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    Date Issued2020 (2)Author
    Saheera, Sherin (2)
    Bourke, Lauren (1)Haynes, Cole M. (1)Krishnamurthy, Prasanna (1)Milstone, Zachary J. (1)View MoreUMass Chan AffiliationDepartment of Medicine, Division of Cardiovascular Medicine (2)Department of Molecular, Cell, and Cancer Biology (1)Graduate School of Biomedical Sciences (1)Li-Weibo Institute for Rare Diseases Research (1)Document TypeJournal Article (2)KeywordAmino Acids, Peptides, and Proteins (2)Cell Biology (2)aging (1)Biochemical Phenomena, Metabolism, and Nutrition (1)Biochemistry (1)View MoreJournalCells (1)Science advances (1)

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    Nano-Vesicle (Mis)Communication in Senescence-Related Pathologies

    Saheera, Sherin; Potnuri, Ajay Godwin; Krishnamurthy, Prasanna (2020-08-26)
    Extracellular vesicles are a heterogeneous group of cell-derived membranous structures comprising of exosomes, apoptotic bodies, and microvesicles. Of the extracellular vesicles, exosomes are the most widely sorted and extensively explored for their contents and function. The size of the nanovesicular structures (exosomes) range from 30 to 140 nm and are present in various biological fluids such as saliva, plasma, urine etc. These cargo-laden extracellular vesicles arise from endosome-derived multivesicular bodies and are known to carry proteins and nucleic acids. Exosomes are involved in multiple physiological and pathological processes, including cellular senescence. Exosomes mediate signaling crosstalk and play a critical role in cell-cell communications. Exosomes have evolved as potential biomarkers for aging-related diseases. Aging, a physiological process, involves a progressive decline of function of organs with a loss of homeostasis and increasing probability of illness and death. The review focuses on the classic view of exosome biogenesis, biology, and age-associated changes. Owing to their ability to transport biological information among cells, the review also discusses the interplay of senescent cell-derived exosomes with the aging process, including the susceptibility of the aging population to COVID-19 infections.
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    Histone deacetylases 1 and 2 silence cryptic transcription to promote mitochondrial function during cardiogenesis

    Milstone, Zachary J.; Saheera, Sherin; Bourke, Lauren; Shpilka, Tomer; Haynes, Cole M.; Trivedi, Chinmay M. (2020-04-10)
    Cryptic transcription occurs widely across the eukaryotic genome; however, its regulation during vertebrate development is not understood. Here, we show that two class I histone deacetylases, Hdac1 and Hdac2, silence cryptic transcription to promote mitochondrial function in developing murine hearts. Mice lacking Hdac1 and Hdac2 in heart exhibit defective developmental switch from anaerobic to mitochondrial oxidative phosphorylation (OXPHOS), severe defects in mitochondrial mass, mitochondrial function, and complete embryonic lethality. Hdac1/Hdac2 promotes the transition to OXPHOS by enforcing transcriptional fidelity of metabolic gene programs. Mechanistically, Hdac1/Hdac2 deacetylates histone residues including H3K23, H3K14, and H4K16 to suppress cryptic transcriptional initiation within the coding regions of actively transcribed metabolic genes. Thus, Hdac1/2-mediated epigenetic silencing of cryptic transcription is essential for mitochondrial function during early vertebrate development.
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