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August 1, 1996Biophysical Journal225 citationsOpen Access

Myosin light chain phosphorylation affects the structure of rabbit skeletal muscle thick filaments

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RLRhea J. C. LevineRKRobert W. KenslerZYZhaohui Yang

Key Result

Phosphorylation of myosin regulatory light chains caused structural disorder in rabbit skeletal muscle thick filaments, which was reversed by incubation with a protein phosphatase catalytic subunit.

Structured PICO

P
Population
Skinned rabbit skeletal muscle fibers (thick filaments separated from the muscle in the relaxed state)
I
Intervention
Incubation with specific, intact, myosin light chain kinase at moderate (pCa 5.0) and low (pCa 5.8) calcium and with calcium-independent enzyme in the absence of calcium
C
Comparator
Incubation in control media (intact enzyme in the absence of calcium, moderate calcium (pCa 5.0) without enzyme, and bovine serum albumin substituting for calcium-independent myosin light chain kinase)
O
Outcome
Structural changes (disorder of near-helical array of surface myosin heads) examined by electron microscopy and optical diffractionsurrogate

Phosphorylation of myosin regulatory light chains induces structural disorder in thick filaments, which may explain the potentiation of actin-myosin interaction at low calcium levels.

Abstract

To identify the structural basis for the observed physiological effects of myosin regulatory light chain phosphorylation in skinned rabbit skeletal muscle fibers (potentiation of force development at low calcium), thick filaments separated from the muscle in the relaxed state, with unphoshorylated light chains, were incubated with specific, intact, myosin light chain kinase at moderate (pCa 5.0) and low (pCa 5.8) calcium and with calcium-independent enzyme in the absence of calcium, then examined as negatively stained preparations, by electron microscopy and optical diffraction. All such experimental filaments became disordered (lost the near-helical array of surface myosin heads typical of the relaxed state). Filaments incubated in control media, including intact enzyme in the absence of calcium, moderate calcium (pCa 5.0) without enzyme, and bovine serum albumin substituting for calcium-independent myosin light chain kinase, all retained their relaxed structure. Finally, filaments disordered by phosphorylation regained their relaxed structure after incubation with a protein phosphatase catalytic subunit. We suggest that the observed disorder is due to phosphorylation-induced increased mobility and/or changed conformation of myosin heads, which places an increased population of them close to thin filaments, thereby potentiating actin-myosin interaction at low calcium levels.

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Cite This Study

Levine et al. (1996) studied this question. Myosin light chain phosphorylation vs. Control media was evaluated on Structural changes (disorder of near-helical array of surface myosin heads). Phosphorylation of myosin regulatory light chains caused structural disorder in rabbit skeletal muscle thick filaments, which was reversed by incubation with a protein phosphatase catalytic subunit.

synapsesocial.com/papers/6aa25ec8990ebc48faa58115https://doi.org/10.1016/s0006-3495(96)79293-7
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