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Centromeres and telomeres as rheological probes of the human cell nucleus.

The human genome contains genetic information essential for life, controlling all cellular processes via the central dogma of biology. It is a canonical example of a living polymer, yet the physical principles underlying its dynamical self-organization in the cell nucleus remain unknown. In this work, we investigate the polymeric nature of the genome in live human cells, by studying motions of the centers and free ends of linear chromosome polymers-the centromeres and telomeres-and rheology of their nuclear environment. Our findings reveal that telomeres have 10-times larger displacements than centromeres, exceeding by far predictions of polymer theories. We find that this unexpectedly large difference arises due to centromere and telomere localization in unique nuclear environments, distinct in both their biological activity and material rheology. While the former resides in the genome's silenced parts, the latter localizes in its transcriptionally active parts. Our rheological analysis shows that centromeres are embedded in an elastic environment, whereas telomeres' surroundings are viscous, directly affecting timescales and length scales of their respective motions. Our results suggest a key role of nuclear heterogeneity in genome dynamics, which we corroborate by biochemical perturbations of nuclear structures such as heterochromatin and nuclear speckles. Finally, upon homogenizing the nuclear environment by a hypoosmotic shock, we observe equal centromeric and telomeric motions, confirming our hypothesis. Our observations show that the heterogeneity of nuclear environment directly impacts timescales and length scales of local genomic motions, which may affect the spatiotemporal gene regulation across the cell nucleus.

Humans

Nuclear speckles: a fundamental layer of gene regulation.

Within the cell nucleus, non-DNA structures called nuclear bodies interact with chromatin to regulate gene expression and organize our genetic material. Among nuclear bodies, nuclear speckles are prominent. They interact with broad genomic regions, serve as major gene-activating structures, and are implicated in viral infection, cancer, neurodegeneration, stress response, and development. Advances that integrate genomics with imaging are leading to a deeper understanding of how nuclear speckles fit into our current knowledge of chromatin biology, genome organization, and the central dogma of biology. Collectively, these recent studies emphasize nuclear speckles as key gene regulatory structures within the cell nucleus, offering new perspectives on how gene expression dysregulation is linked to disease.

Humans

Multiplexed Dual-Color Fluorescence-Based Distinction Between Nuclear Trapping and Translocation of FOXO3.

FOXO3 is a transcription factor that mainly exerts its functions in the cell nucleus. The amino acid sequence of FOXO3 contains a nuclear localization sequence (NLS) and a nuclear export sequence (NES) allowing for nuclear/cytoplasmic shuttling that plays an important role in regulating FOXO3 activity. Nuclear accumulation of FOXO3 proteins can be the result of translocation to the nucleus triggered by upstream regulatory input or trapping of FOXO3 within the nucleus through the inhibition of its nuclear export via the receptor CRM1. In order to distinguish these two modes of FOXO3 activation, we have generated a multiplexed assay. The development of this platform includes a reporter cell line that monitors CRM1 activity by using RFP-labeled HIV-1 Rev. protein with a strong heterologous NES. Simultaneously, the intracellular localization of FOXO3 can be monitored by a second cell line stably expressing GFP-FOXO3. Here we describe a detailed protocol on how to co-culture these reporter cell lines and use them to interrogate compound-induced FOXO3 activation in order to understand the mode of action.

Forkhead Box Protein O3

Temporal gating of nuclear import: How Merkel cell polyomavirus exploits the cell cycle for nuclear entry.

Merkel cell polyomavirus (MCPyV) is a small, DNA tumor virus that is causally linked to an aggressive form of human skin cancer called Merkel cell carcinoma. MCPyV is the only polyomavirus definitively shown to cause cancer in humans, yet little is known about how it establishes infection in target cells. In this study, we report an unconventional mechanism by which MCPyV enters the host cell nucleus, where viral genome replication occurs. We demonstrate that, unlike other known polyomaviruses, MCPyV does not require the nuclear pore complex during entry. Instead, it takes advantage of cell cycle-dependent nuclear envelope breakdown to deliver its genetic material into the nucleus. We further show that the VP1 major capsid protein is sufficient to facilitate this process. Overall, our findings reveal a novel mechanism of polyomavirus nuclear entry and provide insight into the diverse mechanisms that these viruses use to cause infection.

Merkel cell polyomavirus

Changes in the chick liver structure and blood plasma biochemical properties following in ovo administration of acrylamide.

This study analyzed the effects of acrylamide administration during the embryonic period on liver microstructure and blood plasma biochemical parameters in hatched chicks. On day 6 of incubation, 96 embryonated eggs per group were injected with acrylamide (ACR) at doses of 0.0, 0.25, 0.5, 1.0, 2.0 and 4.0 mg ACR/egg dissolved in 0.9% saline solution (100 µL). Embryo development, hatchability and quality of chicks were evaluated. The ten chicks per group (0.0, 0.25, 0.5 and 1.0 mg ACR/egg) were euthanized immediately after hatching, and blood and liver samples were collected for further analysis. Hatchability was 74.0, 67.7, 66.7 and 49.5% in groups treated with 0.0, 0.25, 0.5, 1.0 mg ACR/egg, respectively, while all embryos died in 2.0 and 4.0 mg ACR/egg groups. Acrylamide intoxication affected only a few biochemical parameters of blood, including a significant decrease in glucose and globulin levels in the group injected with a dose of 1 mg/egg and a significant increase in blood urea nitrogen concentration in the group treated with a dose of 0.5 mg/egg. However, this substance caused negative changes in the microarchitecture of the liver of one-day-old chicks, as indicated by the results of histomorphometric analysis, such as an increase in total hepatocyte nuclei, binucleated hepatocytes, cell nucleus size, collagen area, and other cells. Furthermore, abnormalities in liver structure were confirmed by trace elements content results. Thus, in individuals treated with acrylamide (0.25 and 0.5 mg/egg), a decrease in copper levels and (0.25 mg/egg) nickel and iron levels and an increase in cadmium levels were observed. An increase in lead content was similarly observed in the group exposed to acrylamide at a dose of 0.5 mg/egg, as well as an increase in zinc levels in groups administered various doses of this toxic substance. Overall, the results suggest an inconsistent and dose-dependent toxic effect of acrylamide on liver structure and selected blood plasma parameters in one-day-old chicks.

Acrylamide

Telomeres in Lamin-A-depleted cells exhibit directed motion and dynamic coherence.

Investigating the dynamics of chromatin loci and the factors that influence them provides valuable insights into the organization and functionality of the genome within the cell nucleus. We control the expression of Lamin-A, an important organizer of chromatin and nuclear structure. By simultaneously tracking hundreds of telomeres in Lamin-A knockout (KO) and wild-type (WT) nuclei, we find that telomere motion in Lamin-A-depleted cells is both faster and more directed on micrometer scales, comparable to the size of chromosome territories. In contrast, telomere trajectories in WT cells exhibit pronounced anti-persistent behavior, consistent with caging by the surrounding chromatin environment. We further observe correlated motion between distinct telomeres in both WT and KO cells, with significantly stronger correlations in the KO case, indicating enhanced collective behavior. These correlations reflect cross-correlations among different loci rather than temporal correlations along individual trajectories. Together, these findings highlight the central role of Lamin-A in regulating both local confinement and collective telomere dynamics.

Telomere

AQuA Tools: clear and reliable BEDPE operations for 3D genomics.

MOTIVATION: The genome interacts with itself within the volume of the cell nucleus to process information. These interactions mediate signal integration, gene regulation, and cell identity. The identification of new therapeutic targets from non-coding disease-associated variants relies critically on correctly assigning variants to genes through 3D interactions. Experimental techniques in 3D genomics, such as HiC and HiChIP, allow the mapping of interactions through sequencing. Bioinformatics for 3D genomics contends primarily with contact matrices that contain interaction frequencies for all possible element pairs, and BEDPE files that store element pairs that interact. Whereas the tools available for processing linear genomic data are mature, operating on contact matrices and BEDPE files remains cumbersome, opaque, and error-prone, as researchers have had to shoehorn tools originally designed for linear data. A genome arithmetic designed from the ground up for 3D genomics does not yet exist. RESULTS: We present AQuA Tools, a suite of shell- and R-based command-line tools that provide a set of core operations on contact matrices and BEDPE files motivated by key questions in population genetics, cancer research, and precision medicine. We have designed our core operations to be clear, reliable, intuitive and versatile. Core operations can be chained together along with standard UNIX commands. Our goal is to make AQuA Tools easy for the novice to learn and the go-to choice for power users. We hope our tools will motivate more researchers to use 3D genomic data in their projects. AVAILABILITY AND IMPLEMENTATION: We provide and maintain AQuA Tools at https://github.com/axiotl/aqua-tools.

Genomics

Characterization of the Kaposi's sarcoma-associated herpesvirus terminase complex component ORF29.

Kaposi's sarcoma-associated herpesvirus (KSHV) belongs to the Gammaherpesvirinae subfamily. During the lytic phase of herpesviruses, viral capsids form in the host cell nucleus, and the replicated viral genome is packaged into these capsids. The herpesviral genome is replicated as a precursor head-to-tail concatemer consisting of tandemly repeated genomic units, each flanked by terminal repeats (TRs). The herpesvirus terminase complex packages a single genomic unit into a capsid by cleaving the TRs in the precursor genome. Although the terminase complexes of alpha- and beta-herpesviruses are well characterized, the KSHV terminase complex is poorly understood. KSHV ORF7, ORF67.5, and ORF29 are thought to be components of this complex. We previously reported that KSHV deficient in either ORF7 or ORF67.5 formed immature, soccer ball-like capsids and failed to cleave the TRs, resulting in decreased virion production. Moreover, ORF7 interacted with both ORF29 and ORF67.5; however, ORF29 and ORF67.5 did not interact with each other. Thus, although ORF7 and ORF67.5 are important for KSHV terminase function, the function of ORF29 remains largely unknown. In this study, we constructed an ORF29-deficient KSHV and analyzed its virological properties. ORF29 was found to be essential for virion production and TR cleavage. Numerous immature, soccer ball-like capsids were observed in cells harboring ORF29-deficient KSHV. The N-terminal region of ORF29 was important for its interaction with ORF7, although the full-length ORF29 was required for effective assembly of the KSHV terminase complex. Furthermore, ORF29 preferentially interacted with itself rather than with ORF7. Thus, our data show that ORF29 functions as a fundamental component of the terminase complex.IMPORTANCEBecause the role of ORF29 in the Kaposi's sarcoma-associated herpesvirus (KSHV) terminase complex remains unknown, we constructed ORF29-deficient KSHV. Our results demonstrated that ORF29 functions as a component of the KSHV terminase and is essential for mature capsid formation, terminal repeat (TR) cleavage, and terminase complex assembly. Moreover, ORF29 strongly interacted with itself. In herpes simplex virus 1 (HSV-1), the terminase complex (comprising UL15, UL28, and UL33) forms a trimer, and six such trimers assemble into a hexameric ring. The HSV-1 genome passes through this ring and undergoes TR cleavage and genome packaging into a capsid. The self-interaction of ORF29 may be involved in the multimerization of the terminase complex or in the formation of the KSHV terminase ring.

Herpesvirus 8, Human

Nuclear body assembly by a viral repeat RNA promotes Kaposi's sarcoma-associated herpesvirus gene expression.

Kaposin is the most abundantly expressed viral RNA in tumors caused by the oncogenic virus Kaposi's sarcoma-associated herpesvirus (KSHV); however, its role in viral replication is not understood. Here, we show that kaposin, previously viewed as a protein-coding transcript, exists primarily as a nuclear viral long non-coding RNA (lncRNA) that rebuilds cellular nuclear speckles (NSs) adjacent to the viral genome to enhance viral gene expression. Kaposin is both necessary and sufficient to drive substantial NS remodeling, and this effect depends on repetitive elements within the RNA. Absence of kaposin-mediated NS remodeling, depletion of the essential NS protein, serine/arginine repetitive matrix 2 (SRRM2), or steric blocking of the kaposin repetitive elements impair viral gene expression. This work defines kaposin as a viral architectural RNA that drives nuclear speckle seeding beside the viral genome and reframes our understanding of lncRNA function and the spatial organization of transcription in the infected cell nucleus.

Kaposi's sarcoma-associated herpesvirus

Genome-wide analysis of the plant-specific PLATZ gene family in Taraxacum kok-saghyz and its roles in response to drought and salt tolerance.

Abiotic stress severely limits plant growth and productivity. Taraxacum kok-saghyz Rodin (TKS), known for its environmental resilience, represents a valuable resource for identifying stress-tolerant genes to improve stress-adaptive crops. Plant AT-rich protein and zinc-binding protein (PLATZ) transcription factors serve as core regulators of plant growth, developmental processes, and adaptive responses to various stress conditions; however, they remain uncharacterized in TKS. Here, we identified 10 TksPLATZ genes through a whole-genome analysis. Phylogenetically, these genes were grouped into five distinct evolutionary branches. Promoter sequence analysis revealed multiple types of cis-acting regulatory elements that are connected with hormonal signal responses and environmental stress adaptation. Integrated analysis of transcriptome datasets and RT-qPCR validation demonstrated that TksPLATZ genes display tissue-specific expression profiles and show distinct responsive patterns to drought and salt stress treatments. Among them, TksPLATZ1, TksPLATZ2 and TksPLATZ7 were markedly induced under both stressors and were selected for further functional study. We demonstrated that TksPLATZ1, TksPLATZ2 and TksPLATZ7 localize to the cell nucleus and act as transcriptional activators and repressors, respectively. Phenotypic data from overexpression experiments in plants confirm that heterologous expression of TksPLATZ1, TksPLATZ2, and TksPLATZ7 enhances the tolerance of Arabidopsis to salt and osmotic stress. These findings provide valuable genetic resources for improving plant tolerance to environmental stresses.

Salt Tolerance

The molecular basis of lamin-specific chromatin interactions.

In the cell nucleus, chromatin is anchored to the nuclear lamina, a network of lamin filaments and binding proteins that underly the inner nuclear membrane. The nuclear lamina is involved in chromatin organization through the interaction of lamina-associated domains within the densely packed heterochromatin regions. Using cryo-focused ion beam milling in conjunction with cryo-electron tomography, we analyzed the distribution of nucleosomes at the lamin-chromatin interface at the nanometer scale. Depletion of lamins A and C reduced nucleosome concentration at the nuclear periphery, while B-type lamin depletion contributed to nucleosome density in proximity to the lamina but not further away. We then investigated whether specific lamins can mediate direct interactions with chromatin. Using cryo-electron microscopy, we identified a specific binding motif of the lamin A tail domain that interacts with nucleosomes, distinguishing it from the other lamin isoforms. Furthermore, we examined chromatin structure dynamics using a genome-wide analysis that revealed lamin-dependent macroscopic-scale alterations in gene expression and chromatin remodeling. Our findings provide detailed insights into the dynamic and structural interplay between lamin isoforms and chromatin, molecular interactions that shape chromatin architecture and epigenetic regulation.

Nucleosomes

Differential Crosslinking and Contractile Motors Drive Nuclear Chromatin Compaction.

During interphase, a typical cell nucleus features spatial compartmentalization of transcriptionally active euchromatin and repressed heterochromatin domains. In conventional nuclear organization, euchromatin predominantly occupies the nuclear interior, while heterochromatin, which is approximately 50% more dense than euchromatin, is positioned near the nuclear periphery. Peripheral chromatin organization can be further modulated by the nuclear lamina, which is itself a deformable structure. While a number of biophysical mechanisms for compartmentalization within rigid nuclei have been explored, we study a chromatin model consisting of an active, crosslinked polymer tethered to a deformable, polymeric lamina shell. Contractile motors, the deformability of the shell, and the spatial distribution of crosslinks all play pivotal roles in this compartmentalization. We find that a radial crosslink density distribution, even with a small linear differential of higher crosslinking density at the edge of the nucleus, combined with contractile motor activity, drives genomic segregation, in agreement with experimental observations. This arises from contractile motors preferentially drawing crosslinks into their vicinity at the nuclear periphery, forming high-density domains that promote heterochromatin formation. We also find an increased stiffness of nuclear wrinkles given the preferential heterochromatin compaction below the lamina shell, which is consistent with instantaneous nuclear stiffening under applied nanoindentation. We conclude with the potential for experimental validation of our model predictions.

Journal Article

Rab9 depletion enhances human adenovirus type 26 transduction efficiency through increased internalization and reduced late endosomal/lysosomal retention.

Understanding intracellular trafficking is central to decoding viral pathogenesis and engineering optimized viral vectors. How a virus or vector is routed through the endocytic pathway directly dictates its genome release, immune sensing, and overall transduction efficiency. Human adenovirus type 26 (HAdV-D26) presents a promising platform for vector design due to its low preexisting immunity, potent immune stimulation, scalable production, and versatile genetic engineering capacity. Although increasingly significant, the fundamental mechanisms governing HAdV-D26 intracellular trafficking are still not fully understood. Our study demonstrates that compared to well-described human adenovirus type 5 (HAdV-C5), HAdV-D26 undergoes prolonged intracellular trafficking, transiently localizing to early endosomes before residing in late endosomes/lysosomes for up to four hours post-infection. Inhibition of lysosomal acidification modestly enhances HAdV-D26 transduction efficiency, whereas blocking transport from early to late endosomes/lysosomes does not. Strikingly, Rab9 knockdown reduces HAdV-D26 late endosomal/lysosomal localization while increasing both virus internalization and genome delivery to the host cell nucleus. These findings indicate that late endosomal sorting pathways actively influence HAdV-D26 infection outcomes. By identifying a previously unappreciated role for Rab9 in adenovirus transduction, our results provide new mechanistic insight into HAdV-D26 intracellular trafficking, highlight serotype-specific differences in adenovirus entry pathways, and identify endosomal trafficking steps that may be targeted to improve adenoviral vector performance.

Humans

Differential Crosslinking and Contractile Motors Drive Nuclear Chromatin Compaction.

During interphase, a typical cell nucleus features spatial compartmentalization of transcriptionally active euchromatin and repressed heterochromatin domains. In conventional nuclear organization, euchromatin predominantly occupies the nuclear interior, while heterochromatin, which is approximately 50% more dense than euchromatin, is positioned near the nuclear periphery. Peripheral chromatin organization can be further modulated by the nuclear lamina, which is itself a deformable structure. While a number of biophysical mechanisms for compartmentalization within rigid nuclei have been explored, we study a chromatin model consisting of an active, crosslinked polymer tethered to a deformable, polymeric lamina shell. Contractile motors, the deformability of the shell, and the spatial distribution of crosslinks all play pivotal roles in this compartmentalization. We find that a radial crosslink density distribution, even with a small linear differential of higher crosslinking density at the edge of the nucleus, combined with contractile motor activity, drives genomic segregation, in agreement with experimental observations. This arises from contractile motors preferentially drawing crosslinks into their vicinity at the nuclear periphery, forming high-density domains that promote heterochromatin formation. We also find an increased stiffness of nuclear wrinkles given the preferential heterochromatin compaction below the lamina shell, which is consistent with instantaneous nuclear stiffening under applied nanoindentation. We conclude with the potential for experimental validation of our model predictions.

Journal Article

Single-nucleus transcriptomics reveals cell type-specific remodeling and epilepsy-associated microglia.

Temporal lobe epilepsy (TLE) is the most common acquired epilepsy, causing refractory seizures and cognitive deficits. We performed single-nucleus RNA sequencing on hippocampal tissue from mice 3 and 6 weeks following pilocarpine-induced status epilepticus, a robust model of TLE. Epilepsy samples showed reductions in Cck and Lamp5-Lhx6 interneuron subclusters, alongside increases in Cajal-Retzius cells, dentate granule (DG) cell precursors, and a mature DG cell subcluster. Among glia, an astrocyte subcluster and a markedly expanded microglia sublcuster were increased. We term this microglia population epilepsy-associated microglia (EAM). The transcriptomic profile of EAM overlaps with microglia described in models of Alzheimer's disease and traumatic brain injury, including enrichment of Myo1e and Igf1. EAM display amoeboid morphology, can be found in clumps around pyramidal and granule cell body layers, and exhibit enlarged vesicles and mitochondria. Cell-cell interaction analysis predicts DG cells as their primary interaction partners. This dataset defines transcriptomic programs underlying key cellular alterations in TLE, enabling mechanistic dissection of epileptogenesis.

TLE

Cellular modifiers of TDP-43 phase transition and cytoplasmic aggregation.

RNA-binding protein TAR DNA-binding protein 43 (TDP-43) can form liquid-like nuclear assemblies whose phase behavior is thought to influence its aggregation propensity and neurotoxic activity. The mechanisms that govern the liquid-to-solid phase transition of TDP-43 remain poorly defined. Here, we combined chemical and genome-wide genetic screens to identify cellular factors that modulate the phase behavior of an RNA-binding-defective TDP-43 mutant. Our screens uncovered multiple cellular processes, including RNA splicing, protein translation, proteostasis imbalance, and nuclear export as TDP-43 phase regulators. We also developed a semi-permeabilized cell system that partially recapitulates the TDP-43 phase transition in vitro, and showed that nuclear export inhibition reshapes the nuclear environment to favor RNA-dependent liquid-liquid phase separation (LLPS) of TDP-43, which mitigates its aggregation. Nuclear export inhibition in a brain organoid model bearing an ALS-associated mutation reduces pathogenic phospho-TDP-43 accumulation. These findings identify multiple modulators of TDP-43 phase transitions in a sensitized model system and establish a framework for further dissecting the link between nuclear transport and TDP-43 phase dynamics.

DNA-Binding Proteins

Transcript-guided targeted cell enrichment for scalable single-nucleus RNA sequencing.

Large-scale single-cell atlases have revealed many aging- and disease-associated cell types, yet these populations are often underrepresented in heterogeneous tissues, limiting detailed molecular analyses. To address this, we developed EnrichSci-a scalable, microfluidics-free platform that combines hybridization chain reaction RNA fluorescence in situ hybridization (FISH) with combinatorial indexing to profile single-nucleus transcriptomes of target cell types with full gene-body coverage. Applied to oligodendrocytes in the aging mouse brain, EnrichSci uncovered aging-associated molecular dynamics across distinct oligodendrocyte subtypes, revealing both shared and subtype-specific gene expression changes. Additionally, we identified aging-associated exon-level signatures missed by conventional gene-level analyses, highlighting post-transcriptional regulation as a critical dimension of cell-state dynamics in aging. By coupling transcript-guided enrichment with a scalable sequencing workflow, EnrichSci provides a versatile approach to decode dynamic regulatory landscapes in diverse cell types from complex tissues.

Animals

The mRNA export pathway licenses viral mimicry response and antitumor immunity by actively exporting nuclear retroelement transcripts.

Nuclear retroelement transcripts (RTs), which can be elicited both transcriptionally and posttranscriptionally, form double-stranded RNA (dsRNA) in cytosol to trigger the viral mimicry response (VMR) and antitumor immunity. However, the strength of the induced VMR varies tremendously across tumor types, and the underlying mechanisms remain poorly understood. Here, we demonstrate that the mRNA export pathway modulates the VMR through actively exporting nuclear RTs for cytosolic dsRNA formation after their induction. Tumor cells hijack this process for immune evasion through aberrant coactivator-associated arginine methyltransferase 1 (CARM1) expression. Mechanistically, we show that the cytoplasmic transportation of RTs by the mRNA export pathway is counteracted by the RNA exosome, which cleaves multiple transcripts within this pathway, including those encoding the essential DExD-box helicase 39A (DDX39A) and the adaptor protein ALYREF. CARM1 enhances the RNA exosome activity to attenuate the nuclear export of RTs by the mRNA export pathway through two synergistic mechanisms: (i) transcriptionally activating several RNA exosome components and (ii) posttranslationally methylating arginine 6 of the RNA exosome subunit EXOSC1, which protects it from proteasome-mediated degradation. Collectively, our study highlights the critical active regulatory role of the mRNA export pathway in transporting nuclear RTs into the cytosol for triggering the VMR and tumor immunity. Furthermore, we propose that enhancing the mRNA export pathway activity, either through CARM1 inhibition or RNA exosome modulation, could reinforce the therapeutic agent-induced VMR, thus holding the promise for overcoming tumor immune evasion and immunotherapy resistance.

Humans