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Search indexed bioRxiv preprints in genomics, neuroscience, cell biology and bioinformatics. Read source abstracts and check manuscript versions; preprints are not peer reviewed.

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At least 1,135 records · Page 63Linked to original sources

Foxg1 and companions: not only transcription factors

Here, moving from our most recent results on Foxg1 biology, we firstly summarize available information about a few, special pleiotropic effectors of neurodevelopmental interest, involved in control of both transcription and post-transcriptional steps of gene expression. Next, upon further scanning of literature, we report evidence that, not strictly limited to neurodevelopmental processes, such functional pleiotropy also applies to other transcription factors, involved in physiology and homeostasis. Besides, by systematic mining of a major public protein-protein interaction database, we collect robust evidence that an involvement of "canonical" transcription factors in post-transcriptional control of gene expression may be a pervasive phenomenon, characterizing hundreds of effectors. Finally, we discuss the biological meaning of these findings and propose three evolutionary mechanisms that may have conspired to such unexpected scenario.

molecular biology↗

Advanced eTAM-seq enables high-fidelity, low-input N6-methyladenosine profiling in human cells and embryonic mouse tissues

Functional dissection of N6-methyladenosine (m6A), the most abundant internal messenger RNA modification in mammals, demands quantitative, scalable detection technology. We previously reported eTAM-seq, which supports transcriptome-wide quantification of m6A by enzyme-assisted adenosine deamination. While effective, TadA8.20--the enzyme used in our first-generation technology--is sensitive not only to m6A but also to RNA structure, making accurate detection dependent on the inclusion of control transcriptomes. Here, we introduce eTAM-seq-v2, in which we replace TadA8.20 with TadA8r, a further evolved adenosine deaminase with superior catalytic efficiency. eTAM-seq-v2 supports control-free m6A calling with high fidelity. Because enzyme treatment preserves RNA integrity, eTAM-seq surveys >51% of A sites in all expressed genes with moderate sequencing depth (60 million uniquely mapped reads) and delivers robust performance with as little as 10 ng of total RNA ([~]500 cells). With eTAM-seq-v2, we delineate the m6A landscape across six human cell lines and seven embryonic mouse tissues. While uncovering broadly conserved m6A patterns, we reveal that most neighboring m6A sites are independently deposited at the single-molecule level. Moving forward, we envision that eTAM-seq-v2 will enable researchers to survey m6A in diverse biological contexts and uncover new insights into its regulatory roles.

molecular biology↗

Fish from the sky: Airborne eDNA tracks aquatic life

Water and air are generally treated as separate reservoirs of environmental DNA (eDNA) derived from the species resident in those respective environments. However, it is likely that eDNA routinely crosses the air-water boundary in both directions as a result of deposition, evaporation, or other processes. Here, we systematically tested methods of sampling eDNA at the air-water interface, showing for the first time that aquatic life can be reliably detected from passive air samples collected nearby. We deployed four simple air samplers -- three different kinds of filters and one open tray of deionized water -- alongside paired water samples and visual counts over a six-week peak run of Coho salmon (Oncorhynchus kisutch) at a local spawning stream. We then quantified eDNA concentrations in both air and water (air: copies/day/cm2; water: copies/L) using quantitative PCR, to estimate (1) the concentration of target eDNA in air vs. water, and (2) the capture performance of each filter type. Despite an approximate 25,000-times dilution versus water, passive air collectors captured quantitative airborne eDNA signals that closely paralleled salmon counts, although recovery varied with sampler design and orientation. We show the air-water interface is a quantifiable source of aquatic genetic information using simple, passive samplers that do not require electricity, making them appealing for biomonitoring in remote or resource-limited settings. This work points the way to using airborne eDNA as a robust pathway for biological information critical to conservation, resource management, and public-health protection.

molecular biology↗

OpenFISH enables integrated high-resolution spatial transcriptomics and metabolomics on a single tissue section

Spatial transcriptomics enables in situ mapping of gene expression, yet no current platform provides single-cell, same-section integration with metabolomics, limiting direct links between transcriptional programsand metabolic phenotypesin native tissue. We present OpenFISH, a rapid, imaging-based spatial transcriptomics method operable on standard microscopes, requiring no proprietary hardware, and fully compatible with matrix-assisted laser desorption/ionization mass spectrometry imaging (MALDI-MSI). OpenFISH resolves hundreds of transcripts at subcellular resolution within 24 h and can be performed after MALDI-MSI, preserving metabolite distributions for cell-accurate co-registration on the same section. In mouse brain, integration with MALDI-MSI resolved metabolic heterogeneity at the level of individual cells. OpenFISH also quantified cell type-specific transcriptional activation of transposable elements after systemic lipopolysaccharide (LPS) challenge and detected disrupted spatial organization of D1 striatal neurons in Reeler mutants. Benchmarking showed performance comparable to or exceeding commercial platforms at [~]0.5% of per-sample cost. By enabling same-section, near-single-cell co-mapping of transcripts and metabolites in an accessible workflow, OpenFISH provides a scalable framework for high-content spatial multi-omics across neuroscience, immunology, cancer biology, and beyond.

molecular biology↗

Rapid degradation of 6 class I HDAC complexes reveals minimal functional overlap between complexes

The class 1 HDACs 1, 2 and 3 form seven families of distinct large multiprotein complexes that regulate gene expression via deacetylation of lysines in histone tails. The degree of redundancy and functional overlap between complexes and their primary gene targets, remains unknown. We used CRISPR/Cas9 to independently tag HDAC complexes with FKBP12F36V in HCT116 cells enabling rapid (<1 hr), PROTAC-mediated, degradation. RNA sequencing at 6 h reveals that together, the 4 major complexes (CoREST, NuRD, NCoR/SMRT and SIN3A) perturbed >50% of expressed genes. More than 60% of these are specific to an individual complex. Of genes regulated by more than one complex, approaching 50% are reciprocally regulated such that HDAC complexes act as antagonistic regulators. Homer analysis strongly suggests that the complexes are reliant on different transcription factors. This is the first study to identify the primary targets of individual HDAC complexes and directly compare the effects of rapid degradation on gene regulation in the same biological system.

molecular biology↗

Interrogation of Enhancer Function by Enhanced CRISPR Epigenetic Editing

Tissue-specific gene expression requires coordinated control of gene-proximal and -distal cis-regulatory elements (CREs), yet functional analysis of gene-distal CREs such as enhancers remains challenging. Here we describe enhanced CRISPR/dCas9-based epigenetic editing systems, enCRISPRa and enCRISPRi, for multiplexed analysis of enhancer function in situ and in vivo. Using dual effectors capable of re-writing enhancer-associated chromatin modifications, we show that enCRISPRa and enCRISPRi modulate gene transcription by remodeling local epigenetic landscapes at sgRNA-targeted enhancers and associated genes. Comparing with existing methods, the new systems display more robust perturbation of enhancer activity and gene transcription with minimal off-targets. Allele-specific targeting of enCRISPRa to oncogenic TAL1 super-enhancer modulates TAL1 expression and cancer progression in xenotransplants. Multiplexed perturbations of lineage-specific enhancers using an enCRISPRi knock-in mouse establish in vivo evidence for lineage-restricted essentiality of developmental enhancers during hematopoietic lineage specification. Hence, enhanced CRSIPR epigenetic editing provides opportunities for interrogating enhancer function in native biological contexts.

molecular biology↗

Ctcf Haploinsufficiency Mediates Intron Retention in A Tissue-specific Manner

CTCF is a master regulator of gene transcription and chromatin organization with occupancy at thousands of DNA target sites. CTCF is essential for embryonic development and somatic cell viability and has been characterized as a haploinsufficient tumor suppressor. Increasing evidence demonstrates CTCF as a key player in several alternative splicing (AS) regulatory mechanisms, including transcription elongation, regulation of splicing factors, and epigenetic regulation. However, the genome-wide impact of Ctcf dosage on AS has not been investigated. We examined the effect of Ctcf haploinsufficiency on gene expression and AS in multiple tissues from Ctcf hemizygous (Ctcf+/-) mice. Distinct tissue-specific differences in gene expression and AS were observed in Ctcf+/- mice compared to wildtype mice. We observed a surprisingly large number of increased intron retention (IR) events in Ctcf+/- liver and kidney, specifically in genes associated with cytoskeletal organization, splicing and metabolism. This study provides further evidence for Ctcf dose-dependent and tissue-specific regulation of gene expression and AS. Our data provide a strong foundation for elucidating the mechanistic role of CTCF in AS regulation and its biological consequences.

molecular biology↗

Single-molecule nanopore-tweezers analysis of transcription elongation by intact and "stalk-less" yeast RNA polymerase II

Single-molecule picometer-resolution nanopore tweezers (SPRNT) enables monitoring of translocation of a nucleic-acid motor protein on a nucleic-acid track with sequence registration, sub-nucleotide spatial resolution, sub-millisecond temporal resolution, and the ability to apply forces that assist or oppose translocation. Recently, we used SPRNT to analyze the translocation of single molecules of Escherichia coli RNA polymerase relative to the DNA template strand during transcription elongation, and we directly detected sequence-dependent pausing and formation of a "half-translocated state" at the E. coli yrbL consensus pause element. Here, we apply SPRNT to analyze the translocation of single molecules of yeast RNA polymerase II (Pol II) relative to the DNA template strand during transcription elongation with single-nucleotide spatial resolution and millisecond-scale temporal resolution at biologically relevant, saturating substrate concentrations; we compare translocation by intact, 12-subunit Pol II to translocation by a 10-subunit Pol II sub-assembly lacking the dissociable Rpb4-Rpb7 Pol II "stalk"; and we assess possible pausing by intact Pol II and stalk-less Pol II at the E. coli yrbL consensus pause element. The results show that intact Pol II elongates more rapidly than stalk-less Pol II and show that neither intact Pol II nor stalk-less Pol II pauses at the E. coli yrbL consensus pause element. One-sentence summaryNanopore tweezers enable monitoring of translocation of RNA polymerase II relative to DNA in transcription elongation with single-nucleotide spatial resolution and millisecond-scale temporal resolution at biologically relevant, saturating substrate concentrations.

molecular biology↗

Polystyrene microplastic exposure disrupts mitochondrial pathways and nuclear processes in primary intestinal epithelial cells

Microplastics are pervasive environmental pollutants that pose a growing concern for human health. Oral ingestion is a common route of human microplastic exposure, yet the proteomic response of the gut epithelium to microplastics remains unclear. This study aimed to investigate the cellular effects of pristine and artificially digested microplastic exposure in primary rat duodenal epithelial cells using untargeted proteomics. Cells were exposed to pristine or digested 0.5 um polystyrene microplastics at 10 or 100 ug/mL for 72 hours and were then analyzed by tandem liquid chromatography and mass spectrometry (LC-MS). Proteins that were both significantly different in intensity compared to controls, with a threshold change of 1.3 or greater, were considered to be differentially expressed. This criterion identified 41 differentially expressed proteins after 100 ug/mL pristine MP exposure, with 19 downregulated and 21 upregulated. Following exposure to 100 ug/mL digested MP, only 3 differentially expressed proteins were upregulated and 7 were down regulated, demonstrating the impact of microplastic physicochemistry. FGSEA pathway analysis revealed that 270 Reactome pathways were significantly altered following microplastic exposure in either condition at both concentrations. These pathways contributed to functional domains including protein synthesis, DNA replication, cell cycle control and aerobic respiration. Overall, microplastic exposure was associated with upregulated mitochondrial respiration, and downregulation of nuclear-related processes including DNA synthesis, transcription and cell proliferation. This study provides targets for future investigation (mitochondria and nucleus) and emphasizes the need to consider biological and environmental conditions for in vitro models of microplastic exposure.

molecular biology↗

Orthogonal fluorescent chemogenetic reporters for multicolor imaging

Fluorescence microscopy is an indispensable tool in biological research, allowing sub-second and sub-micrometer mapping of molecules or processes inside living cells. Moreover, using spectrally separated fluorophores, one can observe multiple targets simultaneously, leading to a deeper understanding of the dynamic molecular interplays that regulate cell function and fate. Chemogenetic systems, which combine a protein tag and a synthetic fluorophore, provide certain advantages over fluorescent proteins since there is no requirement for chromophore maturation. However, the fluorophore promiscuity of chemogenetic systems renders two-color applications challenging. Here, we present the engineering of a set of spectrally orthogonal fluorogen activating tags based on the Fluorescence Activating and absorption Shifting Tag (FAST), that are compatible with two-color, live cell imaging. The resulting tags, greenFAST and redFAST, demonstrate orthogonality not only in their fluorogen recognition capabilities, but also in their one- and two-photon absorption profiles. A two-color cell cycle sensor based on greenFAST and redFAST is capable of detecting very short, early cell cycles in zebrafish development which had previously been difficult to image. Furthermore, this pair of orthogonal tags can be developed into split complementation systems that are capable of detecting multiple protein-protein interactions by live cell fluorescence microscopy.

molecular biology↗

Structures of the Human LONP1 Protease Reveal Regulatory Steps Involved in Protease Activation

The human mitochondrial AAA+ protein LONP1 is a critical quality control protease involved in regulating diverse aspects of mitochondrial biology including proteostasis, electron transport chain activity, and mitochondrial transcription. As such, genetic or aging-associated imbalances in LONP1 activity are implicated in the pathologic mitochondrial dysfunction associated with numerous human diseases. Despite this importance, the molecular basis for LONP1-dependent proteolytic activity remains poorly defined. Here, we solved cryo-electron microscopy structures of human LONP1 to reveal the molecular mechanism of substrate proteolysis. We show that, like bacterial Lon, human LONP1 adopts both an open and closed spiral staircase orientation dictated by the presence of substrate and nucleotide. However, unlike bacterial Lon, human LONP1 contains a second spiral staircase within its ATPase domain that engages substrate to increase interactions with the translocating peptide as it transits into the proteolytic chamber for proteolysis. Further, we show that substrate-bound LONP1 includes a second level of regulation at the proteolytic active site, wherein autoinhibition of the active site is only relieved by the presence of a peptide substrate. Ultimately, our results define a structural basis for human LONP1 proteolytic activation and activity, establishing a molecular framework to understand the critical importance of this protease for mitochondrial regulation in health and disease.

molecular biology↗

High-resolution interrogation of functional elements in the noncoding genome

The noncoding genome plays a major role in gene regulation and disease yet we lack tools for rapid identification and manipulation of noncoding elements. Here, we develop a large-scale CRISPR screen employing ~18,000 sgRNAs targeting >700 kb of noncoding sequence in an unbiased manner surrounding three genes (NF1, NF2, and CUL3) involved in resistance to the BRAF inhibitor vemurafenib in the BRAF-mutant melanoma cell line A375. We identify specific noncoding locations near genes that modulate drug resistance when mutated. These sites have predictive hallmarks of noncoding function, such as physical interaction with gene promoters, evolutionary conservation and tissue-specific chromatin accessibility. At a subset of identified elements at the CUL3 locus, we show that engineered mutations lead to a loss of gene expression associated with changes in transcription factor occupancy and in long-range and local epigenetic environments, implicating these sites in gene regulation and chemotherapeutic resistance. This demonstration of an unbiased mutagenesis screen across large noncoding regions expands the potential of pooled CRISPR screens for fundamental genomic discovery and for elucidating biologically relevant mechanisms of gene regulation.

Molecular Biology↗

Epoxidized graphene grid for high-throughput high-resolution cryoEM structural analysis

Many specimens suffer from low particle density and/or preferred orientation in cryoEM specimen grid preparation, making data collection and structure determination time consuming. We developed an epoxidized graphene grid (EG-grid) that effectively immobilizes protein particles by applying an oxidation reaction using photoactivated ClO2* and further chemical modification. The particle density and orientation distribution are both dramatically improved, having enabled us to reconstruct the density map of GroEL and glyceraldehyde 3-phosphate dehydrogenase (GAPDH), at 1.99 and 2.16 [A] resolution from only 504 and 241 micrographs, respectively. A low concentration sample solution of 0.1 mg ml-1 was sufficient to reconstruct a 3.10 [A] resolution density map of SARS-CoV-2 spike protein from 1,163 micrographs. The density maps of V1-ATPase, {beta}-galactosidase, and apoferritin were also reconstructed at 3.03, 1.81, and 1.29 [A] resolution, respectively. These results indicate that the EG-grid will be a powerful tool for high-throughput cryoEM data collection to accelerate high-resolution structural analysis of biological macromolecules.

molecular biology↗

Synphilin-1 as a modulator of aSyn assembly

Alpha-synuclein (aSyn) is an intrinsically disordered protein that undergoes phase-separation and is associated with several neurodegenerative conditions. However, the function and the pathological role of aSyn are still elusive. Here, we modeled different types of aSyn assemblies in living cells, and developed a model that reports on gel and solid-like inclusions based on the coexpression of aSyn and synphilin-1 (Sph1). We identified striking morphological differences between aSyn-aSyn and Sph1-aSyn assemblies, characterized by distinct antibody recognition patterns, resistance to Proteinase K treatment, and protein mobilities. Importantly, we showed that the interaction between Sph1-aSyn can be manipulated, altering inclusion size and number. Sph1-aSyn interactions were central for inclusion formation and localization, and that inclusions include lysosomes and AP-1 vesicles, consistent with previous studies in human brain tissue. In total, we provide novel insight into the biology of protein aggregation, shedding light on potential therapeutic strategies that extend beyond conventional targets. Deciphering the role of Sph1 and other aSyn-interacting proteins on aSyn biology and pathobiology will be essential for treating synucleinopathies.

molecular biology↗

Creation and Validation of a Proteome-Wide Yeast Library for Protein Detection and Analysis

A significant challenge in cell biology is to uncover the function of uncharacterized proteins. Surprisingly a quarter of the proteome is still poorly understood even in the most well studied model organisms. Systematic methodologies, including the use of tagged protein collections, have emerged as a powerful approach to address this gap. Despite the availability of proteome- wide collections featuring various fused proteins, the impact of tag size on protein function highlighted the need for using minimally disruptive tags for functional genomic studies. To rise to this challenge, we have created a proteome-wide collection of yeast strains in which proteins are N-terminally tagged with the Hemagglutinin (HA) epitope. The library leverages the compact size of the HA tag to minimize drawbacks associated with larger tags while enabling efficient functional analysis. We showcase the potential uses of our library for systematically evaluating protein size, abundance and localization using an in vivo labeling approach. Our characterization underscores the potential utility of a proteome-wide HA-tagged library in revealing novel aspects of cell biology, providing an additional powerful tool for functional genomics.

molecular biology↗

Reducing batch effects in single cell chromatin accessibility measurements by pooled transposition with MULTI-ATAC

Large-scale scATAC-seq experiments are challenging because of their costs, lengthy protocols, and confounding batch effects. Several sample multiplexing technologies aim to address these challenges, but do not remove batch effects introduced when performing transposition reactions in parallel. We demonstrate that sample-to-sample variability in nuclei-to-Tn5 ratios is a major cause of batch effects and develop MULTI-ATAC, a multiplexing method that pools samples prior to transposition, as a solution. MULTI-ATAC provides high accuracy in sample classification and doublet detection while eliminating batch effects associated with variable nucleus-to-Tn5 ratio. We illustrate the power of MULTI-ATAC by performing a 96-plex multiomic drug assay targeting epigenetic remodelers in a model of primary immune cell activation, uncovering tens of thousands of drug-responsive chromatin regions, cell-type specific effects, and potent differences between matched inhibitors and degraders. MULTI-ATAC therefore enables batch-free and scalable scATAC-seq workflows, providing deeper insights into complex biological processes and potential therapeutic targets.

molecular biology↗

A safer fluorescent in situ hybridization protocol for cryosections

Fluorescent in situ hybridization (FISH) enables highly sensitive, high-resolution detection of gene transcripts. Moreover, by employing multiple probes, this technique allows for multiplexed, simultaneous detection of distinct gene expression patterns spatiotemporally, making it a valuable spatial transcriptomics approach. Owing to these advantages, FISH techniques are rapidly being adopted across diverse areas of basic biology. However, conventional protocols often rely on volatile, toxic reagents such as formalin or methanol, posing potential health risks to researchers. Here, we present a safer protocol that replaces these chemicals with low-toxicity alternatives, without compromising the high detection sensitivity of FISH. We validated this protocol using both in situ hybridization chain reaction (HCR) and signal amplification by exchange reaction (SABER)-FISH in frozen sections of various model organisms, including mouse (Mus musculus), amphibians (Xenopus laevis and Pleurodeles waltl), and medaka (Oryzias latipes). Our results demonstrate successful multiplexed detection of morphogenetic and cell-type marker genes in these model animals using this safer protocol. The protocol has the additional advantage of requiring no proteolytic enzyme treatment, thus preserving tissue integrity. Furthermore, we show that this protocol is fully compatible with EGFP immunostaining, allowing for the simultaneous detection of mRNAs and reporter proteins in transgenic animals. This protocol retains the benefits of highly sensitive, multiplexed, and multimodal detection afforded by integrating in situ HCR and SABER-FISH with immunohistochemistry, while providing a safer option for researchers, thereby offering a valuable tool for basic biology.

molecular biology↗

Breaking Bad: Exploring & Complementing the Effects of the DNASE1L3 p.Arg206Cys Variant on Cell-Free DNA from an Isogenic Cell Line Model

DNASE1L3 is a key endonuclease, essential for proper fragmentation and clearance of cell-free DNA (cfDNA). The p.R206C common variant impairs DNASE1L3 secretion and activity, causing aberrant cfDNA fragmentation and therefore affecting liquid biopsy-based screening and diagnostics. Existing studies on DNASE1L3 relied on resource-intensive murine models or plasmid-based overexpression, which do not accurately represent native expression. To address this, we developed an isogenic HEK293T cell line model by using CRISPR Prime Editing for endogenous expression of DNASE1L3R206C. We analyzed the cfDNA composition directly from conditioned culture medium and found that fragment size distributions in mutant cells mimics the hypofragmented profiles previously observed in plasma samples from p.R206C carriers. We also showed that in vitro treatment of hypofragmented cfDNA with recombinant wildtype DNASE1L3 could enrich for mononucleosomal fragments, with fragment end-motifs characteristic of DNASE1L3 cleavage activity. This could open avenues for DNASE1L3 as a candidate pre-treatment agent to improve the accuracy and efficiency of cfDNA sequencing-based diagnostics in hypofragmented liquid biopsies. These findings demonstrate that our isogenic cell line model provides a controlled system to study cfDNA fragmentation biology and DNASE1L3 function.

molecular biology↗