Page 117 - Basic Monitoring in Canine and Feline Emergency Patients
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Hopper, K (2015b) Nontraditional acid-base analysis. contamination based on glucose result. Clinical
Biochemistry 55, 93–95.
In: Silverstein, D.C., Hopper, K. (eds), Small Animal Johnson, R.A., de Morais, H.A. (2012) Respiratory acid-
VetBooks.ir Hopper, K., Rezende., M., Haskins, S. (2005) Assessment base disorders. In: Dibartola, S.P. (ed.), Fluid,
Critical Care Medicine, 2nd edn. Elsevier, St. Louis,
Missouri, USA, pp. 296–299.
Electrolyte and Acid-Base Disorders in Small Animal
of the effect of dilution of blood samples with sodium Practice, 4th edn. Elsevier, St. Louis, Missouri, USA,
heparin on blood gas, electrolyte, and lactate meas- pp. 287–301.
urements in dogs. American Journal of Veterinary Knowles, T.P., Mullin, R.A., Hunter, J.A., et al. (2006)
Research 66, 656–660. Effects of syringe material, sample storage time, and
Hopper, K., Epstein, S., Kass, P., et al. (2014) temperature on blood gases and oxygen saturation
Evaluation of acid–base disorders in dogs and cats in arterialized human blood samples. Respiratory
presenting to an emergency room. Part 1: Care 51, 732–736.
Comparison of three methods of acid–base analy- Lippi, G., Fontana, R., Avanzini, P., et al. (2013)
sis. Journal of Veterinary Emergency and Critical Influence of spurious hemolysis on blood gas analy-
Care 24, 493–501. sis. Clinical and Chemical Laboratory Medicine 51,
Jara-Aguirre, J., Meets, S.W., Wockenfus, A., et al. 1651–1654.
(2018) Blood gas sample spiking with total paren- Toffaletti, J.G., Rackley, C.R. (2016) Monitoring oxy-
teral nutrition, lipid emulsion, and concentrated dex- gen status. Advances in Clinical Chemistry 77,
trose solutions as a model for predicting sample 103–124.
Venous and Arterial Blood Gas Analysis 109