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Article

Potential prognostic markers of retained placenta in dairy cows identified by plasma metabolomics coupled with clinical laboratory indicators

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Pages 199-212 | Received 24 May 2022, Accepted 06 Nov 2022, Published online: 13 Nov 2022

References

  • Amin YA, Hussein HA. 2022. Latest update on predictive indicators, risk factors and 'Omic’ technologies research of retained placenta in dairy cattle – A review. Reproduction in domestic animals = Zuchthygiene.
  • Attupuram NM, Kumaresan A, Narayanan K, Kumar H. 2016. Cellular and molecular mechanisms involved in placental separation in the bovine: a review. Mol Reprod Dev. 83(4):287–297.
  • Beagley JC, Whitman KJ, Baptiste KE, Scherzer J. 2010. Physiology and treatment of retained fetal membranes in cattle. J Vet Intern Med. 24(2):261–268.
  • Boro P, Kumaresan A, Pathak R, Patbandha TK, Kumari S, Yadav A, Manimaran A, Baithalu RK, Attupuram NM, Mohanty TK. 2015. Alteration in peripheral blood concentration of certain pro-inflammatory cytokines in cows developing retention of fetal membranes. Anim Reprod Sci. 157:11–16.
  • Brickle A, Tran HT, Lim R, Liong S, Lappas M. 2015. Autophagy, which is decreased in labouring fetal membranes, regulates IL-1beta production via the inflammasome. Placenta. 36(12):1393–1404.
  • Bylesjö M, Eriksson D, Kusano M, Moritz T, Trygg J. 2007. Data integration in plant biology: the O2PLS method for combined modeling of transcript and metabolite data. Plant J. 52(6):1181–1191.
  • Dervishi E, Zhang G, Hailemariam D, Dunn SM, Ametaj BN. 2016. Occurrence of retained placenta is preceded by an inflammatory state and alterations of energy metabolism in transition dairy cows. J Anim Sci Biotechnol. 7:26.
  • Dervishi E, Zhang G, Mandal R, Wishart DS, Ametaj BN. 2018. Targeted metabolomics: new insights into pathobiology of retained placenta in dairy cows and potential risk biomarkers. Animal. 12(5):1050–1059.
  • Garcia-Ispierto I, Lopez-Helguera I, Serrano-Perez B, Paso V, Tuono T, Ramon A, Mur-Novales R, Tutusaus J, Lopez-Gatius F. 2016. Progesterone supplementation during the time of pregnancy recognition after artificial insemination improves conception rates in high-producing dairy cows. Theriogenology. 85(7):1343–1347.
  • Gohary K, LeBlanc SJ. 2018. Cost of retained fetal membranes for dairy herds in the United States. J Am Vet Med Assoc. 252(12):1485–1489.
  • Han IK, Kim IH. 2005. Risk factors for retained placenta and the effect of retained placenta on the occurrence of postpartum diseases and subsequent reproductive performance in dairy cows. J Vet Sci. 6(1):53–59.
  • Jadhav AA, Jain A. 2013. Adenosine deaminase activity in normal pregnancy and pregnancy associated disorders. Arch Physiol Biochem. 119(2):88–91.
  • Kanehisa M, Goto S, Sato Y, Furumichi M, Tanabe M. 2012. KEGG for integration and interpretation of large-scale molecular data sets. Nucleic Acids Res. 40(Database issue):D109–114.
  • Khudhair NA, Abbas HR, Alsalim HA. 2021. Relationship between enzymatic antioxidant activities and reproductive hormones in the cows with retained placenta in Basrah Province. Arch Razi Inst. 76(5):1537–1543.
  • Li Y, Zhao Z, Yu Y, Liang X, Wang S, Wang L, Cui D, Huang M. 2021. Plasma metabolomics reveals pathogenesis of retained placenta in dairy cows. Front Vet Sci. 8:697789.
  • Lu W, Sun H, Xu M, Luo Y, Jin J, Shao H, Xu ZM, Shao L, Fu S, Jin CH. 2020a. Blood urea nitrogen may serve as a predictive indicator of retained placenta in dairy cows. Anim Reprod Sci. 218:106481.
  • Lu WG, Sun HL, Xu MH, Luo YH, Jin JD, Shao HZ, Xu ZM, Shao LY, Fu SX, Jin CH. 2020b. Blood urea nitrogen may serve as a predictive indicator of retained placenta in dairy cows. Animal Reproduction Science. 218:106481.
  • Mahadevan S, Shah SL, Marrie TJ, Slupsky CM. 2008. Analysis of metabolomic data using support vector machines. Anal Chem. 80(19):7562–7570.
  • Mahnani A, Sadeghi-Sefidmazgi A, Ansari-Mahyari S, Ghorbani GR. 2021a. Assessing the consequences and economic impact of retained placenta in Holstein dairy cattle. Theriogenology. 175:61–68.
  • Mahnani A, Sadeghi-Sefidmazgi A, Ansari-Mahyari S, Ghorbani GR, Keshavarzi H. 2021b. Farm and cow factors and their interactions on the incidence of retained placenta in holstein dairy cows. Theriogenology. 159:87–97.
  • Martinez N, Sinedino LDP, Bisinotto RS, Daetz R, Lopera C, Risco CA, Galvao KN, Thatcher WW, Santos JEP. 2016. Effects of oral calcium supplementation on mineral and acid-base status, energy metabolites, and health of postpartum dairy cows. J Dairy Sci. 99(10):8397–8416.
  • McNaughton AP, Murray RD. 2009. Structure and function of the bovine fetomaternal unit in relation to the causes of retained fetal membranes. Vet Rec. 165(21):615–622.
  • Menon R, Richardson LS. 2017. Preterm prelabor rupture of the membranes: a disease of the fetal membranes. Semin Perinatol. 41(7):409–419.
  • Molefe K, Mwanza M. 2020. Variability of serum reproductive hormones in cows presenting various reproductive conditions in semi-arid areas of the North West Province, South Africa. Vet World. 13(3):502–507.
  • Oh SY, Roh CR. 2017. Autophagy in the placenta. Obstet Gynecol Sci. 60(3):241–259.
  • Patrick HS, Mitra A, Rosen T, Ananth CV, Schuster M. 2020. Pharmacologic intervention for the management of retained placenta: a systematic review and meta-analysis of randomized trials. Am J Obstet Gynecol. 223(3):447 e441–447 e419.
  • Peltoniemi O, Bjorkman S, Oliviero C, Soede N. 2015. Incidences of retained placenta and their effect on subsequent fertility in sows. Reprod Domestic Animals. 50:72–72.
  • Qu Y, Fadden AN, Traber MG, Bobe G. 2014. Potential risk indicators of retained placenta and other diseases in multiparous cows. J Dairy Sci. 97(7):4151–4165.
  • Ramos OP, Rezende AL, de Alvarenga PB, Campos CC, de Rezende EV, Silva MJB, Carneiro LC, de Moraes GF, Saut, JPE, dos Santos RM. 2022. Effect of retained placenta and clinical mastitis on reproduction parameters, immune response, and steroidogenic receptors gene expression in postpartum crossbred dairy cows. Trop Anim Health Pro. 54(3):180.
  • Risco CA, Hernandez J. 2003. Comparison of ceftiofur hydrochloride and estradiol cypionate for metritis prevention and reproductive performance in dairy cows affected with retained fetal membranes. Theriogenology. 60(1):47–58.
  • Shimizu T, Morino I, Kitaoka R, Miyamoto A, Kawashima C, Haneda S, Magata F. 2018. Changes of leukocyte counts and expression of pro- and anti-inflammatory cytokines in peripheral leukocytes in periparturient dairy cows with retained fetal membranes. Anim Sci J. 89(9):1371–1378.
  • Sotthibundhu A, Muangchan P, Phonchai R, Promjantuek W, Chaicharoenaudomrung N, Kunhorm P, Noisa P. 2021. Autophagy promoted neural differentiation of human placenta-derived mesenchymal stem cells. In Vivo. 35(5):2609–2620.
  • Takagi M, Fujimoto S, Ohtani M, Miyamoto A, Wijagunawardane MP, Acosta TJ, Miyazawa K, Sato K. 2002. Bovine retained placenta: hormonal concentrations in fetal and maternal placenta. Placenta. 23(5):429–437.
  • Thomas MM, Haghiac M, Grozav C, Minium J, Calabuig-Navarro V, O'Tierney-Ginn P. 2019. Oxidative stress impairs fatty acid oxidation and mitochondrial function in the term placenta. Reprod Sci. 26(7):972–978.
  • Tsugawa H, Ikeda K, Takahashi M, Satoh A, Mori Y, Uchino H, Okahashi N, Yamada Y, Tada I, Bonini P, et al. 2020. A lipidome atlas in MS-DIAL 4. Nat Biotechnol. 38(10):1159–1163.
  • Uyanikoglu H, Turp AB, Hilali NG, Incebiyik A. 2018. Serum endothelin-1 and placental alkaline phosphatase levels in placenta percreta and normal pregnancies. J Maternal-fetal Neonatal Med. 31(6):777–782.
  • van den Berg RA, Hoefsloot HC, Westerhuis JA, Smilde AK, van der Werf MJ. 2006. Centering, scaling, and transformations: improving the biological information content of metabolomics data. BMC Genomics. 7:142.
  • Warnakulasooriya DN, Marth CD, McLeod JA, Hanlon DW, Krekeler N. 2018. Treatment of retained fetal membranes in the mare – a practitioner survey. Front Vet Sci. 5:128.
  • Warrack BM, Hnatyshyn S, Ott KH, Reily MD, Sanders M, Zhang H, Drexler DM. 2009. Normalization strategies for metabonomic analysis of urine samples. J Chromatogr B Analyt Technol Biomed Life Sci. 877(5–6):547–552.
  • Wiklund S, Nilsson D, Eriksson L, Sjostrom M, Wold S, Faber K. 2007. A randomization test for PLS component selection. J Chemometrics. 21(10–11):427–439.
  • Wischral A, Nishiyama-Naruke A, Curi R, Barnabe RC. 2001a. Plasma concentrations of estradiol 17beta and PGF2alpha metabolite and placental fatty acid composition and antioxidant enzyme activity in cows with and without retained fetal membranes. Prostaglandins Other Lipid Mediat. 65(2–3):117–124.
  • Wischral A, Verreschi IT, Lima SB, Hayashi LF, Barnabe RC. 2001b. Pre-parturition profile of steroids and prostaglandin in cows with or without foetal membrane retention. Anim Reprod Sci. 67(3-4):181–188.
  • Wu PF, Lu H, Zhou X, Liang X, Li R, Zhang W, Li D, Xia K. 2021. Assessment of causal effects of physical activity on neurodegenerative diseases: a Mendelian randomization study. J Sport Health Sci. 10(4):454–461.
  • Xia J, Psychogios N, Young N, Wishart DS. 2009. MetaboAnalyst: a web server for metabolomic data analysis and interpretation. Nucleic Acids Res. 37(Web Server issue):W652–W660.
  • Xu W, van Knegsel A, Saccenti E, van Hoeij R, Kemp B, Vervoort J. 2020. Metabolomics of milk reflects a negative energy balance in cows. J Proteome Res. 19(8):2942–2949.
  • Yazlık MO, Çolakoğlu HE, Pekcan M, Kaya U, Kaçar C, Vural MR, Kurt S, Baş A, Küplülü Ş. 2019. The evaluation of superoxide dismutase activity, neutrophil function, and metabolic profile in cows with retained placenta. Theriogenology. 128:40–46.
  • Zhang G, Tobolski D, Zwierzchowski G, Mandal R, Wishart DS, Ametaj BN. 2021. A targeted serum metabolomics GC-MS approach identifies predictive blood biomarkers for retained placenta in Holstein dairy cows. Metabolites. 11(9):633.