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The Relationship Between Subclinical Ketosis and Ruminal Dysfunction in Dairy Cows


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Abdela N. (2016). Sub-acute ruminal acidosis (SARA) and its consequences in dairy cattle: A review of past and recent research at global prospective. Achievements in the Life Science, 10: 187–196.Search in Google Scholar

Abdelli A., Raboisson D., Kaidi R., Ibrahim B., Kalem A., Iguer-Ouada M. (2017). Elevated non-esterified fatty acid and β-hydroxybutyrate in transition dairy cows and their association with reproductive performance and disorders: A meta-analysis. Theriogenology, 93: 99–104.Search in Google Scholar

Bach K.D., Heuwieser W., Mc Art J.A.A. (2016). Technical note: Comparison of 4 electronic handheld meters for diagnosing hyperketonemia in dairy cows. J. Dairy Sci., 99: 9136–9142.Search in Google Scholar

Bobe G., Young J.W., Beitz D.C. (2004). Invited review: Pathology, etiology, prevention, and treatment of fatty liver in dairy cows. J. Dairy Sci., 87: 3105–3124.Search in Google Scholar

Chapinal N., Carson M.E., Le Blanc S.J., Leslie K.E., Godden S., Capel M., Santos J.E.P., Overton M.W., Duffield T.F. (2012). The association of serum metabolites in the transition period with milk production and early-lactation reproductive performance. J. Dairy Sci., 95: 1301–1309.Search in Google Scholar

Danfaer A., Tetens V., Agergaard N. (1995). Review and an experimental study on the physiological and quantitative aspects of gluconeogenesis in lactating ruminants. Comp. Biochem. Physiol., 111B: 201–210.Search in Google Scholar

Doreau M., Ollier A., Machlet-Doreau B. (2001). An atypical case of ruminal fermentations leading to ketosis in early lactating cows. Rev. Med. Vet., 152: 301–306.Search in Google Scholar

Duffield T., Lissemore K., Mc Bride B., Leslie K. (2009). Impact of hyperketonemia in early lactation dairy cows on health and production. J. Dairy Sci., 92: 571–580.Search in Google Scholar

Enemark J.M.D. (2008). The monitoring, prevention and treatment of subacute ruminal acidosis (SARA): a review. Vet. J., 176: 32–43.Search in Google Scholar

Enemark J.M.D., Jorgensen R.J. (2001). Subclinical rumen acidosis as a cause of reduced appetite in newly calved cows in Denmark: Results of a poll among Danish dairy practitioners. Vet. Quarterly, 23: 206–210.Search in Google Scholar

Goff J.P. (2008). The monitoring, prevention, and treatment of milk fever and subclinical hypocalcemia in dairy cows. Vet. J., 176: 50–57.Search in Google Scholar

González F.D., Muiño R., Pereira V., Campos R., Benedito J.L. (2010). Relationship among blood indicators of lipomobilization and hepatic function during early lactation in high-yielding dairy cows. J. Vet. Sci., 12: 251–255.Search in Google Scholar

Hofírek B., Haas D. (2001). Comparative studies of ruminal fluid collected by oral tube or by puncture of the caudoventral ruminal sac. Acta Vet. Brno, 70: 27–33.Search in Google Scholar

Hofirek B., Dvořák R., Němeček L., Doležel R., Pospíši l Z., et al. (2009). Cattle diseases (in Czech). ČBS, Noviko a.s. (CZ), 1149 pp.Search in Google Scholar

Ingvartsen K.L. (2006). Feeding- and management-related diseases in the transition cow. Physiological adaptations around calving and strategies to reduce feeding-related diseases. Anim. Feed Sci. Tech., 126: 175–213.Search in Google Scholar

Kimura K., Reinhardt T.A., Goff J.P. (2006). Parturition and hypocalcemia blunts calcium signals in immune cells of dairy cattle. J. Dairy Sci., 89: 2588–2595.Search in Google Scholar

Kleen J.L., Cannizzo C. (2012). Incidence, prevalence and impact of SARA in dairy herds. Anim. Feed Sci. Tech., 172: 4–8.Search in Google Scholar

Lean I.J., Bruss M.L., Baldwin R.L., Troutt H.F. (1992). Bovine ketosis: a review. II. Biochemistry and prevention. Vet. Bull., 62: 1–14.Search in Google Scholar

Li P., Li X.B., Fu S.X., Wu C.C., Wang X.X., Yu G.J., Long M., Wang Z., Liu G.W. (2012). Alterations of fatty acid β-oxidation capability in the liver of ketotic cows. J. Dairy Sci., 95: 1759–1766.Search in Google Scholar

Mc Art J.A.A., Nydam D.V., Oetzel G.R., Overton T.R., Ospina P.A. (2013). Elevated non-esterified fatty acids and β-hydroxybutyrate and their association with transition dairy cow performance. Vet. J., 198: 560–570.Search in Google Scholar

Mc Carthy M.M., Mann S., Nydam D.V., Overton T.R., Mc Art J.A.A. (2015). Short communication: Concentrations of nonesterified fatty acids and β-hydroxybutyrate in dairy cows are not well correlated during transition period. J. Dairy Sci., 98: 6284–6290.Search in Google Scholar

Owens F.N., Secrist D.S., Hill W.J., Gill D.R. (1998). Acidosis in cattle: A review. J. Anim. Sci., 76: 275–286.Search in Google Scholar

Pechová A., Illek J., Pavlata L. (2002). Einwirkungen der Lebersteatose auf den Stoffwechsel bei Milchkühen. Wien. Tierärztl. Mschr., 89: 325–332.Search in Google Scholar

Plaizier J.C., Krause D.O., Gozho G.N., Mc Bride B.W. (2008). Subacute ruminal acidosis in dairy cows: the physiological causes, incidence and consequences. Vet. J., 176: 21–31.Search in Google Scholar

Raboisson D., Mounié M., Maigné E. (2014). Diseases, reproductive performance, and changes in milk production associated with subclinical ketosis in dairy cows: A meta-analysis and review. J. Dairy Sci., 97: 7547–7563.Search in Google Scholar

Reinhardt T.A., Lippolis J.D., Mc Cluskey B.J., Goff J.P., Horst R.L. (2011). Prevalence of subclinical hypocalcaemia in dairy herds. Vet. J., 188: 122–124.Search in Google Scholar

Ruoff J., Bertulat S., Burfeind O., Heuwieser W. (2016). Associations of β-hydroxybutyrate, cholesterol, triglycerides and high-density lipoproteins to non-esterified fatty acids pre- and postpartum. J. Dairy Res., 83: 447–452.Search in Google Scholar

Stefanska B., Nowak W., Komisarek J., Taciak M., Barszcz M., Skomial J. (2017). Prevalence and consequence of subacute ruminal acidosis in Polish dairy herds. J. Anim. Physiol. Anim. Nutr., 101: 694–702.Search in Google Scholar

Tothova C., Nagy O., Kovac G. (2014). Relationship between some variables of protein profile and indicators of lipomobilization in dairy cows after calving. Archiv Tierzucht., 57: 1–9.Search in Google Scholar

Weng X., Zhao W., Neethirajan S., Duffield T. (2015). Microfluidic biosensor for β Hydroxybutyrate (βHBA) determination of subclinical ketosis diagnosis. J. Nanobiotechnol., 13, http://dx.doi.org/10.1186/s12951-015-0076-610.1186/s12951-015-0076-6433457525880676Open DOISearch in Google Scholar

Zhang Z., Liu G., Li X., Gao L., Guo Ch., Wang H., Wang Z. (2010). Evaluation of the change of serum copper and zinc concentrations of dairy cows with subclinical ketosis. Biol. Trace Elem. Res., 138: 8–12.Search in Google Scholar

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