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Biology subjects

Liu, C.-P.

Publications and source records attributed to Liu, C.-P..

2 recordsLinked to original sources

Senescent astrocytic deposits drive cognitive decline by disrupting tripartite synapse in the aging brain

Brain aging involves synapse decline, with astrocytes playing a key role in synapse homeostasis. However, the impact of astrocyte senescence on synaptic dysfunction and cognitive decline remains unclear. Here, we identified a hallmark of aging astrocytes--Senescent Astrocytic Deposits (SAD) observed at aged rodents, macaques, and human hippocampal astrocytic processes --that is associated with tripartite synapse dysfunction and memory decline. Laser capture microdissection-coupled mass spectrometry (LCM-MS), spatial transcriptome analysis and 3D electron microscopy revealed that SAD are abnormal protein deposits at the processes of ApoE-high expression astrocyte subtype and associated with dysfunctional tripartite synapses. Using a transgenic mouse (Nrbf2 knockout) with accelerated SAD formation as a tool for genetic manipulation, we clearly demonstrated that age-dependent defect of phagocytosis at maturation stage in astrocytic drives SAD accumulation, synaptic injury and cognitive deficits. Collectively, our findings establish SAD as a mechanistic link between astrocyte senescence and synaptic damage, underscoring the critical role of astrocytic phagocytic function in preserving synaptic homeostasis and cognitive function during aging. Significance StatementThis study reveals that impaired phagocytic maturation in senescent astrocytes leads to formation of SAD and impaired synaptic plasticity, identifying hippocampal astrocyte senescence as a key contributor to age-related cognitive decline.

neuroscience↗

Nucleosome binding relinquishes the association of the BAH domain of Orc1 with Sir1

Mating-type switching in S. cerevisiae requires silencing of the homothallic mating (HM) loci through formation of position-dependent, gene-independent repressive chromatin domains, resembling heterochromatic regions in higher eukaryotes. Genetic and biochemical studies have identified cis-acting DNA elements, called silencers, and trans-acting protein factors important for the establishment and maintenance of the silent chromatin. Yet, the molecular mechanism governing the position-dependence of gene silencing is not fully understood. Here we report that the BAH domain of Orc1, which is responsible for recruiting Sir1 to the Orc1-bound silencers, ceases to bind Sir1 in the presence of nucleosome. This finding suggests a unified role of sensing the chromatin environment by Orc1s BAH domain in transcriptional silencing and specification of replication origins. We further dissected the structural determinants of the BAH domain required for binding Sir1. These results expanded the understanding of Orc1s functions in epigenetic silencing of the HM loci.

molecular biology↗