Transglutaminase 2 regulates the GTPase-activating activity of Bcr

Sun-Ju Yi1, John Groffen, Nora Heisterkamp

  • 1Section of Molecular Carcinogenesis, Division of Hematology/Oncology, Childrens Hospital Los Angeles and the Saban Research Institute of Childrens Hospital, Los Angeles, California 90027, USA.

Insights

Transglutaminase 2 (TG2) directly interacts with Bcr, inhibiting its activity. This novel interaction increases active Rac levels, impacting cellular processes and actin reorganization.

Area of Science:

  • Molecular biology
  • Cellular signaling
  • Protein interactions

Background:

  • Transglutaminase 2 (TG2) is linked to various diseases, but its molecular interactions are unclear.
  • Bcr and Abr proteins regulate the small G-protein Rac, influencing innate immune cell activity.

Purpose of the Study:

  • To elucidate the molecular mechanism by which TG2 activity is regulated.
  • To investigate the novel protein-protein interaction between TG2 and Bcr/Abr.

Main Methods:

  • Protein-protein interaction assays
  • GTPase activity assays
  • Analysis of TG2 mutants
  • Cellular assays measuring Rac activity and actin reorganization.

Main Results:

  • TG2 directly binds to the GTPase-activating domains of Bcr and Abr, specifically to the Rac-binding pocket.
  • TG2 binding inhibits Bcr's GTPase-activating protein activity.
  • This inhibition leads to increased levels of GTP-bound Rac and enhanced EGF-stimulated membrane ruffling.
  • Bcr preferentially binds to the non-compacted conformation of TG2.

Conclusions:

  • TG2 regulates cellular Rac levels and actin dynamics through direct inhibition of Bcr's GTPase activity.
  • This discovery reveals a new regulatory mechanism for TG2 and Rac signaling.
  • The findings have implications for understanding TG2's role in pathologies like neurodegeneration and celiac disease.

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