Layton Anita T
Department of Mathematics, Duke University, P.O. Box 90320, Durham, NC 27708, USA.
Math Biosci. 2005 Oct;197(2):211-30. doi: 10.1016/j.mbs.2005.07.004.
The organization of tubules and blood vessels in the quail medullary cone is highly structured. This structural organization may result in preferential interactions among tubules and vessels, interactions that may enhance urine concentrating capability. In this study, we formulate a model framework for the urine concentrating mechanism of the quail kidney. The model simulates preferential interactions among renal tubules by representing two concentric cores and by specifying the fractions of tubules assigned to each of the concentric cores. The model equations are based on standard expressions for transmural transport and on solute and water conservation. Model results suggest that the preferential interactions among tubules enhance the urine concentration capacity of short medullary cones by reducing the diluting effect of the descending limbs on the region of the interstitium where the collecting ducts are located; however, the effects on longer cones are unclear.
鹌鹑髓质锥体中肾小管和血管的组织结构高度有序。这种结构组织可能导致肾小管和血管之间的优先相互作用,这些相互作用可能会增强尿液浓缩能力。在本研究中,我们构建了一个鹌鹑肾脏尿液浓缩机制的模型框架。该模型通过表示两个同心核心并指定分配给每个同心核心的肾小管比例来模拟肾小管之间的优先相互作用。模型方程基于跨膜转运的标准表达式以及溶质和水的守恒。模型结果表明,肾小管之间的优先相互作用通过减少降支对集合管所在间质区域的稀释作用来增强短髓质锥体的尿液浓缩能力;然而,对较长锥体的影响尚不清楚。