Function of tubulin binding proteins in vivo

J A Fleming1, L R Vega, F Solomon

  • 1Department of Biology and Center for Cancer Research, Massachusetts Institute of Technology, Cambridge, Massachusetts 02139, USA.

Genetics
|September 9, 2000
PubMed

Insights

Overexpression of Rbl2p/cofactor A reveals yeast genes CIN1, CIN2, CIN4, and PAC2 are crucial for tubulin heterodimer formation and stability. These proteins may form a salvage pathway for dissociated tubulin.

Area of Science:

  • Cell Biology
  • Molecular Biology
  • Protein Interactions

Background:

  • Tubulin heterodimer formation is essential for microtubule stability.
  • Rbl2p/cofactor A overexpression is lethal in yeast with unstable alpha-tubulin (tub1-724).

Purpose of the Study:

  • Identify genes affecting tubulin heterodimer formation and stability using RBL2 overexpression.
  • Investigate the in vivo role of CIN1, CIN2, CIN4, and PAC2 in tubulin heterodimerization.

Main Methods:

  • Genetic screening via RBL2 overexpression in yeast.
  • Analysis of tubulin heterodimer formation and stability in mutant yeast strains.
  • Investigating the function of tubulin exchange factors (cofactors).

Main Results:

  • Identified CIN1, CIN2, CIN4, and PAC2 as critical for in vivo heterodimer formation.
  • Vertebrate homologues of Cin1p/cofactor D and Pac2p/cofactor E catalyze tubulin exchange in vitro.
  • CIN1 and PAC2 mutants exhibit phenotypes rescued by RBL2 overexpression.
  • Excess Cin1p/cofactor D suppresses mutant alpha-tubulin phenotypes.

Conclusions:

  • CIN1, CIN2, CIN4, and PAC2 are essential for tubulin heterodimerization, particularly under stress.
  • These genes may encode a salvage pathway for dissociated tubulin, preventing toxicity from free beta-tubulin.

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