Published October 2018 | Version v1
Journal article

Reversible hydrogels with tunable mechanical properties for optically controlling cell migration

  • 1. Nanjing University, Collaborative Innovation Center of Advanced Microstructures, National Laboratory of Solid State Microstructure, and Department of Physics (China)
  • 2. Peking University, Key Laboratory of Polymer Chemistry & Physics of Ministry of Education, Center for Soft Matter Science and Engineering, College of Chemistry and Molecular Engineering (China)
  • 3. Nanjing University of Information Science & Technology, Collaborative Innovation Center of Atmospheric Environment and Equipment Technology, School of Environmental Science and Engineering (China)
  • 4. The Hong Kong University of Science and Technology, Department of Chemical and Biomolecular Engineering, Division of BioMedical Engineering, and Center for Systems Biology & Human Health (China)

Description

Synthetic hydrogels are widely used as biomimetic in vitro model systems to understand how cells respond to complex microenvironments. The mechanical properties of hydrogels are deterministic for many cellular behaviors, including cell migration, spreading, and differentiation. However, it remains a major challenge to engineer hydrogels that recapture the dynamic mechanical properties of native extracellular matrices. Here, we provide a new hydrogel platform with spatiotemporally tunable mechanical properties to assay and define cellular behaviors under light. The change in the mechanical properties of the hydrogel is effected by a photo-induced switch of the cross-linker fluorescent protein, Dronpa145N, between the tetrameric and monomeric states, which causes minimal changes to the chemical properties of the hydrogel. The mechanical properties can be rapidly and reversibly tuned for multiple cycles using visible light, as confirmed by rheological measurements and atomic force microscopybased nano-indentation. We further demonstrated real-time and reversible modulation of cell migration behaviors on the hydrogels through photo-induced stiffness switching, with minimal invasion to the cultured cells. Hydrogels with a programmable mechanical history and a spatially defined mechanical hierarchy might serve as an ideal model system to better understand complex cellular functions.

Additional details

Identifiers

Publishing Information

Journal Title
Nano Research (Print)
Journal Volume
11
Journal Issue
10
Journal Page Range
p. 5556-5565
ISSN
1998-0124

INIS

Country of Publication
China
Country of Input or Organization
International Atomic Energy Agency (IAEA)
INIS RN
51019916
Subject category
S60: APPLIED LIFE SCIENCES;
Descriptors DEI
CELL CULTURES; CHEMICAL PROPERTIES; FLEXIBILITY; FLUORESCENCE; HYDROGELS; IN VITRO; MIGRATION; MODULATION; PROTEINS; VISIBLE RADIATION
Descriptors DEC
COLLOIDS; DISPERSIONS; ELECTROMAGNETIC RADIATION; EMISSION; GELS; LUMINESCENCE; MECHANICAL PROPERTIES; ORGANIC COMPOUNDS; PHOTON EMISSION; RADIATIONS; TENSILE PROPERTIES

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Copyright
Copyright (c) 2018 Tsinghua University Press and Springer-Verlag GmbH Germany, part of Springer Nature