A mechanosensitive circuit of FAK, ROCK, and ERK controls biomineral growth and morphology in the sea urchin embryo

M Majed Layous (Department of Marine Biology, Charney School of Marine Sciences, University of Haifa) T Tsvia Gildor (Department of Marine Biology, Charney School of Marine Sciences, University of Haifa) T Tovah Nehrer (Department of Marine Biology, Charney School of Marine Sciences, University of Haifa) A Areen Qassem (Department of Marine Biology, Charney School of Marine Sciences, University of Haifa) H Haguy Wolfenson (Department of Genetics and Developmental Biology, Rappaport Faculty of Medicine) S Smadar Ben-Tabou de-Leon (Department of Marine Biology, Charney School of Marine Sciences, University of Haifa)

Abstract

Biomineralization is the utilization of different minerals by a vast array of organisms to form hard tissues and shape them in various forms. Within this diversity, a common feature of all mineralized tissues is their high stiffness, implying that mechanosensing could be commonly used in biomineralization. Yet, the role of mechanosensing in biomineralization is far from clear. Here, we use the sea urchin larval skeletogenesis to investigate the role of substrate stiffness and focal adhesion kinase (FAK) in biomineralization. We demonstrate that substrate stiffness alters spicule morphology and growth, indicating a mechanosensitive response during skeletogenesis. We show that active FAK, F-actin, and vinculin are enriched around the spicules, indicating the formation of focal adhesion complexes and suggesting that the cells sense the mechanical properties of the biomineral. Furthermore, we find that FAK activity is regulated by Rho-associated protein kinase (ROCK) and is crucial for skeletal growth and normal branching. FAK and ROCK activate extracellular signal-regulated kinase (ERK), which regulates skeletogenic gene expression at the tips of the spicules. Thus, the FAK-ROCK-ERK circuit seems to provide essential mechanical feedback on spicule elongation to the skeletogenic gene regulatory network, enabling skeletal growth. Remarkably, the same factors govern mammalian osteoblast differentiation in vitro and pathological calcification in vivo. Thus, this study highlights a common mechanotransduction pathway in biomineralization that was probably independently co-opted across different organisms to shape mineralized structures in metazoans.

Article Details

Volume / Issue Vol. 122, Issue 1
Published January 07, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

M

Majed Layous

Department of Marine Biology, Charney School of Marine Sciences, University of Haifa

T

Tsvia Gildor

Department of Marine Biology, Charney School of Marine Sciences, University of Haifa

T

Tovah Nehrer

Department of Marine Biology, Charney School of Marine Sciences, University of Haifa

A

Areen Qassem

Department of Marine Biology, Charney School of Marine Sciences, University of Haifa

H

Haguy Wolfenson

Department of Genetics and Developmental Biology, Rappaport Faculty of Medicine

S

Smadar Ben-Tabou de-Leon

Department of Marine Biology, Charney School of Marine Sciences, University of Haifa