Literature DB >> 25223232

Three-dimensional simulation of urine concentrating mechanism in a functional unit of rat outer medulla. I. Model structure and base case results.

Salman Sohrabi1, Mohammad Said Saidi2, Maryam Saadatmand3, Mohamad Hossein Banazadeh1, Bahar Firoozabadi1.   

Abstract

The urine formation and excretion system have long been of interest for mathematicians and physiologists to elucidate the obscurities within the process happens in renal tissue. In this study, a novel three-dimensional approach is utilized for modeling the urine concentrating mechanism in rat renal outer medulla which is essentially focused on demonstrating the significance of tubule's architecture revealed in anatomic studies and physiological literature. Since nephrons and vasculatures work interdependently through a highly structured arrangement in outer medulla which is dominated by vascular bundles, a detailed functional unit is proposed based on this specific configuration. Furthermore, due to relatively lesser influence of vasa recta on interstitial medullary osmolality and osmotic gradients as well as model structure simplicity, central core assumption is employed. The model equations are based on three spatial dimensional mass, momentum and species transport equations as well as standard expressions for solutes and water transmural transport. Our model can simulate preferential interactions between different tubules and it is shown that such interactions promote solute cycling and subsequently, enhance urine-concentrating capability. The numerical results are well consistent with tissue slice experiments and moreover, our model predicts more corticomedullary osmolality gradient in outer medulla than previous influential 1-D simulations.
Copyright © 2014 Elsevier Inc. All rights reserved.

Entities:  

Keywords:  Renal outer medulla; Three-dimensional modeling; Tubule's architecture; Urine concentrating mechanism

Mesh:

Year:  2014        PMID: 25223232     DOI: 10.1016/j.mbs.2014.08.010

Source DB:  PubMed          Journal:  Math Biosci        ISSN: 0025-5564            Impact factor:   2.144


  2 in total

1.  A Cellular Model of Shear-Induced Hemolysis.

Authors:  Salman Sohrabi; Yaling Liu
Journal:  Artif Organs       Date:  2017-01-03       Impact factor: 3.094

2.  Modeling thermal inkjet and cell printing process using modified pseudopotential and thermal lattice Boltzmann methods.

Authors:  Salman Sohrabi; Yaling Liu
Journal:  Phys Rev E       Date:  2018-03       Impact factor: 2.529

  2 in total

北京卡尤迪生物科技股份有限公司 © 2022-2023.