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Updated: Dec 25, 2025

An Explant Assay for Assessing Cellular Behavior of the Cranial Mesenchyme
Published on: January 20, 2013
Non-neural surface ectodermal rosette formation and F-actin dynamics drive mammalian neural tube closure
Chengji J Zhou1, Yu Ji1, Kurt Reynolds1
1Institute for Pediatric Regenerative Medicine, Shriners Hospitals for Children & University of California at Davis, School of Medicine, Sacramento, CA, 95817, USA; Department of Biochemistry and Molecular Medicine, School of Medicine, University of California at Davis, Sacramento, CA, 95817, USA.
Abstract:
The mechanisms underlying mammalian neural tube closure remain poorly understood. We report a unique cellular process involving multicellular rosette formation, convergent cellular protrusions, and F-actin cable network of the non-neural surface ectodermal cells encircling the closure site of the posterior neuropore, which are demonstrated by scanning electron microscopy and genetic fate mapping analyses during mouse spinal neurulation. These unique cellular structures are severely disrupted in the surface ectodermal transcription factor Grhl3 mutants that exhibit fully penetrant spina bifida. We propose a novel model of mammalian neural tube closure driven by surface ectodermal dynamics, which is computationally visualized.
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