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Op18/stathmin mediates multiple region-specific tubulin and microtubule-regulating activities
N Larsson1, B Segerman, B Howell
1Department of Cell and Molecular Biology, University of Umeâ, Sweden.
Abstract:
Oncoprotein18/stathmin (Op18) is a regulator of microtubule (MT) dynamics that binds tubulin heterodimers and destabilizes MTs by promoting catastrophes (i.e., transitions from growing to shrinking MTs). Here, we have performed a deletion analysis to mechanistically dissect Op18 with respect to (a) modulation of tubulin GTP hydrolysis and exchange, (b) tubulin binding in vitro, and (c) tubulin association and MT-regulating activities in intact cells. The data reveal distinct types of region-specific Op18 modulation of tubulin GTP metabolism, namely inhibition of nucleotide exchange and stimulation or inhibition of GTP hydrolysis. These regulatory activities are mediated via two-site cooperative binding to tubulin by multiple nonessential physically separated regions of Op18. In vitro analysis revealed that NH(2)- and COOH-terminal truncations of Op18 have opposite effects on the rates of tubulin GTP hydrolysis. Transfection of human leukemia cells with these two types of mutants result in similar decrease of MT content, which in both cases appeared independent of a simple tubulin sequestering mechanism. However, the NH(2)- and COOH-terminal-truncated Op18 mutants regulate MTs by distinct mechanisms as evidenced by morphological analysis of microinjected newt lung cells. Hence, mutant analysis shows that Op18 has the potential to regulate tubulin/MTs by more than one specific mechanism.
Insights
Oncoprotein18/stathmin (Op18) regulates microtubule dynamics by binding tubulin. Deletion analysis reveals Op18 uses distinct regions and mechanisms to modulate tubulin GTPase activity and microtubule stability.
Area of Science:
- Cell Biology
- Molecular Biology
- Biochemistry
Background:
- Oncoprotein18/stathmin (Op18) is a key regulator of microtubule (MT) dynamics.
- Op18 functions by binding tubulin heterodimers and promoting MT catastrophes, leading to destabilization.
Purpose of the Study:
- To mechanistically dissect Op18's functions using deletion analysis.
- To investigate Op18's modulation of tubulin GTP hydrolysis and exchange.
- To analyze Op18's tubulin binding and MT-regulating activities in vitro and in intact cells.
Main Methods:
- Deletion analysis of Op18.
- In vitro tubulin binding assays.
- GTP hydrolysis and nucleotide exchange assays.
- Cell transfection and microinjection experiments in human leukemia and newt lung cells.
Main Results:
- Op18 exhibits region-specific modulation of tubulin GTP metabolism, inhibiting nucleotide exchange and altering GTP hydrolysis rates.
- Multiple, physically separated regions of Op18 mediate these activities through cooperative binding to tubulin.
- Both NH(2)- and COOH-terminal Op18 truncations reduced MT content via non-sequestering mechanisms.
- Distinct mechanisms of MT regulation were observed for NH(2)- and COOH-terminal mutants.
Conclusions:
- Op18 employs multiple, distinct mechanisms to regulate tubulin and microtubule dynamics.
- The N- and C-termini of Op18 play crucial, albeit different, roles in its MT-regulatory functions.
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