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Published on: December 22, 2020
Functional abnormalities in induced Pluripotent Stem Cell-derived cardiomyocytes generated from titin-mutated
Revital Schick1,2,3, Lucy N Mekies1,2,3, Yuval Shemer1,2,3
1Department of Physiology, Biophysics and Systems Biology, Technion, Haifa, Israel.
Insights
Titin (TTN) gene mutations cause dilated cardiomyopathy (DCM) by disrupting sarcomere structure in patient-derived iPSC-CM. These cells show impaired function, confirming their utility in studying inherited cardiomyopathies.
Area of Science:
- Cardiovascular Biology
- Stem Cell Biology
- Genetics
Background:
- Dilated cardiomyopathy (DCM) is a myocardial disorder leading to heart failure, characterized by ventricular enlargement and dysfunction.
- The exact pathological mechanisms of DCM are often unclear, despite numerous genetic mutations identified.
- Titin (TTN) mutations are the most frequent cause of adult DCM, impacting sarcomere integrity.
Purpose of the Study:
- To investigate if induced Pluripotent Stem Cell (iPSC)-derived cardiomyocytes (iPSC-CM) from DCM patients recapitulate the disease phenotype.
- To analyze the excitation-contraction-coupling machinery in TTN-mutated iPSC-CM.
- To assess the responsiveness of these cells to inotropic interventions and their proteome profile.
Main Methods:
- Generation of iPSC from patient skin fibroblasts.
- Analysis of sarcomeric organization in iPSC-CM.
- Assessment of cellular responses to isoproterenol, increased extracellular calcium, angiotensin-II, and caffeine.
- Mass spectrometry (MS) for proteome profiling.
Main Results:
- Mutated iPSC-CM displayed defects in sarcomeric structure assembly and maintenance.
- Diminished inotropic and lusitropic responses to β-adrenergic stimulation were observed.
- Mutated iPSC-CM showed prolonged recovery after caffeine stimulation, potentially due to altered titin interactions.
Conclusions:
- Patient-derived iPSC-CM successfully recapitulate cardiac abnormalities seen in inherited cardiomyopathies.
- The observed blunted inotropic response in mutated iPSC-CM highlights the functional impact of TTN mutations.
- These findings support the use of iPSC-CM as a model for studying DCM pathogenesis.
Aims:
Dilated cardiomyopathy (DCM), a myocardial disorder that can result in progressive heart failure and arrhythmias, is defined by ventricular chamber enlargement and dilatation, and systolic dysfunction. Despite extensive research, the pathological mechanisms of DCM are unclear mainly due to numerous mutations in different gene families resulting in the same outcome-decreased ventricular function. Titin (TTN)-a giant protein, expressed in cardiac and skeletal muscles, is an important part of the sarcomere, and thus TTN mutations are the most common cause of adult DCM. To decipher the basis for the cardiac pathology in titin-mutated patients, we investigated the hypothesis that induced Pluripotent Stem Cell (iPSC)-derived cardiomyocytes (iPSC-CM) generated from patients, recapitulate the disease phenotype. The hypothesis was tested by 3 Aims: (1) Investigate key features of the excitation-contraction-coupling machinery; (2) Investigate the responsiveness to positive inotropic interventions; (3) Investigate the proteome profile of the AuP cardiomyocytes using mass-spectrometry (MS).
Methods And Results:
iPSC were generated from the patients' skin fibroblasts. The major findings were: (1) Sarcomeric organization analysis in mutated iPSC-CM showed defects in assembly and maintenance of sarcomeric structure. (2) Mutated iPSC-CM exhibited diminished inotropic and lusitropic responses to β-adrenergic stimulation with isoproterenol, increased [Ca2+]out and angiotensin-II. Additionally, mutated iPSC-CM displayed prolonged recovery in response to caffeine. These findings may result from defective or lack of interactions of the sarcomeric components with titin through its kinase domain which is absent in the mutated cells.
Conclusions:
These findings show that the mutated cardiomyocytes from DCM patients recapitulate abnormalities of the inherited cardiomyopathies, expressed as blunted inotropic response.
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