Altered extracellular matrix structure and elevated stiffness in a brain organoid model for disease
Abstract
Abstract The viscoelastic properties of tissues influence their morphology and cellular behavior, yet little is known about changes in these properties during brain malformations. Lissencephaly, a severe cortical malformation caused by LIS1 mutations, results in a smooth cortex. Here, we show that human-derived brain organoids with LIS1 mutation exhibit increased stiffness compared to controls at multiple developmental stages. This stiffening correlates with abnormal extracellular matrix (ECM) expression and organization, as well as elevated water content, measured by diffusion-weighted MRI. Short-term MMP9 treatment reduces both stiffness and water diffusion levels to control values. Additionally, a computational microstructure mechanical model predicts mechanical changes based on ECM organization. These findings suggest that LIS1 plays a critical role in ECM regulation during brain development and that its mutation leads to significant viscoelastic alterations.
Article Details
Authors (15)
Maayan Karlinski Zur
Bidisha Bhattacharya
Inna Solomonov
Sivan Ben Dror
Alon Savidor
Yishai Levin
De Botton Protein Profiling Institute of the Nancy and Stephen Grand Israel National Center for Personalized Medicine, Weizmann Institute of Science
Amir Prior
Tamar Sapir
Talia Harris
Tsviya Olender
Department of Molecular Genetics, Weizmann Institute of Science
Rita Schmidt
J. M. Schwarz
Irit Sagi
Amnon Buxboim
Orly Reiner