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In Vitro Models of the Small Intestine: Engineering Challenges and Engineering Solutions

机译:小肠的体外模型:工程挑战和工程解决方案

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Pathologies affecting the small intestine contribute significantly to the disease burden of both the developing and the developed world, which has motivated investigation into the disease mechanisms through in vitro models. Although existing in vitro models recapitulate selected features of the intestine, various important aspects have often been isolated or omitted due to the anatomical and physiological complexity. The small intestine's intricate microanatomy, heterogeneous cell populations, steep oxygen gradients, microbiota, and intestinal wall contractions are often not included in in vitro experimental models of the small intestine, despite their importance in both intestinal biology and pathology. Known and unknown interdependencies between various physiological aspects necessitate more complex in vitro models. Microfluidic technology has made it possible to mimic the dynamic mechanical environment, signaling gradients, and other important aspects of small intestinal biology. This review presents an overview of the complexity of small intestinal anatomy and bioengineered models that recapitulate some of these physiological aspects.
机译:影响小肠的病理学对发展中国家和发达国家的疾病负担有显着贡献,该疾病负担通过体外模型来调查疾病机制。虽然现有体外模型综合肠的选定特征,但由于解剖学和生理复杂性,通常已经分离或省略了各种重要方面。尽管在肠道生物学和病理学中重要性,但小肠的复杂的微肿瘤,异质细胞群,陡峭的氧梯度,微生物群和肠壁收缩通常不包括在小肠的体外实验模型中。各种生理方面之间的已知和未知的相互依赖性需要更复杂的体外模型。微流体技术使得可以模仿动态的机械环境,信号梯度和小肠生物学的其他重要方面。本综述概述了小肠解剖学和生物工程模型的复杂性概述,重新承载了一些这些生理方面。

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