School of Biological and Medical Physics, Moscow Institute of Physics and Technology, National Research University, Dolgoprudny 141701, Russia.
Department of Pathomorphology and Reproductive Toxicology, Research Center of Toxicology and Hygienic Regulation of Biopreparations, NRC Institute of Immunology FMBA of Russia, Ul. Lenina 102A, Serpukhov 142253, Russia.
Int J Mol Sci. 2023 Feb 17;24(4):4102. doi: 10.3390/ijms24044102.
Transplantation of mesenchymal stromal cells (MSCs) provides a powerful tool for the management of multiple tissue injuries. However, poor survival of exogenous cells at the site of injury is a major complication that impairs MSC therapeutic efficacy. It has been found that tissue-oxygen adaptation or hypoxic pre-conditioning of MSCs could improve the healing process. Here, we investigated the effect of low oxygen tension on the regenerative potential of bone-marrow MSCs. It turned out that incubation of MSCs under a 5% oxygen atmosphere resulted in increased proliferative activity and enhanced expression of multiple cytokines and growth factors. Conditioned growth medium from low-oxygen-adapted MSCs modulated the pro-inflammatory activity of LPS-activated macrophages and stimulated tube formation by endotheliocytes to a much higher extent than conditioned medium from MSCs cultured in a 21% oxygen atmosphere. Moreover, we examined the regenerative potential of tissue-oxygen-adapted and normoxic MSCs in an alkali-burn injury model on mice. It has been revealed that tissue-oxygen adaptation of MSCs accelerated wound re-epithelialization and improved the tissue histology of the healed wounds in comparison with normoxic MSC-treated and non-treated wounds. Overall, this study suggests that MSC adaptation to 'physiological hypoxia' could be a promising approach for facilitating skin injuries, including chemical burns.
间质基质细胞(MSCs)的移植为多种组织损伤的治疗提供了有力的工具。然而,外源性细胞在损伤部位的存活率低是一个主要的并发症,会损害 MSC 的治疗效果。已经发现,MSCs 的组织氧适应或低氧预处理可以改善愈合过程。在这里,我们研究了低氧张力对骨髓 MSCs 再生潜能的影响。结果表明,将 MSCs 在 5%氧气环境中孵育会导致增殖活性增加,并增强多种细胞因子和生长因子的表达。与在 21%氧气环境中培养的 MSC 的条件培养基相比,来自低氧适应的 MSC 的条件培养基可调节 LPS 激活的巨噬细胞的促炎活性,并刺激内皮细胞的管形成。此外,我们在小鼠的碱烧伤损伤模型中检查了组织氧适应和常氧 MSC 的再生潜能。结果表明,与常氧 MSC 处理和未处理的伤口相比,MSC 的组织氧适应加速了伤口再上皮化,并改善了愈合伤口的组织学。总的来说,这项研究表明,MSC 对“生理性缺氧”的适应可能是促进皮肤损伤(包括化学烧伤)的一种很有前途的方法。