Caspases: structural and molecular mechanisms and functions in cell death, innate immunity, and disease

Eswar Kumar Nadendla1, Rebecca E Tweedell1, Gary Kasof2

  • 1Department of Immunology, St. Jude Children's Research Hospital, Memphis, TN, USA.

Cell Discovery
|May 5, 2025
PubMed

Insights

Caspases are key regulators of cell death and immunity. This review reclassifies caspases by domain structure, detailing their roles in innate immunity, cell death, and disease, highlighting therapeutic potential.

Area of Science:

  • * Molecular and Cellular Biology
  • * Immunology
  • * Biochemistry

Background:

  • * Caspases are crucial proteases regulating cell death, immunity, and disease.
  • * Traditional classification separates apoptotic and inflammatory caspases.
  • * Emerging evidence shows overlap in caspase functions, necessitating revised classifications.

Purpose of the Study:

  • * To re-categorize caspases based on pro-domain structure (CARD, DED, short/no pro-domain).
  • * To review caspase functions in innate immunity and regulated cell death pathways.
  • * To explore caspase structure-function relationships and therapeutic targeting.

Main Methods:

  • * Literature review and synthesis of existing research on caspases.
  • * Analysis of caspase classification systems based on domain structure.
  • * Examination of molecular mechanisms, substrate specificity, and enzymatic properties.

Main Results:

  • * Caspases are reclassified into CARD-, DED-, and short/no pro-domain groups.
  • * Apoptotic caspases can mediate inflammatory cell death, challenging traditional views.
  • * Caspases exhibit diverse roles in innate immunity, cell death, homeostasis, and disease.

Conclusions:

  • * A domain-based classification provides a more inclusive framework for understanding caspases.
  • * Caspases are versatile regulators with critical roles in cellular processes and disease.
  • * Understanding caspase structure-function is vital for developing targeted therapies.

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