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Updated: Oct 27, 2025

SA-β-Galactosidase-Based Screening Assay for the Identification of Senotherapeutic Drugs
Published on: June 28, 2019
Dissecting primary and secondary senescence to enable new senotherapeutic strategies
Tesfahun Dessale Admasu1, Michael Rae1, Alexandra Stolzing2
1SENS Research Foundation, Mountain View, CA, USA.
Abstract:
Cellular senescence is a state of stable cell cycle arrest that is known to be elicited in response to different stresses or forms of damage. Senescence limits the replication of old, damaged, and precancerous cells in the short-term but is implicated in diseases and debilities of aging due to loss of regenerative reserve and secretion of a complex combination of factors called the senescence-associated secretory phenotype (SASP). More recently, investigators have discovered that senescent cells induced by these methods (what we term "primary senescent cells") are also capable of inducing other non-senescent cells to undergo senescence - a phenomenon we call "secondary senescence." Secondary senescence has been demonstrated to occur via two broad types of mechanisms. First, factors in the SASP have been shown to be involved in spreading senescence; we call this phenomenon "paracrine senescence." Second, primary senescent cells can induce senescence via an additional group of mechanisms involving cell-to-cell contacts of different types; we term this phenomenon "juxtacrine senescence." "Secondary senescence" in our definition is thus the overarching term for both paracrine and juxtacrine senescence together. By allowing cells that are inherently small in number and incapable of replication to increase in number and possibly spread to anatomically distant locations, secondary senescence allows an initially small number of senescent cells to contribute further to age-related pathologies. We propose that understanding how primary and secondary senescent cells differ from each other and the mechanisms of their spread will enable the development of new rejuvenation therapies to target different senescent cell populations and interrupt their spread, extending human health- and potentially lifespan.
Insights
Cellular senescence, a state of cell cycle arrest, can spread to healthy cells through secreted factors or cell contact. Understanding this "secondary senescence" is key to developing new therapies for age-related diseases.
Area of Science:
- Cellular and Molecular Biology
- Aging Research
- Geroscience
Background:
- Cellular senescence is a stable cell cycle arrest triggered by stress or damage.
- While beneficial short-term, senescence contributes to aging pathologies via the senescence-associated secretory phenotype (SASP).
- Senescent cells can induce senescence in neighboring cells, a process termed 'secondary senescence'.
Purpose of the Study:
- To define and differentiate primary and secondary senescence.
- To elucidate the mechanisms driving the spread of senescence.
- To explore therapeutic strategies targeting senescent cells for age-related diseases.
Main Methods:
- Distinguishing primary senescent cells from secondary senescent cells.
- Investigating SASP-mediated paracrine senescence.
- Analyzing cell-to-cell contact-mediated juxtacrine senescence.
Main Results:
- Primary senescent cells induce secondary senescence through paracrine and juxtacrine mechanisms.
- SASP factors mediate paracrine senescence, while cell-cell contact drives juxtacrine senescence.
- Secondary senescence can amplify the initial senescent cell burden and contribute to aging.
Conclusions:
- Secondary senescence, encompassing paracrine and juxtacrine pathways, expands the impact of senescent cells.
- Targeting the spread of secondary senescence offers a novel therapeutic avenue.
- Understanding these mechanisms may lead to rejuvenation therapies and extended healthspan.

