Dynamics of hydraulic and contractile wave-mediated fluid transport duringDrosophilaoogenesis

Author:

Imran Alsous JasminORCID,Romeo NicolasORCID,Jackson Jonathan A.ORCID,Mason Frank M.ORCID,Dunkel JörnORCID,Martin Adam C.

Abstract

From insects to mice, oocytes develop within cysts alongside nurse-like sister germ cells. Prior to fertilization, the nurse cells’ cytoplasmic contents are transported into the oocyte, which grows as its sister cells regress and die. Although critical for fertility, the biological and physical mechanisms underlying this transport process are poorly understood. Here, we combined live imaging of germline cysts, genetic perturbations, and mathematical modeling to investigate the dynamics and mechanisms that enable directional and complete cytoplasmic transport inDrosophila melanogasteregg chambers. We discovered that during “nurse cell (NC) dumping” most cytoplasm is transported into the oocyte independently of changes in myosin-II contractility, with dynamics instead explained by an effective Young–Laplace law, suggesting hydraulic transport induced by baseline cell-surface tension. A minimal flow-network model inspired by the famous two-balloon experiment and motivated by genetic analysis of a myosin mutant correctly predicts the directionality, intercellular pattern, and time scale of transport. Long thought to trigger transport through “squeezing,” changes in actomyosin contractility are required only once NC volume has become comparable to nuclear volume, in the form of surface contractile waves that drive NC dumping to completion. Our work thus demonstrates how biological and physical mechanisms cooperate to enable a critical developmental process that, until now, was thought to be mainly biochemically regulated.

Funder

HHS | NIH | National Institute of General Medical Sciences

James S. McDonnell Foundation

Robert E. Collins Distinguished Scholarship Fund

Publisher

Proceedings of the National Academy of Sciences

Subject

Multidisciplinary

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