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首页> 外文期刊>Scientific reports. >Development of a Functional Glomerulus at the Organ Level on a Chip to Mimic Hypertensive Nephropathy
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Development of a Functional Glomerulus at the Organ Level on a Chip to Mimic Hypertensive Nephropathy

机译:在芯片上的器官水平上的函数肾小球的研制为模仿高血压肾病

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Glomerular hypertension is an important factor exacerbating glomerular diseases to end-stage renal diseases because, ultimately, it results in glomerular sclerosis (especially in hypertensive and diabetic nephropathy). The precise mechanism of glomerular sclerosis caused by glomerular hypertension is unclear, due partly to the absence of suitable in vitro or in vivo models capable of mimicking and regulating the complex mechanical forces and/or organ-level disease processes. We developed a "glomerulus-on-a-chip" (GC) microfluidic device. This device reconstitutes the glomerulus with organ-level glomerular functions to create a disease model-on-a chip that mimics hypertensive nephropathy in humans. It comprises two channels lined by closely opposed layers of glomerular endothelial cells and podocytes that experience fluid flow of physiological conditions to mimic the glomerular microenvironment in vivo. Our results revealed that glomerular mechanical forces have a crucial role in cellular cytoskeletal rearrangement as well as the damage to cells and their junctions that leads to increased glomerular leakage observed in hypertensive nephropathy. Results also showed that the GC could readily and flexibly meet the demands of a renal-disease model. The GC could provide drug screening and toxicology testing, and create potential new personalized and accurate therapeutic platforms for glomerular disease.
机译:肾小球高血压是加剧肾小球疾病到终末期肾病的重要因素,因为它最终导致肾小球硬化症(特别是在高血压和糖尿病肾病中)。由肾小球高血压引起的肾小球硬化的精确机制尚不清楚,由于能够模仿和调节复杂的机械力和/或器官级疾病过程的适当体外或体内模型的不存在。我们开发了一种“胶束上的薄膜”(GC)微流体装置。该装置与器官级肾小球作用重建肾小球,以创建疾病模型 - 在人类中模仿高血压肾病的芯片。它包括由紧密相对的肾小球内皮细胞和幽米细胞层内衬的两个通道,其经历生理条件的流体流动以模仿体内肾小球微环境。我们的研究结果表明,肾小球机械力在细胞细胞骨骼重排中具有至关重要的作用,以及对细胞及其结的损伤导致高血压肾病中观察到增加肾小球渗漏。结果还表明,GC可以容易地和灵活地满足肾病模型的需求。 GC可以提供药物筛选和毒理学测试,并为肾小球疾病创造潜在的新个性化和准确的治疗平台。

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