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Novel mutations of TCTN3/LTBP2 with cellular function changes in congenital heart disease associated with polydactyly
Huan-Xin Chen1, Zi-Yue Yang2, Hai-Tao Hou1
1Center for Basic Medical Research & Department of Cardiovascular Surgery, TEDA International Cardiovascular Hospital, Chinese Academy of Medical Sciences & Peking Union Medical College, Tianjin, China.
Insights
Genetic mutations in LTBP2 and TCTN3 are linked to complex congenital heart disease (CHD) with polydactyly. These mutations impact cardiac myocyte development and contractility, offering new insights into CHD pathogenesis.
Area of Science:
- Genetics
- Developmental Biology
- Cardiology
Background:
- Congenital heart disease (CHD) with polydactyly is a complex condition with genetic underpinnings.
- Identifying specific gene variations is crucial for understanding disease mechanisms.
Purpose of the Study:
- To identify gene variations associated with complex CHD and polydactyly.
- To investigate the functional impact of identified mutations on cardiac cells.
Main Methods:
- Whole exome sequencing (WES) was performed on a patient with complex CHD and polydactyly.
- CRISPR/Cas9 technology was used to create human pluripotent stem cells (hPSCs) with specific mutations.
- Mutant hPSCs were differentiated into cardiomyocytes (hPSC-CMs) and analyzed via transcriptomics.
Main Results:
- Two heterozygous mutations, LTBP2 (c.2206G>A) and TCTN3 (c.1268G>A), were identified.
- LTBP2 mutations delayed cardiomyocyte development.
- TCTN3 mutations resulted in lower rate and weaker force of cardiomyocyte contraction.
- Gene expression analysis revealed enrichment of cardiac development and CHD pathways in LTBP2-mutant cells.
Conclusions:
- Heterozygous mutations in TCTN3 and LTBP2 affect cardiac myocyte contractility and potentially heart development.
- These findings contribute to understanding the pathogenesis of complex CHD associated with polydactyly.
Abstract:
Congenital heart disease (CHD) associated with polydactyly involves various genes. We aimed to identify variations from genes related to complex CHD with polydactyly and to investigate the cellular functions related to the mutations. Blood was collected from a complex CHD case with polydactyly, and whole exome sequencing (WES) was performed. The CRISPR/Cas9 system was used to generate human pluripotent stem cell with mutations (hPSCs-Mut) that were differentiated into cardiomyocytes (hPSC-CMs-Mut) and analysed by transcriptomics on day 0, 9 and 13. Two heterozygous mutations, LTBP2 (c.2206G>A, p.Asp736Asn, RefSeq NM_000428.2) and TCTN3 (c.1268G>A, p.Gly423Glu, RefSeq NM_015631.5), were identified via WES but no TBX5 mutations were found. The stable cell lines of hPSCs-LTBP2mu /TCTN3mu were constructed and differentiated into hPSC-CMs-LTBP2mu /TCTN3mu . Compared to the wild type, LTBP2 mutation delayed the development of CMs. The TCTN3 mutation consistently presented lower rate and weaker force of the contraction of CMs. For gene expression pattern of persistent up-regulation, pathways in cardiac development and congenital heart disease were enriched in hPSCs-CM-LTBP2mu , compared with hPSCs-CM-WT. Thus, the heterozygous mutations in TCTN3 and LTBP2 affect contractility (rate and force) of cardiac myocytes and may affect the development of the heart. These findings provide new insights into the pathogenesis of complex CHD with polydactyly.
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