Abstract
Gene therapy is identified as a powerful strategy to overcome the limitations of traditional therapeutics to achieve satisfactory effects. However, various challenges related to the dosage form, delivery method, and, especially, application value, hampered the clinical transition of gene therapy. Here, aiming to regulate the cartilage inflammation and degeneration related abnormal IL-1β mRNA expression in osteoarthritis (OA), the interference oligonucleotides is integrated with the Au nanorods to fabricate the spherical nucleic acids (SNAs), to promote the stability and cell internalization efficiency. Furthermore, the complementary oligonucleotides are grafted onto hyaluronic acid (HA) to obtained DNA-grafted HA ( DNAHA) for SNAs delivery by base pairing, resulting in significantly improved injectability and bio-stability of the system. After loading SNAs, the constructed DNAHA-SNAs system (HA-SNAs) performs a reversible NIR-triggered on-demand release of SNAs by photo-thermal induced DNA dehybridization and followed by post-NIR in situ hybridization. The in vitro and in vivo experiments showed that this system down-regulated catabolic proteases and up-regulated anabolic components in cartilage over extended periods of time, to safeguard the chondrocytes against degenerative changes and impede the continual advancement of OA.
| Original language | English |
|---|---|
| Article number | 2004793 |
| Journal | Advanced Science |
| Volume | 8 |
| Issue number | 9 |
| DOIs | |
| Publication status | Published - 5 May 2021 |
| MoE publication type | A1 Journal article-refereed |
Funding
Z. C., F. Z., and H. Z. contributed equally to this work. This study was financially supported by the National Key R&D Program of China (2018YFC1106200), National Natural Science Foundation of China (81930051 and 81871472), Shanghai Municipal Health and Family Planning Commission (201840027), Shanghai Jiao Tong University “Medical and Research” Program (ZH2018ZDA04) and Shanghai Municipal Education Commission—Gaofeng Clinical Medicine Grant Support (20171906). Prof. H. Z. acknowledges the financial support from Academy of Finland (328933) and Sigrid Jusélius Foundation (28002247K1). Prof. H. A. Santos acknowledges the financial support Sigrid Jusélius Foundation and HiLIFE Research Funds. Z. C., F. Z., and H. Z. contributed equally to this work. This study was financially supported by the National Key R&D Program of China (2018YFC1106200), National Natural Science Foundation of China (81930051 and 81871472), Shanghai Municipal Health and Family Planning Commission (201840027), Shanghai Jiao Tong University ?Medical and Research? Program (ZH2018ZDA04) and Shanghai Municipal Education Commission?Gaofeng Clinical Medicine Grant Support (20171906). Prof. H. Z. acknowledges the financial support from Academy of Finland (328933) and Sigrid Jus?lius Foundation (28002247K1). Prof. H. A. Santos acknowledges the financial support Sigrid Jus?lius Foundation and HiLIFE Research Funds.
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Åbo Akademi Functional Printing Center
Toivakka, M. (PI), Rosenholm, J. (PI), Anttu, N. (PI), Bobacka, J. (PI), Huynh, T. P. (PI), Peltonen, J. (PI), Wang, X. (PI), Wilen, C.-E. (PI), Xu, C. (PI), Zhang, H. (PI) & Österbacka, R. (PI)
Faculty of Science and EngineeringFacility/equipment: Facility
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