Advances in biomaterials-based tissue engineering for regeneration of female reproductive tissues

不育 再生(生物学) 生殖系统 生物 女性生殖系统 组织工程 子宫 生殖技术 医学 生物医学工程 解剖 怀孕 胚胎 细胞生物学 遗传学 胚胎发生
作者
Yong Ho Kim,Hyung‐Sik Kim,In‐Sun Hong
出处
期刊:Biofabrication [IOP Publishing]
被引量:1
标识
DOI:10.1088/1758-5090/adae38
摘要

Abstract The anatomical components of the female reproductive system—comprising the ovaries, uterus, cervix, vagina, and fallopian tubes—interact intricately to provide the structural and hormonal support essential for reproduction. However, this system is susceptible to various detrimental factors, both congenital and acquired, that can impair fertility and adversely affect quality of life. Recent advances in bioengineering have led to the development of sophisticated three-dimensional (3D) models that mimic the complex architecture and functionality of reproductive organs. These models, incorporating diverse cell types and tissue layers, are crucial for understanding physiological processes within the reproductive tract. They offer insights into decidualization, ovulation, folliculogenesis, and the progression of reproductive cancers, thereby enhancing personalized medical treatments and addressing female infertility. This review highlights the pivotal role of tissue engineering in diagnosing and treating female infertility, emphasizing the importance of considering factors like biocompatibility, biomaterial selection, and mechanical properties in the design of bioengineered systems. The challenge of replicating the functionally specialized and structurally complex organs, such as the uterus and ovary, underscores the need for reliable techniques that improve morphological and functional restoration. Despite substantial progress, the goal of creating a fully artificial female reproductive system is still a challenge. Nonetheless, the recent fabrication of artificial ovaries, uteruses, cervixes, and vaginas marks significant advancements toward this aim. Looking forward, the challenges in bioengineering are expected to spur further innovations in both basic and applied sciences, potentially hastening the clinical adoption of these technologies.
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