Elucidating the high compliance mechanism by which the urinary bladder fills under low pressures

Fuente: arXiv
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Autores principales: Azari, Fatemeh, Robertson, Anne M., Tobe, Yasutaka, Watton, Paul N., Birder, Lori A., Yoshimura, Naoki, Matsuoka, Kanako, Hardin, Christopher, Watkins, Simon
Formato: Preprint
Publicado: 2025
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author Azari, Fatemeh
Robertson, Anne M.
Tobe, Yasutaka
Watton, Paul N.
Birder, Lori A.
Yoshimura, Naoki
Matsuoka, Kanako
Hardin, Christopher
Watkins, Simon
author_facet Azari, Fatemeh
Robertson, Anne M.
Tobe, Yasutaka
Watton, Paul N.
Birder, Lori A.
Yoshimura, Naoki
Matsuoka, Kanako
Hardin, Christopher
Watkins, Simon
contents The high compliance of the urinary bladder during filling is essential for its proper function, enabling it to accommodate significant volumetric increases with minimal rise in transmural pressure. This study aimed to elucidate the physical mechanisms underlying this phenomenon by analyzing the ex vivo filling process in rat from a fully voided state to complete distension, without preconditioning, using three complementary imaging modalities. High-resolution micro-CT at 10.8 μm resolution was used to generate detailed 3D reconstructions of the bladder lumen, revealing a 62 fold increase in bladder volume during filling. Pressure-volume studies of whole bladder delineated three mechanical filling regimes: an initial high-compliance phase, a transitional phase, and a final high-pressure phase. While prior studies conjectured small mucosal rugae (450 μm) are responsible for the high compliance phase, multiphoton microscopy (MPM) of the dome of the voided bladder revealed large folds an order of magnitude larger than these rugae. Bladder imaging during the inflation process demonstrated flattening of these large scale folds is responsible for volume increases in the initial high compliance phase. The 3D reconstructions of the bladder lumen in the filled and voided state revealed a high voiding efficiency of 97.13%. The MPM imaging results suggest the large scale folds in the dome enable this high voiding fraction by driving urine toward the bladder outlet. These insights are vital for computational models of bladder biomechanics and understanding changes to bladder function due to pathological conditions such as bladder outlet obstruction and age-related dysfunction.
format Preprint
id arxiv_https___arxiv_org_abs_2501_10312
institution arXiv
publishDate 2025
record_format arxiv
spellingShingle Elucidating the high compliance mechanism by which the urinary bladder fills under low pressures
Azari, Fatemeh
Robertson, Anne M.
Tobe, Yasutaka
Watton, Paul N.
Birder, Lori A.
Yoshimura, Naoki
Matsuoka, Kanako
Hardin, Christopher
Watkins, Simon
Medical Physics
The high compliance of the urinary bladder during filling is essential for its proper function, enabling it to accommodate significant volumetric increases with minimal rise in transmural pressure. This study aimed to elucidate the physical mechanisms underlying this phenomenon by analyzing the ex vivo filling process in rat from a fully voided state to complete distension, without preconditioning, using three complementary imaging modalities. High-resolution micro-CT at 10.8 μm resolution was used to generate detailed 3D reconstructions of the bladder lumen, revealing a 62 fold increase in bladder volume during filling. Pressure-volume studies of whole bladder delineated three mechanical filling regimes: an initial high-compliance phase, a transitional phase, and a final high-pressure phase. While prior studies conjectured small mucosal rugae (450 μm) are responsible for the high compliance phase, multiphoton microscopy (MPM) of the dome of the voided bladder revealed large folds an order of magnitude larger than these rugae. Bladder imaging during the inflation process demonstrated flattening of these large scale folds is responsible for volume increases in the initial high compliance phase. The 3D reconstructions of the bladder lumen in the filled and voided state revealed a high voiding efficiency of 97.13%. The MPM imaging results suggest the large scale folds in the dome enable this high voiding fraction by driving urine toward the bladder outlet. These insights are vital for computational models of bladder biomechanics and understanding changes to bladder function due to pathological conditions such as bladder outlet obstruction and age-related dysfunction.
title Elucidating the high compliance mechanism by which the urinary bladder fills under low pressures
topic Medical Physics
url https://arxiv.org/abs/2501.10312