Kinase-related protein/telokin inhibits Ca2+-independent contraction in Triton-skinned guinea pig taenia coli

Author:

Shcherbakova Olga V.1,Serebryanaya Daria V.12,Postnikov Alexander B.2,Schroeter Mechthild M.3,Zittrich Stefan3,Noegel Angelika A.45,Shirinsky Vladimir P.1,Vorotnikov Alexander V.16,Pfitzer Gabriele35

Affiliation:

1. Laboratory of Cell Motility, Institute of Experimental Cardiology at the Russian Cardiology and Production Research Centre, 3rd Cherepkovskaya Str. 15a, Moscow 121552, Russia

2. Department of Bioorganic Chemistry, Biological Faculty, Moscow State University, Vorobjovy Hills, Moscow 119899, Russia

3. Institute of Vegetative Physiology, University of Cologne, Robert-Koch-Str. 39, 50931 Cologne, Germany

4. Institute of Biochemistry I, University of Cologne, Joseph-Stelzmann-Str. 52, 50931 Cologne, Germany

5. Center of Molecular Medicine (CMMC), University of Cologne, Robert-Koch-Str. 39, 50931 Cologne, Germany

6. Department of Biological and Medical Chemistry, Faculty of Fundamental Medicine, Moscow State University, Lomonosov Ave. 31, bldg. 5, Moscow 119192, Russia

Abstract

KRP (kinase-related protein), also known as telokin, has been proposed to inhibit smooth muscle contractility by inhibiting the phosphorylation of the rMLC (regulatory myosin light chain) by the Ca2+-activated MLCK (myosin light chain kinase). Using the phosphatase inhibitor microcystin, we show in the present study that KRP also inhibits Ca2+-independent rMLC phosphorylation and smooth muscle contraction mediated by novel Ca2+-independent rMLC kinases. Incubating KRP-depleted Triton-skinned taenia coli with microcystin at pCa>8 induced a slow contraction reaching 90% of maximal force (Fmax) at pCa 4.5 after ~25 min. Loading the fibres with KRP significantly slowed down the force development, i.e. the time to reach 50% of Fmax was increased from 8 min to 35 min. KRP similarly inhibited rMLC phosphorylation of HMM (heavy meromyosin) in vitro by MLCK or by the constitutively active MLCK fragment (61K-MLCK) lacking the myosin-docking KRP domain. A C-terminally truncated KRP defective in myosin binding inhibited neither force nor HMM phosphorylation. Phosphorylated KRP inhibited the rMLC phosphorylation of HMM in vitro and Ca2+-insensitive contractions in fibres similar to unphosphorylated KRP, whereby the phosphorylation state of KRP was not altered in the fibres. We conclude that (i) KRP inhibits not only MLCK-induced contractions, but also those elicited by Ca2+-independent rMLC kinases; (ii) phosphorylation of KRP does not modulate this effect; (iii) binding of KRP to myosin is essential for this inhibition; and (iv) KRP inhibition of rMLC phosphorylation is most probably due to the shielding of the phosphorylation site on the rMLC.

Publisher

Portland Press Ltd.

Subject

Cell Biology,Molecular Biology,Biochemistry

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