Arushi Samal’s research while affiliated with Icahn School of Medicine at Mount Sinai and other places

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Publications (1)


Temporal windows of cardiac development and maturation. Top: Cardiac maturation in this schematic is divided into 4 stages, including early morphogenesis and trabeculation (A), compaction and chamber growth (B), the postnatal regenerative window (C), and growth until adulthood (D). Bottom: Schematic illustration of the major concept of cardiac maturation matched in their respective activity to the windows defined above
Schematic illustration of the interconnectedness of the processes that impact cardiac maturation. ATP: Adenosine triphosphate; PGC-1a: Peroxisome proliferator-activated receptor gamma coactivator 1a; SERCA: Sarcoplasmatic/endoplasmatic reticulum calcium ATPase; TGF-b: Transforming growth factor beta; PI3K: Phosphoinositide 3-kinase; AKT: serine/threonine kinase; MAPK: Mitogen-activated protein kinase; NAD+: Nicotinamide adenine dinucleotide; SIRT: Sirtuin
Molecular Regulation of Cardiomyocyte Maturation
  • Literature Review
  • Publisher preview available

January 2025

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80 Reads

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3 Citations

Current Cardiology Reports

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Tasneem Ebrahim

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Arushi Samal

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Nicole Dubois

Purpose of the Review This review aims to discuss the process of cardiomyocyte maturation, with a focus on the underlying molecular mechanisms required to form a fully functional heart. We examine both long-standing concepts associated with cardiac maturation and recent developments, and the overall complexity of molecularly integrating all the processes that lead to a mature heart. Recent Findings Cardiac maturation, defined here as the sequential changes that occurring before the heart reaches full maturity, has been a subject of investigation for decades. Recently, there has been a renewed, highly focused interest in this process, driven by clinically motivated research areas where enhancing maturation may lead to improved therapeutic opportunities. These include using pluripotent stem cell models for cell therapy and disease modeling, as well as recent advancements in adult cardiac regeneration approaches. Summary We highlight key processes underlying maturation of the heart, including cellular and organ growth, and electrophysiological, metabolic, and contractile maturation. We further discuss how these processes integrate and interact to contribute to the overall complexity of the developing heart. Finally, we emphasize the transformative potential for translating relevant maturation concepts to emerging models of heart disease and regeneration.

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Citations (1)


... Cardiomyocyte maturation ensures cardiac integrity and increases the pumping function of the heart. The processes underlying cardiac maturation, including cellular and organ growth and electrophysiological, metabolic, and contractile maturation, are complex, and it remains unclear how these processes are integrated and interact to produce mature myocardium 1,2 . Mature hearts are known to induce an adult-like phenotype in immature cardiomyocytes that are transplanted in vivo, but the mechanism for this also remains unclear 3 . ...

Reference:

TRPV2 mediates stress resilience in mouse cardiomyocytes
Molecular Regulation of Cardiomyocyte Maturation

Current Cardiology Reports