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Demarest, B. L.

Publications and source records attributed to Demarest, B. L..

2 recordsLinked to original sources

Inhibition of Notch signaling rescues cardiovascular development in Kabuki Syndrome

Kabuki Syndrome patients have a spectrum of congenital disorders, including congenital heart defects, the primary determinant of mortality. Seventy percent of Kabuki Syndrome patients have mutations in the histone methyl-transferase KMT2D. However, the underlying mechanisms that drive these congenital disorders are unknown. Here, we generated and characterized a zebrafish kmt2d null mutant that recapitulates the cardinal phenotypic features of Kabuki Syndrome, including microcephaly, palate defects, abnormal ear development and cardiac defects. The cardiovascular defects consist of abnormal aortic arches and hypoplastic ventricle, driven by previously unknown aberrant endocardial and endothelial vasculogenesis. We identify a regulatory link between the Notch pathway and Kmt2d during vasculogenesis and show that pharmacological inhibition of Notch signaling rescues the cardiovascular phenotype in zebrafish Kabuki Syndrome. Taken together these findings demonstrate that Kmt2d regulates vasculogenesis, provide evidence for interactions between Kmt2d and Notch signaling in Kabuki Syndrome, and suggest future directions for clinical research.

developmental biology

Deriving Cardiomyocytes from Human Amniocytes

Many forms of congenital heart disease (CHD) have high morbidity-mortality rates and require challenging surgeries. Human amniocytes have important stem cell characteristics and could potentially provide patient-specific tissue for repairs of some types of CHDs. We report that amniocytes express features of poised cardiomyocytes. However, a variety of direct reprogramming approaches failed to convert their fetal and transcriptionally repressed state into bona fide cardiomyocytes. Induced-pluripotent stem cell (iPSC) reprogramming removes repression and converts amniocytes to a baseline pluripotent state. Based on molecular and electrophysiological signatures, iPSC reprogrammed amniocytes can be induced to differentiate into functionally immature, predominantly ventricular cardiomyocytes and a heterogeneous mixture of vascular and unspecified epithelial cells. Developmental time course analyses and pattern clustering of amniocyte-derived cardiomyocytes identifies numerous temporal co-regulators of cardiac induction and maturation as well as distinct sarcomeric and ion channel gene signatures. Normal fetal cardiomyocytes are derived by overcoming complex forms of transcriptional repression that suppress direct transdifferentiation of human amniocytes. These results suggest the possibility of using amniocytes as a source of patient-specific ventricular cardiomyocytes for cell therapies.\n\nSUMMARY STATEMENTAmniocytes are a possible source of patient-specific cardiomyocytes for newborns with congenital heart disease. Genome-wide DNA methylation patterns and transcriptional repressors preclude direct differentiation, but pluripotent reprogramming provides cardiomyocytes for dissecting genetic pathways contributing to this disease.

developmental biology