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Three-Dimensional Rotating Wall Vessel-Derived Cell Culture Models for Studying Virus-Host Interactions

机译:用于研究病毒-宿主相互作用的三维旋转壁容器衍生细胞培养模型

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摘要

The key to better understanding complex virus-host interactions is the utilization of robust three-dimensional (3D) human cell cultures that effectively recapitulate native tissue architecture and model the microenvironment. A lack of physiologically-relevant animal models for many viruses has limited the elucidation of factors that influence viral pathogenesis and of complex host immune mechanisms. Conventional monolayer cell cultures may support viral infection, but are unable to form the tissue structures and complex microenvironments that mimic host physiology and, therefore, limiting their translational utility. The rotating wall vessel (RWV) bioreactor was designed by the National Aeronautics and Space Administration (NASA) to model microgravity and was later found to more accurately reproduce features of human tissue in vivo. Cells grown in RWV bioreactors develop in a low fluid-shear environment, which enables cells to form complex 3D tissue-like aggregates. A wide variety of human tissues (from neuronal to vaginal tissue) have been grown in RWV bioreactors and have been shown to support productive viral infection and physiological meaningful host responses. The in vivo-like characteristics and cellular features of the human 3D RWV-derived aggregates make them ideal model systems to effectively recapitulate pathophysiology and host responses necessary to conduct rigorous basic science, preclinical and translational studies.
机译:更好地理解复杂的病毒-宿主相互作用的关键是利用强大的三维(3D)人类细胞培养物,这种培养物可以有效地概括天然组织结构并为微环境建模。对于许多病毒,缺乏与生理相关的动物模型限制了对影响病毒发病机理的因素和复杂的宿主免疫机制的阐明。常规的单层细胞培养物可能支持病毒感染,但无法形成模仿宿主生理的组织结构和复杂的微环境,因此限制了其翻译用途。旋转壁容器(RWV)生物反应器是由美国国家航空航天局(NASA)设计的,用于对微重力进行建模,后来被发现可以更准确地在体内复制人体组织的特征。在RWV生物反应器中生长的细胞在低流体剪切环境中发育,这使细胞能够形成复杂的3D组织样聚集体。在RWV生物反应器中已经生长了各种各样的人体组织(从神经元到阴道组织),并且已经证明它们可以支持生产性病毒感染和有意义的生理宿主反应。人类3D RWV衍生的聚集体的体内样特征和细胞特征使其成为理想的模型系统,可以有效地概括病理生理学并进行进行严格的基础科学,临床前和转化研究所需的反应。

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