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Gomes-Junior, R.

Publications and source records attributed to Gomes-Junior, R..

2 recordsLinked to original sources

CSDC2, an RBP essential to cardiomyocyte commitment during cardiac differentiation in hiPSC

Cardiovascular diseases are the leading cause of death worldwide, accounting for approximately 30% of total mortality. Changes in post-transcriptional regulation have been correlated with the development of cardiopathies. RNA-binding proteins (RBP) are proteins capable of interacting with mRNAs, regulating their stability, localization, and translation. Here, we described CSDC2 as an RBP expressed at the final stages of cardiac differentiation using hPSCs as a model. We showed that the loss of CSDC2 impairs cardiomyocyte differentiation, while the recovery of its expression rescues the differentiation potential of these cells. We characterized the translatome of CSDC2 knockout cells during cardiac differentiation by polysome profiling. In cardiac mesoderm cells, CSDC2 interacts with ribosomal proteins. Furthermore, CSDC2 appears to be able to associate with mRNAs encoding regulators of cardiac progenitor commitment. Altogether, in this study, we describe a new role of CSDC2 in cardiomyocyte commitment using cardiac differentiation of hiPSCs.

molecular biology↗

Cardiac Development Long non-coding RNA (CARDEL) is activated during human heart development and contributes to cardiac specification and homeostasis

Successful heart development depends on the careful orchestration of a network of transcription factors and signaling pathways. In recent years, the in vitro cardiac differentiation using human pluripotent stem cells (hPSCs) has been used to uncover the intricate gene network regulation involved in the proper formation and function of the human heart. Here, we searched for uncharacterized cardiac developmental genes by combining a temporal evaluation of the human cardiac specification in vitro with the analysis of fetal and adult heart tissue gene expression. We discovered that CARDEL (CARdiac DEvelopment Long non-coding RNA; LINC00890; SERTM2) expression coincides with the commitment to the cardiac lineage. CARDEL knockout hPSCs differentiated poorly in cardiac cells, and hPSC-derived cardiomyocytes showed faster beating rates after CARDEL controlled overexpression during differentiation. Altogether, we demonstrate physiological and molecular evidence that CARDEL expression contributes to sculpting the cardiac program during cell-fate commitment.

developmental biology↗