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Techniques to Induce and Quantify Cellular Senescence
Published on: May 1, 2017
Unmasking Transcriptional Heterogeneity in Senescent Cells
Alejandra Hernandez-Segura1, Tristan V de Jong1, Simon Melov2
1European Research Institute for the Biology of Aging, University of Groningen, University Medical Center Groningen, Antonius Deusinglaan 1, 9713 AV Groningen, the Netherlands.
Abstract:
Cellular senescence is a state of irreversibly arrested proliferation, often induced by genotoxic stress [1]. Senescent cells participate in a variety of physiological and pathological conditions, including tumor suppression [2], embryonic development [3, 4], tissue repair [5-8], and organismal aging [9]. The senescence program is variably characterized by several non-exclusive markers, including constitutive DNA damage response (DDR) signaling, senescence-associated β-galactosidase (SA-βgal) activity, increased expression of the cyclin-dependent kinase (CDK) inhibitors p16INK4A (CDKN2A) and p21CIP1 (CDKN1A), increased secretion of many bio-active factors (the senescence-associated secretory phenotype, or SASP), and reduced expression of the nuclear lamina protein LaminB1 (LMNB1) [1]. Many senescence-associated markers result from altered transcription, but the senescent phenotype is variable, and methods for clearly identifying senescent cells are lacking [10]. Here, we characterize the heterogeneity of the senescence program using numerous whole-transcriptome datasets generated by us or publicly available. We identify transcriptome signatures associated with specific senescence-inducing stresses or senescent cell types and identify and validate genes that are commonly differentially regulated. We also show that the senescent phenotype is dynamic, changing at varying intervals after senescence induction. Identifying novel transcriptome signatures to detect any type of senescent cell or to discriminate among diverse senescence programs is an attractive strategy for determining the diverse biological roles of senescent cells and developing specific drug targets.
Insights
Cellular senescence, a state of cell cycle arrest, exhibits diverse markers and phenotypes. This study identifies transcriptome signatures to detect various senescent cells and understand their roles.
Area of Science:
- Cell Biology
- Genomics
- Molecular Biology
Background:
- Cellular senescence is a fundamental biological process involving irreversible cell cycle arrest.
- Senescence plays roles in tumor suppression, development, tissue repair, and aging.
- Current methods for identifying senescent cells are limited due to the variability of senescence markers.
Purpose of the Study:
- To characterize the heterogeneity of the cellular senescence program.
- To identify transcriptome signatures associated with specific senescence-inducing stresses and cell types.
- To discover novel genes and signatures for detecting and discriminating senescent cells.
Main Methods:
- Analysis of numerous whole-transcriptome datasets from senescent cells.
- Identification and validation of commonly differentially regulated genes.
- Characterization of the dynamic nature of the senescence phenotype post-induction.
Main Results:
- Transcriptome signatures specific to different senescence-inducing stresses and cell types were identified.
- Commonly differentially regulated genes across various senescence models were validated.
- The dynamic and variable nature of the senescent phenotype over time was demonstrated.
Conclusions:
- Understanding senescence heterogeneity through transcriptome analysis is crucial.
- Novel transcriptome signatures can aid in detecting and classifying senescent cells.
- This approach facilitates the study of diverse biological roles of senescent cells and drug target development.
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