Ultrasensitive and robust mechanoluminescent living composites.

Sci Adv

Department of Mechanical and Aerospace Engineering, University of California, San Diego, La Jolla, CA 92093, USA.

Published: October 2023

AI Article Synopsis

  • Mechanosensing allows cells to convert mechanical signals from their environment into biochemical responses, which is difficult to replicate in synthetic materials.* -
  • This study created living composites by embedding light-emitting dinoflagellates in hydrogels, which remained functional for about 5 months and could detect mechanical stress.* -
  • The research included 3D-printing these composites into sophisticated structures and developing a mathematical model for mechanoluminescence, highlighting their potential applications in biohybrid sensors and robotics.*

Article Abstract

Mechanosensing, the transduction of extracellular mechanical stimuli into intracellular biochemical signals, is a fundamental property of living cells. However, endowing synthetic materials with mechanosensing capabilities comparable to biological levels is challenging. Here, we developed ultrasensitive and robust mechanoluminescent living composites using hydrogels embedded with dinoflagellates, unicellular microalgae with a near-instantaneous and ultrasensitive bioluminescent response to mechanical stress. Not only did embedded dinoflagellates retain their intrinsic mechanoluminescence, but with hydrophobic coatings, living composites had a lifetime of ~5 months under harsh conditions with minimal maintenance. We 3D-printed living composites into large-scale mechanoluminescent structures with high spatial resolution, and we also enhanced their mechanical properties with double-network hydrogels. We propose a counterpart mathematical model that captured experimental mechanoluminescent observations to predict mechanoluminescence based on deformation and applied stress. We also demonstrated the use of the mechanosensing composites for biomimetic soft actuators that emitted colored light upon magnetic actuation. These mechanosensing composites have substantial potential in biohybrid sensors and robotics.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC10588950PMC
http://dx.doi.org/10.1126/sciadv.adi8643DOI Listing

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