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Mutations in PDLIM5 are rare in dilated cardiomyopathy but are emerging as potential disease modifiers
Job A J Verdonschot1,2, Emma L Robinson1, Kiely N James3
1Department of Cardiology, Maastricht University Medical Centre, Maastricht, The Netherlands.
Insights
Researchers identified PDLIM5 as a potential gene linked to dilated cardiomyopathy (DCM). While heterozygous variants are rare in DCM, homozygous variants cause early-onset cardiac disease, highlighting PDLIM5's importance.
Area of Science:
- Genetics
- Cardiology
- Molecular Biology
Background:
- Dilated cardiomyopathy (DCM) remains genetically unsolved in a significant percentage of families, hindering genetic counseling and recommendations.
- Identifying novel genes associated with DCM is crucial for understanding disease mechanisms and improving patient care.
Purpose of the Study:
- To identify novel genes or modifiers associated with dilated cardiomyopathy (DCM).
- To prioritize candidate genes for DCM involvement using computational coexpression analysis.
Main Methods:
- Computational gene ranking based on coexpression with known DCM-associated genes.
- Prioritized candidate gene variant analysis in whole-exome sequencing data from 142 DCM patients.
- Investigation of gene expression in cardiac biopsies using RNA isolation.
Main Results:
- PDLIM5 was identified as the top candidate gene for DCM.
- A heterozygous loss-of-function (LoF) variant in PDLIM5 was found in a DCM patient with a TTN variant, affecting cardiac isoforms.
- Homozygous deletion of PDLIM5 exon 2 in an infant led to early-onset cardiac disease, underscoring PDLIM5's role in cardiac function.
Conclusions:
- Heterozygous PDLIM5 variants are uncommon in DCM but likely contribute to disease development.
- PDLIM5 plays a critical role in cardiomyocyte contraction, with homozygous variants causing early-onset cardiac disease.
- Environmental and/or additional genetic factors may be necessary to manifest the cardiac phenotype in PDLIM5 mutation carriers.
Background:
A causal genetic mutation is found in 40% of families with dilated cardiomyopathy (DCM), leaving a large percentage of families genetically unsolved. This prevents adequate counseling and clear recommendations in these families. We aim to identify novel genes or modifiers associated with DCM.
Methods:
We performed computational ranking of human genes based on coexpression with a predefined set of genes known to be associated with DCM, which allowed us to prioritize gene candidates for their likelihood of being involved in DCM. Top candidates will be checked for variants in the available whole-exome sequencing data of 142 DCM patients. RNA was isolated from cardiac biopsies to investigate gene expression.
Results:
PDLIM5 was classified as the top candidate. An interesting heterozygous variant (189_190delinsGG) was found in a DCM patient with a known pathogenic truncating TTN-variant. The PDLIM5 loss-of-function (LoF) variant affected all cardiac-specific isoforms of PDLIM5 and no LoF variants were detected in the same region in a control cohort of 26,000 individuals. RNA expression of PDLIM5 and its direct interactors (MYOT, LDB3, and MYOZ2) was increased in cardiac tissue of this patient, indicating a possible compensatory mechanism. The PDLIM5 variant cosegregated with the TTN-variant and the phenotype, leading to a high disease penetrance in this family. A second patient was an infant with a homozygous 10 kb-deletion of exon 2 in PDLIM5 resulting in early-onset cardiac disease, showing the importance of PDLIM5 in cardiac function.
Conclusions:
Heterozygous PDLIM5 variants are rare and therefore will not have a major contribution in DCM. Although they likely play a role in disease development as this gene plays a major role in contracting cardiomyocytes and homozygous variants lead to early-onset cardiac disease. Other environmental and/or genetic factors are probably necessary to unveil the cardiac phenotype in PDLIM5 mutation carriers.
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