生物材料导向类肝器官研究工具的现状与展望

Q1 Medicine
Sana Ahmed , Eman Alshehri , Sarah Nazneen , Fayrouz Attia , Dalia Obeid , Hanan Almuzaini , Alaa Alzahrani , Jahan Salma , Iriya Fujitsuka , Abdullah M. Assiri , Dieter C. Broering , Raja Chinnappan , Ahmed Yaqinuddin , Tanveer Ahmad Mir
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引用次数: 0

摘要

肝脏是人体最大的固体器官,参与一系列重要的生理活动,主要是支持新陈代谢、消化、营养储存和解毒。由于疾病或手术干预引起的肝功能障碍往往导致严重的危及生命的并发症或死亡。因此,模拟关键功能特征的体外肝脏模型被认为是肝脏疾病研究和新治疗剂开发的可靠选择。此外,它们可以克服传统单层培养和动物相关实验在评估新治疗剂和药物分子反应方面的局限性。近年来,类器官技术的出现和进步极大地促进了可靠的体外肝脏模型的发展,用于各种生物医学和药理学应用。然而,类器官培养主要依赖于肿瘤来源的细胞外基质,如Matrigel,由于其异种性和可变成分,这带来了挑战。因此,使用不含matrigel的水凝胶材料创建类器官模型可以显著改善再生医学和实验研究的结果。在这篇综述中,我们提供了快速发展的生物材料类器官的研究综述。然后,我们概述了制备方法和应用不同水凝胶用于工程肝类器官模型的最相关研究。最后,我们讨论了水凝胶在工程下一代肝类器官模型转化应用中的挑战、未来前景和机遇。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Current advances and prospects in biomaterials-guided tools for liver organoids research
Liver is the largest solid organ in the human body engaged in an array of critical physiological activities that primarily support metabolism, digestion, nutrient storage, detoxification. Liver dysfunction due to disease or surgical intervention often leads to severe life-threatening complications or death in humans. Therefore, in vitro liver models that mimic key functional characteristics are considered a reliable option for the study of liver diseases and the development of new therapeutic agents. Furthermore, they can overcome the limitations of conventional monolayer cultures and animal related experiments in assessing the response of new therapeutic agents and drug molecules. In recent years, the emergence and advancement of organoid technology has greatly facilitated the development of reliable in vitro liver models for a variety of biomedical and pharmacological applications. However, organoid culture primarily relies on tumor-derived extracellular matrix, such as Matrigel, which pose challenges due to its xenogeneic nature and variable composition. Therefore, creating organoid models using Matrigel-free hydrogel materials could significantly improve the outcomes of regenerative medicine and experimental studies. In this review, we provide an overview of rapidly evolving biomaterials for organoid research. We then outline preparation methods and the most relevant studies applying different hydrogels for engineering liver organoid models. Finally, we discuss the challenges, future perspectives, and opportunities of hydrogels in engineering next-generation liver organoid models for translational applications.
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来源期刊
Engineered regeneration
Engineered regeneration Biomaterials, Medicine and Dentistry (General), Biotechnology, Biomedical Engineering
CiteScore
22.90
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0.00%
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0
审稿时长
33 days
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