Cheng Hong Sheng, Tey Yee Han, Hu Si Yuan, Yeo Alethea Yen Ning, Ngo Zong Heng, Kim Joseph Han Sol, Tan Nguan Soon
Lee Kong Chian School of Medicine, Nanyang Technological University Singapore, Singapore 308232, Singapore.
School of Biological Sciences, Nanyang Technological University Singapore, Singapore 637551, Singapore.
ACS Appl Mater Interfaces. 2025 Jun 4;17(22):31698-31713. doi: 10.1021/acsami.4c20961. Epub 2025 May 18.
The gastrointestinal tract is a dynamic biomechanical environment where physical forces, cellular processes, and microbial interactions converge to shape the gut health and disease. In this review, we examine the unique mechanical properties of the gut, including peristalsis, viscoelasticity, shear stress, and tissue stiffness, and their roles in modulating host mechanosignaling and microbial behavior under physiological and pathological conditions. We discuss how these mechanical forces regulate gut epithelial integrity, immune responses, and microbial colonization, leading to distinct ecological niches across different intestinal segments. Furthermore, we highlight recent advancements in 3D culture systems and gut-on-a-chip models that accurately recapitulate the complex interplay between biomechanics and gut microbiota. By elucidating the intricate relationship between mechanobiology and gut function, this review underscores the potential for mechanotherapeutic strategies to modulate host-microbe interactions, offering promising avenues for the prevention and treatment of disorders such as inflammatory bowel disease, irritable bowel syndrome, and colorectal cancer.
胃肠道是一个动态的生物力学环境,物理力、细胞过程和微生物相互作用在此汇聚,共同塑造肠道健康与疾病状况。在本综述中,我们研究了肠道独特的力学特性,包括蠕动、粘弹性、剪切应力和组织硬度,以及它们在生理和病理条件下调节宿主机械信号传导和微生物行为中的作用。我们讨论了这些机械力如何调节肠道上皮完整性、免疫反应和微生物定植,从而在不同肠道节段形成独特的生态位。此外,我们强调了3D培养系统和肠道芯片模型的最新进展,这些模型能够准确再现生物力学与肠道微生物群之间的复杂相互作用。通过阐明机械生物学与肠道功能之间的复杂关系,本综述强调了机械治疗策略调节宿主-微生物相互作用的潜力,为预防和治疗诸如炎症性肠病、肠易激综合征和结直肠癌等疾病提供了有前景的途径。