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Vinod, M.

Publications and source records attributed to Vinod, M..

6 recordsLinked to original sources

Retroviral insertions contributed to the divergence of human and chimpanzee brains

Over the past 5-7 million years, humans and chimpanzees have diverged in brain size, structural complexity, and cognitive abilities despite high conservation of protein-coding genes. Notably, the endogenization and proliferation of retroviral infections within host genomes has introduced numerous species-specific regulatory elements that have the potential to influence gene regulation. However, the role of these endogenous retroviruses in hominoid brain evolution remains unclear. A burst of lineage-specific PTERV1 retroviruses recently invaded the chimpanzee genome but are absent in humans. We conducted an epigenomic analysis of PTERV1 insertions in chimpanzee neural organoids and found that they are heavily covered by DNA methylation, representing more than 150 species-specific heterochromatin domains with the capacity to influence gene regulatory networks. We identified one such chimpanzee-specific PTERV1 insertion on chromosome 19 that blocks the expression of the long noncoding RNA LINC00662, via DNA methylation spread to the adjacent genomic region. The expression of LINC00662 was restored in chimpanzee induced pluripotent stem cells when we deleted the PTERV1 insertion using CRISPR editing. We found that LINC00662, a human-specific RNA, is highly expressed in the developing brain and plays an important role in the posttranscriptional control of neuronal maturation, axon outgrowth, and neural organoid development. In summary, our findings describe how endogenous retroviral insertions contributed to the functional divergence of the human and chimpanzee brains. This provides a new mechanism by which retroviral pandemics influenced primate brain speciation.

evolutionary biology↗

A patient derived missense mouse model of Kabuki syndrome 1

Kabuki syndrome (KS) is a rare cause of intellectual disability resulting from heterozygous pathogenic variants in the gene encoding the histone methyltransferase KMT2D. A previously established loss-of-function mouse model of KS exhibits key phenotypic features, and therapeutic trials in this mouse model suggest postnatal malleability of neurological symptoms. However, 15-30% of individuals with KS, carry missense variants. To investigate whether missense variants lead to similar phenotypic presentation in mice, we used CRISPR-Cas9 to introduce the KS patient variant R5230H into C57BL/6NTac. Computational and in vitro testing suggests that the R5230H variant does not impair protein stability or loss of enzyme function of KMT2D. Despite a distinct mechanistic basis, our new mouse model (Kmt2d+/R5230H) recapitulates most phenotypes of our prior loss-of-function model, including growth deficiency, craniofacial anomalies, and IgA deficiency but not altered neurological function. Kmt2d+/R5230Hmice show perinatal lethality and a high frequency of unilateral kidney agenesis, a novel phenotype in KS mouse models. Kmt2d+/R5230H mice provide a unique opportunity to understand the impact of missense variants on KMT2D function and uncover developmental and perinatal abnormalities in KS. Summary statementA novel Kabuki syndrome missense mouse model with intact KMT2D enzymatic function shares most features with prior KS models, except disruption of adult neurogenesis, and exhibits novel unilateral kidney loss.

genetics↗

The Circadian Clock Controls Hepatic Stellate Cell Activation in Liver Fibrosis via a BMAL1/CK1ϵ/REV-ERBα/Transgelin Signaling Pathway.

Liver fibrosis is a progressive and life-threatening condition with no effective targeted treatments. Growing evidence indicates a two-way relationship between circadian rhythm and fibrogenesis, although the specific molecular signaling pathways involved are still not well understood. The molecular clock, which governs circadian rhythms, regulates metabolic and cellular functions, and its pharmacological manipulation has shown potential as a therapy for organ fibrosis. Although the livers molecular clock appeared resilient to the progression of chronic liver disease in humans from steatosis to fibrosis, detectable changes in the daily amplitude of clock genes were observed in a cohort of people living with obesity. We discovered a clock-controlled signaling pathway that drives hepatic stellate cell (HSC) activation, a key event in fibrosis progression. Interfering with this pathway, either by disrupting the core regulator CLOCK:BMAL1 or activating the nuclear receptors REV-ERBs, significantly reduced HSC activation. We also identified transgelin as the downstream effector of clock-regulated HSC contractility, a characteristic of HSC activation. Transgelin is regulated indirectly by a BMAL1-CK1{varepsilon} signaling pathway and directly by REV-ERB. Our findings identify a previously unknown circadian-controlled mechanism that links the molecular clock to HSC activation and cell contractile function, which is relevant to human diseases. This pathway provides several entry points for drugs to target and disrupt fibrogenic signaling. By connecting clock biology to the cellular processes that cause fibrosis, our work also offers a mechanistic basis for chronotherapeutic strategies against chronic liver disease.

molecular biology↗

SMYD5 is a novel epigenetic gatekeeper of the mild hypothermia response

The mild hypothermia response (MHR) maintains organismal homeostasis during cold exposure and is thought to be critical for the neuroprotection documented with therapeutic hypothermia. To date, little is known about the transcriptional regulation of the MHR. We utilize a forward CRISPR-Cas9 mutagenesis screen to identify the histone lysine methyltransferase SMYD5 as a regulator of the MHR. SMYD5 represses the key MHR gene SP1 at euthermia. This repression correlates with temperature-dependent levels of H3K36me3 at the SP1-locus and globally, indicating that the mammalian MHR is regulated at the level of histone modifications. We have identified 37 additional SMYD5 regulated temperature-dependent genes, suggesting a broader MHR-related role for SMYD5. Our study provides an example of how histone modifications integrate environmental cues into the genetic circuitry of mammalian cells and provides insights that may yield therapeutic avenues for neuroprotection after catastrophic events.

genetics↗

L1 retrotransposons drive human neuronal transcriptome complexity and functional diversification

The genetic mechanisms underlying the expansion in size and complexity of the human brain remains poorly understood. L1 retrotransposons are a source of divergent genetic information in hominoid genomes, but their importance in physiological functions and their contribution to human brain evolution is largely unknown. Using multi-omic profiling we here demonstrate that L1-promoters are dynamically active in the developing and adult human brain. L1s generate hundreds of developmentally regulated and cell-type specific transcripts, many which are co-opted as chimeric transcripts or regulatory RNAs. One L1-derived lncRNA, LINC01876, is a human-specific transcript expressed exclusively during brain development. CRISPRi-silencing of LINC01876 results in reduced size of cerebral organoids and premature differentiation of neural progenitors, implicating L1s in human-specific developmental processes. In summary, our results demonstrate that L1-derived transcripts provide a previously undescribed layer of primate- and human-specific transcriptome complexity that contributes to the functional diversification of the human brain.

neuroscience↗

A time- and space-resolved nuclear receptor atlas in mouse liver

The unique functional versatility of the liver is paramount for organismal homeostasis. Both liver development and adult functions are controlled by tightly regulated transcription factor networks, within which nuclear receptors regulate essential functions of parenchymal and non-parenchymal cells. Acting as transcription factors sensitive to extracellular cues such as steroidal hormones, lipid metabolites, xenobiotics... and modulated by intracellular signaling pathways, nuclear receptors orchestrate many aspects of hepatic physiology. While liver functional zonation and adaptability to fluctuating conditions are known to rely on a sophisticated cellular architecture, a comprehensive knowledge of nuclear receptor functions in the different liver cell types is still lacking. As a first step toward the accurate mapping of nuclear receptor functions in mouse liver, we characterized their levels of expression in whole liver as a function of time and diet, and explored nuclear receptor isoform expression in hepatocytes, cholangiocytes, Kupffer cells, hepatic stellate cells and liver sinusoidal cells. In addition, we leveraged liver single cell RNAseq studies to provide here an up-to-date compendium of nuclear receptor expression in mouse liver in space and time.

molecular biology↗