Absence of AMPKα2 accelerates cellular senescence via p16 induction in mouse embryonic fibroblasts
Ye Ding1, Jie Chen1, Imoh Sunday Okon1
1Center for Molecular and Translational Medicine, Georgia State University, Atlanta, GA 30303, USA.
Abstract:
Emerging evidence suggests that activation of adenosine monophosphate-activated protein kinase (AMPK), an energy gauge and redox sensor, delays aging process. However, the molecular mechanisms by which AMPKα isoform regulates cellular senescence remain largely unknown. The aim of this study was to determine if AMPKα deletion contributes to the accelerated cell senescence by inducing p16(INK4A) (p16) expression thereby arresting cell cycle. The markers of cellular senescence, cell cycle proteins, and reactive oxygen species (ROS) were monitored in cultured mouse embryonic fibroblasts (MEFs) isolated from wild type (WT, C57BL/6J), AMPKα1, or AMPKα2 homozygous deficient (AMPKα1(-/-), AMPKα2(-/-)) mice by Western blot and cellular immunofluorescence staining, as well as immunohistochemistry (IHC) in skin tissue of young and aged mice. Deletion of AMPKα2, the minor isoform of AMPKα, but not AMPKα1 in high-passaged MEFs led to spontaneous cell senescence demonstrated by accumulation of senescence-associated-β-galactosidase (SA-β-gal) staining and foci formation of heterochromatin protein 1 homolog gamma (HP1γ). It was shown here that AMPKα2 deletion upregulates cyclin-dependent kinase (CDK) inhibitor, p16, which arrests cell cycle. Furthermore, AMPKα2 null cells exhibited elevated ROS production. Interestingly, knockdown of HMG box-containing protein 1 (HBP1) partially blocked the cellular senescence of AMPKα2-deleted MEFs via the reduction of p16. Finally, dermal cells senescence, including fibroblasts senescence evidenced by the staining of p16, HBP1, and Ki-67, in the skin of aged AMPKα2(-/-) mice was enhanced when compared with that in wild type mice. Taken together, our results suggest that AMPKα2 isoform plays a fundamental role in anti-oxidant stress and anti-senescence.
Insights
Deletion of AMPKα2, not AMPKα1, accelerates cellular senescence by upregulating p16 and increasing ROS. This highlights AMPKα2
Area of Science:
- Cellular senescence
- Molecular biology
- Aging research
Background:
- Adenosine monophosphate-activated protein kinase (AMPK) activation may delay aging.
- The specific role of AMPKα isoforms in cellular senescence is not well understood.
Purpose of the Study:
- To investigate if AMPKα deletion accelerates cell senescence by inducing p16(INK4A) expression and cell cycle arrest.
- To determine the role of AMPKα1 and AMPKα2 isoforms in regulating cellular senescence.
Main Methods:
- Cultured mouse embryonic fibroblasts (MEFs) from WT, AMPKα1(-/-), and AMPKα2(-/-) mice were analyzed.
- Western blot, immunofluorescence staining, and immunohistochemistry were used to assess senescence markers, cell cycle proteins, and reactive oxygen species (ROS).
Main Results:
- AMPKα2 deletion, but not AMPKα1, induced spontaneous cell senescence in MEFs, evidenced by SA-β-gal staining and HP1γ foci.
- AMPKα2 deletion upregulated p16 expression, causing cell cycle arrest and elevated ROS production.
- Knockdown of HMG box-containing protein 1 (HBP1) partially reversed senescence in AMPKα2-deleted cells.
- Aged AMPKα2(-/-) mice showed enhanced dermal cell senescence compared to WT mice.
Conclusions:
- The AMPKα2 isoform plays a crucial role in combating oxidative stress and preventing cellular senescence.
- AMPKα2 deficiency contributes to accelerated aging phenotypes through p16 upregulation and increased ROS.
Related Concept Videos
Abnormal Proliferation
Replicative Cell Senescence
PI3K/mTOR/AKT Signaling Pathway
mTOR Signaling and Cancer Progression
The mTOR pathway or the...
MAPK Signaling Cascades


