Posttranslational modifications of Bcl2 family members--a potential therapeutic target for human malignancy

Aruna Basu1, Garrett DuBois, Subrata Haldar

  • 1Center for Biomedical Sciences, Dept of Pharmacology, Case Comprehensive Cancer Center, MetroHealth Campus, Case Western Reserve University, Cleveland, OH 44109, USA. Abasu@metrohealth.org

Insights

Cancer cells evade apoptosis through antiapoptotic proteins like Bcl2. Phosphorylation inactivates these proteins, offering a potential therapeutic target for chemoresistant tumors.

Area of Science:

  • Molecular Biology
  • Cell Biology
  • Oncology

Background:

  • Apoptosis is crucial for normal development and preventing diseases like cancer.
  • Overexpression of antiapoptotic proteins (Bcl2 family) is a hallmark of many human cancers, promoting tumor growth and resistance.
  • These proteins, including Bcl2, Bcl-xL, and Mcl-1, possess a unique loop region (LR) susceptible to regulatory modifications.

Purpose of the Study:

  • To investigate the role of phosphorylation in regulating the function of antiapoptotic Bcl2 family proteins.
  • To explore the potential of targeting the phosphorylation-dephosphorylation pathway of these proteins for cancer therapy.

Main Methods:

  • Structural analysis of antiapoptotic Bcl2 family members.
  • Investigating the impact of phosphorylation on the activity and conformation of Bcl2, Bcl-xL, and Mcl-1.
  • Examining the association between protein phosphorylation and chemoresistance in tumors.

Main Results:

  • Phosphorylation of Bcl2 family proteins, particularly within the loop region (LR), often leads to loss of their antiapoptotic function.
  • Chemoresistant tumors frequently overexpress these antiapoptotic proteins.
  • The phosphorylation-induced inactivation of Bcl2/Bcl-xL/Mcl-1 presents an interesting mechanism for inducing apoptosis.

Conclusions:

  • The phosphorylation-dephosphorylation pathway of antiapoptotic Bcl2 family proteins is a promising molecular target for cancer therapy.
  • Understanding the inactivation mechanism of Bcl2/Bcl-xL/Mcl-1 by phosphorylation is critical for developing novel treatments for malignancies reliant on these proteins.

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