Non-canonical cytokinesis driven by mechanical uncoupling via nematic flows and adhesion-based invagination
Tong X, Li YI, Schelle J, Hannezo EB, Heisenberg C-PJ. Non-canonical cytokinesis driven by mechanical uncoupling via nematic flows and adhesion-based invagination. bioRxiv, 10.1101/2025.10.15.682552.
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Tong, XinISTA;
Li, Yuting IISTA;
Schelle, Joséphine;
Hannezo, Edouard ISTA
;
Heisenberg, Carl-Philipp ISTA 
Corresponding author has ISTA affiliation
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Abstract
Cleavage - the series of rapid cell divisions that follow fertilization - marks the onset of metazoan development and represents a deeply conserved evolutionary process. Across animals, two principal modes exist: complete (holoblastic) and incomplete (meroblastic) cleavage. While holoblastic cleavage resembles conventional cytokinesis both in vitro and in vivo, the mechanisms underlying meroblastic cleavage have remained poorly understood. Using zebrafish embryos as a model, we show that meroblastic cleavage proceeds through a distinct two-step mechanism. The process begins with the assembly and contraction of a large, arc-shaped actomyosin cable. However, this contractile event alone is insufficient to complete division. A second phase, driven by cadherin-mediated membrane adhesion, is required to invaginate the furrow ridge. Strikingly, this transition depends on mechanical uncoupling of the contractile cable from the surrounding cortex. We demonstrate that such uncoupling arises from an active nematic instability, which both enhances contractility along the cable and generates actin depletion zones that relieve lateral connections. Together, these findings reveal that meroblastic cleavage is governed not by a single actomyosin-based event but by a sequential interplay between cytoskeletal contraction and cadherin-dependent adhesion, highlighting a mechanism fundamentally distinct from canonical cytokinesis.
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2025-10-15
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bioRxiv
Acknowledgement
We are grateful to the members of the Hannezo and Heisenberg groups for discussions and technical advice. We also thank the Imaging and Optics Facility and the Lab Support Facility at ISTA for their continuous support. Y.I.L. acknowledges funding from the European Union’s Horizon 2020 research and innovation programme under the Marie Skodowska-Curie Grant Agreement No. 101034413. The research was supported by funding to C.-P.H. from the NOMIS Foundation (Project ID 1.844) and to E.H. from the European Research Council (ERC) under the European Union’s Horizon 2020 research and innovation programme (grant agreement no. 851288).
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Tong X, Li YI, Schelle J, Hannezo EB, Heisenberg C-PJ. Non-canonical cytokinesis driven by mechanical uncoupling via nematic flows and adhesion-based invagination. bioRxiv. doi:10.1101/2025.10.15.682552
Tong, X., Li, Y. I., Schelle, J., Hannezo, E. B., & Heisenberg, C.-P. J. (n.d.). Non-canonical cytokinesis driven by mechanical uncoupling via nematic flows and adhesion-based invagination. bioRxiv. https://doi.org/10.1101/2025.10.15.682552
Tong, Xin, Yuting I Li, Joséphine Schelle, Edouard B Hannezo, and Carl-Philipp J Heisenberg. “Non-Canonical Cytokinesis Driven by Mechanical Uncoupling via Nematic Flows and Adhesion-Based Invagination.” BioRxiv, n.d. https://doi.org/10.1101/2025.10.15.682552.
X. Tong, Y. I. Li, J. Schelle, E. B. Hannezo, and C.-P. J. Heisenberg, “Non-canonical cytokinesis driven by mechanical uncoupling via nematic flows and adhesion-based invagination,” bioRxiv. .
Tong X, Li YI, Schelle J, Hannezo EB, Heisenberg C-PJ. Non-canonical cytokinesis driven by mechanical uncoupling via nematic flows and adhesion-based invagination. bioRxiv, 10.1101/2025.10.15.682552.
Tong, Xin, et al. “Non-Canonical Cytokinesis Driven by Mechanical Uncoupling via Nematic Flows and Adhesion-Based Invagination.” BioRxiv, doi:10.1101/2025.10.15.682552.
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