囊性纤维化跨膜传导调节因子的相互作用组及其在男性生育中的作用:重要综述。

IF 4.5 2区 生物学 Q2 CELL BIOLOGY Journal of Cellular Physiology Pub Date : 2024-09-26 DOI:10.1002/jcp.31422
João C. Ribeiro, Bernardo C. Rodrigues, Raquel L. Bernardino, Marco G. Alves, Pedro F. Oliveira
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引用次数: 0

摘要

囊性纤维化跨膜传导调节器(CFTR)是一种由环磷酸腺苷(cAMP)调节的氯离子和碳酸氢盐离子通道,存在于许多人类细胞中。作为三磷酸腺苷(ATP)结合盒转运体超家族的成员,其独特的生化特性和作用对于多种底物在细胞膜上的转运至关重要。众所周知,CFTR 可与其他几种细胞蛋白发生物理和功能上的相互作用。因此,它的特性对于各种物质跨细胞膜转运和确保细胞正常运作至关重要。基因突变或环境因素可能会破坏 CFTR 的功能,从而导致不同的表型,因为基因变异不仅会影响 CFTR 的功能、定位和在细胞内的处理,还会影响其相互作用者的功能、定位和处理。据报道,这是包括囊性纤维化在内的各种疾病的根本原因。囊性纤维化的严重临床影响推动了对 CFTR 在肺功能中的作用的深入研究,但其对生育(尤其是男性生育)的意义却相对研究不足。然而,对 CFTR 及其在睾丸或特定睾丸细胞中的相互作用蛋白正在进行的最新研究开始揭示这一领域的奥秘。在此,我们对 CFTR、其相互作用组及其在男性生殖中的关键作用进行了全面的最新概述,重点介绍了在了解相关分子机制方面的最新发现和进展。理解这些复杂的相互作用可能会为潜在的治疗方法铺平道路,从而改善因 CFTR 功能改变而导致的男性生育能力。
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The interactome of cystic fibrosis transmembrane conductance regulator and its role in male fertility: A critical review

The cystic fibrosis transmembrane conductance regulator (CFTR) is a cyclic adenosine monophosphate (cAMP)-regulated chloride and bicarbonate ion channel found in many human cells. Its unique biochemical characteristics and role as a member of the adenosine triphosphate (ATP)-binding cassette transporters superfamily are pivotal for the transport of several substrates across cellular membranes. CFTR is known to interact, physically and functionally, with several other cellular proteins. Hence, its properties are essential for moving various substances across cell membranes and ensuring correct cell functioning. Genetic mutations or environmental factors may disrupt CFTR's function resulting in different possible phenotypes due to gene variations that affect not only CFTR's function, localization, and processing within cells, but also those of its interactors. This has been reported as an underlying cause of various diseases, including cystic fibrosis. The severe clinical implications of cystic fibrosis have driven intense research into the role of CFTR in lung function but its significance to fertility, particularly in men, has been comparatively understudied. However, ongoing and more recent research into CFTR and its interacting proteins in the testis or specific testicular cells is beginning to shed light on this field. Herein, we provide a comprehensive and up-to-date overview of the CFTR, its interactome, and its crucial role in male reproduction, highlighting recent discoveries and advancements in understanding the molecular mechanisms involved. The comprehension of these complex interactions may pave the way for potential therapeutic approaches to improve fertility of men suffering from alterations in the function of CFTR.

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来源期刊
CiteScore
14.70
自引率
0.00%
发文量
256
审稿时长
1 months
期刊介绍: The Journal of Cellular Physiology publishes reports of high biological significance in areas of eukaryotic cell biology and physiology, focusing on those articles that adopt a molecular mechanistic approach to investigate cell structure and function. There is appreciation for the application of cellular, biochemical, molecular and in vivo genetic approaches, as well as the power of genomics, proteomics, bioinformatics and systems biology. In particular, the Journal encourages submission of high-interest papers investigating the genetic and epigenetic regulation of proliferation and phenotype as well as cell fate and lineage commitment by growth factors, cytokines and their cognate receptors and signal transduction pathways that influence the expression, integration and activities of these physiological mediators. Similarly, the Journal encourages submission of manuscripts exploring the regulation of growth and differentiation by cell adhesion molecules in addition to the interplay between these processes and those induced by growth factors and cytokines. Studies on the genes and processes that regulate cell cycle progression and phase transition in eukaryotic cells, and the mechanisms that determine whether cells enter quiescence, proliferate or undergo apoptosis are also welcomed. Submission of papers that address contributions of the extracellular matrix to cellular phenotypes and physiological control as well as regulatory mechanisms governing fertilization, embryogenesis, gametogenesis, cell fate, lineage commitment, differentiation, development and dynamic parameters of cell motility are encouraged. Finally, the investigation of stem cells and changes that differentiate cancer cells from normal cells including studies on the properties and functions of oncogenes and tumor suppressor genes will remain as one of the major interests of the Journal.
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