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Predicting cardiomyopathic phenotypes by altering Ca2+ affinity of cardiac troponin C
Michelle S Parvatiyar1, Jose Renato Pinto, Jingsheng Liang
1Department of Molecular and Cellular Pharmacology, University of Miami Miller School of Medicine, Miami, Florida 33136, USA.
Insights
Mutations in cardiac troponin C (cTnC) can mimic hypertrophic, dilated, and restrictive cardiomyopathies by altering calcium sensitivity. This study identified specific cTnC mutants with distinct disease-like functional properties.
Area of Science:
- Cardiovascular Biology
- Molecular Cardiology
- Biochemistry
Background:
- Cardiac diseases like hypertrophic cardiomyopathy (HCM), dilated cardiomyopathy (DCM), and restrictive cardiomyopathy (RCM) are linked to troponin subunit mutations.
- Altered calcium handling, reflected in contraction's Ca(2+) sensitivity, is a hallmark of these cardiomyopathies.
Purpose of the Study:
- To generate and characterize mutations in cardiac troponin C (cTnC) to investigate their effects on Ca(2+) sensitivity and ATPase activity.
- To create cTnC mutants that recapitulate the functional deficits observed in HCM, DCM, and RCM.
Main Methods:
- Generated cTnC mutants to alter Ca(2+) sensitivity in cardiac skinned fibers.
- Utilized reconstituted assays to assess mutation effects on ATPase activation and inhibition.
- Employed steady-state fluorescence and circular dichroism to analyze Ca(2+) affinity and structural changes in mutant cTnCs.
Main Results:
- Identified HCM-like mutants (A23Q) with increased Ca(2+) sensitivity and normal ATPase inhibition.
- Found RCM-like mutants (S37G, V44Q, L48Q) exhibiting increased Ca(2+) sensitivity, reduced ATPase inhibition, and elevated basal force.
- Discovered DCM-like mutants (E40A, I61Q) showing decreased Ca(2+) sensitivity and altered ATPase activation.
- Observed that fiber Ca(2+) sensitivity did not always align with isolated cTnC Ca(2+) affinity (F27W reporter).
- Correlated increased alpha-helical content in cTnCs with heightened Ca(2+) sensitivity.
Conclusions:
- cTnC mutants can functionally mimic distinct cardiomyopathies (HCM, RCM, DCM).
- A specific region in cTnC influencing Ca(2+) sensitivity in skinned fibers was identified.
- The F27W reporter mutation impacts Ca(2+) sensitivity, maximal force, and ATPase activation, providing insights into cTnC function.
Abstract:
Cardiac diseases associated with mutations in troponin subunits include hypertrophic cardiomyopathy (HCM), dilated cardiomyopathy (DCM), and restrictive cardiomyopathy (RCM). Altered calcium handling in these diseases is evidenced by changes in the Ca(2+) sensitivity of contraction. Mutations in the Ca(2+) sensor, troponin C (TnC), were generated to increase/decrease the Ca(2+) sensitivity of cardiac skinned fibers to create the characteristic effects of DCM, HCM, and RCM. We also used a reconstituted assay to determine the mutation effects on ATPase activation and inhibition. One mutant (A23Q) was found with HCM-like properties (increased Ca(2+) sensitivity of force and normal levels of ATPase inhibition). Three mutants (S37G, V44Q, and L48Q) were identified with RCM-like properties (a large increase in Ca(2+) sensitivity, partial loss of ATPase inhibition, and increased basal force). Two mutations were identified (E40A and I61Q) with DCM properties (decreased Ca(2+) sensitivity, maximal force recovery, and activation of the ATPase at high [Ca(2+)]). Steady-state fluorescence was utilized to assess Ca(2+) affinity in isolated cardiac (c)TnCs containing F27W and did not necessarily mirror the fiber Ca(2+) sensitivity. Circular dichroism of mutant cTnCs revealed a trend where increased alpha-helical content correlated with increased Ca(2+) sensitivity in skinned fibers and vice versa. The main findings from this study were as follows: 1) cTnC mutants demonstrated distinct functional phenotypes reminiscent of bona fide HCM, RCM, and DCM mutations; 2) a region in cTnC associated with increased Ca(2+) sensitivity in skinned fibers was identified; and 3) the F27W reporter mutation affected Ca(2+) sensitivity, maximal force, and ATPase activation of some mutants.
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