» Articles » PMID: 12668734

Nonmuscle Myosin Motor of Smooth Muscle

Overview
Journal J Gen Physiol
Specialty Physiology
Date 2003 Apr 2
PMID 12668734
Citations 33
Authors
Affiliations
Soon will be listed here.
Abstract

Nonmuscle myosin can generate force and shortening in smooth muscle, as revealed by studies of the urinary bladder from mice lacking smooth muscle myosin heavy chain (SM-MHC) but expressing the nonmuscle myosin heavy chains A and B (NM-MHC A and B; Morano, I., G.X. Chai, L.G. Baltas, V. Lamounier-Zepter, G. Lutsch, M. Kott, H. Haase, and M. Bader. 2000. Nat. Cell Biol. 2:371-375). Intracellular calcium was measured in urinary bladders from SM-MHC-deficient and SM-MHC-expressing mice in relaxed and contracted states. Similar intracellular [Ca2+] transients were observed in the two types of preparations, although the contraction of SM-MHC-deficient bladders was slow and lacked an initial peak in force. The difference in contraction kinetics thus do not reflect differences in calcium handling. Thick filaments were identified with electron microscopy in smooth muscle cells of SM-MHC-deficient bladders, showing that NM-MHC can form filaments in smooth muscle cells. Maximal shortening velocity of maximally activated, skinned smooth muscle preparations from SM-MHC-deficient mice was significantly lower and more sensitive to increased MgADP compared with velocity of SM-MHC-expressing preparations. Active force was significantly lower and less inhibited by increased inorganic phosphate. In conclusion, large differences in nucleotide and phosphate binding exist between smooth and nonmuscle myosins. High ADP binding and low phosphate dependence of nonmuscle myosin would influence both velocity of actin translocation and force generation to promote slow motility and economical force maintenance of the cell.

Citing Articles

Aging related decreases in NM myosin expression and contractility in a resistance vessel.

Han Y, Bandi R, Fogarty M, Sieck G, Brozovich F Front Physiol. 2024; 15:1411420.

PMID: 38808359 PMC: 11130448. DOI: 10.3389/fphys.2024.1411420.


Isoform selectivities of novel 4-hydroxycoumarin imines as inhibitors of myosin II.

Smith J, Brawley J, Bordenave K, Olsen R, Intasiri A, Cremo C Eur J Med Chem. 2022; 247:115008.

PMID: 36543032 PMC: 9889102. DOI: 10.1016/j.ejmech.2022.115008.


Visceral myopathy: clinical syndromes, genetics, pathophysiology, and fall of the cytoskeleton.

Hashmi S, Ceron R, Heuckeroth R Am J Physiol Gastrointest Liver Physiol. 2021; 320(6):G919-G935.

PMID: 33729000 PMC: 8285581. DOI: 10.1152/ajpgi.00066.2021.


Non-muscle myosin II regulates aortic stiffness through effects on specific focal adhesion proteins and the non-muscle cortical cytoskeleton.

Singh K, Kim A, Morgan K J Cell Mol Med. 2021; 25(5):2471-2483.

PMID: 33547870 PMC: 7933926. DOI: 10.1111/jcmm.16170.


Distinct Roles of Smooth Muscle and Non-muscle Myosin Light Chain-Mediated Smooth Muscle Contraction.

Sun J, Qiao Y, Tao T, Zhao W, Wei L, Li Y Front Physiol. 2021; 11:593966.

PMID: 33424621 PMC: 7793928. DOI: 10.3389/fphys.2020.593966.


References
1.
Morano I, Chai G, Baltas L, Lamounier-Zepter V, LUTSCH G, Kott M . Smooth-muscle contraction without smooth-muscle myosin. Nat Cell Biol. 2000; 2(6):371-5. DOI: 10.1038/35014065. View

2.
Bresnick A . Molecular mechanisms of nonmuscle myosin-II regulation. Curr Opin Cell Biol. 1999; 11(1):26-33. DOI: 10.1016/s0955-0674(99)80004-0. View

3.
Berg J, Powell B, Cheney R . A millennial myosin census. Mol Biol Cell. 2001; 12(4):780-94. PMC: 32266. DOI: 10.1091/mbc.12.4.780. View

4.
Lofgren M, Malmqvist U, Arner A . Substrate and product dependence of force and shortening in fast and slow smooth muscle. J Gen Physiol. 2001; 117(5):407-18. PMC: 2233665. DOI: 10.1085/jgp.117.5.407. View

5.
Sjuve R, Haase H, Ekblad E, Malmqvist U, Morano I, Arner A . Increased expression of non-muscle myosin heavy chain-B in connective tissue cells of hypertrophic rat urinary bladder. Cell Tissue Res. 2001; 304(2):271-8. DOI: 10.1007/s004410000262. View