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An Approach to Study Shape-Dependent Transcriptomics at a Single Cell Level
Published on: November 2, 2020
Analysis of DCM associated protein alterations of human right and left ventricles
Sabine Ameling1, Julia Bischof2, Marcus Dörr3
1Interfaculty Institute for Genetics and Functional Genomics, University Medicine Greifswald, Felix-Hausdorff-Straße 8, D-17475 Greifswald, Germany; DZHK (German Centre for Cardiovascular Research), Partner Site Greifswald, Greifswald, Germany.
Insights
Dilated cardiomyopathy (DCM) involves distinct protein changes in both heart ventricles, reflecting disease severity. Left ventricle protein alterations highlight metabolic dysfunction, while right ventricle changes indicate structural remodeling, offering new biomarker insights.
Area of Science:
- Cardiology
- Proteomics
- Molecular Biology
Background:
- Dilated cardiomyopathy (DCM) is characterized by enlarged heart chambers and impaired function.
- Endomyocardial biopsies (EMB) are crucial for molecular disease characterization, but data on biventricular protein patterns and function is limited.
Purpose of the Study:
- To quantitatively profile proteins in paired left ventricular (LV) and right ventricular (RV) EMBs from DCM patients.
- To investigate associations between protein abundance and echocardiographic parameters of cardiac function.
- To identify distinct molecular signatures in both ventricles related to DCM pathophysiology.
Main Methods:
- Mass spectrometric analysis of 743 proteins from 28 paired LV and RV EMBs.
- Linear regression models to associate protein abundance with echocardiographic parameters (LVEF, TAPSE, LVEDDI, RVEDDI).
- Validation using a genetic murine heart failure model.
Main Results:
- More LV proteins correlated with LV parameters or RV end-diastolic diameter (RVEDDI) than RV proteins.
- Impaired ejection fraction (LVEF) was associated with increased structural proteins and decreased metabolic proteins in the LV.
- RV protein alterations were mainly structural, potentially reflecting compensatory mechanisms.
Conclusions:
- DCM remodeling and dysfunction are mirrored by distinct biventricular protein alterations.
- LV protein changes reflect metabolic dysfunction and impaired energy production, correlating with systolic dysfunction.
- RV structural protein alterations may indicate compensatory mechanisms, and both ventricles offer potential biomarkers for disease severity.
Abstract:
Dilated cardiomyopathy (DCM) is characterized by ventricular chamber enlargement and impaired myocardial function. Endomyocardial biopsies (EMB) enable immunohistochemical and molecular characterization of this disease. However, knowledge about specific molecular patterns and their relation to cardiac function in both ventricles is rare. Therefore, we performed a mass spectrometric analysis of 28 paired EMBs of left (LV) and right ventricles (RV) of patients with DCM or suspected myocarditis allowing quantitative profiling of 743 proteins. We analysed associations between protein abundance of LV and RV as well as the echocardiographic parameters LVEF, TAPSE, LVEDDI, and RVEDDI by linear regression models. Overall, more LV than RV proteins were associated with LV parameters or with RVEDDI. Most LV and RV proteins increasing in level with impairing of LVEF were annotated to structural components of cardiac tissue. Additionally, a high proportion of LV proteins with metabolic functions decreased in level with decreasing LVEF. Results were validated with LV heart sections of a genetic murine heart failure model. The study shows, that remodelling and systolic dysfunction in DCM is mirrored by distinct alterations in protein composition of both ventricles. Loss of LV systolic function is reflected predominantly by alterations in proteins assigned to metabolic functions in the LV whereas structural remodelling was more obvious in the RV. Alterations related to intermediate filaments were seen in both ventricles and highlight such proteins as early indicators of LV loss of function. SIGNIFICANCE: The present study report protein sets in the RV and the LV being associated with ventricular function and remodelling in DCM. Protein abundances in the LV and the RV emphasize and expand current knowledge on pathophysiological changes in heart failure and DCM. While RV and LV EMBs do not differ concerning diagnostic assessment of inflammatory status and virus persistence, additional information reflecting disease severity associated protein alterations can be gained by EMB protein profiling. RV and LV protein data provided complementary information. The protein pattern of the LV reflects metabolic changes and an impaired energy production, which is associated with the degree of LV systolic dysfunction and remodelling and may yield important information about the disease status in DCM. On the other hand, at this disease stage of DCM with still preserved RV function, RV alterations in structural proteins may reflect myocardial compensatory protective mechanisms for maintenance of structure and cellular function. The study highlight particular proteins being of interest as heart failure biomarkers in both ventricles which seem to reflect the severity of the disease. Further comparative studies between different HF aetiologies have to evaluate those proteins as markers specific for DCM.
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