Supramolecular Nanofibers Containing Arginine-Glycine-Aspartate (RGD) Peptides Boost Therapeutic Efficacy of Extracellular Vesicles in Kidney Repair

Chuyue Zhang(Nankai University), Yuna Shang(Nankai University), Xiaoniao Chen(Beijing Tongren Hospital), Xiaoniao Chen(Beijing Tongren Hospital), Adam C. Midgley(Nankai University), Zhongyan Wang(Nankai University), Dashuai Zhu(Nankai University), Jie Wu(Chinese PLA General Hospital), Pu Chen(Chinese PLA General Hospital), Lingling Wu(Chinese PLA General Hospital), Xu Wang(Nankai University), Kaiyue Zhang(Nankai University), Hongfeng Wang(Nankai University), Deling Kong(Xuzhou Medical College), Zhimou Yang(Xuzhou Medical College), Zongjin Li(Nankai University), Xiangmei Chen(Beijing Tongren Hospital), Xiangmei Chen(Beijing Tongren Hospital)
ACS Nano
August 11, 2020
Cited by 215

Abstract

Extracellular vesicles (EVs) derived from mesenchymal stem cells (MSC-EVs) have been recognized as a promising cell-free therapy for acute kidney injury (AKI), which avoids safety concerns associated with direct cell engraftment. However, low stability and retention of MSC-EVs have limited their therapeutic efficacy. RGD (Arg-Gly-Asp) peptide binds strongly to integrins, which have been identified on the surface of MSC-EV membranes; yet RGD has not been applied to EV scaffolds to enhance and prolong bioavailability. Here, we developed RGD hydrogels, which we hypothesized could augment MSC-EV efficacy in the treatment of AKI models. In vivo tracking of the labeled EVs revealed that RGD hydrogels increased retention and stability of EVs. Integrin gene knockdown experiments confirmed that EV–hydrogel interaction was mediated by RGD–integrin binding. Upon intrarenal injection into mouse AKI models, EV-RGD hydrogels provided superior rescuing effects to renal function, attenuated histopathological damage, decreased tubular injury, and promoted cell proliferation in early phases of AKI. RGD hydrogels also augmented antifibrotic effects of MSC-EVs in chronic stages. Further analysis revealed that the presence of microRNA let-7a-5p in MSC-EVs served as the mechanism contributing to the reduced cell apoptosis and elevated cell autophagy in AKI. In conclusion, RGD hydrogels facilitated MSC-derived let-7a-5p-containing EVs, improving reparative potential against AKI. This study developed an RGD scaffold to increase the EV integrin-mediated loading and in turn improved therapeutic efficacy in renal repair; therefore this strategy shed light on MSC-EV application as a cell-free treatment for potentiated efficiency.


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