A nonapoptotic role for CASP2/caspase 2: modulation of autophagy

Meenakshi Tiwari1, Lokendra K Sharma2, Difernando Vanegas2

  • 1Department of Cellular and Structural Biology; University of Texas Health Science Center at San Antonio; South Texas Research Facility; San Antonio, TX USA; Department of Pathology and Laboratory Medicine; All India Institute of Medical Sciences; Patna, India.

Autophagy
|June 1, 2014
PubMed

Insights

Caspase-2 (CASP2) is a novel repressor of autophagy, a cellular process crucial for survival. Loss of CASP2 upregulates autophagy, offering a survival advantage and impacting aging, neurodegeneration, and cancer research.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Autophagy Research

Background:

  • Caspase-2 (CASP2) is implicated in aging, neurodegeneration, and cancer.
  • CASP2 regulates cell cycle, DNA repair, lipid biosynthesis, and oxidant levels.
  • Previous work showed CASP2 modulates autophagy during oxidative stress.

Purpose of the Study:

  • To investigate the novel role of CASP2 in autophagy regulation.
  • To determine if CASP2 acts as a repressor or activator of autophagy.
  • To elucidate the molecular mechanisms underlying CASP2's effect on autophagy.

Main Methods:

  • Utilized knockout (casp2(-/-)) and knockdown models of CASP2.
  • Assessed autophagy levels in various cell types and tissues.
  • Investigated the involvement of canonical autophagy pathways (AMPK, mTOR, MAPK).
  • Analyzed reactive oxygen species (ROS) production and its role in autophagy induction.

Main Results:

  • Loss or knockdown of CASP2 consistently upregulated autophagy.
  • Reintroduction of CASP2 suppressed autophagy, confirming its negative regulatory role.
  • CASP2-regulated autophagy involves canonical pathway components.
  • Enhanced ROS production was identified as an upstream event in CASP2-loss-induced autophagy.
  • CASP2-deficient cells showed increased autophagy and a survival advantage under stress.

Conclusions:

  • CASP2 is identified as a novel endogenous repressor of autophagy.
  • This finding provides new insights into CASP2's role in aging, neurodegeneration, and cancer.
  • Targeting CASP2 could offer therapeutic strategies for related diseases.

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