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Lin, T. D.

Publications and source records attributed to Lin, T. D..

2 recordsLinked to original sources

Senescent cells induce vascular MHC II to recruit CD4+ T cells and drive inflammation in aging adipose tissue

Adipose tissue exhibits pronounced inflammation during aging, yet the mechanisms sustaining this chronic state are not well understood. By creating an atlas integrating histology, single-nucleus transcriptomics and flow cytometry across the murine lifespan, we find that age-associated inflammation is distinct from the obesity-like inflammatory profile observed at mid-life. Specifically, age-associated inflammation is characterized by a potent interferon-gamma (IFN{gamma}) response signature and the accumulation of T cells. We demonstrate that senescent cells act as an upstream trigger, indirectly initiating an IFN{gamma} response that upregulates vascular MHC II to promote extravasation of CD4+ T cells into the aging tissue. These recruited T cells then act as a critical source of IFN{gamma}, thereby perpetuating a positive feedback loop that maintains chronic immune infiltration and tissue inflammation. These results provide a multi-modal view of adipose aging and identify a mechanism that sustains its age-associated inflammation.

immunology↗

Heterochronic myeloid cell replacement reveals the local brain environment as key driver of microglia aging

Aging, the key risk factor for cognitive decline, impacts the brain in a region-specific manner, with microglia among the most affected cell types. However, it remains unclear whether this is intrinsically mediated or driven by age-related changes in neighboring cells. Here, we describe a scalable, genetically modifiable system for in vivo heterochronic myeloid cell replacement. We find reconstituted myeloid cells adopt region-specific transcriptional, morphological and tiling profiles characteristic of resident microglia. Young donor cells in aged brains rapidly acquired aging phenotypes, particularly in the cerebellum, while old cells in young brains adopted youthful profiles. We identified STAT1-mediated signaling as one axis controlling microglia aging, as STAT1-loss prevented aging trajectories in reconstituted cells. Spatial transcriptomics combined with cell ablation models identified rare natural killer cells as necessary drivers of interferon signaling in aged microglia. These findings establish the local environment, rather than cell-autonomous programming, as a primary driver of microglia aging phenotypes.

neuroscience↗