ACS Applied Materials & Interfaces · 2020 · 359 citations · 22 references
Tissue EngineeringDeep Cartilage RegionsEngineeringExtracellular MicrovesiclesBiomedical EngineeringMusculoskeletal ResearchRat ModelRegenerative MedicineBone Morphogenic ProteinCartilage DegenerationOsteoarthritisMatrix BiologyEngineered ExosomesMechanobiologyCell-based Drug DeliveryCell EngineeringCell BiologyExtracellular VesiclesCell-free Osteoarthritis TherapyChondrocyte-targeted Microrna DeliveryExosome VesiclesMedicineExtracellular Matrix
Targeted delivery to the diseased cell or tissue is the key to the successful clinical use of nucleic acid drugs. In particular, delivery of microRNA-140 (miRNA-140, miR-140) into chondrocytes across the dense, nonvascular extracellular matrix of cartilage remains a major challenge. Here, we report the chondrocyte-targeting exosomes as vehicles for the delivery of miR-140 into chondrocytes as a new treatment for osteoarthritis (OA). By fusing a chondrocyte-affinity peptide (CAP) with the lysosome-associated membrane glycoprotein 2b protein on the surface of exosomes, we acquire CAP-exosomes that can efficiently encapsulate miR-140, specifically enter, and deliver the cargo into chondrocytes in vitro. CAP-exosomes, in contrast to nontagged exosome vesicles, are retained in the joints after intra-articular injection with minimal diffusion in vivo. CAP-exosomes also deliver miR-140 to deep cartilage regions through the dense mesochondrium, inhibit cartilage-degrading proteases, and alleviate OA progression in a rat model, pointing toward a potential organelle-based, cell-free therapy of OA.
22
MicroRNA-140 plays dual roles in both cartilage development and homeostasis
Shigeru Miyaki, Tempei Sato, Atsushi Inoue et al. · Genes & Development · 2010 · 665 citations · Full text