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Light Chain-dependent Regulation of Kinesin's Interaction with Microtubules

Overview
Journal J Cell Biol
Specialty Cell Biology
Date 1998 Nov 17
PMID 9817761
Citations 119
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Abstract

We have investigated the mechanism by which conventional kinesin is prevented from binding to microtubules (MTs) when not transporting cargo. Kinesin heavy chain (HC) was expressed in COS cells either alone or with kinesin light chain (LC). Immunofluorescence microscopy and MT cosedimentation experiments demonstrate that the binding of HC to MTs is inhibited by coexpression of LC. Association between the chains involves the LC NH2-terminal domain, including the heptad repeats, and requires a region of HC that includes the conserved region of the stalk domain and the NH2 terminus of the tail domain. Inhibition of MT binding requires in addition the COOH-terminal 64 amino acids of HC. Interaction between the tail and the motor domains of HC is supported by sedimentation experiments that indicate that kinesin is in a folded conformation. A pH shift from 7.2 to 6.8 releases inhibition of kinesin without changing its sedimentation behavior. Endogenous kinesin in COS cells also shows pH-sensitive inhibition of MT binding. Taken together, our results provide evidence that a function of LC is to keep kinesin in an inactive ground state by inducing an interaction between the tail and motor domains of HC; activation for cargo transport may be triggered by a small conformational change that releases the inhibition of the motor domain for MT binding.

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References
1.
Goodson H, Valetti C, Kreis T . Motors and membrane traffic. Curr Opin Cell Biol. 1997; 9(1):18-28. DOI: 10.1016/s0955-0674(97)80147-0. View

2.
Liao G, Gundersen G . Kinesin is a candidate for cross-bridging microtubules and intermediate filaments. Selective binding of kinesin to detyrosinated tubulin and vimentin. J Biol Chem. 1998; 273(16):9797-803. DOI: 10.1074/jbc.273.16.9797. View

3.
Lee K, Hollenbeck P . Phosphorylation of kinesin in vivo correlates with organelle association and neurite outgrowth. J Biol Chem. 1995; 270(10):5600-5. DOI: 10.1074/jbc.270.10.5600. View

4.
Cross R, Jackson A, Citi S, Kendrick-Jones J, Bagshaw C . Active site trapping of nucleotide by smooth and non-muscle myosins. J Mol Biol. 1988; 203(1):173-81. DOI: 10.1016/0022-2836(88)90100-3. View

5.
Hackney D . The rate-limiting step in microtubule-stimulated ATP hydrolysis by dimeric kinesin head domains occurs while bound to the microtubule. J Biol Chem. 1994; 269(23):16508-11. View