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Feed resource selection of Criollo goats artificially infected with Haemonchus contortus: nutritional wisdom and prophylactic self-medication

Published online by Cambridge University Press:  26 October 2017

J. Ventura-Cordero
Affiliation:
Facultad de Medicina Veterinaria y Zootecnia, Universidad Autónoma de Yucatán, Km 15.5 Carretera Mérida- Xmatkuil 97315 Mérida, Yucatán, Mexico Centro Multidisciplinario de Educación, Ciencia y Cultura S.C.P, Calle 35 C No. 43, 97215, Fracc. Colonial Buenavista, Mérida, Yucatán, Mexico
P. G. González-Pech
Affiliation:
Facultad de Medicina Veterinaria y Zootecnia, Universidad Autónoma de Yucatán, Km 15.5 Carretera Mérida- Xmatkuil 97315 Mérida, Yucatán, Mexico Centro Multidisciplinario de Educación, Ciencia y Cultura S.C.P, Calle 35 C No. 43, 97215, Fracc. Colonial Buenavista, Mérida, Yucatán, Mexico
P. R. Jaimez-Rodriguez
Affiliation:
Facultad de Medicina Veterinaria y Zootecnia, Universidad Autónoma de Yucatán, Km 15.5 Carretera Mérida- Xmatkuil 97315 Mérida, Yucatán, Mexico
G. I. Ortiz-Ocampo
Affiliation:
Facultad de Medicina Veterinaria y Zootecnia, Universidad Autónoma de Yucatán, Km 15.5 Carretera Mérida- Xmatkuil 97315 Mérida, Yucatán, Mexico
C. A. Sandoval-Castro
Affiliation:
Facultad de Medicina Veterinaria y Zootecnia, Universidad Autónoma de Yucatán, Km 15.5 Carretera Mérida- Xmatkuil 97315 Mérida, Yucatán, Mexico
J. F. J. Torres-Acosta*
Affiliation:
Facultad de Medicina Veterinaria y Zootecnia, Universidad Autónoma de Yucatán, Km 15.5 Carretera Mérida- Xmatkuil 97315 Mérida, Yucatán, Mexico
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Abstract

Previous cafeteria studies suggested that a moderate natural gastrointestinal nematode (GIN) infection did not modify the resource selection of adult Criollo goats towards tannin-rich plants compared with worm-free goats. A higher infection with Haemonchus contortus could trigger a change in the resource selection behaviour towards tannin-rich foliage. Alternatively, goats might select plant species solely to meet their nutritional requirements. A cafeteria study investigated the effect of a high artificial infection with H. contortus on the feed resource selection of goats. Adult Criollo goats (37.5±4.8 kg BW) with browsing experience were distributed in two groups: the infected group (IG) with six animals artificially infected with H. contortus (6000 L3/animal); and the non-infected group (NIG) with six animals maintained worm-free. The experiment included two 5-day periods with additional 5-day adaptation period. In the first period, animals were offered foliage of five plant species with a decreasing gradient of condensed tannins (CT) (Mimosa bahamensis, Gymnopodium floribundum, Havardia albicans, Acacia pennatula, Lysiloma latisiliqum), and three plant species with negligible CT content (Leucaena leucocephala, Piscidia piscipula and Brosimum alicastrum). In the second period the foliage of B. alicastrum was withdrawn. A grain-based concentrate feed was offered daily at 1% BW in DM basis. Dry matter and nutrient intake was determined. Foliage selection of each experimental group was determined using the Chesson selection index. The H. contortus egg count per gram of faeces (EPG) was determined for infected goats twice daily. Chesson index showed a similar pattern of foliage selection on periods 1 and 2. Mean EPG of goats in IG was 2028±259 EPG during period 1 and 1 293±198 EPG during period 2 (P>0.05). During period 1, the selection pattern was highest for B. alicastrum (tannin-free), followed by a tannin-rich plant (M. bahamensis). These two plants remained as highly selected during period 2. The Chesson index showed that both experimental groups (IG and NIG) selected the same plant species in both periods. Thus, a high H. contortus infection did not affect selection of goats fed with CT-rich plants. Apparently, goats balanced their nutrient intake with the plants selected, showing evidence of nutritional wisdom. This balance may have helped to prevent excess protein in the diet and also to maintain a low GIN infection, both considered as examples of prophylactic self-medication.

Type
Research Article
Copyright
© The Animal Consortium 2017 

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References

Agriculture and Food Research Council 1993. Energy and protein requirements of ruminants. An advisory manual prepared by the AFRC Technical Committee on Responses to Nutrients. CAB International, Wallingford, UK.Google Scholar
Alonso-Díaz, MA, Torres-Acosta, JFJ, Sandoval-Castro, CA and Hoste, H 2011. Comparing the sensitivity of two in vitro assays to evaluate the anthelmintic activity of tropical tannin rich plant extracts against Haemonchus contortus . Veterinary Parasitology 181, 360364.CrossRefGoogle ScholarPubMed
Alonso-Díaz, MA, Torres-Acosta, JFJ, Sandoval-Castro, CA, Hoste, H, Aguilar-Caballero, AJ and Capetillo-Leal, CM 2008. Is goats’ preference of forage trees affected by their tannin or fiber content when offered in cafeteria experiments? Animal Feed Science Technology 141, 3648.CrossRefGoogle Scholar
Amit, M, Cohen, I, Marcovics, A, Muklada, H, Glasser, TA, Ungar, ED and Landau, SY 2013. Self-medication with tannin-rich browse in goats infected with gastro-intestinal nematodes. Veterinary Parasitology 198, 305311.CrossRefGoogle ScholarPubMed
Association of Official Analytical Chemists (AOAC) 1980. Official methods of analysis, 13th edition. AOAC, Washington, DC, USA.Google Scholar
Barros-Rodríguez, M, Solorio-Sánchez, J, Ku-Vera, J, Ayala-Burgos, A, Sandoval-Castro, C and Solíz-Pérez, G 2012. Productive performance and urinary excretion of mimosine metabolites by hair sheep grazing in a silvopastoral system with high densities of Leucaena leucocephala . Tropical Animal Health Production 44, 18731878.Google Scholar
Cabaret, J and Berrag, B 2004. Faecal egg count reduction test for assessing anthelmintic efficacy: average versus individually based estimations. Veterinary Parasitology 121, 105113.Google Scholar
Castañeda-Ramírez, GS, Torres-Acosta, JFJ, Sandoval-Castro, CA, González-Pech, PG, Ortíz-Ocampo, G and Parra-Tabla, V 2017. Relación entre el contenido de taninos condensados, fenoles totales y taninos totales de extractos metanol:agua de plantas forrajeras y su efecto sobre el desenvaine y eclosión de Haemonchus contortus. In Proceedings of the X Congreso Nacional de Parasitología Veterinaria, 9 to 11 August, Puebla, México, pp. 260–263.Google Scholar
Copani, G, Hall, JO, Miller, J, Priolo, A and Villalba, JJ 2013. Plant secondary compounds as complementary resources: are they always complementary? Oecologia 172, 10411049.Google Scholar
de Roode, JC, Lefèvre, T and Hunter, MD 2013. Self-medication in animals. Science 340, 150151.Google Scholar
Gárate-Gallardo, L, Torres-Acosta, JFJ, Aguilar-Caballero, AJ, Sandoval-Castro, CA, Cámara-Sarmiento, R and Canul-Ku, HL 2015. Comparing different maize supplementation strategies to improve resilience and resistance against gastrointestinal nematode infections in browsing goats. Parasite 22, 19.CrossRefGoogle ScholarPubMed
García, E 1988. Modificaciones al sistema de clasificación climática de Kôppen. Instituto de Geografía. Universidad Autónoma de México, México.Google Scholar
Githiori, JB, Höglund, J, Waller, PJ and Baker, RL 2004. Evaluation of anthelmintic properties of some plants used as livestock dewormers against Haemonchus contortus infections in sheep. Parasitology 129, 245253.Google Scholar
González-Pech, PG, Torres-Acosta, JFJ, Sandoval-Castro, CA and Tun-Garrido, J 2015. Feeding behavior of sheep and goats in a deciduous tropical forest during the dry season: the same menu consumed differently. Small Ruminant Research 133, 128134.Google Scholar
Hagerman, AE, Rice, ME and Ritchard, NT 1998. Mechanisms of protein precipitation for two tannins, pentagalloyl glucose and epicatechin16 (4→8) catechin (procyanidin). Journal of Agricultural and Food Chemistry 46, 25902595.CrossRefGoogle Scholar
Hernández-Orduño, G, Torres-Acosta, JFJ, Sandoval-Castro, CA., Aguilar-Caballero, AJ, Capetillo-Leal, CM and Alonso-Díaz, MA 2012. In cafeteria trials with tannin rich plants, tannins do not modify foliage preference of goats with browsing experience. Ethology Ecology & Evolution 24, 332343.Google Scholar
Huffman, MA 2003. Animal self-medication and ethno-medicine: exploration and exploitation of the medicinal properties of plants. Proceedings of the Nutrition Society 62, 371381.CrossRefGoogle ScholarPubMed
Juhnke, J, Miller, J, Hall, JO, Provenza, FD and Villalba, JJ 2012. Preference for condensed tannins by sheep in response to challenge infection with Haemonchus contortus . Veterinary Parasitology 188, 104114.Google Scholar
Landau, S, Azaizeh, H, Muklada, H, Glasser, T, Ungar, ED, Baram, H, Abbas, N and Markovics, A. 2010. Anthelmintic activity of Pistacia lentiscus foliage in two Middle Eastern breeds of goats differing in their propensity to consume tannin-rich browse. Veterinary Parasitology 173, 280286.CrossRefGoogle ScholarPubMed
Makkar, HPS 2003. Quantification of Tannins in Tree and Shrub Foliage. A Laboratory Manual. FAO/IAEA publication. H.P.S. Kluwer Academic Publishers, Dordrecht, the Netherlands.Google Scholar
Martínez-Ortíz-de-Montellano, C, Vargas-Magaña, JJ, Canul-Ku, HL, Miranda-Soberanis, R, Capetillo-Leal, C, Sandoval-Castro, CA, Hoste, H and Torres-Acosta, JFJ 2010. Effect of a tropical tannin-rich plant Lysiloma latisiliquum on adult populations of Haemonchus contortus in sheep. Veterinary Parasitology 172, 283290.Google Scholar
Méndez-Ortíz, FA, Sandoval-Castro, CA and Torres-Acosta, JFJ 2012. Short term consumption of Havardia albicans tannin rich fodder by sheep: effects on feed intake, diet digestibility and excretion of Haemonchus contortus eggs. Animal Feed Science and Technology 176, 185191.CrossRefGoogle Scholar
Mertens, DR 2002. Gravimetric determination of amylase-treated neutral detergent fiber in feeds with refluxing beakers or crucibles: collaborative study. Journal of Association of Official Analytical Chemists International 85, 12171240.Google Scholar
Minitab 16 Statistical Software 2013. Computer software Minitab ver.16.2.4. Minitab Inc., State College, PA. Retrieved on 18 August 2016 from http://www.minitab.com Google Scholar
Novelo-Chi, LK, González-Pech, PG, Ventura-Cordero, J, Torres-Acosta, JFL and Sandoval-Castro, CA 2016. Gastrointestinal nematode infection and feeding behaviour of goats in a heterogeneous vegetation: no evidence of self-medication. Behavioural Processes. SubmittedGoogle Scholar
Price, ML, Van Scoyoc, S and Buttler, LG 1978. A critical evaluation of the vanillin reaction assay for tannin in sorghum grain. Journal of Agriculture Food and Chemistry 26, 12141218.Google Scholar
Provenza, FD 1995. Postingestive feedback as an elementary determinant of food preference and intake in ruminants. Journal of Rangeland Management 48, 217.Google Scholar
Torres-Acosta, JFJ, Pérez-Cruz, M, Canul-Ku, HL, Soto-Barrientos, N, Cámara-Sarmiento, R, Aguilar-Caballero, AJ, Lozano-Argáes, I, Le Bigot, C and Hoste, H 2014. Building a combined targeted selective treatment scheme against gastrointestinal nematodes in tropical goats. Small Ruminant Research 121, 2735.CrossRefGoogle Scholar
Van Soest, PJ 1994. Nutritional ecology of the ruminant. Cornell University Press, Ithaca, USA.Google Scholar
Van Soest, PJ, Robertson, JB and Lewis, BA 1991. Methods for dietary fiber, neutral detergent fiber, and nonstarch polysaccharides in relation to animal nutrition. Journal of Dairy Science 74, 35833597.CrossRefGoogle ScholarPubMed
Ventura-Cordero, J, González-Pech, PG, Jaimez-Rodriguez, PR, Ortíz-Ocampo, GI, Sandoval-Castro, CA and Torres-Acosta, JFJ 2017. Gastrointestinal nematode infection does not affect selection of tropical foliage by goats in a cafeteria trial. Tropical Animal Health and Production 49, 97104.CrossRefGoogle ScholarPubMed
Villalba, JJ, Miller, J, Ungar, ED, Landau, SY and Glendinning, J 2014. Ruminant self-medication against gastrointestinal nematodes: evidence, mechanism, and origins. Parasite 21, 31.Google Scholar
Villalba, JJ and Provenza, FD 2007. Self-medication and homeostatic behaviour in herbivores: learning about the benefits of nature’s pharmacy. Animal 1, 13601370.CrossRefGoogle ScholarPubMed
Villalba, JJ, Provenza, FD, Hall, JO and Lisonbee, LD 2010. Selection of tannins by sheep in response to gastrointestinal nematode infection. Journal of Animal Science 88, 21892198.Google Scholar