Shanghai Institute of Applied Physics, Chinese Academy of Sciences, Shanghai 201800, China.
Jinan Microecological Biomedicine Shandong Laboratory, Jinan 250000, China.
Int J Mol Sci. 2022 Aug 30;23(17):9878. doi: 10.3390/ijms23179878.
Stem cells have shown great potential functions for tissue regeneration and repair because of their unlimited self-renewal and differentiation. Stem cells reside in their niches, making them a hotspot for the development and diagnosis of diseases. Complex interactions between niches and stem cells create the balance between differentiation, self-renewal, maturation, and proliferation. However, the multi-facet applications of stem cells have been challenged since the complicated responses of stem cells to biological processes were explored along with the limitations of current systems or methods. Emerging evidence highlights that synchrotron infrared microspectroscopy, known as synchrotron radiation-based Fourier transform infrared microspectroscopy, has been investigated as a potentially attractive technology with its non-invasive and non-biological probes in stem cell research. With their unique vibration bands, the quantitative mapping of the content and distribution of biomolecules can be detected and characterized in cells or tissues. In this review, we focus on the potential applications of synchrotron infrared microspectroscopy for investigating the differentiation and fate determination of stem cells.
干细胞具有无限的自我更新和分化能力,因此在组织再生和修复方面显示出巨大的潜在功能。干细胞存在于它们的龛位中,这使它们成为疾病发展和诊断的热点。龛位和干细胞之间的复杂相互作用在分化、自我更新、成熟和增殖之间创造了平衡。然而,自从探索干细胞对生物过程的复杂反应以及当前系统或方法的局限性以来,干细胞的多方面应用一直受到挑战。新出现的证据强调,同步辐射红外微光谱学(称为基于同步辐射的傅里叶变换红外微光谱学)已被研究为一种具有吸引力的潜在技术,其在干细胞研究中具有非侵入性和非生物探针的特点。凭借其独特的振动带,可以在细胞或组织中检测和表征生物分子的含量和分布的定量映射。在这篇综述中,我们重点介绍了同步辐射红外微光谱学在研究干细胞分化和命运决定方面的潜在应用。