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一种微流控芯片器官:迈向牙科骨组织工程应用的下一个十年。

A microfluidic organ-on-a-chip: into the next decade of bone tissue engineering applied in dentistry.

作者信息

Syahruddin Muhammad Hidayat, Anggraeni Rahmi, Ana Ika Dewi

机构信息

Postgraduate Student, Dental Science Doctoral Study Program, Faculty of Dentistry, Universitas Gadjah Mada, Yogyakarta, 55281, Indonesia.

Research Center for Preclinical & Clinical Medicine, National Research & Innovation Agency of the Republic of Indonesia, Cibinong Science Center, Bogor, 16915, Indonesia.

出版信息

Future Sci OA. 2023 Sep 8;9(10):FSO902. doi: 10.2144/fsoa-2023-0061. eCollection 2023 Dec.

Abstract

A comprehensive understanding of the complex physiological and pathological processes associated with alveolar bones, their responses to different therapeutics strategies, and cell interactions with biomaterial becomes necessary in precisely treating patients with severe progressive periodontitis, as a bone-related issue in dentistry. However, existing monolayer cell culture or pre-clinical models have been unable to mimic the complex physiological, pathological and regeneration processes in the bone microenvironment in response to different therapeutic strategies. In this point, 'organ-on-a-chip' (OOAC) technology, specifically 'alveolar-bone-on-a-chip', is expected to resolve the problems by better imitating infection site microenvironment and microphysiology within the oral tissues. The OOAC technology is assessed in this study toward better approaches in disease modeling and better therapeutics strategy for bone tissue engineering applied in dentistry.

摘要

作为牙科领域与骨骼相关的问题,要精确治疗重度进行性牙周炎患者,就必须全面了解与牙槽骨相关的复杂生理和病理过程、它们对不同治疗策略的反应以及细胞与生物材料的相互作用。然而,现有的单层细胞培养或临床前模型无法模拟骨微环境中对不同治疗策略作出反应的复杂生理、病理和再生过程。在这一点上,“芯片器官”(OOAC)技术,特别是“牙槽骨芯片”,有望通过更好地模拟口腔组织内的感染部位微环境和微生理学来解决这些问题。本研究对OOAC技术进行了评估,以寻求更好的疾病建模方法和应用于牙科的骨组织工程治疗策略。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/7474/10518836/f33861793fd4/fsoa-09-902-g1.jpg

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