Understanding the role of electrostatic force, van der Waals force, and osmotic pressure in retinal function and barrier integrity.

IF 2.4 Q2 OPHTHALMOLOGY
Khayry Al-Shami, Jafar Shatnawi, Khaled Qasagsah, Salman Almurabi, Ghayda' Shatnawi, Tasnim Darawsheh, Shahed Karaja
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引用次数: 0

Abstract

The retina's intricate interplay of forces and structures, with a focus on the retinal pigment epithelium (RPE) and photoreceptors, is essential for retinal health and function. Among these forces, electrostatic forces play a crucial role, working alongside van der Waals forces and oncotic pressure to maintain the retina's attachment to the RPE and ensure the integrity of the blood-retina barrier (BRB). The composition of the interphotoreceptor matrix (IPM), influenced by molecules like Retbindin secreted by rod photoreceptors, further modulates these forces, affecting processes like visual pigment regeneration and metabolite exchange. In the context of retinal tissue engineering and new technologies for support and cells-based treatments, electrostatic forces are harnessed to optimize nutrient supply to transplanted RPE cells by reducing pore size in electrospun polymer membranes. Scaffold-based strategies for retinal repair also utilize electrostatic, hydrophobic, van der Waals, and hydrogen bonding forces to enhance cell adhesion and growth, mimicking the basement membrane. Understanding the complex dynamics of these forces in retinal-RPE interactions holds promise for innovative treatments for retinal disorders, emphasizing the intricate balance between electrostatic forces, van der Waals forces, oncotic pressure, and more. These insights open exciting avenues for research and therapeutic interventions in ophthalmology. Additionally, van der Waals forces are explored in the context of cell adhesion, and their potential role in retinal health is discussed, particularly in relation to melanin's protective properties against blue light-induced damage. Tissue engineering approaches, both scaffold-free and scaffold-based, are discussed, highlighting the importance of physical surface treatments and adhesive forces in preserving engineered RPE tissue. Overall, this abstract provides a comprehensive overview of the multifaceted role of electrostatic and other forces in retinal biology and their implications for future research and clinical applications in ophthalmology.

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了解静电力,范德华力和渗透压在视网膜功能和屏障完整性中的作用。
视网膜的力量和结构的复杂相互作用,重点是视网膜色素上皮(RPE)和光感受器,是视网膜健康和功能的必要条件。在这些力中,静电力起着至关重要的作用,它与范德华力和肿瘤压力一起维持视网膜对RPE的附着,并确保血视网膜屏障(BRB)的完整性。受视杆光感受器分泌的rebindin等分子的影响,光感受器间基质(IPM)的组成进一步调节这些作用力,影响视觉色素再生和代谢物交换等过程。在视网膜组织工程和支持和细胞治疗新技术的背景下,利用静电力通过减小静电纺聚合物膜的孔径来优化移植RPE细胞的营养供应。基于支架的视网膜修复策略还利用静电、疏水、范德华和氢键力来增强细胞的粘附和生长,模拟基底膜。了解视网膜- rpe相互作用中这些力的复杂动力学为视网膜疾病的创新治疗带来了希望,强调静电力、范德华力、肿瘤压力等之间的复杂平衡。这些见解为眼科的研究和治疗干预开辟了令人兴奋的途径。此外,范德华力在细胞粘附的背景下进行了探索,并讨论了它们在视网膜健康中的潜在作用,特别是与黑色素对蓝光诱导损伤的保护特性有关。讨论了组织工程方法,包括无支架和基于支架的方法,强调了物理表面处理和粘附力在保存工程RPE组织中的重要性。总的来说,这篇摘要提供了静电和其他力量在视网膜生物学中的多方面作用及其对未来眼科研究和临床应用的影响的全面概述。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
CiteScore
3.50
自引率
4.30%
发文量
81
审稿时长
19 weeks
期刊介绍: International Journal of Retina and Vitreous focuses on the ophthalmic subspecialty of vitreoretinal disorders. The journal presents original articles on new approaches to diagnosis, outcomes of clinical trials, innovations in pharmacological therapy and surgical techniques, as well as basic science advances that impact clinical practice. Topical areas include, but are not limited to: -Imaging of the retina, choroid and vitreous -Innovations in optical coherence tomography (OCT) -Small-gauge vitrectomy, retinal detachment, chromovitrectomy -Electroretinography (ERG), microperimetry, other functional tests -Intraocular tumors -Retinal pharmacotherapy & drug delivery -Diabetic retinopathy & other vascular diseases -Age-related macular degeneration (AMD) & other macular entities
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