Aaron L. Brown's research while affiliated with Stanford University and other places

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Publications (3)


A Modular Framework for Implicit 3D-0D Coupling in Cardiac Mechanics
  • Article

March 2024

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58 Reads

Computer Methods in Applied Mechanics and Engineering

Aaron L. Brown

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Recent advances in quantifying the mechanobiology of cardiac development via computational modeling

November 2022

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34 Reads

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2 Citations

Current Opinion in Biomedical Engineering

Mechanical forces are essential for coordinating cardiac morphogenesis, but much remains to be discovered about the interactions between mechanical forces and the mechanotransduction pathways they activate. Due to the elaborate and fundamentally multi-physics and multi-scale nature of cardiac mechanobiology, a complete understanding requires multiple experimental and analytical techniques. We identify three fundamental tools used in the field to probe these interactions: high resolution imaging, genetic and molecular analysis, and computational modeling. In this review, we focus on computational modeling and present recent studies employing this tool to investigate the mechanobiological pathways involved with cardiac development. These works demonstrate that understanding the detailed spatial and temporal patterns of biomechanical forces is crucial to building a comprehensive understanding of mechanobiology during cardiac development, and that computational modeling is an effective and efficient tool for obtaining such detail. In this context, multidisciplinary studies combining all three tools present the most compelling results.

Citations (1)


... We have previously performed image-based flow simulations of the LAL ventricle, and observed that the LAL left ventricle experiences low and oscillatory WSS, which potentially contributes to the hypoplasia [18]. An excellent review on computational investigations of embryonic heart biomechanics with regards to cardiac development is provided by Brown et al. [2]. ...

Reference:

Myocardial Biomechanics and the Consequent Differentially Expressed Genes of the Left Atrial Ligation Chick Embryonic Model of Hypoplastic Left Heart Syndrome
Recent advances in quantifying the mechanobiology of cardiac development via computational modeling
  • Citing Article
  • November 2022

Current Opinion in Biomedical Engineering