Department of Cell Biology-Inspired Tissue Engineering, MERLN Institute for Technology-Inspired Regenerative Medicine, Maastricht University, Maastricht, 6229 ER, the Netherlands.
Food Innovation and Health, Department of Human Biology, Maastricht University, Venlo, 5911 BV, the Netherlands.
Adv Biol (Weinh). 2023 Dec;7(12):e2300264. doi: 10.1002/adbi.202300264. Epub 2023 Aug 11.
Oxidative stress leads to a lower success rate of clinical islet transplantation. Here, FDA-approved compounds are screened for their potential to decrease oxidative stress and to protect or enhance pancreatic islet viability and function. Studies are performed on in vitro "pseudoislet" spheroids, which are pre-incubated with 1280 different compounds and subjected to oxidative stress. Cell viability and oxidative stress levels are determined using a high-throughput fluorescence microscopy pipeline. Initial screening on cell viability results in 59 candidates. The top ten candidates are subsequently screened for their potential to decrease induced oxidative stress, and eight compounds efficient reduction of induced oxidative stress in both alpha and beta cells by 25-50%. After further characterization, the compound sulfisoxazole is found to be the most capable of reducing oxidative stress, also at short pre-incubation times, which is validated in primary human islets, where low oxidative stress levels and islet function are maintained. This study shows an effective screening strategy with 3D cell aggregates based on cell viability and oxidative stress, which leads to the discovery of several compounds with antioxidant capacity. The top candidate, sulfisoxazole is effective after a 30 min pre-incubation, maintains baseline islet function, and may help alleviate oxidative stress in pancreatic islets.
氧化应激会导致临床胰岛移植的成功率降低。在这里,我们筛选了美国食品和药物管理局批准的化合物,以评估它们降低氧化应激、保护和增强胰岛活力和功能的潜力。我们在体外“拟胰岛”球体上进行研究,这些球体在与 1280 种不同的化合物预孵育后,会受到氧化应激的影响。使用高通量荧光显微镜技术来测定细胞活力和氧化应激水平。初始细胞活力筛选得到了 59 个候选化合物。随后,对这 59 个候选化合物进行了进一步筛选,以评估它们降低诱导性氧化应激的潜力,其中有 8 种化合物能有效降低 alpha 和 beta 细胞的诱导性氧化应激,降幅为 25-50%。经过进一步的特性分析,我们发现磺胺异恶唑是最能降低氧化应激的化合物,即使在短时间的预孵育后也是如此。这一结论在原代人胰岛中得到了验证,因为原代人胰岛中的氧化应激水平较低,胰岛功能也得到了维持。本研究展示了一种基于细胞活力和氧化应激的 3D 细胞聚集体的有效筛选策略,该策略发现了几种具有抗氧化能力的化合物。其中最有潜力的候选化合物磺胺异恶唑在 30 分钟的预孵育后就能发挥作用,能维持胰岛的基础功能,并且可能有助于减轻胰岛的氧化应激。