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Updated: Jun 29, 2026

Continuous High-resolution Microscopic Observation of Replicative Aging in Budding Yeast
Published on: August 20, 2013
Acute priming using elevated fluid viscosity recovers 'young-like' single-cell surveillance behaviors in aged human T
Yoseph W Dance1,2, Alice Amitrano2,3, Annaka M Saffron1
1Department of Biomedical Engineering, Johns Hopkins University, Baltimore, MD, USA.
Abstract:
Aging is a complex biological process, often characterized by increased vulnerability to disease, infection, and death. This increased vulnerability is mechanistically linked to a progressive and functional decline of the immune system. In humans, aged lymphocytes lose their capacity to effectively surveil within diverse microenvironments, decreasing their capability for clearing infections and maintaining physiological homeostasis. However, specific mechanisms by which aged lymphocytes, specifically T cells, lose this capacity to surveil remain unclear. We profiled three core characteristics of T cell surveillance at single-cell resolution, specifically migration, deformability, and sensing. While aged T cells retained their capacity for spontaneous migration, they exhibited impaired cellular deformability and deficiencies in sensing local signaling cues. To modulate this surveillance defect, we performed mechanical reprogramming using elevated fluid viscosity. Results showed that acute priming of aged T cells with elevated fluid viscosity recovered a transient young-like surveillance phenotype, which was mechanistically linked to membrane tension, cortical F-actin, and Arp3 expression. These findings reveal a key source of surveillance defects in aged T cells and provide an effective mechanical approach to tuning their single-cell behaviors.

