4.7 Article

Dual-dynamic-bond cross-linked injectable hydrogel of multifunction for intervertebral disc degeneration therapy

期刊

JOURNAL OF NANOBIOTECHNOLOGY
卷 20, 期 1, 页码 -

出版社

BMC
DOI: 10.1186/s12951-022-01633-0

关键词

Dual-dynamic-bond cross-linked; Multifunctional hydrogel; Oxidative stress-related disease; Minimally invasive therapy

资金

  1. Zhejiang medical and health science and technology project [2018KY117, 2019ZD041]
  2. Natural Science Foundation of Zhejiang Province of China [LTY22E030002]
  3. Medical Healthy Scientific Technology project of Zhejiang Province [WKJ-ZJ-1906]
  4. New talent in medical field of Zhejiang Province
  5. fundamental research funds for the central universities [2019QNA7027]

向作者/读者索取更多资源

In this study, an injectable hydrogel with antibacterial, antioxidation, rapid gelation, and self-healing characteristics was developed for the treatment of intervertebral disc degeneration (IVDD). The hydrogel showed the ability to alleviate oxidative stress trauma and demonstrated promising therapeutic effects in a rat IVDD model. The combination of smart hydrogels and nanotechnology-mediated antioxidant therapy could serve as a novel treatment strategy for IVDD and other oxidative stress-related diseases.
Developing smart hydrogels with integrated and suitable properties to treat intervertebral disc degeneration (IVDD) by minimally invasive injection is of high desire in clinical application and still an ongoing challenge. In this work, an extraordinary injectable hydrogel PBNPs@OBG (Prussian blue nanoparticles@oxidized hyaluronic acid/borax/gelatin) with promising antibacterial, antioxidation, rapid gelation, and self-healing characteristics was designed via dual-dynamic-bond cross-linking among the oxidized hyaluronic acid (OHA), borax, and gelatin. The mechanical performance of the hydrogel was studied by dynamic mechanical analysis. Meanwhile, the swelling ratio and degradation level of the hydrogel was explored. Benefiting from its remarkable mechanical properties, sufficient tissue adhesiveness, and ideal shape-adaptability, the injectable PBNPs containing hydrogel was explored for IVDD therapy. Astoundingly, the as-fabricated hydrogel was able to alleviate H2O2-induced excessive ROS against oxidative stress trauma of nucleus pulposus, which was further revealed by theoretical calculations. Rat IVDD model was next established to estimate therapeutic effect of this PBNPs@OBG hydrogel for IVDD treatment in vivo. On the whole, combination of the smart multifunctional hydrogel and nanotechnology-mediated antioxidant therapy can serve as a fire-new general type of therapeutic strategy for IVDD and other oxidative stress-related diseases.

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