bioRxiv Science⌕ Search

Biology subjects

Viswanath, A.

Publications and source records attributed to Viswanath, A..

5 recordsLinked to original sources

Transposable element variation inferred from long-read sequences in wild house mice from temperate and tropical environments

Transposable elements (TEs) constitute a large fraction of mammalian genomes yet their contribution to variation among individuals within natural populations remains largely unexplored. While most TE insertions are deleterious, some may be beneficial and contribute to adaptation. We characterized TE variation and assessed its potential adaptive role using long-read whole-genome sequencing of wild-caught house mice (Mus musculus domesticus) sampled from two populations inhabiting contrasting temperate and tropical environments and differing in morphology, physiology, and behavior. We sequenced 10 mice from each population and created highly contiguous de-novo genome assemblies for each individual, allowing us to identify TEs that are not present in the mouse reference genome and to characterize individual variation. By performing manual TE curation, we identified 506 non-redundant TE consensus sequences among all mice. On average, each wild mouse genome contained 1.47 million TE insertions, ~4% of which were polymorphic among individuals. A small fraction of these polymorphic TE insertions were present in high frequency in just one of the populations, consistent with positive natural selection. Using liver RNA-seq in natural populations and in laboratory crosses, we studied gene expression at genes adjacent to polymorphic TEs. This identified a small set of TEs that are associated with the expression of nearby genes in a population-specific manner, nearly all of which showed independent signatures of positive selection. Together, these results provide the first detailed assessment of TE variation in natural populations of house mice and identify a small set of TE insertions that likely contribute to environmental adaptation.

evolutionary biology↗

Gene regulatory divergence underlies tissue-specific and sex-specific misexpression in interspecies nematode hybrids

Gene regulatory divergence has emerged as a key feature in speciation, influencing gene expression differences that accumulate between diverging populations. Transcriptional regulation, mediated by cis- and trans-acting factors, modulates diverse developmental processes and is responsible for distinct species-specific gene expression profiles. Within interspecies hybrid individuals, negative interactions between divergent cis- and trans-acting factors can lead to gene misregulation and hybrid dysfunction at the organismal level. Such gene regulatory mismatch might disproportionately impact sex-biased and tissue-biased gene regulatory networks due to their unique selective pressures. To address these issues, we investigated the role of regulatory divergence in asymmetric hybrid incompatibility between sister species of Caenorhabditis nematodes (C. remanei, C. latens) by analyzing gene expression of reciprocal hybrids for each sex and key tissue types. Despite severe hybrid male sterility, hybrid males showed less misexpression of sex-biased genes than hybrid females, suggesting that the organismal phenotypic outputs of male-biased gene regulatory networks are more vulnerable to disruption than female-biased genetic networks. Additionally, we found more genes associated with cis- than trans-regulatory divergence, supporting the notion of a disproportionate role for cis-regulatory divergence between species. Moreover, we document extensive cis-trans compensatory X-linked regulatory divergence specifically from male transcriptomes, indicating distinct molecular evolutionary outcomes of stabilizing selection on regulatory controls in males and females. These insights derived from asymmetric hybrid misexpression expand our understanding of the evolution sex-biased gene regulation in the face of stabilizing selection and identify candidate genes contributing to Caenorhabditis post-zygotic reproductive isolation.

evolutionary biology↗

Modular biofabrication of a vascularized skeletal muscle model through endothelialized microvascular seeds

The clinical translation of engineered skeletal muscle (eSM) for volumetric muscle regeneration is hindered by the challenge of establishing a functional vascular network capable of sustaining its high metabolic demand and ensuring graft survival. Here, we present a bottom-up biofabrication strategy to generate a pre-vascularized in vitro eSM model through the modular assembly of independently matured muscle and vascular compartments. C2C12 myoblasts were encapsulated within core-shell fibers using rotary wet-spinning (RoWS), yielding anisotropically aligned, multinucleated, and contractile myofibers expressing myosin heavy chain and sarcomeric -actinin. In parallel, gelatin methacryloyl (GelMA)-based microvascular seeds ({micro}VS), pre-endothelialized with human umbilical vein endothelial cells, were engineered to guide rapid and structurally stable vascular formation while preventing uncontrolled capillary self-organization. Fully endothelialized {micro}VS were incorporated into a pro-angiogenic bioink and processed via RoWS to generate tubular vascular fibers with physiological diameters (100-200 m) and continuous CD31-positive lumens. After independent maturation, muscle and vascular constructs were bioassembled into a hierarchically organized tissue and co-cultured. By decoupling myogenic and angiogenic differentiation, this strategy overcomes medium incompatibility typical of conventional co-cultures, preserving compartment-specific architecture and function and establishing a versatile platform for muscle-vascular modeling and translational muscle repair.

bioengineering↗

Conserved gene expression plasticity in development is more pervasive than expression divergence between species of Caenorhabditis nematodes

Diverse regulatory mechanisms enable precise spatio-temporal control of gene expression across developmental stages, tissues, and sexes, contributing to the proper development of the organism. Evolutionary divergence leads to species-specific gene expression patterns, even in preserved developmental structures, due to regulatory changes that can disproportionately influence subsets of developmental genetic networks. Here we quantify the evolution of sex-biased and tissue-biased transcriptomes from two tissue types (gonad and soma) for each of two sexes (male and female) from two of the closest known sister species of Caenorhabditis nematodes (C. remanei and C. latens). Differential gene expression and co-expression network analyses identify gene sets with distinct transcriptomic profiles, revealing widespread divergence between these morphologically and developmentally cryptic sister species. The transcriptomic divergence occurs despite most genes showing conserved expression across tissues and sexes. These observations implicate shared selection pressures related to tissue and sex differences as outweighing species-specific selection and developmental system drift in shaping overall transcriptome profiles. Although developmentally-plastic tissue-biased expression profiles are mostly conserved between species, we find that sex-biased genes, particularly male-biased genes, contribute disproportionately to species-differences in gene expression, consistent with a disproportionate role for male-biased selection driving gene expression divergence.

evolutionary biology↗

Regulatory divergence as a mechanism for X-autosome incompatibilities in Caenorhabditis nematodes

The worlds astounding biodiversity results from speciation, the process of formation of distinct species. Hybrids between species often have reduced fitness due to negative epistatic interactions between divergent genetic factors, as each lineage accumulated substitutions independently in their evolutionary history. Such negative genetic interactions can manifest as gene misexpression due to divergence in gene regulatory controls from mutations in cis-regulatory elements and trans-acting factors. Gene misexpression due to differences in regulatory controls can ultimately contribute to incompatibility within hybrids through developmental defects such as sterility and inviability. We sought to quantify the contributions of regulatory divergence to post-zygotic reproductive isolation using sterile interspecies hybrids of two Caenorhabditis nematodes: C. briggsae and C. nigoni. We analysed previous transcriptome profiles for two introgression lines with distinct homozygous X-linked fragments from C. briggsae in a C. nigoni genomic background that confers male sterility, owing to defects in spermatogenesis (Li et al. 2016). Our analysis identified hundreds of genes that show distinct classes of non-additive expression inheritance and regulatory divergence. We find that these non-overlapping introgressions affect many of the same genes in the same way and demonstrate that the preponderance of transgressive gene expression is due to regulatory divergence involving compensatory and joint effects of cis- and trans-acting factors. The similar transcriptomic responses to non-overlapping genetic perturbations of the X-chromosome implicate multiway incompatibilities as an important feature contributing to hybrid male sterility in this system. Significance statementThe genetic causes of intrinsic post-zygotic reproductive isolation can arise from hybrids experiencing negative gene regulatory interactions. In Caenorhabditis nematodes, hybrid male sterility involves X-autosome incompatibilities that affect small-RNA regulatory pathways. We sought to understand the role of gene regulatory divergence as a related contributor to hybrid misexpression by analyzing transcriptomes of sterile males from two hybrid introgression lines, each containing distinct X-linked fragments from C. briggsae in a C. nigoni genomic background. We show that gene misexpression occurs due to extensive joint divergence of cis- and trans-acting regulatory factors and provide evidence for multiway incompatibilities as an important feature of this system.

evolutionary biology↗