Kalashnikov Nikita, Moraes Christopher
Department of Chemical Engineering, McGill University, Montreal, Quebec H3A 0G4, Canada.
APL Bioeng. 2022 Sep 20;6(3):031504. doi: 10.1063/5.0098578. eCollection 2022 Sep.
Innate immunity forms the core of the human body's defense system against infection, injury, and foreign objects. It aims to maintain homeostasis by promoting inflammation and then initiating tissue repair, but it can also lead to disease when dysregulated. Although innate immune cells respond to their physical microenvironment and carry out intrinsically mechanical actions such as migration and phagocytosis, we still do not have a complete biophysical description of innate immunity. Here, we review how engineering tools can be used to study innate immune cell biophysics. We first provide an overview of innate immunity from a biophysical perspective, review the biophysical factors that affect the innate immune system, and then explore innate immune cell biophysics in the context of migration, phagocytosis, and phenotype polarization. Throughout the review, we highlight how physical microenvironments can be designed to probe the innate immune system, discuss how biophysical insight gained from these studies can be used to generate a more comprehensive description of innate immunity, and briefly comment on how this insight could be used to develop mechanical immune biomarkers and immunomodulatory therapies.
固有免疫构成了人体抵御感染、损伤和异物的防御系统的核心。它旨在通过促进炎症反应进而启动组织修复来维持体内平衡,但当调节失调时也会导致疾病。尽管固有免疫细胞对其物理微环境做出反应并执行诸如迁移和吞噬等内在的机械行为,但我们仍未对固有免疫有完整的生物物理描述。在此,我们综述工程工具如何用于研究固有免疫细胞生物物理学。我们首先从生物物理角度对固有免疫进行概述,回顾影响固有免疫系统的生物物理因素,然后在迁移、吞噬和表型极化的背景下探讨固有免疫细胞生物物理学。在整个综述过程中,我们强调如何设计物理微环境来探究固有免疫系统,讨论从这些研究中获得的生物物理见解如何用于生成对固有免疫更全面的描述,并简要评论这种见解如何用于开发机械免疫生物标志物和免疫调节疗法。