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生物工程人眼角膜晶状体中骨髓基质细胞和人重组神经生长因子对新型糖尿病视网膜病变模型的影响。

Effects of mesenchymal stromal cells and human recombinant Nerve Growth Factor delivered by bioengineered human corneal lenticule on an innovative model of diabetic retinopathy.

机构信息

Department of Medicine and Aging Science, Center for Advanced Studies and Technology-CAST, University G. d'Annunzio of Chieti-Pescara, Chieti, Italy.

University Eye Hospital, Centre for Ophthalmology, University of Tübingen, Tübingen, Germany.

出版信息

Front Endocrinol (Lausanne). 2024 Oct 15;15:1462043. doi: 10.3389/fendo.2024.1462043. eCollection 2024.

Abstract

INTRODUCTION

Diabetic retinopathy (DR) is a microvascular complication of diabetes in which neurodegeneration has been recently identified as a driving force. In the last years, mesenchymal stromal cells (MSCs) and neurotrophins like Nerve Growth Factor (NGF), have garnered significant attention as innovative therapeutic approaches targeting DR-associated neurodegeneration. However, delivering neurotrophic factors directly in the eye remains a challenge. Hence, this study evaluated the effects of MSCs from human amniotic fluids (hAFSCs) and recombinant human NGF (rhNGF) delivered by human corneal lenticule (hCL) on a high glucose (HG) induced model simulating the molecular mechanisms driving DR.

METHODS

Porcine neuroretinal explants exposed to HG (25 mM for four days) were used to mimic DR . hCLs collected from donors undergoing refractive surgery were decellularized using 0.1% sodium dodecyl sulfate and then bioengineered with hAFSCs, microparticles loaded with rhNGF (rhNGF-PLGA-MPs), or both simultaneously. Immunofluorescence (IF) and scanning electron microscopy (SEM) analyses were performed to confirm the hCLs bioengineering process. To assess the effects of hAFSCs and rhNGF, bioengineered hCLs were co-cultured with HG-treated neuroretinal explants and following four days RT-PCR and cytokine array experiments for inflammatory, oxidative, apoptotic, angiogenic and retinal cells markers were performed.

RESULTS

Data revealed that HG-treated neuroretinal explants exhibit a characteristic DR-phenotype, including increased level of NF-kB, NOS2, NRF2 GFAP, VEGFA, Bax/Bcl2 ratio and decreased expression of TUBB3 and Rho. Then, the feasibility to bioengineer decellularized hCLs with hAFSCs and rhNGF was demonstrated. Interestingly, co-culturing hAFSCs- and rhNGF- bioengineered hCLs with HG-treated neuroretinal explants for four days significantly reduced the expression of inflammatory, oxidative, apoptotic, angiogenic and increased retinal markers.

CONCLUSION

Overall, we found for the first time that hAFSCs and rhNGF were able to modulate the molecular mechanisms involved in DR and that bioengineered hCLs represents a promising ocular drug delivery system of hAFSCs and rhNGF for eye diseases treatment. In addition, results demonstrated that porcine neuroretinal explants treated with HG is a useful model to reproduce the DR pathophysiology.

摘要

简介

糖尿病性视网膜病变(DR)是糖尿病的一种微血管并发症,最近发现神经退行性变是其驱动力。在过去的几年中,间充质基质细胞(MSCs)和神经营养因子,如神经生长因子(NGF),作为针对 DR 相关神经退行性变的创新治疗方法引起了广泛关注。然而,直接将神经营养因子递送至眼睛仍然是一个挑战。因此,本研究评估了人羊膜间充质干细胞(hAFSCs)和重组人神经生长因子(rhNGF)通过人角膜透镜(hCL)递送对模拟 DR 驱动分子机制的高葡萄糖(HG)诱导模型的影响。

方法

用 HG(25mM 孵育 4 天)处理猪神经视网膜外植体,模拟 DR。从接受屈光手术的供体中收集 hCL,并用 0.1%十二烷基硫酸钠进行脱细胞处理,然后与 hAFSCs、负载 rhNGF 的微粒(rhNGF-PLGA-MPs)或两者同时进行生物工程化。进行免疫荧光(IF)和扫描电子显微镜(SEM)分析以确认 hCL 生物工程化过程。为了评估 hAFSCs 和 rhNGF 的作用,将生物工程化的 hCL 与 HG 处理的神经视网膜外植体共培养,然后进行 RT-PCR 和细胞因子阵列实验,以评估炎症、氧化、凋亡、血管生成和视网膜细胞标志物。

结果

数据显示,HG 处理的神经视网膜外植体表现出典型的 DR 表型,包括 NF-kB、NOS2、NRF2、GFAP、VEGFA、Bax/Bcl2 比值增加,以及 TUBB3 和 Rho 表达降低。然后,证明了用 hAFSCs 和 rhNGF 生物工程化脱细胞 hCL 的可行性。有趣的是,将 hAFSCs 和 rhNGF 生物工程化的 hCL 与 HG 处理的神经视网膜外植体共培养 4 天后,显著降低了炎症、氧化、凋亡、血管生成和增加的视网膜标志物的表达。

结论

总的来说,我们首次发现 hAFSCs 和 rhNGF 能够调节 DR 相关的分子机制,并且生物工程化的 hCL 代表了一种有前途的眼部药物递送系统,可用于 hAFSCs 和 rhNGF 的眼部疾病治疗。此外,结果表明,用 HG 处理的猪神经视网膜外植体是一种有用的模型,可用于复制 DR 的病理生理学。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/41f6/11518713/c67f6a5376a1/fendo-15-1462043-g001.jpg

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