Advanced 3D imaging and organoid bioprinting for biomedical research and therapeutic applications

IF 15.2 1区 医学 Q1 PHARMACOLOGY & PHARMACY
Sushila Maharjan , Chenshuo Ma , Bibhor Singh , Heemin Kang , Gorka Orive , Junjie Yao , Yu Shrike Zhang
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Abstract

Organoid cultures offer a valuable platform for studying organ-level biology, allowing for a closer mimicry of human physiology compared to traditional two-dimensional cell culture systems or non-primate animal models. While many organoid cultures use cell aggregates or decellularized extracellular matrices as scaffolds, they often lack precise biochemical and biophysical microenvironments. In contrast, three-dimensional (3D) bioprinting allows precise placement of organoids or spheroids, providing enhanced spatial control and facilitating the direct fusion for the formation of large-scale functional tissues in vitro. In addition, 3D bioprinting enables fine tuning of biochemical and biophysical cues to support organoid development and maturation. With advances in the organoid technology and its potential applications across diverse research fields such as cell biology, developmental biology, disease pathology, precision medicine, drug toxicology, and tissue engineering, organoid imaging has become a crucial aspect of physiological and pathological studies. This review highlights the recent advancements in imaging technologies that have significantly contributed to organoid research. Additionally, we discuss various bioprinting techniques, emphasizing their applications in organoid bioprinting. Integrating 3D imaging tools into a bioprinting platform allows real-time visualization while facilitating quality control, optimization, and comprehensive bioprinting assessment. Similarly, combining imaging technologies with organoid bioprinting can provide valuable insights into tissue formation, maturation, functions, and therapeutic responses. This approach not only improves the reproducibility of physiologically relevant tissues but also enhances understanding of complex biological processes. Thus, careful selection of bioprinting modalities, coupled with appropriate imaging techniques, holds the potential to create a versatile platform capable of addressing existing challenges and harnessing opportunities in these rapidly evolving fields.

Abstract Image

用于生物医学研究和治疗应用的先进三维成像和类器官生物打印技术。
类器官培养物为研究器官级生物学提供了一个宝贵的平台,与传统的二维细胞培养系统或非灵长类动物模型相比,类器官培养物能够更接近地模拟人体生理学。虽然许多类器官培养物使用细胞聚集体或脱细胞细胞外基质作为支架,但它们往往缺乏精确的生物化学和生物物理微环境。相比之下,三维(3D)生物打印技术可精确放置类器官或球体,提供更强的空间控制,并促进体外形成大规模功能组织的直接融合。此外,三维生物打印还能对生化和生物物理线索进行微调,以支持类器官的发育和成熟。随着类器官技术的进步及其在细胞生物学、发育生物学、疾病病理学、精准医学、药物毒理学和组织工程学等不同研究领域的潜在应用,类器官成像已成为生理和病理研究的一个重要方面。本综述重点介绍了成像技术的最新进展,这些技术为类器官研究做出了重大贡献。此外,我们还讨论了各种生物打印技术,强调了它们在类器官生物打印中的应用。将三维成像工具集成到生物打印平台可实现实时可视化,同时便于质量控制、优化和全面的生物打印评估。同样,将成像技术与类器官生物打印技术相结合,可以为组织的形成、成熟、功能和治疗反应提供有价值的见解。这种方法不仅能提高生理相关组织的可重复性,还能加深对复杂生物过程的理解。因此,精心选择生物打印模式,再加上适当的成像技术,就有可能创造出一个多功能平台,能够应对这些快速发展领域中的现有挑战并抓住机遇。
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来源期刊
CiteScore
28.10
自引率
5.00%
发文量
294
审稿时长
15.1 weeks
期刊介绍: The aim of the Journal is to provide a forum for the critical analysis of advanced drug and gene delivery systems and their applications in human and veterinary medicine. The Journal has a broad scope, covering the key issues for effective drug and gene delivery, from administration to site-specific delivery. In general, the Journal publishes review articles in a Theme Issue format. Each Theme Issue provides a comprehensive and critical examination of current and emerging research on the design and development of advanced drug and gene delivery systems and their application to experimental and clinical therapeutics. The goal is to illustrate the pivotal role of a multidisciplinary approach to modern drug delivery, encompassing the application of sound biological and physicochemical principles to the engineering of drug delivery systems to meet the therapeutic need at hand. Importantly the Editorial Team of ADDR asks that the authors effectively window the extensive volume of literature, pick the important contributions and explain their importance, produce a forward looking identification of the challenges facing the field and produce a Conclusions section with expert recommendations to address the issues.
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