Optomechanically
Actuated Hydrogel Platform for Cell
Stimulation with Spatial and Temporal Resolution
Posted on 2023-08-22 - 02:13
Cells exist in the body in mechanically dynamic environments,
yet
the vast majority of in vitro cell culture is conducted
on static materials such as plastic dishes and gels. To address this
limitation, we report an approach to transition widely used hydrogels
into mechanically active substrates by doping optomechanical actuator
(OMA) nanoparticles within the polymer matrix. OMAs are composed of
gold nanorods surrounded by a thermoresponsive polymer shell that
rapidly collapses upon near-infrared (NIR) illumination. As a proof
of concept, we crosslinked OMAs into laminin-gelatin hydrogels, generating
up to 5 μm deformations triggered by NIR pulsing. This response
was tunable by NIR intensity and OMA density within the gel and is
generalizable to other hydrogel materials. Hydrogel mechanical stimulation
enhanced myogenesis in C2C12 myoblasts as evidenced by ERK signaling,
myocyte fusion, and sarcomeric myosin expression. We also demonstrate
rescued differentiation in a chronic inflammation model as a result
of mechanical stimulation. This work establishes OMA-actuated biomaterials
as a powerful tool for in vitro mechanical manipulation
with broad applications in the field of mechanobiology.
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Ramey-Ward, Allison
N.; Dong, Yixiao; Yang, Jin; Ogasawara, Hiroaki; Bremer-Sai, Elizabeth C.; Brazhkina, Olga; et al. (1753). Optomechanically
Actuated Hydrogel Platform for Cell
Stimulation with Spatial and Temporal Resolution. ACS Publications. Collection. https://doi.org/10.1021/acsbiomaterials.3c00516