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Bileckyj, C.

Publications and source records attributed to Bileckyj, C..

2 recordsLinked to original sources

Using Drosophila to model a variant of unknown significance in the human cardiogenic gene Nkx2.5

Sequencing of human genome samples has unearthed genetic variants for which functional testing is necessary to validate their clinical significance. We used the Drosophila system to analyze a variant of unknown significance in the human congenital heart disease gene, Nkx2.5. We generated an R321N allele of the Nkx2.5 ortholog tinman (tin) to model a human K158N variant and tested its function in vitro and in vivo. The R321N Tin isoform bound poorly to DNA in vitro and was deficient in activating a Tin-dependent enhancer in tissue culture. Mutant Tin also showed a significantly reduced interaction with a Drosophila Tbox cardiac factor named Dorsocross1. We generated a tinR321N allele using CRISPR/Cas9, for which homozygotes were viable and had normal heart specification, but showed defects in the differentiation of the adult heart that were exacerbated by further loss of tin function. We conclude that the human K158N mutation is likely pathogenic through causing both a deficiency in DNA binding and a reduced ability to interact with a cardiac cofactor, and that cardiac defects might arise later in development or adult life.

developmental biology↗

The Drosophila cardiogenic transcription factors Myocyte enhancer factor-2 and Tinman contribute to heart lumen enlargement through direct activation of the collagen gene Multiplexin.

During embryogenesis, the Drosophila heart forms a lumen, the posterior region of which is increased in diameter and corresponds to the heart proper. To identify the transcriptional control of this morphogenetic process, we analyzed the formation and enlargement of the heart lumen in mutants for the myogenic transcription factor gene Myocyte enhancer factor-2 (Mef2). We found that Mef2 contributes to both lumen formation and lumen expansion, the latter through a requirement for both Mef2 and the cardiogenic gene tinman (tin) to activate the collagen gene Multiplexin (Mp). To determine if Tin and MEF2 act directly upon the Mp gene, we identified an enhancer whose activity recapitulates the cardiac expression of Mp. This enhancer contains binding sites for both Tin and MEF2 and is activated in tissue culture by MEF2 but not Tin. We did not observe synergistic activation of the enhancer when the factors were in combination, despite documenting a direct physical interaction between Tin and MEF2 in vitro. In vivo, the Tin sites are required for normal enhancer activity, whereas mutation of the MEF2 sites results in expanded expression of an enhancer-lacZ reporter, suggesting that transcriptional repression may also contribute to regulation of Mp. Our studies underline how transcription factors must utilize combinatorial interactions to achieve organ-specific and region-specific patterns of gene expression and cell morphogenesis.

developmental biology↗