Optogenetic mediated contractility enables reversible control of microglial morphology and migration in vivo

  • Cell Rep. 2026 Mar 27;45(4):117150. doi: 10.1016/j.celrep.2026.117150.
Corinna Maria Biermeier  1 Marvin Albert  2 Ayush Aditya Pal  1 Elisa Gallo  1 Jana Wittmann  1 Jonas Hartmann  3 Robert Theofanis Bill  1 Jérôme Julmi  1 Darren Gilmour  1 Francesca Peri  4
Affiliations
  • 1. Department of Molecular Life Sciences, University of Zurich, Zurich 8057, Switzerland.
  • 2. Image Analysis Hub, Department of Cell Biology and Infection, Institut Pasteur, Paris 75015, France.
  • 3. Department of Cell and Developmental Biology, University College London, London WC1E 6BT, UK.
  • 4. Department of Molecular Life Sciences, University of Zurich, Zurich 8057, Switzerland. Electronic address: [email protected].
Abstract

Directed migration and rapid process extension-retraction allow microglia to continuously survey the brain and efficiently identify and phagocytose apoptotic neurons. Defining how cytoskeletal regulators coordinate these behaviors could guide strategies for targeted modulation of microglial activity. To this aim, using in vivo imaging in zebrafish, we identified a mechanistic framework in which Myosin II-dependent contractility governs transitions between surveillance, migratory, and phagocytic states. Building on this, we engineered an optogenetic RhoA actuator (opto-ArhGEF25) that enables reversible, spatiotemporally precise manipulation of microglial behavior in vivo. We show that patterned RhoA activation can modulate process dynamics and induce front-rear polarity that drives rapid repulsive migration away from the applied light source, overriding injury-evoked cues and preventing migration toward lesions. Together, these results establish optogenetic control of the Cytoskeleton as a powerful approach to probe and ultimately modulate microglial function in the living brain.

Keywords
CP: cell biology; CP: neuroscience; Myosin; RhoA; branching dynamics; cell migration; cell polarity; efferocytosis; microglia; microscopy; optogenetics; phagocytosis; zebrafish.
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