The findings show that the pervasive effects of human neuronal aging might be linked to the authors' long lifespan and are therefore not evident in animal models.
Abstract
Human brain aging is frequently studied in model mammals that rarely show the natural age-related neurodegenerative conditions that afflict humans, yet little is known about how genomic stability compares across species during aging. Although somatic single nucleotide variant (SNV) and short insertion/deletion (Indel) mutations accumulate at rates that inversely scale to lifespan in colon cells—leaving diverse mammals with similar end-of-life burdens of mutations -- here we show that cerebral cortical neurons accumulate SNVs at annual rates that are remarkably similar across six mammalian species (human, chimpanzee, rhesus macaque, marmoset, ferret, mouse) resulting in >12-fold more mutations in human neurons at the end of life compared to mouse neurons. Despite the conservation of overall annual mutation accumulation rates, mutational patterns--and hence likely mutagenic mechanisms--show sharp differences between species, with a nucleotide substitution pattern linked to neurodegenerative diseases accumulating almost exclusively in humans during aging. Coinciding with their higher mutational burden, single-nucleus transcriptomic analyses reveal pervasive age-associated proteostasis and mitochondrial dysregulation in human neurons that is far less pronounced in aged chimpanzees and rhesus macaques. These findings show that the pervasive effects of human neuronal aging might be linked to our long lifespan and are therefore not evident in animal models.
This work examines puberty, a period of intense hormone-dependent proliferation that confers reproductive capacity, as a plausible but understudied window of vulnerability for accelerated mutagenesis, and reveals that somatic mutations accumulate approximately linearly with age across tissues, from a few hundred per ce...
O. Sergeyev, V. Ashapkin, D. Korostin et al.· Ageing Research Reviews· 0 citations
Over the course of a lifetime, somatic mutations accrue in normal human cells, causing variation in cell phenotype and engendering somatic evolution with outcomes ranging from the adaptive immune system to cancer. To inform understanding of somatic evolution in the human body we report the mutation rates and mutational...
M. H. Pham, L. M. R. Harvey, Thomas R. W. Oliver et al.· bioRxiv· 0 citations
Age is the primary risk factor for neurodegenerative diseases, which are characterized by cell-type-specific vulnerability 1. Yet brain-aging mechanisms remain unclear given the complex, interacting age-associated pathways across diverse neural cell types. Here, we dissect cell type- cell state-specific aging gene regu...
Ghada Abdelhady, Qiao Su, Andrew Z. Wang et al.· bioRxiv· 0 citations
Alternative splicing represents a major source of potential evolutionary novelty in protein sequence. Despite this, relatively few studies have investigated the functional impacts of human-specific alternative splicing. Here, we analyze RNA-sequencing data from nine iPSC-derived cell types and identify dozens of human...
Alexander L. Starr, A. Villalba, Jenna Rever et al.· bioRxiv· 0 citations
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