The effect of variable troponin C mutation thin filament incorporation on cardiac muscle twitch contractions

Copyright © 2021 The Author(s). Published by Elsevier Ltd.. All rights reserved..

One of the complexities of understanding the pathology of familial forms of cardiac diseases is the level of mutation incorporation in sarcomeres. Computational models of the sarcomere that are spatially explicit offer an approach to study aspects of mutational incorporation into myofilaments that are more challenging to get at experimentally. We studied two well characterized mutations of cardiac TnC, L48Q and I61Q, that decrease or increase the release rate of Ca2+ from cTnC, k-Ca, resulting in HCM and DCM respectively [1]. Expression of these mutations in transgenic mice was used to provide experimental data for incorporation of 30 and 50% (respectively) into sarcomeres. Here we demonstrate that fixed length twitch contractions of trabeculae from mice containing mutant differ from WT; L48Q trabeculae have slower relaxation while I61Q trabeculae have markedly reduced peak tension. Using our multiscale modelling approach [2] we were able to describe the tension transients of WT mouse myocardium. Tension transients for the mutant cTnCs were simulated with changes in k-Ca, measured experimentally for each cTnC mutant in whole troponin complex, a change in the affinity of cTnC for cTnI, and a reduction in the number of detached crossbridges available for binding. A major advantage of the multiscale explicit 3-D model is that it predicts the effects of variable mutation incorporation, and the effects of variations in mutation distribution within thin filaments in sarcomeres. Such effects are currently impossible to explore experimentally. We explored random and clustered distributions of mutant cTnCs in thin filaments, as well as distributions of individual thin filaments with only WT or mutant cTnCs present. The effects of variable amounts of incorporation and non-random distribution of mutant cTnCs are more marked for I61Q than L48Q cTnC. We conclude that this approach can be effective for study on mutations in multiple proteins of the sarcomere. SUMMARY: A challenge in experimental studies of diseases is accounting for the effect of variable mutation incorporation into myofilaments. Here we use a spatially explicit computational approach, informed by experimental data from transgenic mice expressing one of two mutations in cardiac Troponin C that increase or decrease calcium sensitivity. We demonstrate that the model can accurately describe twitch contractions for the data and go on to explore the effect of variable mutant incorporation and localization on simulated cardiac muscle twitches.

Medienart:

E-Artikel

Erscheinungsjahr:

2021

Erschienen:

2021

Enthalten in:

Zur Gesamtaufnahme - volume:155

Enthalten in:

Journal of molecular and cellular cardiology - 155(2021) vom: 01. Juni, Seite 112-124

Sprache:

Englisch

Beteiligte Personen:

Mijailovich, Srboljub M [VerfasserIn]
Prodanovic, Momcilo [VerfasserIn]
Poggesi, Corrado [VerfasserIn]
Powers, Joseph D [VerfasserIn]
Davis, Jennifer [VerfasserIn]
Geeves, Michael A [VerfasserIn]
Regnier, Michael [VerfasserIn]

Links:

Volltext

Themen:

Biomarkers
Calcium
Cardiac
Computational model
Journal Article
Research Support, N.I.H., Extramural
Research Support, Non-U.S. Gov't
SY7Q814VUP
Simulations
Troponin C
Troponin C mutation
Troponin I
Twitch kinetics
Variable incorporation

Anmerkungen:

Date Completed 10.01.2022

Date Revised 10.01.2022

published: Print-Electronic

Citation Status MEDLINE

doi:

10.1016/j.yjmcc.2021.02.009

funding:

Förderinstitution / Projekttitel:

PPN (Katalog-ID):

NLM321943562