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Calmodulin binding to and cAMP-dependent phosphorylation of kinesin light chains modulate kinesin ATPase activity
H J Matthies1, R J Miller, H C Palfrey
1Department of Pharmacological and Physiological Sciences, University of Chicago, Illinois 60637.
Abstract:
Kinesin is an ubiquitous heterotetrameric microtubule-based motor which translocates membrane-bound organelles. Since organelle motility and motor protein function can be regulated by components of signaling pathways, the ability of purified bovine brain kinesin (kinesin) to be phosphorylated and to recognize calmodulin (CaM) was tested. Extensively purified "kinesin" was found to consist of several forms of both heavy (KHC) and light (KLC) chains. Phosphorylation of kinesin by a variety of protein kinases was examined; cAMP-dependent protein kinase (cAMP-PK) was the most active enzyme leading to the incorporation of up to 8 mol P/mol kinesin. Phosphorylation occurred predominantly on the KLCs and led to substantial acidic pI shifts. Peptide maps indicated that multiple phosphorylation sites exist on each KLC. Incubation of kinesin in vitro with protein kinase C (PKC) led to the phosphorylation of both KHCs and KLCs. In vivo phosphorylation of KHC and KLCs was demonstrated by immunoprecipitation of [32P]-labeled kinesin from cultured rat hippocampal pyramidal neurons; kinesin phosphorylation was stimulated by 8-chlorophenyl-thio-cAMP or 12-O-tetradecanoylphorbol-13-acetate. Native bovine brain kinesin was shown to bind 125I-CaM by nucleotide-dependent pelleting with stable microtubules. Specific calcium-dependent binding of 125I-CaM to KLCs but not KHC was found using a ligand blotting assay. cAMP-PK phosphorylated kinesin bound 125I-CaM less well than untreated protein in both ligand blotting and microtubule-pelleting paradigms. Calcium-dependent binding of CaM to kinesin inhibited the ATPase activity of native kinesin but not of cAMP-PK phosphorylated kinesin. These results suggest that the KLCs have a regulatory function and integrate information coming from diverse signaling pathways to modulate the activity and function of kinesin.
Insights
Kinesin light chains (KLCs) are phosphorylated by various kinases, influencing calmodulin binding and motor activity. This suggests KLCs integrate signaling pathways to regulate kinesin function.
Area of Science:
- Cell Biology
- Molecular Neuroscience
- Biochemistry
Background:
- Kinesin is a microtubule-based motor protein essential for organelle transport.
- Motor protein function is often modulated by cellular signaling pathways.
Purpose of the Study:
- To investigate the phosphorylation of kinesin and its interaction with calmodulin (CaM).
- To determine the regulatory role of kinesin light chains (KLCs) in response to signaling pathways.
Main Methods:
- Purification of bovine brain kinesin and characterization of its heavy (KHC) and light (KLC) chains.
- In vitro and in vivo phosphorylation assays using various protein kinases (cAMP-PK, PKC) and signaling stimuli.
- Calmodulin binding assays using 125I-CaM, ligand blotting, and microtubule-pelleting assays.
- ATPase activity measurements of native and phosphorylated kinesin.
Main Results:
- Kinesin, particularly KLCs, undergoes phosphorylation by cAMP-dependent protein kinase (cAMP-PK) and protein kinase C (PKC).
- Phosphorylation leads to altered isoelectric points and suggests multiple phosphorylation sites on KLCs.
- Native kinesin binds calmodulin in a calcium-dependent manner, specifically to KLCs.
- cAMP-PK phosphorylation reduces CaM binding and prevents CaM-mediated inhibition of kinesin's ATPase activity.
Conclusions:
- Kinesin light chains (KLCs) play a crucial regulatory role in kinesin function.
- KLCs integrate signals from diverse pathways, modulating kinesin activity through interactions with calmodulin.
- Phosphorylation of kinesin by signaling pathways can alter its interaction with calmodulin and its motor activity.