Modulation of titin-based stiffness by disulfide bonding in the cardiac titin N2-B unique sequence

Biophys J. 2009 Aug 5;97(3):825-34. doi: 10.1016/j.bpj.2009.05.037.

Abstract

The giant protein titin is responsible for the elasticity of nonactivated muscle sarcomeres. Titin-based passive stiffness in myocardium is modulated by titin-isoform switching and protein-kinase (PK)A- or PKG-dependent titin phosphorylation. Additional modulatory effects on titin stiffness may arise from disulfide bonding under oxidant stress, as many immunoglobulin-like (Ig-)domains in titin's spring region have a potential for S-S formation. Using single-molecule atomic force microscopy (AFM) force-extension measurements on recombinant Ig-domain polyprotein constructs, we show that titin Ig-modules contain no stabilizing disulfide bridge, contrary to previous belief. However, we demonstrate that the human N2-B-unique sequence (N2-B(us)), a cardiac-specific, physiologically extensible titin segment comprising 572 amino-acid residues, contains up to three disulfide bridges under oxidizing conditions. AFM force spectroscopy on recombinant N2-B(us) molecules demonstrated a much shorter contour length in the absence of a reducing agent than in its presence, consistent with intramolecular S-S bonding. In stretch experiments on isolated human heart myofibrils, the reducing agent thioredoxin lowered titin-based stiffness to a degree that could be explained (using entropic elasticity theory) by altered extensibility solely of the N2-B(us). We conclude that increased oxidant stress can elevate titin-based stiffness of cardiomyocytes, which may contribute to the global myocardial stiffening frequently seen in the aging or failing heart.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, Non-U.S. Gov't

MeSH terms

  • Amino Acid Sequence
  • Chemical Phenomena
  • Computer Simulation
  • Connectin
  • Disulfides / chemistry*
  • Elasticity
  • Escherichia coli
  • Humans
  • Microscopy, Atomic Force
  • Models, Chemical
  • Molecular Sequence Data
  • Muscle Proteins / chemistry*
  • Muscle Proteins / genetics*
  • Mutant Proteins / chemistry
  • Myofibrils / chemistry
  • Oxidation-Reduction
  • Protein Kinases / chemistry*
  • Protein Kinases / genetics*
  • Protein Stability
  • Recombinant Proteins / chemistry
  • Thioredoxins / chemistry

Substances

  • Connectin
  • Disulfides
  • Muscle Proteins
  • Mutant Proteins
  • Recombinant Proteins
  • TTN protein, human
  • Thioredoxins
  • Protein Kinases