A theoretical model of cytokinesis implicates feedback between membrane curvature and cytoskeletal organization in asymmetric cytokinetic furrowing

Mol Biol Cell. 2016 Apr 15;27(8):1286-99. doi: 10.1091/mbc.E15-06-0374. Epub 2016 Feb 24.

Abstract

During cytokinesis, the cell undergoes a dramatic shape change as it divides into two daughter cells. Cell shape changes in cytokinesis are driven by a cortical ring rich in actin filaments and nonmuscle myosin II. The ring closes via actomyosin contraction coupled with actin depolymerization. Of interest, ring closure and hence the furrow ingression are nonconcentric (asymmetric) within the division plane across Metazoa. This nonconcentricity can occur and persist even without preexisting asymmetric cues, such as spindle placement or cellular adhesions. Cell-autonomous asymmetry is not explained by current models. We combined quantitative high-resolution live-cell microscopy with theoretical modeling to explore the mechanistic basis for asymmetric cytokinesis in theCaenorhabditis eleganszygote, with the goal of uncovering basic principles of ring closure. Our theoretical model suggests that feedback among membrane curvature, cytoskeletal alignment, and contractility is responsible for asymmetric cytokinetic furrowing. It also accurately predicts experimental perturbations of conserved ring proteins. The model further suggests that curvature-mediated filament alignment speeds up furrow closure while promoting energy efficiency. Collectively our work underscores the importance of membrane-cytoskeletal anchoring and suggests conserved molecular mechanisms for this activity.

Publication types

  • Research Support, N.I.H., Extramural
  • Research Support, N.I.H., Intramural

MeSH terms

  • Actin Cytoskeleton / metabolism
  • Animals
  • Caenorhabditis elegans / cytology*
  • Caenorhabditis elegans Proteins / metabolism
  • Cell Membrane*
  • Cytokinesis / physiology
  • Cytoskeleton* / metabolism
  • Feedback, Physiological*
  • Microfilament Proteins / metabolism
  • Models, Biological*
  • Myosin Type II / metabolism

Substances

  • ANI-1 protein, C elegans
  • Caenorhabditis elegans Proteins
  • Microfilament Proteins
  • Myosin Type II