Shortening of the Elastic Tandem Immunoglobulin Segment of Titin Leads to Diastolic Dysfunction

Author:

Chung Charles S.1,Hutchinson Kirk R.1,Methawasin Mei1,Saripalli Chandra1,Smith John E.1,Hidalgo Carlos G.1,Luo Xiuju1,Labeit Siegfried1,Guo Caiying1,Granzier Henk L.1

Affiliation:

1. From the Department of Physiology and Sarver Molecular Cardiovascular Research Program, University of Arizona, Tucson (C.S.C., K.R.H., M.M., C.S., J.E.S., C.G.H., X.L., H.L.G.); Department of Integrative Pathophysiology, Universitätsmedizin Mannheim, University of Heidelberg, Mannheim, Germany (S.L.); and HHMI, Janelia Farm Research Campus, Ashburn, VA (C.G.).

Abstract

Background— Diastolic dysfunction is a poorly understood but clinically pervasive syndrome that is characterized by increased diastolic stiffness. Titin is the main determinant of cellular passive stiffness. However, the physiological role that the tandem immunoglobulin (Ig) segment of titin plays in stiffness generation and whether shortening this segment is sufficient to cause diastolic dysfunction need to be established. Methods and Results— We generated a mouse model in which 9 Ig-like domains (Ig3–Ig11) were deleted from the proximal tandem Ig segment of the spring region of titin (IG KO). Exon microarray analysis revealed no adaptations in titin splicing, whereas novel phospho-specific antibodies did not detect changes in titin phosphorylation. Passive myocyte stiffness was increased in the IG KO, and immunoelectron microscopy revealed increased extension of the remaining titin spring segments as the sole likely underlying mechanism. Diastolic stiffness was increased at the tissue and organ levels, with no consistent changes in extracellular matrix composition or extracellular matrix–based passive stiffness, supporting a titin-based mechanism for in vivo diastolic dysfunction. Additionally, IG KO mice have a reduced exercise tolerance, a phenotype often associated with diastolic dysfunction. Conclusions— Increased titin-based passive stiffness is sufficient to cause diastolic dysfunction with exercise intolerance.

Publisher

Ovid Technologies (Wolters Kluwer Health)

Subject

Physiology (medical),Cardiology and Cardiovascular Medicine

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