Proteome integral solubility alteration high-throughput proteomics assay identifies Collectin-12 as a non-apoptotic

Kathleen Grabert1, Pinelopi Engskog-Vlachos1, Martin Škandík1

  • 1Institute of Environmental Medicine, Toxicology Unit, Karolinska Institutet, Stockholm, Sweden.

Cell Death & Disease
|March 11, 2023
PubMed

Insights

Researchers identified new non-apoptotic roles for caspase-3 (CASP3) in microglia. They discovered Collectin-12 (COLEC12) as a novel CASP3 substrate, revealing CASP3

Area of Science:

  • Neuroscience
  • Cell Biology
  • Biochemistry

Background:

  • Caspases, particularly caspase-3 (CASP3), are primarily known for inducing apoptosis.
  • Emerging evidence highlights non-apoptotic functions of caspases in regulating cellular phenotypes.
  • Microglia, the brain's immune cells, play crucial roles in brain homeostasis and disease, with CASP3 implicated in their inflammatory and pro-tumoral activities.

Purpose of the Study:

  • To identify novel, non-apoptotic substrates of CASP3 that regulate normal microglial cell function.
  • To explore the role of CASP3 cleavage in modulating microglial phagocytic capacity.

Main Methods:

  • Utilized a chemical inhibitor (DEVD-fmk) to reduce basal CASP3 activity in microglia.
  • Employed a Proteomics-based In-cell Solubility Assay (PISA) coupled with Mass Spectrometry to identify proteins with altered solubility.
  • Focused on Collectin-12 (COLEC12) as a candidate substrate based on PISA results.

Main Results:

  • The PISA assay successfully identified proteins with altered solubility upon reduced CASP3 activity, validating the approach.
  • Collectin-12 (COLEC12), a transmembrane receptor, was identified as a potential CASP3 substrate.
  • CASP3-mediated cleavage of COLEC12 was found to potentially regulate microglial phagocytic capacity.

Conclusions:

  • This study presents a novel method for uncovering non-apoptotic CASP3 substrates in physiological conditions.
  • Collectin-12 (COLEC12) emerges as a novel CASP3 substrate involved in regulating microglial phagocytosis.
  • Findings suggest a new mechanism by which CASP3 modulates microglial cell physiology beyond apoptosis.

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