School of Pharmaceutical Sciences, University of Geneva, Geneva, Switzerland; Institute of Pharmaceutical Sciences of Western Switzerland, University of Geneva, Geneva, Switzerland.
School of Pharmaceutical Sciences, University of Geneva, Geneva, Switzerland; Institute of Pharmaceutical Sciences of Western Switzerland, University of Geneva, Geneva, Switzerland.
Int J Pharm. 2024 May 25;657:124139. doi: 10.1016/j.ijpharm.2024.124139. Epub 2024 Apr 26.
Mesenchymal stem cell (MSC) therapy shows promise in regenerative medicine. For osteoarthritis (OA), MSCs delivered to the joint have a temporal window in which they can secrete growth factors and extracellular matrix molecules, contributing to cartilage regeneration and cell proliferation. However, upon injection in the non-vascularized joint, MSCs lacking energy supply, starve and die too quickly to efficiently deliver enough of these factors. To feed injected MSCs, we developed a hyaluronic acid (HA) derivative, where glucose is covalently bound to hyaluronic acid. To achieve this, the glucose moiety in 4-aminophenyl-β-D-glucopyranoside was linked to the HA backbone through amidation. The hydrogel was able to deliver glucose in a controlled manner using a trigger system based on hydrolysis catalyzed by endogenous ß-glucosidase. This led to glucose release from the hyaluronic acid backbone inside the cell. Indeed, our hydrogel proved to rescue starvation and cell mortality in a glucose-free medium. Our approach of adding a nutrient to the polymer backbone in hydrogels opens new avenues to deliver stem cells in poorly vascularized, nutrient-deficient environments, such as osteoarthritic joints, and for other regenerative therapies.
间充质干细胞 (MSC) 治疗在再生医学中显示出巨大的潜力。对于骨关节炎 (OA),注射到关节内的 MSC 具有一定的时间窗,在此期间它们可以分泌生长因子和细胞外基质分子,促进软骨再生和细胞增殖。然而,在非血管化关节中注射后,缺乏能量供应的 MSC 会很快饥饿而死,无法有效地输送足够的这些因子。为了为注射的 MSC 提供营养,我们开发了一种透明质酸 (HA) 衍生物,其中葡萄糖通过共价键与透明质酸结合。为了实现这一点,将 4-氨基苯-β-D-吡喃葡萄糖苷中的葡萄糖部分通过酰胺化与 HA 主链连接。该水凝胶能够使用基于内源性 β-葡糖苷酶催化的水解的触发系统以受控方式输送葡萄糖。这导致葡萄糖从细胞内的透明质酸主链中释放出来。事实上,我们的水凝胶被证明可以在无葡萄糖的培养基中挽救饥饿和细胞死亡。我们在水凝胶中向聚合物主链添加营养物的方法为在血管化不良、营养缺乏的环境(如骨关节炎)中输送干细胞以及其他再生疗法开辟了新途径。