Self-propagating wave drives morphogenesis of skull bones in vivo

Y Yiteng Dang J Johanna Lattner A Adrian A. Lahola-Chomiak D Diana Alves Afonso E Elke Ulbricht A Anna Taubenberger S Steffen Rulands J Jacqueline M. Tabler

Abstract

Abstract Cellular motion is a key feature of tissue morphogenesis and is often driven by migration. However, migration need not explain cell motion in contexts where there is little free space or no obvious substrate, such as those found during organogenesis of mesenchymal organs including the embryonic skull. Through ex vivo imaging , biophysical modeling, and perturbation experiments, we find that mechanical feedback between cell fate and stiffness drives bone expansion and controls bone size in vivo. This mechanical feedback system is sufficient to propagate a wave of differentiation that establishes a collagen gradient which we find sufficient to describe patterns of osteoblast motion. Our work provides a mechanism for coordinated motion that may not rely upon cell migration but on emergent properties of the mesenchymal collective. Identification of such alternative mechanisms of mechanochemical coupling between differentiation and morphogenesis will help in understanding how directed cellular motility arises in complex environments with inhomogeneous material properties.

Article Details

Volume / Issue Vol. 16, Issue 1
Published May 09, 2025
ISSN 2041-1723
Publisher Nature Portfolio

Journal Info

Nature Communications

Nature Portfolio

ISSN: 2041-1723 Open Access Life Sciences

Authors (8)

Y

Yiteng Dang

J

Johanna Lattner

A

Adrian A. Lahola-Chomiak

D

Diana Alves Afonso

E

Elke Ulbricht

A

Anna Taubenberger

S

Steffen Rulands

J

Jacqueline M. Tabler