Response of beef calves to different levels of postweaning ingestion of gastrointestinal parasite larvae
V. T. Burggraaf A C , A. R. Brooky B and C. J. Boom BA AgResearch, Ruakura Research Station, Private Bag 3123, Hamilton 3240, New Zealand.
B AgResearch, Whatawhata, Private Bag 3089, Hamilton 3240, New Zealand.
C Corresponding author. Email: vicki.burggraaf@agresearch.co.nz
Australian Journal of Experimental Agriculture 47(11) 1297-1303 https://doi.org/10.1071/EA06275
Submitted: 5 October 2006 Accepted: 20 March 2007 Published: 18 October 2007
Abstract
The postweaning response of beef calves to different levels of gastrointestinal parasite larvae (L3) ingestion was investigated. Newly weaned calves (n = 77, 6 months old) were trickle-dosed with 0, 1000, 2000, 4000, 7000 or 10 000 L3 (75% Cooperia oncophora, 10% Ostertagia ostertagi, 15% Trichostrongylus axei) per day for 10 weeks or drenched with anthelmintic at 3-weekly intervals. Liveweight, faecal egg count and blood serum pepsinogen were monitored regularly. Three calves per treatment were slaughtered following infection to determine adult worm burdens. For the following 11 weeks, liveweight, faecal egg count and serum pepsinogen were monitored for the remaining calves. During the dosing period, calves that were drenched had similar liveweight gain to those receiving up to 2000 parasites per day but grew 0.13–0.20 kg per day more than calves receiving between 4000 and 10 000 L3 per day. Faecal egg counts did not reflect liveweight gains or dose rate for calves receiving more than 2000 L3 per day and pepsinogen concentration did not reflect liveweight performance. Abomasal worm burdens at the end of dosing were highest in treatments receiving 4000 or more L3 per day but intestinal (Cooperia species) burdens were highest in those receiving low infection rates. Liveweight gain during the carryover period for the 4000 L3 treatment was significantly lower than in other treatments. Calves receiving anthelmintic showed a 14–40 kg liveweight advantage by the end of the experiment. This study indicates that to avoid production losses from parasites in beef calves in the absence of anthelmintic the ingestion of parasite larvae should be below 4000 per day.
Acknowledgements
Darren McDonald and Shane Hill for animal and pasture management, Paul Mason for identification and counting of worm burden samples, Gribbles Alpha laboratory for faecal egg count and pepsinogen analysis, Linda Trolove for assistance with L3 generation and extraction, Martin Upsdell for statistical analysis of liveweight and pepsinogen data, the Foundation for Research, Science and Technology for research funding.
Anderson N,
Armour J,
Eadie RM,
Jennings FW,
Ritchie JSD, Urquhart GM
(1966) Experimental Ostertagia ostertagi infections in calves: results of single infections with five graded dose levels of larvae. American Journal of Veterinary Research 27, 1259–1265.
Armour J,
Bairden K,
Holmes PH,
Parkins JJ,
Ploeger H,
Salman SK, McWilliam PN
(1987) Pathophysiological and parasitological studies on Cooperia oncophora infections in calves. Research in Veterinary Science 42, 373–381.
| PubMed |
Bisset SA
(1994) Helminth parasites of economic importance in cattle in New Zealand. New Zealand Journal of Zoology 21, 9–22.
Bisset SA, Marshall ED
(1987) Dynamics of Ostertagia spp. and Cooperia oncophora in field-grazed cattle from weaning to 2 years old in New Zealand, with particular reference to arrested development. Veterinary Parasitology 24, 103–116.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Boom CJ, Sheath GW
(2007) Migration of gastro-intestinal larvae from cattle faecal pats onto grazable herbage. Veterinary Parasitology in press ,
Boom CJ,
Sheath GW, Vlassoff A
(2003) Interaction of gastro-intestinal nematodes and calf weaning management on beef cattle growth. Proceedings of the New Zealand Society of Animal Production 63, 61–65.
Boom CJ,
Sheath GW, Vlassoff A
(2004) The effect of weaning date, gastro-intestinal nematode challenge and nutrition on beef calf growth. Proceedings of the New Zealand Society of Animal Production 64, 257–261.
Brunsdon RV
(1969) Trichostrongyle worm infection in cattle: ostertagiasis and concurrent infections in dairy calves: seasonal patterns of occurrence, pathology and diagnosis. New Zealand Veterinary Journal 17, 161–172.
| PubMed |
Brunsdon RV
(1971) Trichostrongyle worm infection in cattle: further studies on problems of diagnosis and on seasonal patterns of occurrence. New Zealand Veterinary Journal 19, 203–212.
| PubMed |
Coop RL,
Sykes AR, Angus KW
(1979) The pathogenicity of daily intakes of Cooperia oncophora larvae in growing calves. Veterinary Parasitology 5, 261–269.
| Crossref | GoogleScholarGoogle Scholar |
Corson DC,
Waghorn GC,
Ulyatt MJ, Lee J
(1999) NIRS: forage analysis and livestock feeding. Proceedings of the New Zealand Grassland Association 61, 127–132.
Enterocasso CM,
Parkins JJ,
Armour J, Bairden K
(1986) Production, parasitological and carcase evaluation studies in steers exposed to trichostronglye infection and treated with a morantel bolus or fenbendazole in two consecutive grazing seasons. Research in Veterinary Science 40, 76–85.
| PubMed |
Fox MT,
Gerrelli D,
Pitt SR,
Jacobs DE,
Gill M, Gale DL
(1989) Ostertagia ostertagi infection in the calf: effects of a trickle challenge on appetite, digestibility, rate of passage of digesta and liveweight gain. Research in Veterinary Science 47, 294–298.
| PubMed |
Hilderson HJ,
Vercruysse J,
Claerebout E,
de Graaf DC,
Fransen J, Berghen P
(1995) Interactions between Ostertagia ostertagi and Cooperia oncophora in calves. Veterinary Parasitology 56, 107–119.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Hirshowitz BI
(1957) Pepsinogen: its origins, secretion and excretion. Physiological Reviews 37, 475–511.
| PubMed |
Michel JF
(1968) The control of stomach-worm infection in young cattle. Journal of the British Grassland Society 23, 165–173.
Michel JF
(1969) Some observations on the worm burdens of calves infected daily with Ostertagia ostertagi. Parasitology 59, 175–195.
Michel JF
(1978) Plasma pepsinogen levels in some experimental infections of Ostertagia ostertagi in cattle. The Veterinary Record 103, 370–373.
| PubMed |
Mylrea PJ, Hotson IK
(1969) Serum pepsinogen activity and the diagnosis of bovine ostertagiasis. The British Veterinary Journal 125, 379–388.
| PubMed |
Ploeger HW,
Kloosterman A,
Rietveld FW,
Berghen P,
Hilderson H, Hollanders W
(1994) Quantitative estimation of the level of exposure to gastrointestinal nematode infection in first-year calves. Veterinary Parasitology 55, 287–315.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Somers CJ,
Downey NE, O’Shea J
(1987) Prophylaxis of trichostrongylid infection afforded by low-dose phenothiazine given in two successive years to first season calves on a common area of pasture. Research in Veterinary Science 43, 139–143.
Steel JW
(2003) Effects of protein supplementation of young sheep on resistance development and resilience to parasitic nematodes. Australian Journal of Experimental Agriculture 43, 1469–1476.
| Crossref | GoogleScholarGoogle Scholar |
van Houtert MF, Sykes AR
(1996) Implications of nutrition for the ability of ruminants to withstand gastrointestinal nematode infections. International Journal for Parasitology 26, 1151–1167.
| Crossref | GoogleScholarGoogle Scholar | PubMed |
Vercruysse J,
Hilderson H, Claerebout E
(1994) Effect of chemoprophylaxis with avermectins on immunity to gastrointestinal nematodes in cattle. Parasitology Today (Personal Ed.) 10, 129–132.
| Crossref | GoogleScholarGoogle Scholar | PubMed |