Requirement and Development of Hydrogel Micromotors towards Biomedical Applications

Author:

Lin Xinyi1,Xu Borui1ORCID,Zhu Hong1,Liu Jinrun1,Solovev Alexander1ORCID,Mei Yongfeng1ORCID

Affiliation:

1. Department of Materials Science, State Key Laboratory of ASIC and Systems, Fudan University, Shanghai 200433, China

Abstract

With controllable size, biocompatibility, porosity, injectability, responsivity, diffusion time, reaction, separation, permeation, and release of molecular species, hydrogel microparticles achieve multiple advantages over bulk hydrogels for specific biomedical procedures. Moreover, so far studies mostly concentrate on local responses of hydrogels to chemical and/or external stimuli, which significantly limit the scope of their applications. Tetherless micromotors are autonomous microdevices capable of converting local chemical energy or the energy of external fields into motive forces for self-propelled or externally powered/controlled motion. If hydrogels can be integrated with micromotors, their applicability can be significantly extended and can lead to fully controllable responsive chemomechanical biomicromachines. However, to achieve these challenging goals, biocompatibility, biodegradability, and motive mechanisms of hydrogel micromotors need to be simultaneously integrated. This review summarizes recent achievements in the field of micromotors and hydrogels and proposes next steps required for the development of hydrogel micromotors, which become increasingly important for in vivo and in vitro bioapplications.

Funder

Program of Shanghai Academic Research Leader

Publisher

American Association for the Advancement of Science (AAAS)

Subject

Multidisciplinary

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