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Effects of Dietary Fiber and Benzoic Acid on Growth Performance, Nutrient Digestibility, Reduction of Harmful Gases, and Lipid Profiles in Growing Pigs


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Aarnink A.J.A., Hol M.G., Nijeboer G.M. (2008). Ammonia emission factor for using benzoic acid (1% vevovitall) in the diet of growing-finishing pigs. Animal Sciences Group of Wageningen UR, Report 133, Divisie Veehouderij, Lelystad.Search in Google Scholar

Anderson J.W., Baird P. Davis R.H.Jr., Ferreri S., Knudtson M., Koraym A.,Wa- ters V., Williams C.L. (2009). Health benefits of dietary fiber. Nutr. Rev., 67: 188-205.Search in Google Scholar

Anguita M., Canibe N., Perez J.F., Jensen B.B. (2006). Influence of the amount of dietary fiber on the available energy from hindgut fermentation in growing pigs: Use of cannulated pigs and in vitro fermentation. J. Anim. Sci., 84: 2766-2778.Search in Google Scholar

Botermans J., Gustafsson G., Jeppsson K.H., Browin N., Rodhe L. (2010). Measures to reduce ammonia emissions in pig production - Review. Report 12, Landscape Horticulture Agri­culture Reportseries, Uppsala.Search in Google Scholar

Brown L., Rosner B., Willett W.W., Sacks F.M. (1999). Cholesterol-lowering effects of di­etary fiber: a meta-analysis. Am. J. Clin. Nutr., 69: 30-42.Search in Google Scholar

Buhler K., Wenk C., Broz J., Gebert S. (2006). Influence of benzoic acid and dietary protein level on performance, nitrogen metabolism and urinary pH in growing-finishing pigs. Arch. Anim. Nutr., 60: 382-389.Search in Google Scholar

Canh T.T., Sutton A.L., Aarnink A.J.A., Verstegen M.W.A., Schrama J.W., Bak- ker G.C. (1998). Dietary carbohydrates alter the fecal composition and pH and the ammonia emis­sion of slurry from growing-finishing pigs. J. Anim. Sci., 76: 1887-1895.Search in Google Scholar

Chandali a M., Garg A. Lutjohann D., von Bergmann K, Grundy S.M., Brink-ley L.J. (2000). Beneficial effects of high dietary fiber intake in patients with type 2 diabetes mellitus. New Eng. J. Med., 342: 1392-1398.Search in Google Scholar

Cheong J.Y. (2013). Effects of fiber on performance of weaned and growing-finishing pigs. PhD. dis­sertation, Dankook University, Cheonan, Korea.Search in Google Scholar

Cho J.H., Kim I.H. (2014). Effects of lactulose supplementation on performance, blood profiles, ex­creta microbial shedding of Lactobacillus and Escherichia coli, relative organ weight, and excreta noxious gas contents in broilers. J. Anim. Physiol. Anim. Nutr., 98: 424-430.Search in Google Scholar

Cho J.H., Zhang Z.F., Kim I.H. (2013). Effects of fermented grains as raw cereal substitutes on growth performance, nutrient digestibility, blood profiles, and fecal noxious gas emission in grow­ing pigs. Livest. Sci., 154: 131-136.Search in Google Scholar

Collings G.F., Erickson J.P., Yokoyama M.T., Miller E.R. (1979). Effect of wheat mid­dlings on fiber digestibility, serum cholesterol and glucose and fecal bile acids in pigs. J. Anim. Sci., 49: 528-534.Search in Google Scholar

Cordain L. (2007). Implications of Plio-Pleistocene hominin diets for modern humans. In: Evolution of the human diet: The known, the unknown, and the unknowable, Ungar P. (ed.). Oxford University Press, New York, pp. 363-383.Search in Google Scholar

Den Brok G.M.Hendriks J.G.L. Vrielink M.G.M.v an der Peet-Sch weringC.M.C. (1999). Urinary pH, ammonia emission and performance of growing/finishing pigs after the addition of a mixture of organic acid, mainly benzoic acid, to the feed. Research Institute for Pig Husbandry, Netherlands.Search in Google Scholar

Gaylor J.L., Hardy R.W.F., Baumann C.A. (1960). Effects of nicotinic acid and related com­pounds on sterol metabolism in the chick and rat. J. Nutr., 70: 293-301.Search in Google Scholar

Graham H., Hesselman K., Aman P. (1986). The influence ofwheat bran and sugar-beet pulp on the digestibility of dietary components in a cereal-based pig diets. J. Nutr., 116: 242-251.Search in Google Scholar

Grundy S.M. (1986). Cholesterol and coronary heart disease - A new era. J. Am. Med. Assoc., 256: 2849-2858.Search in Google Scholar

Hong S.M., Huang J.H., Kim I.H. (2012). Effect of medium-chain triglyceride (MCT) on growth performance, nutrient digestibility, blood characteristics in weanling pigs. Asian-Australasian J. Anim. Sci., 25: 1003-1008.Search in Google Scholar

Jin F.Y., Kamanna V.S., Kashyap M.L. (1997). Niacin decreases removal of high-density lipo­protein apolipoprotein A-I but not cholesterol ester by Hep G2 cells: implication for reverse choles­terol transport. Arterioscler. Thromb. Vasc. Biol., 17: 2020-2028.Search in Google Scholar

Jin F.Y., Kamanna V.S., Kashyap M.L. (1999). Niacin accelerates intracellular Apo B degrada­ tion by inhibiting triacylglycerol synthesis in human hepatoblastoma (HepG2) cells. Arterioscler. Thromb. Vasc. Biol., 19: 1051-1059.Search in Google Scholar

Kamanna V.S., Kashyap M.L. (2000). Mechanism of action of niacin on lipoprotein metabolism. Curr. Atheroscler. Rep., 2: 36-46.Search in Google Scholar

Kendall C.W.C., Esfahani A., Jenkins D.J.A. (2010). The link between dietary fibre and hu­man health. Food Hydrocolloid, 24: 42-48.Search in Google Scholar

Kluge H., Broz J., Eder K. (2006). Effect of benzoic acid on growth performance, nutrient di­gestibility, nitrogen balance, gastrointestinal microflora and parameters of microbial metabolism in piglets. J. Anim. Physiol. Anim. Nutr (Berl.), 90: 316-324.Search in Google Scholar

Kluge H., Broz J., Eder K. (2010). Effects of dietary benzoic acid on urinary pH and nutrient digestibility in lactating sows. Livest. Sci., 134: 119-121.Search in Google Scholar

Kristensen N.B.N org aar d J.Wamb ergS.Engbaek M.F ernandez J.A.Z ach o H.D., P ou l s e n H.D. (2009). Absorption and metabolism of benzoic acid in growing pigs. J. Anim. Sci., 87: 2815-22.10.2527/jas.2009-200319502503Search in Google Scholar

Mateos G.G., Martin F., Latorre M.A., Vicente B., Lazaro R. (2006). Inclusion of oat hulls in diets for young pigs based on cooked maize or cooked rice. Anim. Sci., 82: 57-63.Search in Google Scholar

McMillan-Price J., Petocz P., Atkinson F., O’Enill K., Samman S., Stein­beck K., Caterson I., Brand-Miller J. (2006). Comparison of 4 diets of varying glycemic load on weight loss and cardiovascular risk reduction in overweight and obese young adults. Arch. Int. Med., 166: 1466-1475.Search in Google Scholar

Meunier-Salaun M.C., Edwards S.A., Robert S. (2001). Effect of dietary fiber on the bea- vior and health of the restricted fed sow. Anim. Feed Sci. Tech., 90: 53-69.Search in Google Scholar

Mohana Devi S., Devi U.S., Kim I.H. (2014 a). Evaluation of dietary sources of protein on growth performance in pigs. Vet. Med., 59: 247-253.10.17221/7518-VETMEDSearch in Google Scholar

Mohana Devi S., Balachandar V., Lee S.I., Kim I.H. (2014 b). An outline of meat consump­tion in the Indian population - A pilot review. Korean J. Food Sci. Ann. Res., 34: 507-515.10.5851/kosfa.2014.34.4.507466215526761289Search in Google Scholar

Monique-Verschuren W.M., Kromhout D. (1995). Total cholesterol concentration and mor­tality at a relatively young age: do men and women differ? Brit. Med. J., 311: 779-783.Search in Google Scholar

Mosenthin R., Sauer W.C., Henkel H., Ahrens F., de Lange C.F. (1992). Tracer studies of urea kinetics in growing pigs: II. The effect of starch infusion at the distal ileum on urea recycling and bacterial nitrogen excretion. J. Anim. Sci., 70: 3467-3472.Search in Google Scholar

Mroz Z. (2005). Organic acids as potential alternatives to antibiotic growth promoters for pigs. Adv. Pork Prod., 16: 169-182.Search in Google Scholar

Mroz Z., Moeser A.J., Vreman K., van Diepen J.T.M., van KempenT., Canh T.T., Jongbloed A.W. (2000). Effects of dietary carbohydrates and buffering capacity on nutrient digestibility and manure characteristics in finishing pigs. J. Anim. Sci., 78: 3096-3106.Search in Google Scholar

Muck R.E., Steenhuis T.S. (1981). Nitrogen losses in free stall dairy barns. In Livestock Waste: A Renewable Resource, St. Joseph, MI, ASAE, pp. 406-409.Search in Google Scholar

Nahm K.H. (2003). Influences of fermentable carbohydrates on shifting nitrogen excretion and reduc­ing ammonia emission of pigs. Crit. Rev. Env. Sci. Tech., 33: 165-186.Search in Google Scholar

Panetta D.M., Powers W.J., Xin H., Kerr B.J., Stalder K.J. (2006). Nitrogen excretion and ammonia emissions from pigs fed modified diets. J. Env. Qual., 35: 1297-308.Search in Google Scholar

Papatsiros VG., Tas si s P.D., Tzika E.D., Papaioannou D.S., Petridou E., Alexo- poulos C., Kyriakis S.C. (2011). Effect of benzoic acid and combination of benzoic acid with probiotic containing Bacillus cereus var Toyoi in weaned pig nutrition. Polish J. Vet. Sci., 14: 117-125.Search in Google Scholar

Paulus C., Levrouw L., Geers R. (2004). How to combine performance and environmental care? Proc. VevoVitall. International Society for Animal Hygiene (ISAH) Congress “Animal production in Europe: The way forward in a changing world”, Saint-Malo, France, 11-13.10.2004, p. 85.Search in Google Scholar

Pierce K.M., Call an J.J., McCarthy P., O’Doherty J.V. (2007). The interaction between lactose level and crude protein concentration on piglet post-weaning performance, nitrogen me­tabolism, selected faecal microbial populations and faecal volatile fatty acid concentrations. Anim. Feed Sci. Tech., 132: 267-282.Search in Google Scholar

Rerat A. (1985). Intestinal absorption of end products from digestion of carbohydrates and proteins in the pig. Arch. Anim. Nutr., 35: 461-480.Search in Google Scholar

Sauer W, Cervantes M., Yanez J., Araiza B., Murdoch G., Morales A., Zijls- tra R.T. (2009). Effect of dietary inclusion of benzoic acid on mineral balance in growing pigs. Livest. Sci., 122: 162-168.Search in Google Scholar

Schachter D. (1957). The chemical estimation of acylglucuronides and its application to studies on the metabolism of benzoate and salicylate in man. J. Clin. Invest., 36: 297-302.Search in Google Scholar

Schanker L.S., Tocco D.J., Brodie B.B., Hogben C.A.M. (1958). Absorption of drugs from the rat small intestine. J. Pharm. Exp. Therap., 123: 81-88.Search in Google Scholar

Schulze M.B., Liu S., Rimm E.B., Manson J.E., Willett W.C., Hu F.B. (2004). Glycemic index, glycemic load, and dietary fiber intake and incidence of type 2 diabetes in younger and middle-aged women. Am. J. Clin. Nutr., 80: 348-356.Search in Google Scholar

Serena A., Jorgensen H., Bach Knudsen K.E. (2009). Absorption of carbohydrate-derived nutrients in sows as influenced by types and contents of dietary fiber. J. Anim. Sci., 87: 136-147.Search in Google Scholar

Shen H., He L., Price R.L., Fernandez M.L., (1998). Dietary soluble fiber lowers plasma LDL cholesterol concentrations by altering lipoprotein metabolism in female guinea pigs. J. Nutr, 128: 1434-1441.Search in Google Scholar

Sommer S.G., Husted S. (1995). A simple model of pH in slurry. J. Agri. Sci., 124: 447-453.Search in Google Scholar

Van der Peet-Schwering C.M.C., Aarnink A.J.A., Rom H.B., Dourmad J.Y. (1999). Ammonia emission from pig houses in The Netherlands, Denmark and France. Livest. Prod. Sci., 58: 265-269.Search in Google Scholar

Wang J.P., Yoo J.S., Lee J.H., Jang H.D., Kim H.J., Shin S.O., Seong S.I., Kim I.H. (2009). Effects of phenyllactic acid on growth performance, nutrient digestibility, microbial shedding, and blood profile in pigs. J. Anim. Sci., 87: 3235-3243.Search in Google Scholar

Weber T.E., Kerr B.J. (2012). Metabolic effects of dietary sugar beet pulp or wheat bran in growing female pigs. J. Anim. Sci., 90: 523-532.Search in Google Scholar

Wellock I.J., Fortomaris P.D., Houdijk J.G.M., Wiseman J., Kyriazakis I. (2008). The consequences of non-starch polysaccharide solubility and inclusion level on the health and performance of weaned pigs challenged with enterotoxigenic Escherichia coli. Br. J. Nutr., 99: 520-530.Search in Google Scholar

Wenk C. (2001). The role of dietary fiber in the digestive physiology of the pig. Anim. Feed Sci. Tech., 90: 21-33.Search in Google Scholar

Wilfart A., Montagne L., Simmins P.H., van MilgenJ., NobletJ. (2007). Sites of nutrient digestion in growing pigs: Effect of dietary fiber. J. Anim. Sci., 85: 976-983.Search in Google Scholar

Williams C.H., David D.J., Iismaa O. (1962). The determination of chromic oxide in faeces samples by atomic absorption spectrophotometry. J. Agri. Sci., 59: 381-385.Search in Google Scholar

Wong J.M., de Souza R., Kendall C.W., Emam A., Jenkins D.J. (2006). Colonic health: Fermentation and short chain fatty acids. J. Clin. Gastroenterol., 40: 235-243.Search in Google Scholar

Yan L., Kim I.H. (2012). Effect of eugenol and cinnamaldehyde on the growth performance, nutrient digestibility, blood characteristics, fecal microbial shedding and noxious gas content in growing pigs. Asian-Australasian J. Anim. Sci., 25: 1178-1183.Search in Google Scholar

Zervas S., Zijlstra R.T. (2002). Effects of dietary protein and oat hull fiber on nitrogen excretion patterns and postprandial plasma urea profiles in grower pigs. J. Anim. Sci., 80: 3238-3246.Search in Google Scholar

Zhang Z.F., Kim I.H. (2013). Effects of probiotic supplementation in different energy and nutrient density diets on performance, egg quality, excreta microflora, excreta noxious gas emission, and serum cholesterol levels in laying hens. J. Anim. Sci., 91: 4781-4787. Search in Google Scholar

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