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Osmotic pressure, water kinetics and volatile fatty acid absorption in the rumen of sheep sustained by intragastric infusions

Published online by Cambridge University Press:  09 March 2007

S. López
Affiliation:
Rowett Research Institute, Bucksburn, Aberdee AB2 9SB
F. D. DeB. Hovell
Affiliation:
Rowett Research Institute, Bucksburn, Aberdee AB2 9SB
N. A. MacLeod
Affiliation:
Rowett Research Institute, Bucksburn, Aberdee AB2 9SB
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Abstract

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The effects of changing rumen osmotic pressure (OP) upon water kinetics and volatile fatty acid (VFA) absorption in the rumen of sheep were studied in two 4 × 4 Latin square experiments, each using four lambs with a rumen cannula and an abomasal catheter. In both experiments the lambs were sustained by the intragastric infusion of all nutrients (VFA, Ca, P, Mg and a buffer solution into the rumen, and casein, vitamins and trace elements into the abomasum). On experimental days, which were at least 1 week apart, drinking water and the casein infusion were withdrawn, and the ruminal OP was changed and held constant for 9·5 h, by incorporating NaCl at different concentrations in the buffer solution being infused. In Expt 1 the target OP values were 300, 340, 380 and 420 mosmol/kg, and in Expt 2 were 261 (no saline addition), 350, 420 and 490 mosmol/kg. Using soluble non-absorbable markers (PEG in continuous infusion and Cr-EDTA injected in pulse doses) rumen volume, liquid outflow rates, apparent water absorption through the rumen wall and VFA absorption rates were estimated at six sampling times corresponding to the 1·5 h intervals during the last 7·5 h following the change in rumen OP. Liquid outflow rate (F; ml/h) showed a significant and positive linear relationship with the rumen OP (mosmol/kg), resulting in the equation F = 1·24 OP (SE 0·096)–36·5 (SE 36·6) (r2 0·96). Similarly, water absorption rate (W; ml/h) was significantly affected by rumen OP, and this relationship was given by W = 395 (SE 39·9) −1·16 OP (SE 0·105) (r2 0·95), which means that for an OP of 341 mosmol/kg the net movement of water across the rumen wall would be zero, and either a net efflux or a net influx of water would be observed with lower or higher OP respectively. In Expt 2 there was a significant linear effect of OP on rumen volume (P <0·01), with higher OP being associated with increases in rumen liquid contents of about 10–20%. As rumen OP was increased there was also a decline in the absorption rate of VFA (from 232 mmol VFA/h for OP 350 to 191 mmol/h for OP 490 mosmol/kg), resulting in the accumulation of VFA (especially acetate) in the rumen and a consequent fall in rumen pH. Rumen OP seems to be important in defining water movement across the rumen wall and, hence, partitioning between absorption and outflow.

Type
Kinetics of absorption in the rumen
Copyright
Copyright © The Nutrition Society 1994

References

REFERENCES

Ahrens, F. A. (1967). Histamine, lactic acid and hypertonicity as factors in the development of rumenitis in cattle. American Journal of Veterinary Research 28, 13351342.Google ScholarPubMed
Carr, D. H. (1984). The regulation of parotid and submaxillar salivary secretion in sheep. Quarterly Journal of Experitmental Physiology 69, 587597.Google Scholar
Carter, R. R. & Grovum, W. L. (1990). A review of the physiological significance of hypertonic body fluids on feed intake and ruminal function: salivation, motility and microbes. Journal of Animal Science 68, 28112832.CrossRefGoogle ScholarPubMed
Danielli, J. R., Hitchcock, M. W. S., Marshall, R. A. & Phillipson, A. T. (1945). The mechanism of absorption from the rumen as exemplified by the behaviour of acetic, propionic and butyric acids. Journal of Experimental Biology 22, 7584.Google Scholar
Dobson, A. (1984). Blood flow and absorption from the rumen. Quarterly Journal of Experitnental Physiology 69, 599606.CrossRefGoogle ScholarPubMed
Dobson, A., Sellers, A. F. & Shaw, G. T. (1970). Absorption of water from isolated ventral sac of rumen of the cow. Journal of Applied Physiology 28, 100124.CrossRefGoogle ScholarPubMed
Dobson, A., Sellers, A. F. & Gatewood, V. H. (1976). Absorption and exchange of water across rumen epithelium. American Journal of Physiology 231, 15881594.Google Scholar
Downes, A. M. & McDonald, I. W. (1964). The chromium-51 complex of ethylene diamine tetracetic acid as a soluble rumen marker. British Journal of Nutrition 18, 153162.Google Scholar
Edrise, B. M., Smith, R. H. & Hewitt, D. (1986). Exchanges of water and certain water-soluble minerals during passage of digesta through the stomach compartments of young ruminating bovines. British Journul of Nutrition 55, 157167.CrossRefGoogle ScholarPubMed
Engelhardt, W. v. (1970). Movement of water across the rumen epithelium. In Physiology of Digestion and Metabolism in the Ruminant, pp. 132146 [Phillipson, A. T., editor]. Newcastle-upon-Tyne: Oriel Press.Google Scholar
Engelhardt, W. v. & Hauffe, R. (1975). Role of the omasum in the absorption and secretion of water and electrolytes in sheep and goats. In Digestion and Metabolism in the Ruminant, pp. 216230 [McDonald, I. W. and Warner, A. C. I., editors]. Armidale: University of New England Publishing Unit.Google Scholar
Faichney, G. J. & Boston, R. C. (1985). Movement of water within the body of sheep fed at maintenance under thermoneutral conditions. Australian Journal of Biological Science 38, 8594.Google Scholar
France, J., Siddons, R. C., Dhanoa, M. S. & Thornley, J. H. M. (1991). A unifying mathematical analysis of methods to estimate rumen volume using digesta markers and intraruminal sampling. Journal of Theoretical Biology 150, 145155.Google Scholar
Harrison, D. J., Beever, D. E., Thomson, D. J. & Osbourn, D. F. (1975). Manipulation of rumen fermentation in sheep by increasing the rate of flow of water from the rumen. Journal of Agricultural Science, Cambridge 85, 93101.Google Scholar
Hart, S. P. & Polan, C. E. (1984). Effect of sodium bicarbonate and disodium phosphate on animal performance, ruminal metabolism, digestion, and rate of passage in ruminating calves. Journal of Dairy Science 67, 23562368.Google Scholar
Hovell, F. D. DeB., Ørsksov, E. R., Kyle, D. J. & MacLeod, N. A. (1987). Undernutrition in sheep. Nitrogen repletion by N-depleted sheep. British Journal of Nutrition 57, 7788.CrossRefGoogle ScholarPubMed
Hydén, S. (1956). A turbidimetric method for the determination of higher polyethylene glycols in biological materials. Annals of the Royal Agriculturul College of Sweden 22, 131145.Google Scholar
Hydén, S. (1961). Determination of the amount of fluid in the reticulo-rumen of the sheep and its rate of passage to the omasum. Annals of the Agricultural College of Sweden 27, 5179.Google Scholar
Moir, R. J. (1984). Why an omasum? In Ruminant Phsiology-Concepts and Consequences, pp. 8592. [Baker, S. K., Gawthorne, J. M., Mackintosh, J. B. and Purser, D. B., editors]. Perth: School of Agriculture, University of Western Australia.Google Scholar
Ørskov, E. R., Grubb, D. A., Wenham, G. & Corrigall, W. (1979). Sustenance of growing and fattening ruminants by intragastric infusion of volatile fatty acid and protein. British Journal of Nutrition 41, 553558.CrossRefGoogle ScholarPubMed
Oshio, S. & Tahata, I. (1984). Absorption of dissociated volatile fatty acids through the rumen wall of sheep. Canadian Journal of Animal Science 64 (Suppl.), 167168.Google Scholar
Ottenstein, D. M. & Bartley, D. A. (1971). Separation of free acids C2-C5 in dilute aqueous solution column technology. Journal of Chromatographic Science 9, 673681.CrossRefGoogle Scholar
Peters, J. P., Paulissen, J. B. & Robinson, J. A. (1990). The effects of diet on water flux and volatile fatty acid concentration in the rumen of growing beef steers fed once daily. Journal of Animal Science 68, 17111718.CrossRefGoogle ScholarPubMed
Rogers, J. A. & Davis, C. L. (1982). Effects of intraruminal infusions of mineral salts on volatile fatty acid production in steers fed high-grain and high-roughage diets. Journal of Dairy Science 65, 953962.CrossRefGoogle ScholarPubMed
Rowell, J. G. & Walters, D. E. (1976). Analyzing data with repeated observations on each experimental unit. Journal of Agricultural Science, Cambridge 87, 423432.CrossRefGoogle Scholar
Scott, D. (1975). Changes in mineral, water and acid-base balance associated with feeding and diet. In Digestion and Metabolism in the Ruminunt, pp. 205215 [McDonald, I. W. and Warner, A. C. I., editors]. Armidale: University of New England Publishing Unit.Google Scholar
Silanikove, N. & Tadmor, A. (1989). Rumen volume, saliva flow rate, and systematic fluid homeostasis in dehydrated cattle. American Journal of Physiology 256, R809–R815.Google Scholar
Stevens, C. E. (1970). Fatty acid transport through the rumen epithelium. In Physiology of Digestion and Metabolism in the Ruminant, pp. 101112 [Phillipson, A. T., editor]. Newcastle-upon-Tyne: Oriel Press.Google Scholar
Tabaru, H., Ikeda, K., Kadota, E., Marukami, Y., Yamada, H., Sasaki, M. & Takeuchi, A. (1990). Effects of osmolality on water, electrolytes and volatile fatty acids absorption from the isolated ruminoreticulum in the cow. Japanese Journal of Veterinary Science, Tokyo 52, 9196.Google ScholarPubMed
Thomson, D. J., Beever, D. E., Latham, M. J., Sharpe, M. E. & Terry, R. A. (1978). The effect of inclusion of mineral salts in the diet on dilution rate, the pattern of rumen fermentation and the composition of the rumen microflora. Journal of Agricultural Science, Cambridge 91, 17.CrossRefGoogle Scholar
Ullyatt, M. J., Waghorn, G. C., John, A., Reid, C. W. S. & Monro, J. (1984). Effect of intake and feeding frequency on feeding behaviour and quantitative aspects of digestion in sheep fed chaffed lucerne hay. Journal of Agricultural Science, Cambridge 102, 645657.CrossRefGoogle Scholar
Warner, A. C. I. & Stacy, B. D. (1968). The fate of water in the rumen. 1. A critical appraisal of the use of soluble markers. British Journul of Nutrition 22, 369387.Google Scholar
Warner, A. C. I. & Stacy, B. D. (1972). Water, sodium and potassium movements across the rumen wall of sheep. Quarterly Journal of Experimental Physiology 57, 103119.CrossRefGoogle ScholarPubMed
Warner, A. C. I. & Stacy, B. D. (1977). Influence of ruminal and plasma osmotic pressure on salivary secretion in sheep. Quarterly Journal of Experimental Physiology 62, 133142.Google Scholar