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PLOS ONE  2014 

Determination of Villous Rigidity in the Distal Ileum of the Possum (Trichosurus vulpecula)

DOI: 10.1371/journal.pone.0100140

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Abstract:

We investigated the passive mechanical properties of villi in ex vivo preparations of sections of the wall of the distal ileum from the brushtail possum (Trichosurus vulpecula) by using a flow cell to impose physiological and supra-physiological levels of shear stress on the tips of villi. We directly determined the stress applied from the magnitude of the local velocities in the stress inducing flow and additionally mapped the patterns of flow around isolated villi by tracking the trajectories of introduced 3 μm microbeads with bright field micro particle image velocimetry (mPIV). Ileal villi were relatively rigid along their entire length (mean 550 μm), and exhibited no noticeable bending even at flow rates that exceeded calculated normal physiological shear stress (>0.5 mPa). However, movement of villus tips indicated that the whole rigid structure of a villus could pivot about the base, likely from laxity at the point of union of the villous shaft with the underlying mucosa. Flow moved upward toward the tip on the upper portions of isolated villi on the surface facing the flow and downward toward the base on the downstream surface. The fluid in sites at distances greater than 150 μm below the villous tips was virtually stagnant indicating that significant convective mixing in the lower intervillous spaces was unlikely. Together the findings indicate that mixing and absorption is likely to be confined to the tips of villi under conditions where the villi and intestinal wall are immobile and is unlikely to be greatly augmented by passive bending of the shafts of villi.

References

[1]  Gruzdkov AA, Gusev V, Ugolev AM, editors (1989) Mathematical Modelling. Moscow: Mir. 228–234 p.
[2]  Ryu KH, Grim E (1982) Unstirred water layer in canine jejunum. American Journal of Physiology: Gastrointestinal and Liver Physiology 242: G364–G369.
[3]  Holzheimer G, Winne D (1989) Influence of distension on absorption and villous structure in rat jejunum. American Journal of Physiology-Gastrointestinal and Liver Physiology 256: G188–G197.
[4]  Pappenheimer J (2001) Intestinal absorption of hexoses and amino acids: from apical cytosol to villus capillaries. Journal of Membrane Biology 184: 233–239. doi: 10.1007/s00232-001-0094-1
[5]  Levitt MD, Furne JK, Strocchi A, Anderson BW, Levitt DG (1990) Physiological Measurements of Luminal Stirring in the Dog and Human Small Bowel. Journal of Clinical Investigation 86: 1540–1547. doi: 10.1172/jci114873
[6]  Lentle RG, Janssen PWM, de Loubens C, Lim YF, Hulls C, et al. (2013) Mucosal microfolds augment mixing at the wall of the distal ileum of the brushtail possum. Neurogastroenterology & Motility 25: 881–e700. doi: 10.1111/nmo.12203
[7]  Mailman D, Womack WA, Kvietys PR, Granger N (1990) Villous motility and unstirred water layers in canine intestine. American Journal of Physiology: Gastrointestinal and Liver Physiology 258: G238–G246.
[8]  Wang Y, Brasseur JG, Banco G, Webb AG, Ailiani AC, et al. (2010) A multiscale lattice Boltzmann model of macro- and micro-scale transport, with applications to gut function. Philosophical Transactions of the Royal Society Series B; Mathematical, Physical and Engineering Sciences 368: 2863–2880. doi: 10.1098/rsta.2010.0090
[9]  King CE, Robinson MH (1945) The nervous mechanisms of the muscularis mucosae. American Journal of Physiology: Legacy Content 143: 325–335.
[10]  Womack WA, Tygart PK, Mailman D, Granger DN, Kvietys PR (1988) Villous motility: Relationship to lymph flow and blood flow in the dog jejunum. Gastroenterology 94: 977–983.
[11]  Westergaard H, Dietschy JM (1974) Delineation of the dimensions and permeability characteristics of the two major diffusion barries to passive mucosal uptake in the rabbit intestine. The Journal of Clinical Investigation 54: 718–732. doi: 10.1172/jci107810
[12]  Hosoyamada Y, Sakai T (2007) Mechanical components of rat intestinal villi as revealed by ultrastructural analysis with special reference to the axial smooth muscle cells in the villi. Archives of Histology and Cytology 70: 107–116. doi: 10.1679/aohc.70.107
[13]  Prasad AK (2000) Particle Image velocimetry. Current Science 79: 51–60.
[14]  Raffel M, Willert C, Kompenhans J (1998) Particle Image Velocimetry: A Practical Guide. G?ttingen, Germany: Springer-Verlag.
[15]  Hulls C, Lentle RG, de Loubens C, Janssen PWM, Chambers P, et al. (2012) Spatiotemporal mapping of ex vivo motility in the caecum of the rabbit. Journal of Comparative Physiology B 182: 287–297. doi: 10.1007/s00360-011-0610-2
[16]  Janssen PW, Lentle RG (2013) Spatiotemporal Mapping Techniques for Quantifying Gut Motility. New Advances in Gastrointestinal Motility Research: Springer. pp. 219–241.
[17]  Lim YF, Williams MAK, Lentle RG, Janssen PWM, Mansel BW, et al. (2013) An exploration of the microrheological environment around the distal ileal villi and proximal colonic mucosa of the possum (Trichosurus vulpecula). Journal of the Royal Society Interface 10: 20121008. doi: 10.1098/rsif.2012.1008
[18]  Danielsen EM, Sj?str?m H, NorénB O, Bro B, Dabelsteen E (1982) Biosynthesis of Intestinal microvillar proteins. Characterization of intestinal explants in organ culture and evidence for the existence of pro-forms of the microvillar enzymes. Biochemical Journal 202: 647–654.
[19]  Lentle RG, Hemar Y, Hall CE, Stafford KJ (2005) Periodic fluid extrusion and models of digesta mixing in the intestine of a herbivore, the common brushtail possum (Trichosurus vulpecula). Journal of Comparative Physiology B 175: 337–347. doi: 10.1007/s00360-005-0490-4
[20]  Bueno L, Fioramonti J, Ruckebusch Y (1975) Rate of flow of digesta and electrical activity of the small intestine in dogs and sheep. Journal of Physiology 249: 69–85.
[21]  Grovum WL, Williams VJ (1973) Rate of passage of digesta in sheep. 1. The effect of level of food intake on marker retention times along the small intestine and on apparent water absorption in the small and large intestines. British Journal of Nutrition 29: 13–21.
[22]  Corfield AP, Carroll D, Myerscough N, Probert CSJ (2001) Mucins in the gastrointestinal tract in health and disease. Frontiers in Bioscience 6: d1321–1357. doi: 10.2741/corfield
[23]  Allen A, Flemstrom G, Garner A, Kivilaakso E (1993) Gastroduodenal mucosal protection. Physiological Reviews 73: 823–857.
[24]  Thielicke W, Stamhuis E (2013) PIVlab - Time-Resolved Digital Particle Image Velocimetry Tool for MATLAB.
[25]  Santiago J, Wereley S, Meinhart C, Beebe D, Adrian R (1998) A particle image velocimetry system for microfluidics. Experiments in fluids 25: 316–319. doi: 10.1007/s003480050235
[26]  Thielicke W (2013) Personal Communication.
[27]  Keane RD, Adrian RJ (1990) Optimization of particle image velocimeters. I. Double pulsed systems. Measurement science and technology 1: 1202. doi: 10.1088/0957-0233/1/11/013
[28]  Hyams D (2010) CurveExpert software. URL http://www.curveexpert.net.
[29]  Maury J, Nicoletti C, Guzzo-Chambraud L, Maroux S (1995) The filamentous brush border glycocalyx, a mucin-like marker of enterocyte hyper-polarization. European Journal of Biochemistry 228: 323–331. doi: 10.1111/j.1432-1033.1995.0323n.x
[30]  Daniel H, Fett C, Kratz A (1989) Demonstration and modification of intervillous pH profiles in rat small intestine in vitro. American Journal of Physiology-Gastrointestinal and Liver Physiology 257: G489–G495.
[31]  Davidson G, Gall D, Petric M, Butler D, Hamilton J (1977) Human rotavirus enteritis induced in conventional piglets. Intestinal structure and transport. Journal of Clinical Investigation 60: 1402. doi: 10.1172/jci108901
[32]  Kuzmuk KN, Swanson KS, Tappenden KA, Schook LB, Fahey GC (2005) Diet and age affect intestinal morphology and large bowel fermentative end-product concentrations in senior and young adult dogs. The Journal of Nutrition 135: 1940–1945.
[33]  Ham AW (1969) Histology. Philadelphia: Lippincott.
[34]  Weinstein LD, Shoemaker CP, Hersh T, Wright HK (1969) Enchanced Intestinal Absorption After Small Bowel Resection in Man. Archives of Surgery 99: 560–562. doi: 10.1001/archsurg.1969.01340170012003
[35]  Hosoyamada Y, Sakai T (2005) Structural and mechanical architecture of the intestinal villi and crypts in the rat intestine: integrative reevaluation from ultrastructural analysis. Anatomy and Embryology 210: 1–12. doi: 10.1007/s00429-005-0011-y
[36]  Güldner F, Wolff J, Keyserlingk D (1972) Fibroblasts as a part of the contractile system in duodenal villi of rat. Cell and Tissue Research 135: 349–360. doi: 10.1007/bf00307181
[37]  Tietjens O (1935) Applied Hydro-and Aeromechanics, based on Lectures by L. Prandtl. Bulletin of the American Mathematical Society 41: 173–174. doi: 10.1090/s0002-9904-1935-06063-x
[38]  Pappenheimer JR (2001) Role of pre-epithelial “un-stirred” layers in absorption of nutrients from the human jejunum. The Journal of Membrane Biology 179: 185–204. doi: 10.1007/s002320010047
[39]  Kararli TT (1995) Comparison of the gastrointestinal anatomy, physiology, and biochemistry of humans and commonly used laboratory animals. BioPharmaceutics and Drug Disposition 16: 351–380. doi: 10.1002/bdd.2510160502
[40]  Robbe C, Capon C, Maes E, Rousset M, Zweibaum A, et al. (2003) Evidence of regio-specific glycosylation in human intestinal mucins. The Journal of Biological Chemistry 278: 46337–46348. doi: 10.1074/jbc.m302529200

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