Evers Tom M J, Beumer Joep, Clevers Hans, Mashaghi Alireza
Medical Systems Biophysics and Bioengineering, Leiden Academic Centre for Drug Research, Faculty of Science, Leiden University, the Netherlands.
Laboratory for Interdisciplinary Medical Innovations, Centre for Interdisciplinary Genome Research, Faculty of Science, Leiden University, the Netherlands.
Mechanobiol Med. 2024 Feb 8;2(2):100044. doi: 10.1016/j.mbm.2024.100044. eCollection 2024 Jun.
The gastrointestinal (GI) tract's primary role is food digestion, relying on coordinated fluid secretion and bowel movements triggered by mechanosensation. Enteroendocrine cells (EECs) are specialized mechanosensitive cells that convert mechanical forces into electrochemical signals, culminating in serotonin release to regulate GI motility. Despite their pivotal role, knowledge of EEC mechanical properties has been lacking due to their rarity and limited accessibility. In this brief report, we present the first single-cell mechanical characterization of human ECCs isolated from healthy intestinal organoids. Using single-cell optical tweezers, we measured EEC stiffness profiles at the physiological temperature and investigated changes following tryptophan metabolism inhibition. Our findings not only shed light on EEC mechanics but also highlight the potential of adult stem cell-derived organoids for studying these elusive cells.
胃肠道(GI)的主要作用是食物消化,这依赖于由机械感觉触发的协调的液体分泌和肠道运动。肠内分泌细胞(EECs)是专门的机械敏感细胞,它们将机械力转化为电化学信号,最终释放血清素以调节胃肠蠕动。尽管它们起着关键作用,但由于其稀有性和有限的可及性,人们对EEC的机械特性了解不足。在本简要报告中,我们展示了从健康肠道类器官中分离出的人类ECC的首个单细胞机械特性表征。使用单细胞光镊,我们在生理温度下测量了EEC的硬度曲线,并研究了色氨酸代谢抑制后的变化。我们的发现不仅揭示了EEC的力学特性,还突出了成体干细胞来源的类器官在研究这些难以捉摸的细胞方面的潜力。