Noh Kyung Mu, Park Soon-Jung, Moon Sung-Hwan, Jung Seok Yun
Stem Cell Research Institute, T&R Biofab Co. Ltd., Seongnam-si, Republic of Korea.
Department of Animal Science and Technology, College of Biotechnology and Natural Resources, Chung-Ang University, Anseong-si, Republic of Korea.
Front Cardiovasc Med. 2023 Jun 26;10:1169331. doi: 10.3389/fcvm.2023.1169331. eCollection 2023.
The generation of endothelial cells (ECs) from human pluripotent stem cells (PSCs) has been a promising approach for treating cardiovascular diseases for several years. Human PSCs, particularly induced pluripotent stem cells (iPSCs), are an attractive source of ECs for cell therapy. Although there is a diversity of methods for endothelial cell differentiation using biochemical factors, such as small molecules and cytokines, the efficiency of EC production varies depending on the type and dose of biochemical factors. Moreover, the protocols in which most EC differentiation studies have been performed were in very unphysiological conditions that do not reflect the microenvironment of native tissue. The microenvironment surrounding stem cells exerts variable biochemical and biomechanical stimuli that can affect stem cell differentiation and behavior. The stiffness and components of the extracellular microenvironment are critical inducers of stem cell behavior and fate specification by sensing the extracellular matrix (ECM) cues, adjusting the cytoskeleton tension, and delivering external signals to the nucleus. Differentiation of stem cells into ECs using a cocktail of biochemical factors has been performed for decades. However, the effects of mechanical stimuli on endothelial cell differentiation remain poorly understood. This review provides an overview of the methods used to differentiate ECs from stem cells by chemical and mechanical stimuli. We also propose the possibility of a novel EC differentiation strategy using a synthetic and natural extracellular matrix.
数年来,从人多能干细胞(PSC)生成内皮细胞(EC)一直是治疗心血管疾病的一种有前景的方法。人PSC,尤其是诱导多能干细胞(iPSC),是用于细胞治疗的内皮细胞的一个有吸引力的来源。尽管存在多种使用小分子和细胞因子等生化因子进行内皮细胞分化的方法,但内皮细胞产生的效率因生化因子的类型和剂量而异。此外,大多数内皮细胞分化研究所采用的方案是在非常非生理的条件下进行的,这些条件不能反映天然组织的微环境。干细胞周围的微环境施加可变的生化和生物力学刺激,可影响干细胞的分化和行为。细胞外微环境的硬度和成分通过感知细胞外基质(ECM)线索、调节细胞骨架张力以及向细胞核传递外部信号,是干细胞行为和命运决定的关键诱导因素。使用生化因子混合物将干细胞分化为内皮细胞已经进行了数十年。然而,机械刺激对内皮细胞分化的影响仍知之甚少。本综述概述了通过化学和机械刺激将干细胞分化为内皮细胞所使用的方法。我们还提出了使用合成和天然细胞外基质的新型内皮细胞分化策略的可能性。