4.6 Article

The essential light chain N-terminal extension alters force and fiber kinetics in mouse cardiac muscle

Journal

JOURNAL OF BIOLOGICAL CHEMISTRY
Volume 280, Issue 41, Pages 34427-34434

Publisher

AMER SOC BIOCHEMISTRY MOLECULAR BIOLOGY INC
DOI: 10.1074/jbc.M508430200

Keywords

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Funding

  1. NCRR NIH HHS [RR08630] Funding Source: Medline
  2. NHLBI NIH HHS [P01 HL69779, R01 HL068034, R01 HL68034] Funding Source: Medline

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The functional significance of the actin-binding region at the N terminus of the cardiac myosin essential light chain (ELC) remains elusive. In a previous experiment, the endogenous ventricular ELC was replaced with a protein containing a 10-amino acid deletion at positions 5 - 14 (ELC1v Delta 5 - 14, referred to as 1v Delta 5 - 14), a region that interacts with actin (Sanbe, A., Gulick, J., Fewell, J., and Robbins, J. ( 2001) J. Biol. Chem. 276, 32682 - 32686). 1v Delta 5 - 14 mice showed no discernable mutant phenotype in skinned ventricular strips. However, because the myofilament lattice swells upon skinning, the mutant phenotype may have been concealed by the inability of the ELC to reach the actin- binding site. Using the same mouse model, we repeated earlier measurements and performed additional experiments on skinned strips osmotically compressed to the intact lattice spacing as determined by x-ray diffraction. 1v Delta 5 - 14 mice exhibited decreased maximum isometric tension without a change in calcium sensitivity. The decreased force was most evident in 5 - 6-month-old mice compared with 13 - 15-month-old mice and may account for the greater ventricular wall thickness in young 1v Delta 5 - 14 mice compared with age-matched controls. No differences were observed in unloaded shortening velocity at maximum calcium activation. However, 1v Delta 5 - 14 mice exhibited a significant difference in the frequency at which minimum complex modulus amplitude occurred, indicating a change in cross-bridge kinetics. We hypothesize that the ELC N-terminal extension interaction with actin inhibits the reversal of the power stroke, thereby increasing isometric force. Our results strongly suggest that an interaction between residues 5 - 14 of the ELC N terminus and the C-terminal residues of actin enhances cardiac performance.

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