt;Tetrahymena&lt;/i&gt; genome differentiation</title>
      <link>https://elifesciences.org/articles/109351</link>
      <description>In the ciliate &lt;i&gt;Tetrahymena&lt;/i&gt;, telomeres of the germline micronucleus (MIC) are removed and replaced by de novo telomere addition during somatic macronuclear (MAC) development. In this study, we investigated the kinetics and mechanism of the MIC telomere elimination. Comparison of the MIC and MAC genome sequences indicated that the MIC telomeres are excised from chromosomes as part of larger MIC-limited sequences (MLSs) through chromosomal breakage. We confirmed this using an optimized oligo-FISH protocol and found that their elimination occurs in parallel with other programmed DNA elimination processes. CRISPR-Cas9 disruption of a MLS-associated Chromosome Breakage Sequence (CBS) showed that elimination of the MLS was not blocked but instead led to loss of its adjacent MAC-destined sequence (MDS), suggesting abnormal co-elimination. In biparental crosses of the CBS mutant, however, both MLS and MDS were retained, DNA elimination was broadly disrupted, and no viable progeny were produced. These findings indicate that chromosome breakage at MLS-associated CBSs is essential for the proper separation of MLSs and MDSs, ensuring correct DNA elimination and successful sexual progeny development. We propose that the MIC telomere elimination is subsumed within the broader process of programmed DNA elimination.</description>
      <author>kazufumi.mochizuki@igh.cnrs.fr (Alix Lemoine)</author>
      <author>kazufumi.mochizuki@igh.cnrs.fr (Kazufumi Mochizuki)</author>
      <author>kazufumi.mochizuki@igh.cnrs.fr (Kohei Nagao)</author>
      <author>kazufumi.mochizuki@igh.cnrs.fr (Tomoko Noto)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.109351</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 14 Jul 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-07-14T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Impacts of DNA methylation on H2A.Z deposition and nucleosome stability</title>
      <link>https://elifesciences.org/articles/109762</link>
      <description>The histone variant H2A.Z and DNA methylation are enriched at mutually exclusive genomic segments, though its mechanistic bases remain unclear. Here, we examine DNA methylation’s influence on the intrinsic stability of the H2A.Z nucleosome and chaperone-mediated H2A.Z deposition. Cryo-EM and endonuclease analyses suggest that DNA methylation subtly increases the openness and accessibility of the H2A.Z nucleosome on satellite II-derived DNA sequences. In transcriptionally silent &lt;i&gt;Xenopus&lt;/i&gt; egg extracts, H2A.Z preferentially associates with unmethylated DNA though a substantial proportion of H2A.Z is recruited to methylated DNA. Preferential H2A.Z deposition to unmethylated DNA depends on the SRCAP complex, whose DNA binding is suppressed by methylation, while an SRCAP-independent and DNA methylation-insensitive mechanism for H2A.Z deposition also exists. Altogether, we propose that SRCAP drives the biased association of H2A.Z to unmethylated DNA, while additional mechanisms, potentially taking advantage of the subtle DNA methylation-induced physical effects, further assist the exclusion of H2A.Z from methylated DNA.</description>
      <author>funabih@rockefeller.edu (Hide A Konishi)</author>
      <author>funabih@rockefeller.edu (Hironori Funabiki)</author>
      <author>funabih@rockefeller.edu (Rochelle M Shih)</author>
      <author>funabih@rockefeller.edu (Yasuhiro Arimura)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.109762</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 07 Jul 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-07-07T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Ligand-dependent enhancer activation indirectly modulates non-target promoters in a chromatin domain</title>
      <link>https://elifesciences.org/articles/102417</link>
      <description>Transcription activation of genes by estrogen is driven by enhancers, which are often located within the same topologically associating domain (TAD) as non-targeted promoters. We investigated how acute enhancer-driven activation affects neighbouring non-target genes within the same TAD. Using single-molecule RNA FISH (smFISH), we tracked the transcription of TFF1 (enhancer-target gene) and TFF3 (non-target gene) during estrogen stimulation. We observed mutually exclusive expression patterns: TFF1 expression peaked at 1 hr, while TFF3 reached its peak at 3 hr after TFF1 activation had diminished. Chromatin looping data indicated that the enhancer loops with the TFF1 gene but not TFF3, suggesting that TFF3 upregulation is not due to direct enhancer-promoter interactions. CRISPR deletion of the enhancer affected TFF1 transcription more acutely than TFF3. 1,6-hexanediol (HD) exposure suggested that the TFF1 enhancer:promoter undergoes a potential ERα-mediated condensate formation, which sequesters the transcriptional machinery and inhibits TFF3 expression. As estrogen signaling fades at 3 hr, TFF1 expression declines while TFF3 expression increases. Our findings reveal that enhancer-driven activation can indirectly repress neighboring genes within the same TAD, highlighting a dynamic shift in gene expression as signaling progresses.</description>
      <author>aprotim@tifrh.res.in (Aprotim Mazumder)</author>
      <author>aprotim@tifrh.res.in (Darshika Bohra)</author>
      <author>aprotim@tifrh.res.in (Dimple Notani)</author>
      <author>aprotim@tifrh.res.in (Sundarraj Nidharshan)</author>
      <author>aprotim@tifrh.res.in (Zubairul Islam)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.102417</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 07 Jul 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-07-07T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Genome reorganization and its functional impact during breast cancer progression</title>
      <link>https://elifesciences.org/articles/108135</link>
      <description>Cancer progression involves extensive alterations in epigenetic and gene expression programs, but the accompanying changes in higher-order genome organization remain less well understood. Using high-resolution Micro-C mapping in the MCF10 cell model of breast cancer, we profiled chromatin compartments, topologically associated domains, and chromatin loops. We find large-scale compartmental shifts occur predominantly in early stages of cancer development, with more fine-scale structural changes in topologically associating domains and loops accumulating during the later transition to metastasis. Relating these chromatin features to gene expression and enhancer-associated histone marks revealed that many differentially expressed genes are physically connected to distal regulatory elements. While enhancer–promoter contact frequency and distal enhancer activity correlated with gene expression, strong changes in chromatin looping were relatively infrequent during progression, suggesting that alterations in chromatin contacts are not globally necessary, but may facilitate gene regulation at a subset of genes. These results elucidate the connection between gene regulation and genome remodeling in a cell-based cancer progression model.</description>
      <author>Gary.Stein@med.uvm.edu (Andrew Fritz)</author>
      <author>Gary.Stein@med.uvm.edu (Gary Stein)</author>
      <author>Gary.Stein@med.uvm.edu (Haley Greenyer)</author>
      <author>Gary.Stein@med.uvm.edu (Janet Stein)</author>
      <author>Gary.Stein@med.uvm.edu (Kathleen S Metz Reed)</author>
      <author>Gary.Stein@med.uvm.edu (Kerstin Heselmeyer-Haddad)</author>
      <author>Gary.Stein@med.uvm.edu (Seth Frietze)</author>
      <author>Gary.Stein@med.uvm.edu (Tom Misteli)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.108135</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Genetics and Genomics</category>
      <pubDate>Tue, 16 Jun 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-06-16T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>The DBD-α4 helix of EWSR1::FLI1 is required for GGAA microsatellite binding that underlies genome regulation in Ewing sarcoma</title>
      <link>https://elifesciences.org/articles/95626</link>
      <description>Ewing sarcoma is the second most common bone cancer in children and young adults. In 85% of patients, a translocation between chromosomes 11 and 22 results in a potent fusion oncoprotein, EWSR1::FLI1. EWSR1::FLI1 is the only genetic alteration in an otherwise unaltered genome of Ewing sarcoma tumors. The EWSR1 portion of the protein is an intrinsically disordered domain involved in transcriptional regulation by EWSR1::FLI1. The FLI portion of the fusion contains a DNA binding domain shown to bind core GGAA motifs and GGAA repeats. A small alpha-helix in the DNA binding domain of FLI1, DBD-α4 helix, is critical for the transcription function of EWSR1::FLI1. In this study, we aimed to understand the mechanism by which the DBD-α4 helix promotes transcription and therefore oncogenic transformation. We utilized a multi-omics approach to assess chromatin organization, active chromatin marks, genome binding, and gene expression in cells expressing EWSR1::FLI1 constructs with and without the DBD-α4 helix. Our studies revealed DBD-α4 helix is crucial for cooperative binding of EWSR1::FLI1 at GGAA microsatellites. This binding underlies many aspects of genome regulation by EWSR1::FLI1, such as formation of topologically associated domains (TADs), chromatin loops, enhancers, and productive transcription hubs.</description>
      <author>emily.theisen@nationwidechildrens.org (Ariunaa Bayanjargal)</author>
      <author>emily.theisen@nationwidechildrens.org (Cenny Taslim)</author>
      <author>emily.theisen@nationwidechildrens.org (Emily Rose Theisen)</author>
      <author>emily.theisen@nationwidechildrens.org (Iftekhar A Showpnil)</author>
      <author>emily.theisen@nationwidechildrens.org (Jesse C Crow)</author>
      <author>emily.theisen@nationwidechildrens.org (Julia Selich-Anderson)</author>
      <author>emily.theisen@nationwidechildrens.org (Runwei Zhou)</author>
      <author>emily.theisen@nationwidechildrens.org (Stephen L Lessnick)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.95626</guid>
      <category>Cancer Biology</category>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Mon, 15 Jun 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-06-15T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Contractile perinuclear actomyosin network promotes peripheral and polar chromosome interaction with the mitotic spindle</title>
      <link>https://elifesciences.org/articles/110952</link>
      <description>Chromosomes must efficiently and properly interact with the mitotic spindle during prometaphase for correct segregation in anaphase. Chromosomes at the nuclear periphery or behind the spindle poles interact less efficiently with the mitotic spindle, increasing the risk of missegregation. The mechanisms that mitigate such risks in unperturbed cells are unknown. An actomyosin network (PANEM) forms around the nucleus during prophase. While the myosin-II-dependent PANEM contraction immediately after nuclear envelope breakdown (NEBD) facilitates chromosome interaction with the mitotic spindle, the mechanism by which it does so remains unclear. Here, using human cell lines, we show that immediately after NEBD, PANEM contraction directly pushes chromosomes at the nuclear periphery or behind spindle poles toward the center of cells. Detailed tracking of kinetochore movements following light-induced activation of a myosin II inhibitor reveals that this inward movement of chromosomes facilitates kinetochores’ initial interaction with spindle microtubules. It also promotes the onset of kinetochores’ congression toward the spindle mid-plane, but not congression itself once it starts. Thus, PANEM contraction ensures high-fidelity chromosome segregation by relocating chromosomes from unfavorable locations. Since some chromosomally unstable cancer cells fail to establish PANEM during early mitosis, the absence of PANEM may contribute to numerical chromosomal instability in these cells.</description>
      <author>j.k.eykelenboom@dundee.ac.uk (Alexander JR Booth)</author>
      <author>j.k.eykelenboom@dundee.ac.uk (Graeme Ball)</author>
      <author>j.k.eykelenboom@dundee.ac.uk (John K Eykelenboom)</author>
      <author>j.k.eykelenboom@dundee.ac.uk (Nooshin Sheidaei)</author>
      <author>j.k.eykelenboom@dundee.ac.uk (Tomoyuki U Tanaka)</author>
      <author>j.k.eykelenboom@dundee.ac.uk (Zuojun Yue)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.110952</guid>
      <category>Cell Biology</category>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Thu, 11 Jun 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-06-11T00:00:00Z</dc:date>
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    </item>
    <item>
      <title>Uncoupling the TFIIH Core and Kinase Modules leads to misregulated RNA polymerase II CTD Serine 5 phosphorylation</title>
      <link>https://elifesciences.org/articles/110091</link>
      <description>TFIIH is an essential transcription initiation factor for RNA polymerase II (RNApII). This multi-subunit complex comprises two modules that are physically linked in &lt;i&gt;Saccharomyces cerevisiae&lt;/i&gt; by the subunit Tfb3 (MAT1 in metazoans). The Core Module, with two DNA-dependent ATPases and several additional subunits, promotes DNA unwinding. The Kinase Module phosphorylates the C-terminal domain (CTD) of RNApII subunit Rpb1, initiating a cycle of CTD modifications that coordinate the exchange of initiation and elongation factors. Why these two disparate activities are bundled into one factor is not obvious, but the connection may provide temporal coordination during early initiation. When Tfb3 is split into two parts to uncouple the TFIIH modules, the resulting cells are viable but grow very slowly. Chromatin immunoprecipitation of the split TFIIH shows that the Core Module, but not the Kinase, is properly recruited to promoters. Instead of the normal promoter-proximal peak, high CTD Serine 5 phosphorylation is seen throughout transcribed regions. Therefore, coupling the TFIIH modules is necessary to localize and limit CTD kinase activity to early stages of transcription. These results are consistent with the idea that the two TFIIH modules began as independent functional entities that later became connected by Tfb3 during early eukaryotic evolution.</description>
      <author>steveb@hms.harvard.edu (Célia Jeronimo)</author>
      <author>steveb@hms.harvard.edu (Christian Poitras)</author>
      <author>steveb@hms.harvard.edu (François Robert)</author>
      <author>steveb@hms.harvard.edu (Gabriela Giordano)</author>
      <author>steveb@hms.harvard.edu (Robin Buratowski)</author>
      <author>steveb@hms.harvard.edu (Stephen Buratowski)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.110091</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Mon, 08 Jun 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-06-08T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Interplay between cohesin and TORC1 links chromosome segregation and gene expression to environmental changes</title>
      <link>https://elifesciences.org/articles/108275</link>
      <description>Cohesin is a DNA tethering complex essential for chromosome structure and function. In fission yeast, defects in the cohesin loader Mis4 result in chromosome segregation defects and dysregulated expression of genes near chromosome ends. A genetic screen for suppressors of the thermosensitive growth defect of &lt;i&gt;mis4-G1487D&lt;/i&gt; identified several hypomorphic mutants of the Target of Rapamycin Complex 1 (TORC1), a conserved kinase that integrates cellular signals to regulate growth and metabolism through substrate-specific phosphorylation. Here, we demonstrate that the TORC1 pathway modulates cohesin functions in chromosome segregation and gene expression. In the context of compromised cohesin loading, the incidence of chromosome segregation defects was modulated by the growth medium in a TORC1-dependent manner. Pharmacological or genetic downregulation of TORC1 activity restored cohesin binding to its chromosomal sites and improved mitotic chromosome segregation. Notably, reduced TORC1 activity also increased cohesin binding and chromosome transmission fidelity in wild-type cells. These results suggest that environmental cues influence chromosome stability via TORC1. Biochemically, TORC1 co-purified with cohesin and reduced TORC1 activity correlated with decreased phosphorylation of specific residues on Mis4 and cohesin. Mutations in cohesin that mimic the non-phosphorylated state mirrored the effects of TORC1 downregulation, showing that TORC1 is part of the network that controls cohesin phosphorylation to modulate its functions. Finally, we show that the functional interaction between TORC1 and Mis4 extends to the regulation of stress-responsive genes. Our findings reveal a TORC1–cohesin link that may facilitate cellular adaptation to environmental changes. Given that TORC1 inhibitors and calorie restriction extend lifespan in diverse species, this connection raises the intriguing possibility that cohesin-mediated changes in chromosome structure contribute to these effects.</description>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Adèle L Marston)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Adrien Birot)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Anastasios Damdimopoulos)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Dorian Besson)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Jean-Paul Javerzat)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Karl Ekwall)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Sabine Vaur)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Stéphane Claverol)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Stéphanie Vazquez)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Sylvie Tournier)</author>
      <author>jpaul.javerzat@ibgc.cnrs.fr (Yannick Gachet)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.108275</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Mon, 01 Jun 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-06-01T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>MORC2 mediates transcriptional regulation through liquid-liquid phase separation</title>
      <link>https://elifesciences.org/articles/108479</link>
      <description>MORC2 is a chromatin-associated ATPase essential for transcriptional silencing and genome stability, yet the biophysical principles governing its regulatory activity remain elusive. Here, we demonstrate that full-length MORC2 undergoes biomolecular condensation to form dynamic nuclear assemblies, a process fundamentally required for its repressor function. Endogenous MORC2 forms discrete, dynamic condensates in neurons from &lt;i&gt;Morc2a&lt;sup&gt;EGFP&lt;/sup&gt;&lt;/i&gt; chimeric mice, supporting the physiological relevance of these assemblies in vivo. Mechanistically, a 3.1 Å crystal structure of coiled-coil 3 (CC3) identifies a dimeric scaffold that serves as a structural hub, while multivalent ‘sticker’ interactions between an intrinsically disordered region (IDR) and a newly defined IDR-binding domain (IBD) drive condensation. We show that DNA acts as a molecular scaffold that triggers MORC2 condensation, which in turn allosterically stimulates its ATPase activity. Critically, by employing a ‘killswitch’ strategy to decouple assembly from internal fluidity, we reveal that only dynamic MORC2 condensates, not static aggregates or condensation-deficient mutants, can restore transcriptional regulation in &lt;i&gt;MORC2&lt;/i&gt;-knockout cells. Furthermore, pathogenic variants linked to CMT2Z and SMA differentially perturb these material properties and enzymatic turnover, providing a mechanistic link between condensate dysregulation and human neuropathies. Together, our findings establish a DNA-templated condensation mechanism for MORC2 and provide a molecular framework for understanding how the material state of chromatin-associated machinery dictates gene regulation and disease pathogenesis.</description>
      <author>huangcd@ustc.edu.cn (Chao Wang)</author>
      <author>huangcd@ustc.edu.cn (Chengdong Huang)</author>
      <author>huangcd@ustc.edu.cn (Feng Zhu)</author>
      <author>huangcd@ustc.edu.cn (Weiya Xu)</author>
      <author>huangcd@ustc.edu.cn (Wenli Jiang)</author>
      <author>huangcd@ustc.edu.cn (Wenxiu Duan)</author>
      <author>huangcd@ustc.edu.cn (Yanshen Zhang)</author>
      <author>huangcd@ustc.edu.cn (Yihui Bi)</author>
      <author>huangcd@ustc.edu.cn (Yu Wei)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.108479</guid>
      <category>Biochemistry and Chemical Biology</category>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Wed, 20 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-20T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Single-domain antibody inhibitors target the coiled coil arms of the &lt;i&gt;Bacillus subtilis&lt;/i&gt; SMC complex</title>
      <link>https://elifesciences.org/articles/111131</link>
      <description>Synthetic nanobodies—also called sybodies—have proven valuable for stabilizing conformations of purified proteins, advancing structural and functional studies for example of transmembrane proteins. However, their utility in modulating protein function in living cells has remained less well explored. Structural Maintenance of Chromosomes (SMC) complexes facilitate chromosome organization, a fundamental process in all domains of life. In this study, we target the bacterial SMC complex, Smc-ScpAB, in &lt;i&gt;Bacillus subtilis&lt;/i&gt; with synthetic nanobodies, aiming to identify key functional regions of the protein complex in a largely unbiased manner. We first isolate sybodies that specifically bind purified Smc-ScpAB and then express them in &lt;i&gt;B. subtilis&lt;/i&gt; to select binders capable of disrupting Smc-ScpAB function, leading to chromosome segregation defects and cell death. Mapping and biochemical characterization show that the 14 disruptive sybodies belong to one of three library designs, target the Smc subunit near the same coiled coil arm interface and modulate its ATPase activity in two principal ways, highlighting the mid-region of the Smc coiled coil as critical feature of the SMC-DNA folding process. These findings underscore the potential of sybodies—and, by extension, designed binders—as versatile tools for probing dynamic protein function in living cells.</description>
      <author>stephan.gruber@unil.ch (Lea M Huber-Hürlimann)</author>
      <author>stephan.gruber@unil.ch (Markus A Seeger)</author>
      <author>stephan.gruber@unil.ch (Michael Taschner)</author>
      <author>stephan.gruber@unil.ch (Ophélie J Gosselin)</author>
      <author>stephan.gruber@unil.ch (Stephan Gruber)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.111131</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 19 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-19T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Lineage priming and cell type proportioning depends on the interplay between stochastic and deterministic factors</title>
      <link>https://elifesciences.org/articles/105512</link>
      <description>Isogenic cells can break symmetry and adopt different fates, even when exposed to a seemingly identical environment. This deeply conserved phenomenon allows unicellular organisms to pre-empt dynamically changing environments and is central to the evolution of multicellularity. It is thought that cells are primed towards different lineages by cell-cell variation, although the underlying mechanisms are poorly understood. To address this, we exploit the tractability of the social amoeba &lt;i&gt;Dictyostelium discoideum&lt;/i&gt;, where cell fate choice also does not depend on spatial cues. We develop and test a model to explain quantitative experimental single-cell observations of probabilistic differentiation. The model suggests that cell cycle position affects lineage choice, as previously shown but that stochastic cell-cell variation also plays a key role. Single cell sequencing reveals genes that exhibit cell type-specific expression or genes that affect fate choice exhibit extensive stochastic cell-cell expression variation. Like lineage priming genes in ESCs, they are associated with H3K4 methylation, which when perturbed affects their expression and disrupt fate choice. We suggest the integration of stochastic and deterministic inputs represents an adaptive mechanism to increase developmental robustness against perturbations that affect deterministic signals.</description>
      <author>christopher.thompson@ucl.ac.uk (Catherine Pears)</author>
      <author>christopher.thompson@ucl.ac.uk (Chris Brimson)</author>
      <author>christopher.thompson@ucl.ac.uk (Chris Thompson)</author>
      <author>christopher.thompson@ucl.ac.uk (Jason Wolf)</author>
      <author>christopher.thompson@ucl.ac.uk (Li-Yao Huang)</author>
      <author>christopher.thompson@ucl.ac.uk (Nicole Gruenheit)</author>
      <author>christopher.thompson@ucl.ac.uk (William Salvidge)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.105512</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Developmental Biology</category>
      <pubDate>Tue, 19 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-19T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Identification of the regulatory elements and protein substrates of lysine acetoacetylation</title>
      <link>https://elifesciences.org/articles/104123</link>
      <description>Short-chain fatty acylations establish connections between cell metabolism and regulatory pathways. Lysine acetoacetylation (Kacac) was recently identified as a new histone mark. However, regulatory elements, substrate proteins, and epigenetic functions of Kacac are not yet fully understood, hindering further in-depth understanding of acetoacetate-modulated (patho)physiological processes. Here, we created a chemo-immunological approach for reliable detection of Kacac, and demonstrated that acetoacetate serves as the primary precursor for histone Kacac. We report the enzymatic addition of the Kacac mark by the acyltransferases GCN5, p300, and PCAF, and its removal by the deacetylase HDAC3. Furthermore, we establish acetoacetyl-CoA synthetase as a key regulator of cellular Kacac levels. A comprehensive proteomic analysis has identified 139 Kacac sites on 85 human proteins. Bioinformatics analysis of Kacac substrates and RNA sequencing data reveal the broad impacts of Kacac on multifaceted cellular processes. These findings unveil pivotal regulatory mechanisms for the acetoacetate-mediated Kacac pathway, opening a new avenue for further investigation into ketone body functions in various pathophysiological states.</description>
      <author>yzheng@uga.edu (Bhoj Kumar)</author>
      <author>yzheng@uga.edu (Parastoo Azadi)</author>
      <author>yzheng@uga.edu (Qianyun Fu)</author>
      <author>yzheng@uga.edu (Terry Nguyen)</author>
      <author>yzheng@uga.edu (Y George Zheng)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.104123</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Thu, 14 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-14T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>The long non-coding RNA &lt;i&gt;Dreg1&lt;/i&gt; is required for optimal ILC2 development</title>
      <link>https://elifesciences.org/articles/109408</link>
      <description>Gata3 is an essential transcription factor for the development of several distinct immune cell lineages such as T cells, natural killer (NK) cells, and innate lymphoid cells (ILCs). As such, the levels and timing of &lt;i&gt;Gata3&lt;/i&gt; expression are critical for directing lineage fate decisions. The &lt;i&gt;Gata3&lt;/i&gt; locus has a complex and dynamic distal regulatory enhancer landscape. Recently, we identified a non-coding RNA, &lt;i&gt;Dreg1&lt;/i&gt;, located immediately upstream of the classic +280 kb T/NK cell enhancer (Tce1). To test its function, we excised the &lt;i&gt;Dreg1&lt;/i&gt; locus in mice and observed a selective reduction of group 2 ILCs (ILC2) across multiple tissues, but mature T, NK, and other ILC lineages remained unchanged. In bone marrow, common innate lymphoid cell progenitors (ILCPs) increased while ILC2 progenitors (ILC2P) decreased, with a modest reduction of &lt;i&gt;Gata3&lt;/i&gt; in upstream progenitors consistent with an early developmental bottleneck. Chromatin profiling showed the Dreg1 locus is accessible in early lymphoid progenitors and became decorated with H3K27ac in ILCP in a Tcf1-dependent manner. Furthermore, Tcf1-deficient cells did not express &lt;i&gt;Dreg1&lt;/i&gt; and showed alterations in the epigenetic landscape of the &lt;i&gt;Dreg1&lt;/i&gt; locus. Finally, we discovered that potential homologues of &lt;i&gt;Dreg1&lt;/i&gt; harboured in a syntenic enhancer of &lt;i&gt;GATA3&lt;/i&gt; are also highly expressed in human ILC2. Taken together, we conclude that &lt;i&gt;Dreg1&lt;/i&gt; is a Tcf1-dependent non-coding RNA critical for fine tuning the high level of &lt;i&gt;Gata3&lt;/i&gt; required for the optimal development of the ILC2 lineage.</description>
      <author>ajith.vasanthakumar@petermac.org (Adelynn Tang)</author>
      <author>ajith.vasanthakumar@petermac.org (Ajithkumar Vasanthakumar)</author>
      <author>ajith.vasanthakumar@petermac.org (Kael Schoffer)</author>
      <author>ajith.vasanthakumar@petermac.org (Nadia Iannarella)</author>
      <author>ajith.vasanthakumar@petermac.org (Rhys Allan)</author>
      <author>ajith.vasanthakumar@petermac.org (Sara Quon)</author>
      <author>ajith.vasanthakumar@petermac.org (Timothy M Johanson)</author>
      <author>ajith.vasanthakumar@petermac.org (Wing Fuk Chan)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.109408</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Immunology and Inflammation</category>
      <pubDate>Wed, 13 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-13T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Real-time transcriptomic profiling in distinct experimental conditions</title>
      <link>https://elifesciences.org/articles/98768</link>
      <description>Nanopore technology offers real-time sequencing opportunities, providing rapid access to sequenced data and allowing researchers to manage the sequencing process efficiently, resulting in cost-effective strategies. Here, we present focused case studies demonstrating the versatility of real-time transcriptomics analysis in rapid quality control for long-read RNA-seq. We illustrate its utility through four experimental setups: (1) transcriptome profiling of distinct human cellular populations, (2) identification of experimentally enriched transcripts, (3) transcriptional analysis of cells under heat shock conditions, and (4) identification of experimentally manipulated genes (knockout and overexpression) in several yeast strains. We show how to perform multiple layers of quality control as soon as sequencing has started, addressing both the quality of the experimental and sequencing traits. Real-time quality control measures assess sample/condition variability and determine the number of identified genes per sample/condition. Furthermore, real-time differential gene/transcript expression analysis can be conducted at various time points post-sequencing initiation (PSI), revealing dynamic changes in gene/transcript expression between two conditions. Using real-time analysis, which occurs in parallel to the sequencing run, we identified differentially expressed genes/transcripts as early as 1 hr PSI. These changes were consistently observed throughout the entire sequencing process. We discuss the new possibilities offered by real-time data analysis, which have the potential to serve as a valuable tool for rapid and cost-effective quality checks in specific experimental settings and can be potentially integrated into clinical applications in the future.</description>
      <author>buttamer@uni-mainz.de (Anna Wierczeiko)</author>
      <author>buttamer@uni-mainz.de (Julia Brechtel)</author>
      <author>buttamer@uni-mainz.de (Kaushik Viswanathan Iyer)</author>
      <author>buttamer@uni-mainz.de (Kristina Friedland)</author>
      <author>buttamer@uni-mainz.de (Marie-Luise Winz)</author>
      <author>buttamer@uni-mainz.de (Mark Helm)</author>
      <author>buttamer@uni-mainz.de (Marko Jörg)</author>
      <author>buttamer@uni-mainz.de (Max Müller)</author>
      <author>buttamer@uni-mainz.de (Stefan Mündnich)</author>
      <author>buttamer@uni-mainz.de (Stefan Pastore)</author>
      <author>buttamer@uni-mainz.de (Susanne Gerber)</author>
      <author>buttamer@uni-mainz.de (Tamer Butto)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.98768</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Computational and Systems Biology</category>
      <pubDate>Tue, 05 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-05T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Evidence of off-target probe binding affecting 10x Genomics Xenium gene panels compromise accuracy of spatial transcriptomic profiling</title>
      <link>https://elifesciences.org/articles/107070</link>
      <description>The accuracy of spatial gene expression profiles generated by probe-based in situ spatially resolved transcriptomic technologies depends on the specificity with which probes bind to their intended target gene. Off-target binding, defined as a probe binding to something other than the target gene, can distort a gene’s true expression profile, making probe specificity essential for reliable transcriptomics. Here, we investigated off-target binding affecting the 10x Genomics Xenium technology. We developed a software tool, Off-target Probe Tracker (OPT), to identify putative off-target binding via alignment of probe target sequences and assessing whether mapped loci corresponded to the intended target gene across multiple reference annotations. Applying OPT to a Xenium human breast gene panel, we identified at least 14 out of the 313 genes in the panel potentially impacted by off-target binding to protein-coding genes. To substantiate our predictions, we leveraged a Xenium breast cancer dataset generated using this gene panel and compared results to orthogonal spatial and single-cell transcriptomic profiles from Visium CytAssist and 3′ single-cell RNA-seq derived from the same tumor block. Our findings indicate that for some genes, the expression patterns detected by Xenium demonstrably reflect the aggregate expression of the target and predicted off-target genes based on Visium and single-cell RNA-seq, rather than the target gene alone. We further applied OPT to identify potential off-target binding in custom gene panels and integrate tissue-specific RNA-seq data to assess effects. Overall, this work enhances the biological interpretability of spatial transcriptomics data and improves reproducibility in spatial transcriptomics research.</description>
      <author>jeanfan@jhu.edu (Caleb Hallinan)</author>
      <author>jeanfan@jhu.edu (Edmund Tsou)</author>
      <author>jeanfan@jhu.edu (Hyun Joo Ji)</author>
      <author>jeanfan@jhu.edu (Jean Fan)</author>
      <author>jeanfan@jhu.edu (Steven L Salzberg)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.107070</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Computational and Systems Biology</category>
      <pubDate>Fri, 01 May 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-05-01T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>TAD boundaries and gene activity are uncoupled</title>
      <link>https://elifesciences.org/articles/110197</link>
      <description>Topologically associating domains (TADs) are prominent features of genome organization. A proposed function of TADs is to contribute to gene regulation by promoting chromatin interactions within a TAD and by suppressing interactions between TADs. Here, we directly probe the structure-function relationship of TADs by simultaneously assessing the behavior of TAD boundaries and gene activity at the single-cell and -allele level using high-throughput imaging. We find that while TAD boundaries pair more frequently than non-boundary regions, these interactions are infrequent and are uncorrelated with transcriptional activity of genes within the TAD. Similarly, acute global transcriptional inhibition or gene-specific activation does not alter TAD boundary proximity. Furthermore, while loss of the cohesin component RAD21 alters gene activity, disruption of TAD boundaries by depletion of the architectural chromatin protein CTCF is insufficient to alter expression of genes within the TAD. These results suggest that TAD boundary architecture and gene activity are largely uncoupled.</description>
      <author>mistelit@mail.nih.gov (Adib Keikhosravi)</author>
      <author>mistelit@mail.nih.gov (Daniel R Larson)</author>
      <author>mistelit@mail.nih.gov (Faisal Almansour)</author>
      <author>mistelit@mail.nih.gov (Gianluca Pegoraro)</author>
      <author>mistelit@mail.nih.gov (Kathleen S Metz Reed)</author>
      <author>mistelit@mail.nih.gov (Nadezda A Fursova)</author>
      <author>mistelit@mail.nih.gov (Tom Misteli)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.110197</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Wed, 15 Apr 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-04-15T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Epigenetics and chromatin structure regulate &lt;i&gt;var2csa&lt;/i&gt; expression and the placental-binding phenotype in &lt;i&gt;Plasmodium falciparum&lt;/i&gt;</title>
      <link>https://elifesciences.org/articles/93632</link>
      <description>&lt;i&gt;Plasmodium falciparum&lt;/i&gt; is responsible for what appears to be a never-ending public health issue in the developing world. With repeated infections, a gradual semi-immunity to severe malaria can be acquired, but this is disrupted when women become pregnant as the parasite cytoadheres in the placenta to prevent splenic clearance. This change in tissue tropism is due to specific transcription of the antigenically variable adhesin VAR2CSA. To better understand the molecular mechanisms activating &lt;i&gt;var2csa&lt;/i&gt; and antigenic variation overall, we used a combination of phenotypic and systems biology assays. We first established phenotypically homogenous populations of VAR2CSA-expressing and placenta-binding parasites that were shown to exclusively transcribe &lt;i&gt;var2csa&lt;/i&gt; while all other &lt;i&gt;var&lt;/i&gt; genes remained silenced. We also confirmed that the transcriptional activation was strongly associated with distinct depletion of repressive H3K9me3 marks. Further, we used chromatin conformation capture as a high-resolution approach to determine interchromosomal interactions and established that transcriptional activation is linked to a small yet significant repositioning of &lt;i&gt;var2csa&lt;/i&gt; relative to heterochromatic telomeric clusters. Lastly, we demonstrated that occupancy of 5-methylcytosine was present in all &lt;i&gt;var&lt;/i&gt; genes but independent of transcriptional repression and switching. All together, these findings provide insights at high resolution into the potential role of 5-methylcytosine in &lt;i&gt;P. falciparum&lt;/i&gt; and increase our understanding of the mechanisms regulating antigenic variation at the epigenetics and chromatin structure level.</description>
      <author>karine.leroch@ucr.edu (Hannes Hoppe)</author>
      <author>karine.leroch@ucr.edu (Karine G Le Roch)</author>
      <author>karine.leroch@ucr.edu (Madle Sirel)</author>
      <author>karine.leroch@ucr.edu (Sulman Shafeeq)</author>
      <author>karine.leroch@ucr.edu (Todd Lenz)</author>
      <author>karine.leroch@ucr.edu (Ulf Ribacke)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.93632</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Microbiology and Infectious Disease</category>
      <pubDate>Wed, 15 Apr 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-04-15T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Single-cell RNA-seq reveals trans-sialidase-like superfamily gene expression heterogeneity in &lt;i&gt;Trypanosoma cruzi&lt;/i&gt; populations</title>
      <link>https://elifesciences.org/articles/105822</link>
      <description>&lt;i&gt;Trypanosoma cruzi,&lt;/i&gt; the causative agent of Chagas disease, presents a major public health challenge in Central and South America, affecting approximately 8 million people and placing millions more at risk. The &lt;i&gt;T. cruzi&lt;/i&gt; life cycle includes transitions between epimastigote, metacyclic trypomastigote, amastigote, and blood trypomastigote stages, each marked by distinct morphological and molecular adaptations to different hosts and environments. Unlike other trypanosomatids such as &lt;i&gt;Trypanosoma brucei&lt;/i&gt;, &lt;i&gt;T. cruzi&lt;/i&gt; does not employ a monoallelic model of antigenic variation; instead, it relies on a diverse repertoire of cell-surface associated proteins encoded by large multigene families, which are essential for infectivity and immune evasion. This study analyzes cell-specific transcriptomes using single-cell RNA sequencing of amastigote and trypomastigote cells to characterize stage-specific surface protein expression during mammalian infection. Through clustering and identification of cell-specific markers, we assigned cells to distinct parasite developmental forms. Analysis of individual cells revealed that surface protein-coding genes, especially members of the trans-sialidase-like superfamily (TcS), are expressed with greater heterogeneity than single-copy genes. Moreover, no recurrent combinations of TcS genes were observed between individual cells in the population. Remarkably, a small subset of TcS mRNAs, encoded by genes preferentially located in the core genomic compartment, are frequently detected across the cell population, whereas the vast majority of TcS mRNAs show low detection frequencies and are mainly encoded in the disruptive compartment. Our findings thus reveal transcriptomic heterogeneity within trypomastigote populations where each cell displays unique TcS expression profiles. Focusing on the diversity of surface protein expression, this research aims to deepen our understanding of &lt;i&gt;T. cruzi&lt;/i&gt; cellular biology and infection strategies.</description>
      <author>psmircich@fcien.edu.uy (Gabriel Rinaldi)</author>
      <author>psmircich@fcien.edu.uy (Javier G De Gaudenzi)</author>
      <author>psmircich@fcien.edu.uy (Joaquín Garat)</author>
      <author>psmircich@fcien.edu.uy (José Sotelo-Silveira)</author>
      <author>psmircich@fcien.edu.uy (Lucas Inchausti)</author>
      <author>psmircich@fcien.edu.uy (Lucia Bilbao)</author>
      <author>psmircich@fcien.edu.uy (Maria A Duhagon)</author>
      <author>psmircich@fcien.edu.uy (Pablo Smircich)</author>
      <author>psmircich@fcien.edu.uy (Vanina A Campo)</author>
      <author>psmircich@fcien.edu.uy (Virginia M Howick)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.105822</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Microbiology and Infectious Disease</category>
      <pubDate>Tue, 07 Apr 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-04-07T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>DNA O-MAP uncovers the molecular neighborhoods associated with specific genomic loci</title>
      <link>https://elifesciences.org/articles/102489</link>
      <description>The accuracy of crucial nuclear processes such as transcription, replication, and repair depends on the local composition of chromatin and the regulatory proteins that reside there. Understanding these DNA–protein interactions at the level of specific genomic loci has remained challenging due to technical limitations. Here, we introduce a method termed ‘DNA O-MAP’, which uses programmable peroxidase-conjugated oligonucleotide probes to biotinylate nearby proteins. We show that DNA O-MAP can be coupled with label-free or sample multiplexed quantitative proteomics, targeted chemical perturbations, and next-generation sequencing to quantify DNA-proximal proteins and DNA–DNA interactions at specific genomic loci in human and murine cells. Furthermore, we establish that DNA O-MAP is applicable to both repetitive and unique genomic loci of varying sizes, from kilobase &lt;i&gt;HOX&lt;/i&gt; gene clusters to megabase alpha-satellite repeats, and that DNA O-MAP can measure proximal molecular effectors in a homolog-specific manner.</description>
      <author>beliveau@uw.edu (Ashley F Tsue)</author>
      <author>beliveau@uw.edu (Brian J Beliveau)</author>
      <author>beliveau@uw.edu (Chris Hsu)</author>
      <author>beliveau@uw.edu (Christopher D McGann)</author>
      <author>beliveau@uw.edu (Conor K Camplisson)</author>
      <author>beliveau@uw.edu (Conor P Herlihy)</author>
      <author>beliveau@uw.edu (David M Shechner)</author>
      <author>beliveau@uw.edu (David Z Nwizugbo)</author>
      <author>beliveau@uw.edu (Devin K Schweppe)</author>
      <author>beliveau@uw.edu (Evan E Kania)</author>
      <author>beliveau@uw.edu (Mary Krebs)</author>
      <author>beliveau@uw.edu (Nicolas J Longhi)</author>
      <author>beliveau@uw.edu (Qiaoyi Lin)</author>
      <author>beliveau@uw.edu (Rose Fields)</author>
      <author>beliveau@uw.edu (Shayan C Avanessian)</author>
      <author>beliveau@uw.edu (Thomas A Perkins)</author>
      <author>beliveau@uw.edu (Yuzhen Liu)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.102489</guid>
      <category>Chromosomes and Gene Expression</category>
      <category>Computational and Systems Biology</category>
      <pubDate>Tue, 07 Apr 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-04-07T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>UV irradiation alters TFAM binding specificity and compaction of DNA</title>
      <link>https://elifesciences.org/articles/108862</link>
      <description>Mitochondria lack nucleotide excision repair; however, mitochondrial DNA (mtDNA) is resistant to mutation accumulation following DNA damage. These observations suggest additional damage sensing or protection mechanisms. Transcription Factor A, Mitochondrial (TFAM) compacts mtDNA into nucleoids and binds differentially to certain forms of DNA damage. As such, TFAM has emerged as a candidate for protecting mtDNA or sensing damage. To examine the possibilities that TFAM might protect DNA from damage or act as a damage sensing protein for irreparable forms of mtDNA damage, we used live-cell imaging and HeLa cell-based assays, atomic force microscopy (AFM), and high-throughput protein-DNA binding assays to characterize the binding properties of human TFAM to ultraviolet-C (UVC) irradiated DNA and the cellular consequences of UVC irradiation. Our cell data show increased TFAM mRNA after exposure and suggest an increase in mtDNA degradation without a loss in mitochondrial membrane potential that might trigger mitophagy. Our protein-DNA binding assays indicate a reduction in sequence specificity of TFAM following UVC irradiation and a redistribution of TFAM binding throughout the mitochondrial genome. Our AFM data show increased compaction of DNA by TFAM in the presence of damage. Despite the TFAM-mediated compaction of mtDNA in vitro, we do not observe any protective effect of increased TFAM protein on DNA damage formation in cells or in vitro. Increased TFAM protein did not alter levels of mtDNA damage over time after UVC exposure in vivo, but knockdown of TFAM did alter mtDNA damage levels in HeLa cells both at baseline and after UVC exposure. Taken together, these studies indicate that UVC-induced DNA damage alters TFAM binding and promotes compaction by TFAM in vitro. We hypothesize that TFAM may act as a damage sensing protein in vivo, sequestering damaged genomes to prevent mutagenesis by facilitating removal or suppression of replication.</description>
      <author>derie@unc.edu (Alex George)</author>
      <author>derie@unc.edu (Caitlin Johnson)</author>
      <author>derie@unc.edu (Dillon E King)</author>
      <author>derie@unc.edu (Dorothy A Erie)</author>
      <author>derie@unc.edu (Emily E Beard)</author>
      <author>derie@unc.edu (Emma L Dolan)</author>
      <author>derie@unc.edu (Evan Corden)</author>
      <author>derie@unc.edu (Hunter Wilkins)</author>
      <author>derie@unc.edu (Ian Ryde)</author>
      <author>derie@unc.edu (Joel Meyer)</author>
      <author>derie@unc.edu (Matthew J Satusky)</author>
      <author>derie@unc.edu (Raluca Gordân)</author>
      <author>derie@unc.edu (Susan K Murphy)</author>
      <author>derie@unc.edu (Wei Zhu)</author>
      <author>derie@unc.edu (Yuning Zhang)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.108862</guid>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Wed, 25 Mar 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-03-25T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>p53-induced RNA-binding protein ZMAT3 inhibits transcription of a hexokinase to suppress mitochondrial respiration in human cancer cells</title>
      <link>https://elifesciences.org/articles/107538</link>
      <description>The tumor suppressor p53 is a transcription factor that controls the expression of hundreds of genes. Emerging evidence indicates that the p53-induced RNA-binding protein ZMAT3 acts as a key splicing regulator that contributes to p53-dependent tumor suppression in vitro and in vivo. However, the mechanism by which ZMAT3 functions within the p53 pathway remains largely unclear. Here, we discovered a function of ZMAT3 in inhibiting transcription of &lt;i&gt;HKDC1&lt;/i&gt;, a hexokinase that regulates glucose metabolism and mitochondrial respiration in human cancer cells. Quantitative proteomics revealed HKDC1 as the most significantly upregulated protein in &lt;i&gt;ZMAT3&lt;/i&gt;-depleted colorectal cancer cells. &lt;i&gt;ZMAT3&lt;/i&gt; depletion resulted in increased mitochondrial respiration, which was rescued by simultaneous depletion of &lt;i&gt;HKDC1&lt;/i&gt;, suggesting that HKDC1 is a critical downstream effector of &lt;i&gt;ZMAT3&lt;/i&gt;. Unexpectedly, ZMAT3 did not bind to &lt;i&gt;HKDC1&lt;/i&gt; RNA or DNA; however, proteomic analysis of the ZMAT3 interactome identified its interaction with the oncogenic transcription factor JUN. ZMAT3 depletion enhanced JUN binding to the &lt;i&gt;HKDC1&lt;/i&gt; locus, leading to increased &lt;i&gt;HKDC1&lt;/i&gt; transcription that was rescued upon &lt;i&gt;JUN&lt;/i&gt; depletion, suggesting that JUN activates &lt;i&gt;HKDC1&lt;/i&gt; transcription in ZMAT3-depleted cells. Collectively, these findings uncover a mechanism by which ZMAT3 regulates transcription through JUN and demonstrate that &lt;i&gt;HKDC1&lt;/i&gt; is a key component of the ZMAT3-regulated transcriptome in the context of mitochondrial respiration regulation.</description>
      <author>ashish.lal@nih.gov (Ashish Lal)</author>
      <author>ashish.lal@nih.gov (Bruna R Muys)</author>
      <author>ashish.lal@nih.gov (Erica C Pehrsson)</author>
      <author>ashish.lal@nih.gov (Ioannis Grammatikakis)</author>
      <author>ashish.lal@nih.gov (Lisa M Jenkins)</author>
      <author>ashish.lal@nih.gov (Mary Guest)</author>
      <author>ashish.lal@nih.gov (Ragini Singh)</author>
      <author>ashish.lal@nih.gov (Raj Chari)</author>
      <author>ashish.lal@nih.gov (Ravi Kumar)</author>
      <author>ashish.lal@nih.gov (Simon Couly)</author>
      <author>ashish.lal@nih.gov (Stefan Ambs)</author>
      <author>ashish.lal@nih.gov (Tsung-Ping Su)</author>
      <author>ashish.lal@nih.gov (Wei Tang)</author>
      <author>ashish.lal@nih.gov (Xiao Ling Li)</author>
      <author>ashish.lal@nih.gov (Xinyu Wen)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.107538</guid>
      <category>Cancer Biology</category>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 17 Mar 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-03-17T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
    </item>
    <item>
      <title>Dietary sulfur amino acid restriction elicits a cold-like transcriptional response in inguinal but not epididymal white adipose tissue of male mice</title>
      <link>https://elifesciences.org/articles/108825</link>
      <description>About 1 billion people are living with obesity worldwide. GLP-1-based drugs have massively transformed care, but long-term consequences are unclear in part due to reductions in energy expenditure with ongoing use. Diet-induced thermogenesis (DIT) and cold exposure (CE) raise EE via brown adipose tissue (BAT) activation and beiging of white adipose tissue (WAT). Methionine restriction (MetR) is a candidate DIT stimulus, but its EE effect has not been benchmarked against CE, nor have their tissue-level interactions been defined. In a 2×2 design (Control vs. MetR; room temperature, RT: 22°C vs. CE: 4°C for 24 hr), we used male C57BL/6 N mice to benchmark MetR-induced thermogenesis against CE and mapped how diet and temperature interact across tissues. Bulk RNA-seq profiled liver, iBAT, iWAT, and eWAT. Differential expression was modeled with main effects and a diet × temperature interaction. KEGG GSEA was used to assess pathway-level enrichment. MetR increased EE at RT and shifted fuel use towards lipid oxidation, supporting MetR as a bona fide DIT stimulus. CE elevated EE across diets and blunted diet differences. Transcriptomic responses were tissue-specific: in liver, CE dominated gene induction while MetR and CE cooperatively repressed genes. The combination enriched glucagon/AMPK-linked and core metabolic pathways. In iBAT, CE dominated thermogenic and lipid-oxidation programs with minimal MetR contribution. In iWAT, MetR and CE acted largely additively with high concordance, enhancing fatty-acid degradation, PPAR signaling, thermogenesis, and TCA cycle pathways. In eWAT, robust co-dependent and synergistic differential expression emerged only with MetR+CE. MetR is a genuine DIT stimulus that remodels metabolism in a tissue-specific manner. Our study provides a tissue-resolved transcriptomic resource that benchmarks diet-induced (MetR) against cold-induced thermogenesis and maps their interactions across liver, iBAT, iWAT, and eWAT.</description>
      <author>pmr96@cornell.edu (Aylin S Gueller)</author>
      <author>pmr96@cornell.edu (Jan-Wilhelm Kornfeld)</author>
      <author>pmr96@cornell.edu (Marcus Skjæveland)</author>
      <author>pmr96@cornell.edu (Natasa Stanic)</author>
      <author>pmr96@cornell.edu (Philip MM Ruppert)</author>
      <guid isPermaLink="false">https://dx.doi.org/10.7554/eLife.108825</guid>
      <category>Biochemistry and Chemical Biology</category>
      <category>Chromosomes and Gene Expression</category>
      <pubDate>Tue, 17 Mar 2026 00:00:00 +0000</pubDate>
      <dc:date>2026-03-17T00:00:00Z</dc:date>
      <webfeeds:featuredImage url="https://elife-cdn.s3.amazonaws.com/observer/elife-logo-408x230.svg" height="230" width="408" type="image/svg"/>
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