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.
Abstract:
Overexpression of the beta-tubulin binding protein Rbl2p/cofactor A is lethal in yeast cells expressing a mutant alpha-tubulin, tub1-724, that produces unstable heterodimer. Here we use RBL2 overexpression to identify mutations in other genes that affect formation or stability of heterodimer. This approach identifies four genes-CIN1, CIN2, CIN4, and PAC2-as affecting heterodimer formation in vivo. The vertebrate homologues of two of these gene products-Cin1p/cofactor D and Pac2p/cofactor E-can catalyze exchange of tubulin polypeptides into preexisting heterodimer in vitro. Previous work suggests that both Cin2p or Cin4p act in concert with Cin1p in yeast, but no role for vertebrate homologues of either has been reported in the in vitro reaction. Results presented here demonstrate that these proteins can promote heterodimer formation in vivo. RBL2 overexpression in cin1 and pac2 mutant cells causes microtubule disassembly and enhanced formation of Rbl2p-beta-tubulin complex, as it does in the alpha-tubulin mutant that produces weakened heterodimer. Significantly, excess Cin1p/cofactor D suppresses the conditional phenotypes of that mutant alpha-tubulin. Although none of the four genes is essential for viability under normal conditions, they become essential under conditions where the levels of dissociated tubulin polypeptides increase. Therefore, these proteins may provide a salvage pathway for dissociated tubulin heterodimers and so rescue cells from the deleterious effects of free beta-tubulin.
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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