arrow
Return

Sequential and Switchable Patterning for Studying Cellular Processes under Spatiotemporal Control

delete2021-07-20
delete1
delete
OA
AI
T
Themistoklis Zisis
J
Jan Schwarz
M
Miriam Balles
M
Maibritt Kretschmer
M
Maria Némethová
R
Remy Chait
R
Robert Hauschild
C
Călin C. Guet
M
Michael Sixt *
S
Stefan Zahler *
DOI:10.1021/acsami.1c09850delete
deleteOriginal
deleteShare
deleteSave
View PDF
Abstract

Abstract

En 中文
Attachment of adhesive molecules on cell culture surfaces to restrict cell adhesion to defined areas and shapes has been vital for the progress of in vitro research. In currently existing patterning methods, a combination of pattern properties such as stability, precision, specificity, high-throughput outcome, and spatiotemporal control is highly desirable but challenging to achieve. Here, we introduce a versatile and high-throughput covalent photoimmobilization technique, comprising a light-dose-dependent patterning step and a subsequent functionalization of the pattern via click chemistry. This two-step process is feasible on arbitrary surfaces and allows for generation of sustainable patterns and gradients. The method is validated in different biological systems by patterning adhesive ligands on cell-repellent surfaces, thereby constraining the growth and migration of cells to the designated areas. We then implement a sequential photopatterning approach by adding a second switchable patterning step, allowing for spatiotemporal control over two distinct surface patterns. As a proof of concept, we reconstruct the dynamics of the tip/stalk cell switch during angiogenesis. Our results show that the spatiotemporal control provided by our sequential photopatterning system is essential for mimicking dynamic biological processes and that our innovative approach has great potential for further applications in cell science.
Keywords:
surface engineering
photopatterning
click chemistry
microcontact printing
integrin
AI Summary

AI Summary

Key information extracted from the uploaded paper, including a brief overview, abstract, background, key highlights, visual analysis, and future outlook.

Journal

ACS Applied Materials and Interfaces cover
ACS Applied Materials and Interfaces
IF:
8.2
Papers:
6.1W
Citations:
38.7W

Organization

U
University of Munich
Scholars:
5.7W
Papers: 4.2W
Citations: 68
I
institute of science & technology - austria
Scholars:
1.5K
Papers: 1.2K
Citations: 2