Nemzeti Kardiovaszkuláris Laboratórium(RRF-2.3.1-21-2022-00003) Támogató: NKFIH
(135784) Támogató: NKFIH
(EKÖP-2024–2) Támogató: New National Excellence Program
Aging is characterized by a coordinated functional decline across multiple organs.
While cell-autonomous mechanisms contribute to local aging phenotypes, the systemic
synchronicity of aging suggests a major role for cell non-autonomous drivers. Emerging
evidence implicates the hypothalamus—a central regulator of neuroendocrine and homeostatic
functions—as a potential source of circulating pro-geronic signals. A hallmark of
brain aging is the accumulation of senescent cells, particularly in microglia and
brain microvascular endothelial cells, including within the hypothalamus, which contributes
to a heightened state of neuroinflammation and altered systemic signaling. Here, we
tested the hypothesis that brain senescence and its associated inflammatory milieu
promote peripheral aging by reshaping the systemic environment. To model this, we
employed targeted whole-brain irradiation (WBI) in young mice—a well-established method
to induce widespread brain cellular senescence and neuroinflammation, mimicking changes
seen in natural aging. Two months after WBI, we performed transcriptomic profiling
of the heart to evaluate remote, cell non-autonomous effects. Cardiac RNA sequencing
revealed a striking overlap in gene expression changes between WBI-treated young mice
and naturally aged controls. Notably, several gene sets associated with fundamental
cellular and molecular mechanisms of aging were concordantly dysregulated in both
groups, with strong enrichment for pathways related to mitochondrial metabolism, immune
activation, interferon signaling, and extracellular matrix remodeling. These findings
demonstrate that localized brain senescence is sufficient to induce aging-like transcriptomic
remodeling in peripheral organs, likely mediated by circulating factors. Our findings
establish brain senescence as a key orchestrator of systemic aging—a mechanism that
may contribute to accelerated aging trajectories in individuals with lifestyle-associated
increased brain senescence and neuroinflammation, as well as in cancer survivors exposed
to senescence-inducing treatments such as whole-brain irradiation.