Biophysical regulations of epigenetic state and notch signalling in neural development using microgroove substrates
File(s)acsami.2c01996.pdf (12.29 MB)
Published version
Author(s)
Type
Journal Article
Abstract
A number of studies have recently shown how surface topography can alter behaviour and differentiation patterns of different types of stem cells. Although the exact mechanisms and molecular pathways involved remain unclear, a consistent portion of the literature points to epigenetic changes induced by nuclear remodelling. In this study, we investigate the behaviour of clinically relevant neural populations derived from human pluripotent stem cells when cultured on polydimethylsiloxane microgrooves (3 μm- and 10 μm-depth grooves), to investigate what mechanisms are responsible for their differentiation capacity and functional behaviour. Our results show that microgrooves enhance cell alignment, modify nuclear geometry and significantly increase cellular stiffness, which we were able to measure at high resolution with a combination of light and electron microscopy, scanning ion conductance microscopy (SICM) and atomic force microscopy (AFM) coupled with quantitative image analysis. The microgrooves promoted significant changes in the epigenetic landscape, as revealed by the expression of key histone modification markers. The main behavioural change of neural stem cells on microgrooves was an increase of neuronal differentiation under basal conditions on the microgrooves. Through measurements of cleaved Notch1 levels, we found that microgrooves downregulate Notch signalling. We in fact propose that microgroove
topography affects the differentiation potential of neural stem cells by indirectly altering Notch signalling through geometric segregation and that this mechanism in parallel with topography-dependent epigenetic modulations acts in concert to enhance stem cell neuronal differentiation.
topography affects the differentiation potential of neural stem cells by indirectly altering Notch signalling through geometric segregation and that this mechanism in parallel with topography-dependent epigenetic modulations acts in concert to enhance stem cell neuronal differentiation.
Date Acceptance
2022-06-20
Citation
ACS Applied Materials and Interfaces, 14 (29)
ISSN
1944-8244
Publisher
American Chemical Society
Journal / Book Title
ACS Applied Materials and Interfaces
Volume
14
Issue
29
Copyright Statement
© 2022 The Authors. Published by American Chemical Society
License URL
Sponsor
Medical Research Council (MRC)
Commission of the European Communities
Medical Research Council (MRC)
Medical Research Council (MRC)
Wellcome Trust
Commission of the European Communities
Identifier
https://pubs.acs.org/doi/10.1021/acsami.2c01996
Grant Number
MR/K026666/1
660757
MR/K026682/1
MR/L012677/1
098411/Z/12/Z
ERC-2013-CoG-616417
Subjects
Science & Technology
Technology
Nanoscience & Nanotechnology
Materials Science, Multidisciplinary
Science & Technology - Other Topics
Materials Science
neural tissue engineering
neural stem cell
neuron
topography
micropatterning
epigenetics
Notch signaling
STEM-CELLS DIFFERENTIATION
NEURONAL DIFFERENTIATION
EXTRACELLULAR-MATRIX
CONTACT GUIDANCE
NEURITE GROWTH
VALPROIC ACID
INHIBITION
STIFFNESS
CUES
TOPOGRAPHY
Notch signaling
epigenetics
micropatterning
neural stem cell
neural tissue engineering
neuron
topography
Nanoscience & Nanotechnology
03 Chemical Sciences
09 Engineering
Publication Status
Published