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Maeng, H.

Publications and source records attributed to Maeng, H..

2 recordsLinked to original sources

Altered Cardiac Neural Crest Migration Patterning in a Left Atrial Ligation Model of Hypoplastic Left Heart Syndrome

Cardiac neural crest cells (CNCCs) contribute to key cardiac structures during embryonic development. Disruption of CNCC patterning or function can lead to congenital heart defects. Here, we investigate whether hemodynamic perturbation alters CNCC behavior in chick embryos. We use the left atrial ligation model to modify intracardiac blood flow in the early common-atrium, common-ventricle heart and track retrovirally labelled CNCCs for lineage tracing and single-cell transcriptomic analysis. Results revealed a significant reduction of CNCC derivatives in major cardiac regions, including the pharyngeal arch arteries and myocardium, in flow-perturbed embryos compared with controls. Notably, despite reduced CNCC numbers in the PAAs, their relative proportion increased, suggesting retention within the PAAs and delayed differentiation. Transcriptional analysis shows the expression of CNCC post-migratory markers (HAND1, FOXC2, GATA6, and TBX2) were consistently downregulated at 4, 24, and 48 hours after LAL. Together, these findings indicate that hemodynamic perturbation impairs CNCC migration and differentiation while preserving their capacity to contribute to mature cardiac structures.

developmental biology↗

Spatiotemporal Atlas of Heart Development Reveals Blood-Flow-Dependent Cellular, Structural, Metabolic, and Spatial Remodeling

Embryonic heart development depends on coordinated interactions between cellular programs, molecular signaling, and biomechanical forces, yet how mechanical cues shape cellular and molecular pathways remains incompletely understood. We perturbed cardiac blood flow by partial left or right atrial ligation (LAL/RAL) in chick embryos, generating chamber-specific hemodynamic gain- or loss-of-function states. Using single-cell and unbiased, high-resolution spatial transcriptomics, we generated a spatiotemporal atlas of flow-dependent tissue development, enabling systematic investigations of bidirectional interactions between blood-flow mechanics and tissue development. Spatially resolved analyses recapitulated key features of normal morphogenesis including regional maturation and the cellular neighborhood. We further revealed flow-specific remodeling across molecular, cellular, and architectural levels. Altered flow induced LOX-expressing cardiomyocyte and endocardial states, disrupted ventricular layer organization, and delayed maturation, alongside transient metabolic and ion-transport adaptations. Together, these findings define how redistributed blood flow reshapes developing cardiac tissues and provide a framework for studying flow-dependent remodeling in morphogenesis and malformation.

developmental biology↗