Mouse IPK: A Powerful Tool to Partially Characterize Renal Reperfusion and Preservation Injury.

Susanne L Lindell, Natascha Williams, Ilia Brusilovsky, Martin J Mangino
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引用次数: 3

Abstract

Main problem: The molecular basis of renal preservation injury is not well understood. Since mouse kidney transplantation models are not useful in this setting, a mouse Isolated Perfused Kidney (IPK) model was developed to take advantage of mouse genetic design capabilities for testing complex biological hypothesis regarding mechanisms of preservation injury in transplanted kidneys.

Methods: Mouse kidneys were recovered, preserved, and reperfused in-vitro with an acellular physiological crystalloid buffer containing hypo-physiological oncotic pressure. Outcome variables were measured to predict preservation injury. These included perfusate flow, vascular resistance, VO2, urine output, GFR, proteinuria, LDH release, and edema. The model was tested by subjecting mouse kidneys to cold storage in University of Wisconsin (UW) solution for 24, 48, or 72 hours (time-dependent preservation injury), cold storage in Euro-Collins Solution (solution dependent preservation injury), and exposure to prior warm ischemia (DCD dependent preservation injury).

Results: The model accurately predicted the qualitative and quantitative changes in the readouts based on known responses to preservation injury in kidney transplants in large animals and humans.

Conclusion: The mouse IPK accurately predicts many of the variables associated with renal organ preservation injury in the very early phases of reperfusion and may provide an attractive model for studying the molecular basis of renal preservation injury.

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小鼠IPK:部分表征肾再灌注和保存损伤的有力工具。
主要问题:肾保存损伤的分子基础尚不清楚。由于小鼠肾移植模型在这种情况下是无用的,因此开发了小鼠分离灌注肾(IPK)模型,以利用小鼠遗传设计能力来测试关于移植肾脏保存损伤机制的复杂生物学假设。方法:用含低生理性肿瘤压力的脱细胞生理晶体缓冲液对小鼠肾脏进行修复、保存和体外再灌注。测量结果变量以预测保存损伤。这些指标包括灌注流量、血管阻力、VO2、尿量、GFR、蛋白尿、LDH释放和水肿。通过将小鼠肾脏置于威斯康星大学(UW)溶液中冷藏24、48或72小时(时间依赖性保存损伤),在Euro-Collins溶液中冷藏(溶液依赖性保存损伤),以及暴露于先前的热缺血(DCD依赖性保存损伤)来测试模型。结果:该模型基于已知的大动物和人类肾移植保存损伤反应,准确预测了读数的定性和定量变化。结论:小鼠IPK可准确预测再灌注早期肾器官保存损伤的许多相关变量,为研究肾保存损伤的分子基础提供了一个有吸引力的模型。
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