Microgravity Remodels Longevity Networks in Astronaut PBMCs: Integrated Findings of Telomere Elongation, DNA Repair Responses, and miRNA Suppression
Microgravity provides a unique environment for elucidating the fundamental mechanisms of human aging. In the Microgravity Associated Genetics (MESSAGE) Science Mission--Turkiyes first human space biology experiment--we performed an integrative analysis of telomere dynamics, transcriptomic remodeling, and microRNA regulation in peripheral blood mononuclear cells (PBMCs) collected before launch (L-7day), after suborbital ascent (L+3hrs), and during days 4-10 aboard the International Space Station (ISS). Spaceflight induced a striking early elongation of telomeres, accompanied by transcriptional activation of DNA repair, oxidative stress mitigation, mitochondrial homeostasis, and immune regulatory pathways. Concurrently, microgravity triggered robust suppression of longevity-associated microRNAs, including members of the miR-17-92, miR29, and miR34 families, suggesting coordinated epigenetic reprogramming of genome stability and stress responses. Notably, the adaptor protein gene AP2A1, recently implicated in cellular rejuvenation and mechanotransductive aging processes, emerged as a consistently microgravity-responsive hub, linking cytoskeletal signaling to telomere maintenance and DNA repair networks. Together, these findings reveal that short-duration spaceflight initiates a multi-layered molecular longevity program in human immune cells, characterized by telomere extension, stabilization of genome maintenance pathways, and suppression of aging-associated miRNA regulators. This systems-level view provides foundational insight into how human biology adapts to short-term microgravity exposure and identifies AP2A1-centered networks as promising targets for enhancing astronaut health and performance and ultimately understanding terrestrial aging.