骨关节炎类器官的智能制造。

IF 5.9 1区 生物学 Q2 CELL BIOLOGY
Xukun Lyu, Jian Wang, Jiacan Su
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引用次数: 0

摘要

骨关节炎(OA)是世界上最常见的退行性关节疾病,造成了巨大的全球疾病负担。然而,其发病机制仍不完全清楚,有效的治疗策略仍然缺乏。类器官技术是指干细胞或祖细胞在三维(3D)培养条件下自组织成微型组织结构,为模拟OA的病理微环境提供了一个有前景的体外平台。该方法可用于研究疾病机制,开展高通量药物筛选和促进个性化治疗。本文就关节结构、骨性关节炎发病机制及病理表现进行综述,为类器官技术的应用奠定基础。然后研究关节类器官系统的组成部分,特别是软骨、软骨下骨、滑膜、骨骼肌和韧带类器官。此外,它详细介绍了构建OA类器官的各种策略,包括细胞选择,病理分类和制造技术的考虑。值得注意的是,本文通过将人工智能(AI)等新兴工程技术纳入类器官制造过程,引入了OA类器官智能制造的概念,从而形成了创新的软件和硬件集群。最后,本文讨论了智能OA类器官制造目前面临的挑战,并强调了这一快速发展领域的未来方向。通过对最先进的方法和挑战的全面概述,本综述预计OA类器官的智能、自动化制造将加快骨科领域的基础研究、药物发现和个性化转化应用。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Intelligent Manufacturing for Osteoarthritis Organoids.

Osteoarthritis (OA) is the most prevalent degenerative joint disease worldwide, imposing a substantial global disease burden. However, its pathogenesis remains incompletely understood, and effective treatment strategies are still lacking. Organoid technology, in which stem cells or progenitor cells self-organise into miniature tissue structures under three-dimensional (3D) culture conditions, provides a promising in vitro platform for simulating the pathological microenvironment of OA. This approach can be employed to investigate disease mechanisms, carry out high-throughput drug screening and facilitate personalised therapies. This review summarises joint structure, OA pathogenesis and pathological manifestations, thereby establishing the disease context for the application of organoid technology. It then examines the components of the arthrosis organoid system, specifically addressing cartilage, subchondral bone, synovium, skeletal muscle and ligament organoids. Furthermore, it details various strategies for constructing OA organoids, including considerations of cell selection, pathological classification and fabrication techniques. Notably, this review introduces the concept of intelligent manufacturing of OA organoids by incorporating emerging engineering technologies such as artificial intelligence (AI) into the organoid fabrication process, thereby forming an innovative software and hardware cluster. Lastly, this review discusses the challenges currently facing intelligent OA organoid manufacturing and highlights future directions for this rapidly evolving field. By offering a comprehensive overview of state-of-the-art methodologies and challenges, this review anticipates that intelligent, automated fabrication of OA organoids will expedite fundamental research, drug discovery and personalised translational applications in the orthopaedic field.

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来源期刊
Cell Proliferation
Cell Proliferation 生物-细胞生物学
CiteScore
14.80
自引率
2.40%
发文量
198
审稿时长
1 months
期刊介绍: Cell Proliferation Focus: Devoted to studies into all aspects of cell proliferation and differentiation. Covers normal and abnormal states. Explores control systems and mechanisms at various levels: inter- and intracellular, molecular, and genetic. Investigates modification by and interactions with chemical and physical agents. Includes mathematical modeling and the development of new techniques. Publication Content: Original research papers Invited review articles Book reviews Letters commenting on previously published papers and/or topics of general interest By organizing the information in this manner, readers can quickly grasp the scope, focus, and publication content of Cell Proliferation.
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