In vitro GAS PRODUCTION AND PRODUCTIVE RESPONSE OF FEMALE CALVES FEEDING AN INTEGRAL DIET CONTAINING SESAME PASTE (Sesamun indicum) AS A PROTEIN SOURCE

Adán Garcia Balbuena, Nicolás Torres Salado, Jerónimo Herrera Pérez, María de los ángeles Maldonado Peralta, Félix de Jesús Mayren Mendoza, Gabriel Mendoza Medel

Abstract


Background. Given the production conditions in the resulting dry tropics, supplementation and use of protein sources is necessary. Objective. The objective of this study was to evaluate in vitro gas production, in vitro fermentation characteristics, productive response, ruminal characteristics, and apparent nutrient digestibility of a whole diet with sesame paste or soybean paste in calf feed. Methodology. In vitro total gas production was measured at 3, 6, 9, 12, 24, 48 and 72 hours. In addition, Eight Simbrah calves of 229 ± 39 kg live weight (LW) were fed a whole diet containing 10% soybean paste (control) or sesame paste (experimental). The study lasted 40 days and productive variables, nutrient digestibility and ruminal characteristics were determined. The experimental design was completely randomized. Results. Total gas production at 3 hours was 39% higher (p <0.05). in the control treatment, while at 6, 9, 12, 24, 48, 72 h and accumulated it was not different (p> 0.05). The dry matter intake (DMI) and the daily weight gain (DWA) did not change (p> 0.05) between treatments. In feed conversion (FC) the calves of the control treatment were 2.04% more efficient. Neutral detergent fiber digestibility was 3.9% higher (p <0.05) in calves fed sesame paste; while the digestibility of dry matter (DDM), organic matter, (DOM), acid detergent fiber (DADF), crude protein (DCP) and ruminal characteristics did not change (p> 0.05) between treatments. Implications. The use of sesame paste as a protein source gives a favorable productive response like soybean paste. Conclusion. The inclusion of sesame paste in whole calf diets can replace soybean paste in the whole calf diet in the tropics.

Keywords


soybean paste; sesame paste; calves; tropics; productive behavior.

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References


Absalón-Medina, V.A., Nicholson, C.F., Blake, R.W., Fox, D.G., Juárez-Lagunes, F.I., Canudas-Lara, E.G. and Rueda-Maldonado, B.L., 2012. Limitations and potentials of dual-purpose cow herds in Central Coastal Veracruz, Mexico. Tropical Animal and Health Production, 44, pp. 1131-1142. http://doi.org/10.1007/s11250-011-0049-1.

Adeola, O. and Sands, J.S., 2003. Does supplemental dietary microbial phytase improve amino acid utilization A perspective that it does not. Journal Animal Science, 81, pp. E78-85. https://doi.org/10.2527/2003.8114_suppl_2E78x.

Aguilar-Pérez, C., Ku-Vera, J.C. and Magaña-Monforte, J.G., 2011. Energetic efficiency of milk synthesis in dual-purpose cows grazing tropical pastures. Tropical Animal Health and Production, 43, pp. 767-772. http://doi.org/10.1007/s11250-010-9714-z

Aguilera, C.G.C., Valiente, V.O.L., Stanley, S.W.E., Corrales, M.M.P., Branda, P.L.N., Peralta, J.R. and Castellani R.P.G., 2018. Valoración nutricional del expeller de sésamo mediante estudios de digestibilidad in vivo e in vitro en ovinos. Investigacion Agraria, 20(2), pp. 118-126. https://doi.org/10.18004/investig.agrar.2018.diciembre.118-126

AOAC., 2007. Official Methods of Analysis (18th Ed) Association of official analytical chemist. Arlington, VA, USA.

Church, D. C., 1988. The ruminant animal digestive physiology and nutrition. Prentice Hall, Englewood Cliffs. New Jersey, USA. p. 54.

D’Mello J.P.F., 2000. Antinutritional factors and mycotoxins. In J.P.F. D’Mello, ed. Farm animal metabolism and nutrition. Centre for Agricultural Bioscience International, Reino Unido. Pp. 383-483. http://doi.org710.1079/9780851993782.0383

Da-Silva, S.C and Carvalh P.C., 2005. Foraging behaviour and herbage intake in the favourable tropics/subtropics. In: D.A. Gilloway, editor, XX International Grassland Congress, Grassland: A global resource. Wageningen Academic Publishers, Wageningen, HOL. p. 81-96.

Delgado, D., Franzolin R., Mazza P.H., 2011. Fermentación y cinética ruminal en búfalos alimentados con heno de bermuda cruzada (Cynodon dactylon (L.) Pears) y concentrado con soya integral o extrusada. Revista Cubana de Ciencia Agrícola, 45(1), pp. 39-43.

Enríquez, Q.J.F., Meléndez N.F, Bolaños A.E.D., Esqueda E.V.A., 2011. Producción y manejo de forrajes tropicales. Centro de investigación regional golfo centro. Libro técnico número 28, Medellín de Bravo Veracruz.

Espinoza-Sánchez, J., Sánchez-Santillán, P., Torres-Salado, N., Ayala-Monter, M.A., Herrera-Pérez, J and Magadan-Olmedo, F., 2020. Inclusion of ripe mango as a source of energy in diets for Creole lambs in the dry tropics. Tropical Animal Health and Production, 52, pp. 3519-3526. http://doi.org/10.1007/s11250-020-02386-4.

Flores-Aguirre, L.R., 2007. Determinación del valor nutricional de la rezaga de garbanzo (Cicer Arietinum L.) en dietas para bovinos en engorda intensiva. Tesis Doctorado. Posgrado Interinstitucional en Ciencias Pecuarias. Universidad de Guadalajara. 67 P.

García, E., 2004. Modificaciones al sistema de clasificación climática de koppen. 4 (edición). Universidad Nacional Autónoma de México. México D.F. 217 p.

Ghorbani, BA, Teimouri Y and Sayyadi AJ., 2018. Effects of sesame meal on intake, digestibility, rumen characteristics, chewing activity and growth of lambs. South African Journal of Animal Science. 48(1), pp. 151-161. http://dx.doi.org/10.4314/sajas.v48i1.17

Griffin, D.B, Savell, J.W., Morgan, J.B., Garret, R.P., Cross, H.R., 1992. Estimates of subprimal yield from beef carcasses as affected by grades, subcutaneous fat, trim level, and carcass sex class and type. Journal Animal Science, 70, pp. 2411.

Herrera-Pérez, J., Vélez-Regino, L.G., Sánchez-Santillán, P., Torres-Salado, N., Rojas-García, A.R., and Maldonado-Peralta, M.A., 2018. In vitro fermentation of fibrous substrates by wáter buffalo ruminal cellulolytic bacteria consortia. MVZ Cordoba, 23(3), pp. 6860-6870. http://dx.doi.org/10.21897/rmvz.1374.

Jank, L., Valle C.B. and Resende, R.M. S., 2005. Grass and forage plant improvement in the tropics and sub-tropics. In: D.A. McGilloway, editor, XX International Grassland Congress, Grassland: A Global Resource. Wageningen Academic Publishers, Wageningen, HOL. p. 69-81.

Jimoh, W.A., Fagbenro O.A and Adeparusi, E.O., 2011. Effect of processing on some minerals, anti-nutrients and nutritional composition of sesame (Sesamum indicum) seed meals. Electronic Journal on Enviromental Agricultural and Food Chemistry, 10, pp. 1858-1864.

López, T.R, García, E.R and Mellado, B.M., 2002. Crecimiento y características de la canal de bovinos Charolais y Beefmaster alimentados con dos fuentes de proteína y dos niveles de grasa sobrepasante. Técnica Pecuaria México. 40(3), pp. 291-298.

López-Varela, D., 2017. Caracterización bromatológica de pellets elaborados a partir de subproductos agropecuarios para la alimentación de bovinos. Tecnología en Marcha. Número Especial Movilidad Estudiantil 4. pp 73-81.

McCullough, H., 1967. The determination of ammonia in whole blood by a direct colorimetric method. clinica Chimica Acta, 17(2), pp. 297-304. http://dx.doi.org/10.1016/0009-8981(67)90133-7.

Nájera-Garduño, A.L, Piedra-Matías, R., Albarrán-Portillo, B., García-Martínez, A., 2016. Cambios en la ganadería doble propósito en el trópico seco del estado de México. Agrociencia, 50, pp. 701-710.

Omer, H., Ahmed, S., Abdel, M., Bakry, B., Mohamed, F and Eman, H., 2019. Nutritional impact of partial or complete replacement of soybean meal by sesame (Sesamum indicum) meal in lambs rations. Bulletin of the National Research Centre. 43, p. 98.

Rodríguez-González, K., Valverde-Abarca, A., Rodríguez-González, J., Murillo-Bravo, O., Camacho-Calvo, M., 2018. Efecto del genotipo y alimentación final sobre cortes cárnicos comerciales y calidad de canal en novillos. Agronomía Mesoamericana. 29(1), http://dx.doi.org/10.15517/ma.v29i1.28140

Sánchez-Santillán, P. and Cobos-Peralta, M.A., 2016. Producción in vitro de ácidos grasos volátiles de bacterias celulolíticas reactivadas y bacterias ruminales totales en sustratos celulósicos. Agrociencia. 50, pp. 565-574.

Santacoloma Varon, L.E., 2007. Las dietas en las emisiones de metano durante el proceso de rumia en sistemas de producción bovina. Revista de Investigación Agraria y Ambiental, 2011, pp. 55-64. https://doi.org/10.22490/21456453.913

Soliva, C.R and Hess, H., 2007. Measuring methane emission of ruminants by in vitro and in vivo techniques. In: H. Makkar, and P. Vercoe, editors, Measuring methane production from ruminants. Springer, HOL. p. 15-31.

Steel, G.R and Torrie, H.J., 1981. Principles and procedures of statistics a biometrical approach. Second ed. McGraw Hill, México. p.633.

Texta, N.J., Sánchez-Santillán, P., Hernández, S.D., Torres-Salado, N., Crosby, G.M., Rojas-García, A.R., Herrera, P.J., and Maldonado, P.M., 2019. Use of disaccharides andactivated carbon to preserve cellulolytic ruminal bacterial consortiums lyophilized. MVZ Cordoba, 24(3), pp. 7305-7313. https://doi.org/10.21897/rmvz.1412.

Torres-Fraga, K., Herrera-Torres, E., Reyes-Estrada, O. and Murillo-Ortiz, M., 2018. Producción de gas, degradabilidad y fermentación ruminal in vitro de dietas para bovinos de carne con la inclusión de hojas de encino (Quercus sp.). Agroproductividad, 11 (6), pp. 120-127.

Torres-Salado, N., Sánchez-Santillán, P., Rojas-García, A.R., Almaraz-Buendía, I., Herrera-Pérez, J., Reyes-Vázquez, I. and Mayren-Mendoza, F.J., 2019. In vitro gas production and fermentative characteristics of ruminal cellulolytic bacterial consortia of water buffalo (Bubalus bubalis) and Suiz-bu cow. Agrociencia, 53(02), pp. 145-159.

Torres-Salado, N., Sánchez-Santillán, P., Rojas-García, A.R., Herrera-Pérez, J., y Hernández-Morales, J., 2018. Producción de gases efecto invernadero in vitro de leguminosas arbóreas del trópico seco mexicano. Archivos de Zootecnia, 67(257), pp. 55-59. http://dx.doi.org/10.21071/az.v67i257.3347.

Vallardi, GM., 2000. Efecto de la fitasa en dietas para gallina de postura como fuente de energía, aminoácidos y fósforo. Tesis de Maestría. Facultad de Medicina Veterinaria y Zootecnia. Universidad de Colima. México.

Van-Keulen, J and Young B.A., 1977. Evaluation of acid-insoluble ash a natural marker in ruminant digestibility studies. Journal Animal Science. pp. 44, pp. 282-287. https://doi.org/10.2527/jas1977.442282x

Van-Soest, P.J, Robertson, J.B, Lewis, B.A., 1991. Methods for dietary fiber, neutral. detergent fiber, and nonstarch polysaccharides in relation to animal nutrition. Journal of Dairy Science. 74, pp. 3583-3597. https://doi.org/10.3168/jds.S0022-0302(91)78551-2




URN: http://www.revista.ccba.uady.mx/urn:ISSN:1870-0462-tsaes.v25i3.41556

DOI: http://dx.doi.org/10.56369/tsaes.4155



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