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Neipel, J.

Publications and source records attributed to Neipel, J..

2 recordsLinked to original sources

An active torque dipole across tissue layers drives avian left-right symmetry breaking

Unlike in mice, frogs, and fish, left-right (L/R) body axis formation in avian embryos does not arise from the chiral beat of cilia. Instead, a counter-clockwise tissue rotation around Hensens node, the organizer of amniote development, repositions cells expressing L/R sidedness genes. Yet, the physical origin of this rotation remains elusive. Here, we provide evidence that in quail embryos, the node tissue generates an active chiral torque of [~]6{micro}N{micro}m to drive the chiral tissue flow. Microsurgery experiments reveal that this torque depends on actomyosin molecular activity, is generated within the dorsal node tissue, and requires the underlying ventral meso-/endoderm to act as a mechanical substrate sustaining the counter-torque. We conclude that a dorsoventrally oriented tissue-scale active torque dipole at the node translates cell-scale chirality to organismal L/R asymmetry, adding a mechanical dimension to the canonical function of embryonic organizers as signaling hubs.

biophysics↗

A cytokinetic ring-driven cell rotation achieves Hertwig's rule in early development

Cells tend to divide along the direction in which they are longest, as famously stated by Oscar Hertwig in 1884 in his long axis rule1,2. The orientation of the mitotic spindle determines the cell division axis3, and Hertwigs long axis rule is usually ensured by forces stemming from microtubules4. Pulling on the spindle from the cell cortex can give rise to unstable behaviors5,6, and we here set out to understand how Hertwigs long axis rule is realized in early embryonic divisions where cortical pulling forces are prevalent. We focus on early C. elegans development, where we compressed embryos to reveal that cortical pulling forces favor an alignment of the spindle with the cells short axis. Strikingly, we find that this misalignment is corrected by an actomyosin-based mechanism that rotates the entire cell, including the mitotic spindle. We uncover that myosin-driven contractility in the cytokinetic ring generates inward forces that align it with the short axis, and thereby the spindle with the long axis. A theoretical model together with experiments using slightly compressed mouse zygotes suggest that a constricting cytokinetic ring can ensure Hertwigs long axis rule in cells that are free to rotate inside a confining structure, thereby generalizing the underlying principle.

developmental biology↗