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医学中3D培养的前景:变革疾病研究与治疗应用

Perspective of 3D culture in medicine: transforming disease research and therapeutic applications.

作者信息

Park Chan Hum, Park Jung Ho, Suh Yong Joon

机构信息

Nano-Bio Regenerative Medical Institute, College of Medicine, Hallym University, Chuncheon, Republic of Korea.

Departments of Otorhinolaryngology-Head and Neck Surgery, Chuncheon Sacred Heart Hospital, School of Medicine, Hallym University, Chuncheon, Republic of Korea.

出版信息

Front Bioeng Biotechnol. 2024 Dec 19;12:1491669. doi: 10.3389/fbioe.2024.1491669. eCollection 2024.

Abstract

UNLABELLED

3D cell culture is gaining momentum in medicine due to its ability to mimic real tissues () and provide more accurate biological data compared to traditional methods. This review explores the current state of 3D cell culture in medicine and discusses future directions, including the need for standardization and simpler protocols to facilitate wider use in research.

PURPOSE

3D cell culture develops life sciences by mimicking the natural cellular environment. Cells in 3D cultures grow in three dimensions and interact with a matrix, fostering realistic cell behavior and interactions. This enhanced model offers significant advantages for diverse research areas.

METHODS

By mimicking the cellular organization and functionalities found in human tissues, 3D cultures provide superior platforms for studying complex diseases like cancer and neurodegenerative disorders. This enables researchers to gain deeper insights into disease progression and identify promising therapeutic targets with greater accuracy. 3D cultures also play a crucial role in drug discovery by allowing researchers to effectively assess potential drugs' safety and efficacy.

RESULTS

3D cell culture's impact goes beyond disease research. It holds promise for tissue engineering. By replicating the natural tissue environment and providing a scaffold for cell growth, 3D cultures pave the way for regenerating damaged tissues, offering hope for treating burns, organ failure, and musculoskeletal injuries. Additionally, 3D cultures contribute to personalized medicine. Researchers can use patient-derived cells to create personalized disease models and identify the most effective treatment for each individual.

CONCLUSION

With ongoing advancements in cell imaging techniques, the development of novel biocompatible scaffolds and bioreactor systems, and a deeper understanding of cellular behavior within 3D environments, 3D cell culture technology stands poised to revolutionize various aspects of healthcare and scientific discovery.

摘要

未标注

由于能够模拟真实组织并与传统方法相比提供更准确的生物学数据,3D细胞培养在医学领域正获得越来越多的关注。本综述探讨了3D细胞培养在医学领域的现状,并讨论了未来的发展方向,包括标准化的必要性以及更简单的方案,以促进其在研究中的更广泛应用。

目的

3D细胞培养通过模拟自然细胞环境推动生命科学发展。3D培养中的细胞在三维空间中生长并与基质相互作用,促进了真实的细胞行为和相互作用。这种增强的模型为不同的研究领域提供了显著优势。

方法

通过模拟人体组织中的细胞组织和功能,3D培养为研究癌症和神经退行性疾病等复杂疾病提供了优越的平台。这使研究人员能够更深入地了解疾病进展,并更准确地确定有前景的治疗靶点。3D培养在药物发现中也起着关键作用,使研究人员能够有效地评估潜在药物的安全性和有效性。

结果

3D细胞培养的影响不仅限于疾病研究。它在组织工程方面也有前景。通过复制自然组织环境并为细胞生长提供支架,3D培养为受损组织的再生铺平了道路,为治疗烧伤、器官衰竭和肌肉骨骼损伤带来了希望。此外,3D培养有助于个性化医疗。研究人员可以使用患者来源的细胞创建个性化疾病模型,并为每个个体确定最有效的治疗方法。

结论

随着细胞成像技术的不断进步、新型生物相容性支架和生物反应器系统的开发以及对3D环境中细胞行为的更深入理解,3D细胞培养技术有望彻底改变医疗保健和科学发现的各个方面。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/9ffb/11693738/c5dfd3dd89e2/fbioe-12-1491669-g001.jpg

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