Why is cytoskeletal contraction required for cardiac fusion before but not after looping begins?

Yunfei Shi1, Victor D Varner, Larry A Taber

  • 1Department of Biomedical Engineering, Washington University, Saint Louis, MO 63130, USA.

Physical Biology
|January 31, 2015
PubMed

Insights

Early heart development relies on cytoskeletal contraction for heart tube fusion before Hamburger-Hamilton stage 10. After this stage, cardiac looping proceeds without high contractile forces, indicating a developmental shift.

Area of Science:

  • Developmental biology
  • Cellular mechanics
  • Embryogenesis

Background:

  • Cytoskeletal contraction is vital for morphogenesis, but its role in early heart development remains unclear.
  • Studies in chick embryos show myosin-II inhibition before Hamburger-Hamilton (HH) stage 10 disrupts heart tube formation and cardiac looping.
  • Contraction inhibition after HH stage 10 does not impede these processes, suggesting a critical developmental transition.

Purpose of the Study:

  • To investigate the spatiotemporal dynamics of tissue mechanics during early heart development.
  • To elucidate the role of cytoskeletal contraction in heart field fusion and cardiac looping.
  • To understand the underlying mechanisms of the developmental shift in mechanical requirements around HH stage 10.

Main Methods:

  • Measurement of tissue stiffness, stress, and strain around the anterior intestinal portal in chick embryos.
  • Inhibition of myosin II activity using blebbistatin.
  • Finite-element modeling to simulate tissue behavior under contraction and constraints.

Main Results:

  • Tissue stiffness and tangential tension decreased with distance from the embryonic midline along the anterior intestinal portal.
  • Gradients in stiffness, tension, and strain rate peaked at HH9 and declined thereafter.
  • Myosin II inhibition reduced these mechanical gradients, implicating active cytoskeletal contraction.

Conclusions:

  • Before HH stage 10, endodermal contraction facilitates heart field fusion by pulling tissues towards the midline.
  • By HH stage 10, the heart tube fusion is sufficiently advanced for cardiac progenitor cells to self-organize during looping without significant contractile forces.
  • These findings clarify the changing mechanical requirements during early heart development and the transition in the role of cytoskeletal contraction.

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