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A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)

We present a constrained mixture-micturition-growth (CMMG) model for the bladder. It simulates bladder mechanics, voiding function (micturition) and tissue adaptations in response to altered biomechanical conditions. The CMMG model is calibrated with both in vivo and in vitro data from healthy male...

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Detalles Bibliográficos
Autores principales: Cheng, Fangzhou, Watton, Paul N., Pederzani, Giulia, Kurobe, Masahiro, Takaoka, Ei-ichiro, Chapple, Chris, Birder, Lori, Yoshimura, Naoki, Robertson, Anne M.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835014/
https://www.ncbi.nlm.nih.gov/pubmed/35863296
http://dx.doi.org/10.1016/j.jmbbm.2022.105337
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author Cheng, Fangzhou
Watton, Paul N.
Pederzani, Giulia
Kurobe, Masahiro
Takaoka, Ei-ichiro
Chapple, Chris
Birder, Lori
Yoshimura, Naoki
Robertson, Anne M.
author_facet Cheng, Fangzhou
Watton, Paul N.
Pederzani, Giulia
Kurobe, Masahiro
Takaoka, Ei-ichiro
Chapple, Chris
Birder, Lori
Yoshimura, Naoki
Robertson, Anne M.
author_sort Cheng, Fangzhou
collection PubMed
description We present a constrained mixture-micturition-growth (CMMG) model for the bladder. It simulates bladder mechanics, voiding function (micturition) and tissue adaptations in response to altered biomechanical conditions. The CMMG model is calibrated with both in vivo and in vitro data from healthy male rat urinary bladders (cystometry, bioimaging of wall structure, mechanical testing) and applied to simulate the growth and remodeling (G&R) response to partial bladder outlet obstruction (BOO). The bladder wall is represented as a multi-layered, anisotropic, nonlinear constrained mixture. A short time scale micturition component of the CMMG model accounts for the active and passive mechanics of voiding. Over a second, longer time scale, G&R algorithms for the evolution of both cellular and extracellular constituents act to maintain/restore bladder (homeostatic) functionality. The CMMG model is applied to a spherical membrane model of the BOO bladder utilizing temporal data from an experimental male rodent model to parameterize and then verify the model. Consistent with the experimental studies of BOO, the model predicts: an initial loss of voiding capacity followed by hypertrophy of SMC to restore voiding function; bladder enlargement; collagen remodeling to maintain its role as a protective sheath; and increased voiding duration with lower average flow rate. This CMMG model enables a mechanistic approach for investigating the bladder’s structure–function relationship and its adaption in pathological conditions. While the approach is illustrated with a conceptual spherical bladder model, it provides the basis for application of the CMMG model to anatomical geometries. Such a mechanistic approach has promise as an in silico tool for the rational development of new surgical and pharmacological treatments for bladder diseases such as BOO.
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spelling pubmed-98350142023-01-12 A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO) Cheng, Fangzhou Watton, Paul N. Pederzani, Giulia Kurobe, Masahiro Takaoka, Ei-ichiro Chapple, Chris Birder, Lori Yoshimura, Naoki Robertson, Anne M. J Mech Behav Biomed Mater Article We present a constrained mixture-micturition-growth (CMMG) model for the bladder. It simulates bladder mechanics, voiding function (micturition) and tissue adaptations in response to altered biomechanical conditions. The CMMG model is calibrated with both in vivo and in vitro data from healthy male rat urinary bladders (cystometry, bioimaging of wall structure, mechanical testing) and applied to simulate the growth and remodeling (G&R) response to partial bladder outlet obstruction (BOO). The bladder wall is represented as a multi-layered, anisotropic, nonlinear constrained mixture. A short time scale micturition component of the CMMG model accounts for the active and passive mechanics of voiding. Over a second, longer time scale, G&R algorithms for the evolution of both cellular and extracellular constituents act to maintain/restore bladder (homeostatic) functionality. The CMMG model is applied to a spherical membrane model of the BOO bladder utilizing temporal data from an experimental male rodent model to parameterize and then verify the model. Consistent with the experimental studies of BOO, the model predicts: an initial loss of voiding capacity followed by hypertrophy of SMC to restore voiding function; bladder enlargement; collagen remodeling to maintain its role as a protective sheath; and increased voiding duration with lower average flow rate. This CMMG model enables a mechanistic approach for investigating the bladder’s structure–function relationship and its adaption in pathological conditions. While the approach is illustrated with a conceptual spherical bladder model, it provides the basis for application of the CMMG model to anatomical geometries. Such a mechanistic approach has promise as an in silico tool for the rational development of new surgical and pharmacological treatments for bladder diseases such as BOO. 2022-10 2022-06-30 /pmc/articles/PMC9835014/ /pubmed/35863296 http://dx.doi.org/10.1016/j.jmbbm.2022.105337 Text en https://creativecommons.org/licenses/by/4.0/This is an open access article under the CC BY license (http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) ).
spellingShingle Article
Cheng, Fangzhou
Watton, Paul N.
Pederzani, Giulia
Kurobe, Masahiro
Takaoka, Ei-ichiro
Chapple, Chris
Birder, Lori
Yoshimura, Naoki
Robertson, Anne M.
A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)
title A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)
title_full A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)
title_fullStr A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)
title_full_unstemmed A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)
title_short A constrained mixture-micturition-growth (CMMG) model of the urinary bladder: Application to partial bladder outlet obstruction (BOO)
title_sort constrained mixture-micturition-growth (cmmg) model of the urinary bladder: application to partial bladder outlet obstruction (boo)
topic Article
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC9835014/
https://www.ncbi.nlm.nih.gov/pubmed/35863296
http://dx.doi.org/10.1016/j.jmbbm.2022.105337
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