A Multicellular Vascular Model of the Renal Myogenic Response
The myogenic response is a key autoregulatory mechanism in the mammalian kidney. Triggered by blood pressure perturbations, it is well established that the myogenic response is initiated in the renal afferent arteriole and mediated by alterations in muscle tone and vascular diameter that counterbala...
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doaj-446631c9ebd4466e95b8e1aaa95181422020-11-25T00:58:05ZengMDPI AGProcesses2227-97172018-07-01678910.3390/pr6070089pr6070089A Multicellular Vascular Model of the Renal Myogenic ResponseMaria-Veronica Ciocanel0Tracy L. Stepien1Ioannis Sgouralis2Anita T. Layton3Mathematical Biosciences Institute, The Ohio State University, Columbus, OH 43210, USADepartment of Mathematics, University of Arizona, Tucson, AZ 85719, USANational Institute for Mathematical and Biological Synthesis, University of Tennessee, Knoxville, TN 37996, USADepartments of Mathematics, Biomedical Engineering, and Medicine, Duke University, Durham, NC 27708, USAThe myogenic response is a key autoregulatory mechanism in the mammalian kidney. Triggered by blood pressure perturbations, it is well established that the myogenic response is initiated in the renal afferent arteriole and mediated by alterations in muscle tone and vascular diameter that counterbalance hemodynamic perturbations. The entire process involves several subcellular, cellular, and vascular mechanisms whose interactions remain poorly understood. Here, we model and investigate the myogenic response of a multicellular segment of an afferent arteriole. Extending existing work, we focus on providing an accurate—but still computationally tractable—representation of the coupling among the involved levels. For individual muscle cells, we include detailed Ca2+ signaling, transmembrane transport of ions, kinetics of myosin light chain phosphorylation, and contraction mechanics. Intercellular interactions are mediated by gap junctions between muscle or endothelial cells. Additional interactions are mediated by hemodynamics. Simulations of time-independent pressure changes reveal regular vasoresponses throughout the model segment and stabilization of a physiological range of blood pressures (80–180 mmHg) in agreement with other modeling and experimental studies that assess steady autoregulation. Simulations of time-dependent perturbations reveal irregular vasoresponses and complex dynamics that may contribute to the complexity of dynamic autoregulation observed in vivo. The ability of the developed model to represent the myogenic response in a multiscale and realistic fashion, under feasible computational load, suggests that it can be incorporated as a key component into larger models of integrated renal hemodynamic regulation.http://www.mdpi.com/2227-9717/6/7/89nonlinear modelsmooth musclegap junctionsmicrocirculationkidneyhemodynamics |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Maria-Veronica Ciocanel Tracy L. Stepien Ioannis Sgouralis Anita T. Layton |
spellingShingle |
Maria-Veronica Ciocanel Tracy L. Stepien Ioannis Sgouralis Anita T. Layton A Multicellular Vascular Model of the Renal Myogenic Response Processes nonlinear model smooth muscle gap junctions microcirculation kidney hemodynamics |
author_facet |
Maria-Veronica Ciocanel Tracy L. Stepien Ioannis Sgouralis Anita T. Layton |
author_sort |
Maria-Veronica Ciocanel |
title |
A Multicellular Vascular Model of the Renal Myogenic Response |
title_short |
A Multicellular Vascular Model of the Renal Myogenic Response |
title_full |
A Multicellular Vascular Model of the Renal Myogenic Response |
title_fullStr |
A Multicellular Vascular Model of the Renal Myogenic Response |
title_full_unstemmed |
A Multicellular Vascular Model of the Renal Myogenic Response |
title_sort |
multicellular vascular model of the renal myogenic response |
publisher |
MDPI AG |
series |
Processes |
issn |
2227-9717 |
publishDate |
2018-07-01 |
description |
The myogenic response is a key autoregulatory mechanism in the mammalian kidney. Triggered by blood pressure perturbations, it is well established that the myogenic response is initiated in the renal afferent arteriole and mediated by alterations in muscle tone and vascular diameter that counterbalance hemodynamic perturbations. The entire process involves several subcellular, cellular, and vascular mechanisms whose interactions remain poorly understood. Here, we model and investigate the myogenic response of a multicellular segment of an afferent arteriole. Extending existing work, we focus on providing an accurate—but still computationally tractable—representation of the coupling among the involved levels. For individual muscle cells, we include detailed Ca2+ signaling, transmembrane transport of ions, kinetics of myosin light chain phosphorylation, and contraction mechanics. Intercellular interactions are mediated by gap junctions between muscle or endothelial cells. Additional interactions are mediated by hemodynamics. Simulations of time-independent pressure changes reveal regular vasoresponses throughout the model segment and stabilization of a physiological range of blood pressures (80–180 mmHg) in agreement with other modeling and experimental studies that assess steady autoregulation. Simulations of time-dependent perturbations reveal irregular vasoresponses and complex dynamics that may contribute to the complexity of dynamic autoregulation observed in vivo. The ability of the developed model to represent the myogenic response in a multiscale and realistic fashion, under feasible computational load, suggests that it can be incorporated as a key component into larger models of integrated renal hemodynamic regulation. |
topic |
nonlinear model smooth muscle gap junctions microcirculation kidney hemodynamics |
url |
http://www.mdpi.com/2227-9717/6/7/89 |
work_keys_str_mv |
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