开发用于恢复生育能力的 3D 打印卵巢模型的策略。

IF 3.1 3区 医学 Q2 MEDICINE, RESEARCH & EXPERIMENTAL
Ramya Nair, Meghana Kasturi, Vidhi Mathur, Raviraja N. Seetharam, Kirthanashri S Vasanthan
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引用次数: 0

摘要

在错综复杂的女性生理结构中,卵巢对许多重要过程的调节起着至关重要的作用。它们肩负着孕育新生命和编排微妙荷尔蒙交响乐的重任。了解卵巢的功能对于深入了解生殖、健康和生育的复杂性至关重要。此外,卵巢分泌的激素对第二性征和维持整体健康都至关重要。三维(3D)假体卵巢有可能恢复卵巢功能,并保护接受卵巢切除术或卵巢功能失调的年轻女性的生育能力。临床研究尚未开始,用于人体植入的三维卵巢组织的生产仍处于研究阶段。在制作用于体内植入的三维卵巢时,面临的主要挑战包括卵泡的维持、实现宿主组织的血管浸润以及恢复激素循环。复杂的卵巢微环境具有分隔性和刚性,这使得三维卵巢的生物仿真在生物材料选择和生物墨水成分方面具有挑战性。在动物模型中成功恢复了这些特性后,人们对用于植入的人类卵巢的开发充满了期待。这篇综述文章总结并评估了卵巢结构的最佳三维模型及其安全性和有效性问题,为今后的研究提供了具体建议。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Strategies for developing 3D printed ovarian model for restoring fertility

Strategies for developing 3D printed ovarian model for restoring fertility

Ovaries play a crucial role in the regulation of numerous essential processes that occur within the intricate framework of female physiology. They are entrusted with the responsibility of both generating a new life and orchestrating a delicate hormonal symphony. Understanding their functioning is crucial for gaining insight into the complexities of reproduction, health, and fertility. In addition, ovaries secrete hormones that are crucial for both secondary sexual characteristics and the maintenance of overall health. A three-dimensional (3D) prosthetic ovary has the potential to restore ovarian function and preserve fertility in younger females who have undergone ovariectomies or are afflicted with ovarian malfunction. Clinical studies have not yet commenced, and the production of 3D ovarian tissue for human implantation is still in the research phase. The main challenges faced while creating a 3D ovary for in vivo implantation include sustenance of ovarian follicles, achieving vascular infiltration into the host tissue, and restoring hormone circulation. The complex ovarian microenvironment that is compartmentalized and rigid makes the biomimicking of the 3D ovary challenging in terms of biomaterial selection and bioink composition. The successful restoration of these properties in animal models has led to expectations for the development of human ovaries for implantation. This review article summarizes and evaluates the optimal 3D models of ovarian structures and their safety and efficacy concerns to provide concrete suggestions for future research.

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来源期刊
Cts-Clinical and Translational Science
Cts-Clinical and Translational Science 医学-医学:研究与实验
CiteScore
6.70
自引率
2.60%
发文量
234
审稿时长
6-12 weeks
期刊介绍: Clinical and Translational Science (CTS), an official journal of the American Society for Clinical Pharmacology and Therapeutics, highlights original translational medicine research that helps bridge laboratory discoveries with the diagnosis and treatment of human disease. Translational medicine is a multi-faceted discipline with a focus on translational therapeutics. In a broad sense, translational medicine bridges across the discovery, development, regulation, and utilization spectrum. Research may appear as Full Articles, Brief Reports, Commentaries, Phase Forwards (clinical trials), Reviews, or Tutorials. CTS also includes invited didactic content that covers the connections between clinical pharmacology and translational medicine. Best-in-class methodologies and best practices are also welcomed as Tutorials. These additional features provide context for research articles and facilitate understanding for a wide array of individuals interested in clinical and translational science. CTS welcomes high quality, scientifically sound, original manuscripts focused on clinical pharmacology and translational science, including animal, in vitro, in silico, and clinical studies supporting the breadth of drug discovery, development, regulation and clinical use of both traditional drugs and innovative modalities.
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