Hibernating/Awakening Nanomotors Promote Highly Efficient Cryopreservation by Limiting Ice Crystals

Author:

Gao Rui1,Wang Weixin1,Wang Zhongchao2,Fan Yapeng3,Zhang Lin1,Sun Jiahui1,Hong Miaofang1,Pan Min1,Wu Jianming4,Mei Qibing4,Wang Yini5,Qiao Lingyan5,Liu Jin3,Tong Fei1ORCID

Affiliation:

1. Department of Pharmacology School of Pharmacy Binzhou Medical University Yantai 264003 P. R. China

2. Institute of Cardiovascular Disease Shanxi Medical University Taiyuan 030001 P. R. China

3. Key Laboratory of Tropical Biological Resources of Ministry of Education School of Pharmaceutical Sciences Hainan University Haikou 570228 P. R. China

4. Education Ministry Key Laboratory of Medical Electrophysiology Sichuan Key Medical Laboratory of New Drug Discovery and Druggability Evaluation Key Laboratory of Activity Screening and Druggability Evaluation for Chinese Materia Medica School of Pharmacy Southwest Medical University Luzhou 646000 P. R. China

5. Clinical Medical College Binzhou Medical University Yantai 264003 P. R. China

Abstract

AbstractThe disruptions caused by ice crystal formation during the cryopreservation of cells and tissues can cause cell and tissue damage. Thus, preventing such damage during cryopreservation is an important but challenging goal. Here, a hibernating/awakening nanomotor with magnesium/palladium covering one side of a silica platform (Mg@Pd@SiO2) is proposed. This nanomotor is used in the cultivation of live NCM460 cells to demonstrate a new method to actively limit ice crystal formation and enable highly efficient cryopreservation. Cooling Mg@Pd@SiO2 in solution releases Mg2+/H2 and promotes the adsorption of H2 at multiple Pd binding sites on the cell surface to inhibit ice crystal formation and cell/tissue damage; additionally, the Pd adsorbs and stores H2 to form a hibernating nanomotor. During laser‐mediated heating, the hibernating nanomotor is activated (awakened) and releases H2, which further suppresses recrystallization and decreases cell/tissue damage. These hibernating/awakening nanomotors have great potential for promoting highly efficient cryopreservation by inhibiting ice crystal formation.

Publisher

Wiley

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