Search engine for discovering works of Art, research articles, and books related to Art and Culture
ShareThis
Javascript must be enabled to continue!

SPARC: Mechanophysiological analysis of anorectal function using simulated feces

View through CrossRef
Introduction Defecation is a complex process that may easily get disturbed. Defecatory disorders are commonly diagnosed with anorectal manometry and the balloon expulsion test. Recently we developed a simulated electronic stool named Fecobionics that integrates several tests and simultaneously assesses pressures, orientation, bending and geometry during expulsion of the device. The aim was to use new analytical tools to calculate frictional force and tension during expulsion of Fecobionics in normal subjects. Methods The 12‐cm‐long 12mm OD Fecobionics contained pressure sensors at the front, rear and inside a bag, two motion processor units for measurement of orientation and bending, and impedance rings for measurement of eight cross‐sectional areas/diameters. The geometry of the bag was computed from the cross‐sectional area measurements. Eight presumed normal subjects (4F/4M) defecated Fecobionics. High‐resolution anorectal manometry and the balloon expulsion test confirm that the subjects were normal. The bending angle of the device, the frictional force between the probe and the surrounding tissue, the membrane tension, and the probe expulsion velocity were calculated. Results Data examples are shown in figure . The bending angle and pressures changed during expulsion of the device with the maximum pressure recorded at the rear. The change in bending angle during defecation was approximately 40 degrees. The averaged circumferential tension, longitudinal tension and friction force change were associated with the pressure difference between the rear and the front ends (R 2 =0.878±0.011, p<0.005; R 2 =0.885±0.01, p<0.005; R 2 =0.411±0.007, p<0.005; respectively). The peak tensions and friction force immediately before expulsion of the rear were significantly higher than that when the front entered into the anal canal (circumferential and longitudinal tension p<0.005, and friction force p<0.05). Conclusions Fecobionics obtained reliable data under physiological conditions. Mechanical features such as frictional force and membrane tension were assessable during Fecobionics expulsion using the developed analysis. Support or Funding Information NIH SPARC Funding Top panels: The geometry and the membrane tension distributions of the Fecobionics during expulsion. Bottom panel: The recorded pressures and bending angles in the Fecobionics during expulsion. Figure 1 Acknowledgements . Abbey Chen, Cherry Wong, Wingwah Leung, Kaori Futaba, Tony Mak and Simon Ng are thanked for providing data.
Title: SPARC: Mechanophysiological analysis of anorectal function using simulated feces
Description:
Introduction Defecation is a complex process that may easily get disturbed.
Defecatory disorders are commonly diagnosed with anorectal manometry and the balloon expulsion test.
Recently we developed a simulated electronic stool named Fecobionics that integrates several tests and simultaneously assesses pressures, orientation, bending and geometry during expulsion of the device.
The aim was to use new analytical tools to calculate frictional force and tension during expulsion of Fecobionics in normal subjects.
Methods The 12‐cm‐long 12mm OD Fecobionics contained pressure sensors at the front, rear and inside a bag, two motion processor units for measurement of orientation and bending, and impedance rings for measurement of eight cross‐sectional areas/diameters.
The geometry of the bag was computed from the cross‐sectional area measurements.
Eight presumed normal subjects (4F/4M) defecated Fecobionics.
High‐resolution anorectal manometry and the balloon expulsion test confirm that the subjects were normal.
The bending angle of the device, the frictional force between the probe and the surrounding tissue, the membrane tension, and the probe expulsion velocity were calculated.
Results Data examples are shown in figure .
The bending angle and pressures changed during expulsion of the device with the maximum pressure recorded at the rear.
The change in bending angle during defecation was approximately 40 degrees.
The averaged circumferential tension, longitudinal tension and friction force change were associated with the pressure difference between the rear and the front ends (R 2 =0.
878±0.
011, p<0.
005; R 2 =0.
885±0.
01, p<0.
005; R 2 =0.
411±0.
007, p<0.
005; respectively).
The peak tensions and friction force immediately before expulsion of the rear were significantly higher than that when the front entered into the anal canal (circumferential and longitudinal tension p<0.
005, and friction force p<0.
05).
Conclusions Fecobionics obtained reliable data under physiological conditions.
Mechanical features such as frictional force and membrane tension were assessable during Fecobionics expulsion using the developed analysis.
Support or Funding Information NIH SPARC Funding Top panels: The geometry and the membrane tension distributions of the Fecobionics during expulsion.
Bottom panel: The recorded pressures and bending angles in the Fecobionics during expulsion.
Figure 1 Acknowledgements .
Abbey Chen, Cherry Wong, Wingwah Leung, Kaori Futaba, Tony Mak and Simon Ng are thanked for providing data.

Related Results

KnowMore: an automated knowledge discovery tool for the FAIR SPARC datasets
KnowMore: an automated knowledge discovery tool for the FAIR SPARC datasets
Abstract This manuscript provides the methods and outcomes of KnowMore, the Grand Prize winning automated knowledge discovery tool developed by o...
Abstract 2495: SPARC: a bladder cancer tumor-suppressor via targeting metabolic programming
Abstract 2495: SPARC: a bladder cancer tumor-suppressor via targeting metabolic programming
Abstract Bladder cancer (BC) is the sixth most common cancer in the United States. Approximately, 75% of BC patients present with non-muscle invasive bladder cancer ...
Abstract POSTER-BIOL-1344: Epigenetic regulation of SPARC in ovarian cancer
Abstract POSTER-BIOL-1344: Epigenetic regulation of SPARC in ovarian cancer
Abstract Background: We have previously reported the tumor suppressor effect of Secreted protein acidic and rich in cysteine (SPARC) in ovarian cancer in vitro and i...
KnowMore: an automated knowledge discovery tool for the FAIR SPARC datasets
KnowMore: an automated knowledge discovery tool for the FAIR SPARC datasets
Background: This manuscript provides the methods and outcomes of KnowMore, the Grand Prize winning automated knowledge discovery tool developed by our team duri...
SPARC Inhibits Metabolic Plasticity in Ovarian Cancer
SPARC Inhibits Metabolic Plasticity in Ovarian Cancer
The tropism of ovarian cancer (OvCa) to the peritoneal cavity is implicated in widespread dissemination, suboptimal surgery, and poor prognosis. This tropism is influenced by strom...

Back to Top