Studies have shown that glucose is able to decrease the pH of the surface epithelium jejunal preparations when added in vitro and the existence of a high concentration of protons in the immediate area of the mucosa could be of considerable significance for absorption of electrolytes. The aim of this study is to assess whether the change in pH of Tyrode (solution used for perfusion of the jejunum) interferes with the absorption of glucose and electrolytes. Male Wistar rats weighing 200 to 220 g (n = 6) were utilized. Jejunal absorption of glucose and electrolytes was investigated in rats. A Tyrode solution containing twice glucose, sodium and potassium concentration (pH 7.0, 7.4, 8.0 and 8.5) was infused through the jejunal loops during 40 minutes. The glucose absorption was not significantly affected by Tyrode. However, there was significantly decrease in sodium absorption at pH 7.0 and 8.5 (41.13 ± 2.79 and 41.37 ± 1.71, respectively, P < 0.05) when compared with the uptake at pH 7.4 and 8.0 (61.06 ± 6.50 and 56.28 ± 7.03, respectively, P < 0.05). Moreover, potassium absorption increased at pH 8.0 (1.04 ± 0.07) when compared with the uptake at pH 7.0 (0.59 ± 0.04), 7.4 (0.78 ± 0.08) and 8.5 (0.54 ± 0.05) (P < 0.05). These data indicate that the pH of Tyrode has no influence on glucose absorption. However, the major potassium uptake occurs at pH 8.0, while the absorption of sodium is impaired at pH 7.0 and 8.5.
KeywordsAbsorptionpHGlucoseSodiumPotassiumJejunum
Daniel, H. and Gertrud, R. (1986) Effect of metabolizable sugars on the mucosal surface pH of rat intestine. Journal of Nutrition, 116, 768-777.
Lucas, M.L. Lei, F.H. and Blair, J.A. (1980) The influence of buffer pH, glucose and sodium ion concentration on the acid microclimate in rat proximal jejunum in vitro. Pflüegers Archives, 385, 137-142. doi:10.1007/BF00588693
Blair, J.A., Lucas, M.L. and Matty, A.J. (1975) Acidification in the rat proximal jejunum. Journal of Physiology, 245, 333-350.
Sandoval, M., Burgos, J., Sepúlveda, F.V. and Pablo, L. (2011) Extracellular pH in restricted domains as a gating signal for ion channels involvement in transepithelial transport. Biological & Pharmaceutical Bulletin, 34, 803-809. doi:10.1248/bpb.34.803
Lucas, M. (1983) Determination of acid surface pH in vivo in rat proximal jejunum. Gut, 24, 734-739. doi:10.1136/gut.24.8.734
Wayhs, M.L.C., Morais, M.B., Machado, U.F., Nassar, S.M., Fagundes Neto, U. and Amancio, O.M.A. (2011) Transepithelial transport of glucose and mRNA of glucose transporters in the small intestine of rats with irondeficiency anemia. Nutrition, 27, 111-115. doi:10.1016/j.nut.2010.07.002
Hubel, K.A. (1976) Intestinal ion transport: Effect of norepinephrine, pilocarpine, and atropine. The American Journal of Physiology, 231, 252-257.
Borges, E.L., Machado, A.D.C.V., Haibara, A.S. and Petroianu, A. (2003) Effects of vasoactive intestinal polypeptide microinjected into the nucleus tractus solitarius on jejunal glucose absorption in rats. Autonomic Neuroscience: Basic and Clinical, 107, 111-113. doi:10.1016/S1566-0702(03)00074-2
Machado, D.C.V., Haibara, A.S., Petroianu, A. and Borges, E.L. (2005) Effects of vasoactive intestinal polypeptide microinjected into the nucleus tractus solitarius on jejunal electrolytes absorption in rats. Neuropeptides, 39, 15-19. doi:10.1016/j.npep.2004.10.001
Nogueira, M.C., Haibara, A.S. and Borges, E.L. (2010) Effect of L-NAME microinjected into the nucleus tractus solitarius on jejunal glucose and electrolyte absorption in anesthetized rats. Brain Research, 1359, 107-115. doi:10.1016/j.brainres.2010.08.079
Vaz, G.C., Xavier, C.H., Coimbra, C.C., Fontes, M.A.P. and Borges, E.L. (2011) Increased Jejunal Absorption of Glucose in Rats Submitted to Blockade of GABAA Receptors in the Hypothalamic Paraventricular Nucleus. The Open Neuroendocrinology Journal, 4, 120-126. doi:10.2174/1876528901104010120
Cox, H.M. (2007) Neuropeptide Y receptors; antisecretory control of intestinal epithelial function. Autonomic Neuroscience, 133, 76-85. doi:10.1016/j.autneu.2006.10.005
Tanaka, K., Morita, H., Suwaki, H., Hosokawa, K. and Hosomi, H. (1994) Effects of microinjection of kainic acid into the nucleus tractus solitarius on fluid and NaCl absorption across the jejunum. Journal of the Autonomic Nervous System, 48, 97-104. doi:10.1016/0165-1838(94)90025-6
Kim, M.H., Hardin, J.A. and Gall, D.G. (1996) The role of nitric oxide in the regulation of macromolecular transport in rat jejunum. Journal of Physiology, 490, 243-248.
Schirgi-Degen, A. and Beubler, E. (1995) Significance of nitric oxide in the stimulation of intestinal fluid absorption in the rat jejunum in vivo. British Journal of Pharmacology, 114, 13-18.
Fetih, G., Habib, F., Katsumi, H., Okada, N., Fujita, T., Attia, M. and Yamamoto, A. (2006) Excellent absorption enhancing characteristics of NO donors for improving the intestinal absorption of poorly absorbable compound compared with conventional absorption enhancers. Drug Metabolism and Pharmacokinetics, 21, 222-229. doi:10.2133/dmpk.21.222
Varma, M.V.S. and Panchagnula, R. (2005). pH-Dependent functional activity of P-glycoprotein in limiting intestinal absorption of protic drugs: Kinetic analysis of quinidine efflux in situ. Journal of Pharmaceutical Sciences, 94, 2632-2643. doi:10.1002/jps.20489
Goldstein, S.A., Bockenhauer, D., O’Kelly, I. and Zilberberg, N. (2001) Potassium leak channels and the KCNK family of two-P-domain subunits. Nature Reviews Neuroscience, 2, 175-184. doi:10.1038/35058574
Lotshaw, D.P. (2007) Biophysical, pharmacological, and functional characteristics of cloned and native mammalian two-pore domain K+ channels. Cell Biochemistry and Biophysics, 47, 209-256. doi:10.1007/s12013-007-0007-8
Zú?iga, L., Márquez, V., González-Nilo, F.D., Chipot, C., Cid, L.P., Sepúlveda, F.V. and Niemeyer, M.I. (2011) Gating of a pH-sensitive K2P potassium channel by an electrostatic effect of basic sensor residues on the selectivity filter. PLoS One, 6, e16141. doi:10.1371/journal.pone.0016141
Zahedi, A.S.L. and Alipour, M. (2007) The effects of insulin on glucose and fluid transport in the isolated small intestine of normal rats. Life Sciences, 81, 26-30. doi:10.1016/j.lfs.2007.04.021
Kato, A. and Romero, M.F. (2011) Regulation of electroneutral NaCl absorption by small intestine. Annual Review of Physiology, 73, 261-281. doi:10.1146/annurev-physiol-012110-142244
Zachos, N.C., Tse, M. and Donowitz, M. (2005) Molecular physiology of intestinal Na+/H+ exchange. Annual Review of Physiology, 67, 411-443. doi:10.1146/annurev.physiol.67.031103.153004
Orlowski, J. and Grinstein, S. (2004) Diversity of the mammalian sodium proton exchanger SLC9 gene family. Pflüegers Archives, 447, 549-565. doi:10.1007/s00424-003-1110-3
Therien, A.G. and Blostein, R. (2000) Mechanisms of sodium pump regulation. American Physiologial Society, 279, 541-566.
Inagaki, E., Kawamata, K. and Suzuki, Y. (2002) In vitro potassium transport in the mouse small intestine. Japanese Journal of Physiology, 52, 515-520. doi:10.2170/jjphysiol.52.515