| Literature DB >> 28814306 |
Gareth E Zeiler1, Leith C R Meyer2.
Abstract
BACKGROUND: In mammals, homeostasis and survival are dependent on effective trans-membrane movement of ions and enzyme function, which are labile to extreme acid-base changes, but operate efficiently within a narrow regulated pH range. Research in patients demonstrating a pH shifts outside the narrow regulated range decreased the cardiac output and systemic vascular resistance and altered the oxygen binding to haemoglobin. These cardiopulmonary observations may be applicable to the risks associated with anaesthesia and performance of wildlife ungulates on game farms. The aim of this study was to compare blood pH changes over time in impala immobilised and anaesthetised with two different drug protocols (P-TMP - immobilisation: thiafentanil-medetomidine; maintenance: propofol-ketamine-medetomidine; P-EME - immobilisation: etorphine-medetomidine; maintenance: etorphine-ketamine-medetomidine). Additionally, we discuss the resultant blood pH using both the Henderson-Hasselbalch and the Stewart approaches. Two data collection time points were defined, Time1 before maintenance of general anaesthesia and Time 2 at end of maintenance of general anaesthesia. We hypothesise that blood pH would not be different between drug protocols and would not change over time.Entities:
Keywords: Aepyceros melampus; Blood pH; General anaesthesia; Henderson-Hasselbalch; Immobilisation; Impala; Stewart approach
Mesh:
Substances:
Year: 2017 PMID: 28814306 PMCID: PMC5559803 DOI: 10.1186/s12917-017-1163-8
Source DB: PubMed Journal: BMC Vet Res ISSN: 1746-6148 Impact factor: 2.741
Calculations used to calculate variables of interest to explain the acid-base balance in healthy impala (Aepyceros melampus) undergoing immobilisation and general anaesthesia using two different drug protocols
| Variable | Equation used in study | Equation references | Unit | Ruminant values | Value references |
|---|---|---|---|---|---|
| SIDa | = ([Na+] + [K+] + [Ca++])-([Cl−] + [Lactate]) | [ | mEq/L | Calf: 39.3 ± 4.5 | [ |
| Calf: 40.0 ± 2.0 | [ | ||||
| SIDe | = 2.46 × 10pH-8 × PaCO2 + albumin (g/dL) × (0.123 × pH – 0.631) + phosphate (mEq/L) × (0.309 × pH – 0.469) | [ | mEq/L | Calf: 34.8 ± 4.8 | [ |
| Calf: 40.0 ± 2.0 | [ | ||||
| SIG | = SIDa-SIDe | [ | mEq/L | Calf: 0.0 ± 3.0 | [ |
| AG | = ([Na+] + [K+])-([Cl−] + [HCO3 −]) | [ | mEq/L | Goat: 20.02 ± 0.5 | [ |
| Goat: 12.62 ± 1.7 | [ | ||||
| Goat: 20.0 ± 3 | [ | ||||
| Goat: 17.1 ± 3.9 | [ | ||||
| Calf: 20.29 ± 4.5 | [ | ||||
| Atot | = 2.25 × albumin (g/dL) + 1.4 × globulin (g/dL) + 0.59 × Phosphate (mg/dL) | [ | mmol/L | Calf: 18.2 ± 2.6 | [ |
| Calf: 19.2 ± 6.1 | [ |
SIDa apparent strong ion difference, SIDe effective strong ion difference, SIG strong ion gap, AG anion gap, Atot total weak acids in plasma, Na sodium ion, K potassium ion, Ca calcium ion, Cl chloride ion, HCO bicarbonate ion, g/dL grams per decilitre, mEq/L milliequivilent per litre, mg/dL milligrams per decilitre, mmol/L millimoles per litre
Measured and calculated values obtained from healthy impala (Aepyceros melampus) undergoing immobilisation and general anaesthesia using two different drug protocols
| Variable | Unit | Time 1 | Time 2 |
| ||||||
|---|---|---|---|---|---|---|---|---|---|---|
| P-TMP | P-EME | P-TMP | P-EME | |||||||
| Mean | ±SD | Mean | ±SD | Mean | ±SD | Mean | ±SD | |||
| Times to sampling (from dart placement until sampling) | ||||||||||
| Times to sampling | min | 16.8 | ±7.0 | 19.2 | ±5.6 | 150.4 | ±5.7 | 151.8 | ±6.3 | |
| T-test |
|
| ||||||||
| Basic clinical parameters at time of sampling | ||||||||||
| Heart rate | Beats/min | 122 | ±40 | 79 | ±37 | 57 | ±9 | 59 | ±11 | <0.001 |
| Resp rate | Breaths/min | 9 | ±5 | 9 | ±2 | 10 | ±2 | 10 | ±2 | 0.316 |
| MAP | mmHg | 126 | ±14 | 117 | ±18 | 102 | ±12 | 90 | ±19 | 0.001 |
| Temperature | °C | 38.9 | ±0.4 | 39.3 | ±0.2 | 37.0 | ±0.2 | 37.0 | ±0.2 | <0.001 |
| Arterial blood acid base analysis | ||||||||||
| pH | N/A | 7.36 | ±0.04 | 7.38 | ±0.04 | 7.31 | ±0.02 | 7.30 | ±0.05 | 0.001 |
| HCO3 − | mEq/L | 29.0 | ±2.7 | 30.1 | ±2.9 | 36.0 | ±5.9 | 35.9 | ±1.5 | <0.001 |
| mmol/L | 29.0 | ±2.7 | 30.1 | ±2.9 | 36.0 | ±5.9 | 35.9 | ±1.5 | ||
| BE | mEq/L | 3.6 | ±2.4 | 4.9 | ±3.1 | 9.8 | ±6.1 | 9.5 | ±1.5 | <0.001 |
| mmol/L | 3.6 | ±2.4 | 4.9 | ±3.1 | 9.8 | ±6.1 | 9.5 | ±1.5 | ||
| Lactate | mEq/L | 3.0 | ±1.6 | 2.9 | ±1.4 | 0.3 | ±0.0 | 0.3 | ±0.0 | <0.001 |
| mmol/L | 3.0 | ±1.6 | 2.9 | ±1.4 | 0.3 | ±0.0 | 0.3 | ±0.0 | ||
| Electrolytes | ||||||||||
| Na+ | mEq/L | 145.8 | ±1.3 | 146.9 | ±2.3 | 146.4 | ±2.4 | 148.2 | ±2.4 | 0.170 |
| mmol/L | 145.8 | ±1.3 | 146.9 | ±2.3 | 146.4 | ±2.4 | 148.2 | ±2.4 | ||
| K+ | mEq/L | 4.2 | ±0.2 | 4.1 | ±0.4 | 3.6 | ±0.1 | 3.6 | ±0.3 | <0.001 |
| mmol/L | 4.2 | ±0.2 | 4.1 | ±0.4 | 3.6 | ±0.1 | 3.6 | ±0.3 | ||
| Ca++ | mEq/L | 1.1 | ±0.1 | 1.1 | ±0.1 | 1.1 | ±0.1 | 1.1 | ±0.1 | 0.307 |
| mmol/L | 0.55 | ±0.05 | 0.55 | ±0.05 | 0.55 | ±0.05 | 0.55 | ±0.05 | ||
| Cl− | mEq/L | 107.4 | ±3.1 | 106.6 | ±2.8 | 103.9 | ±2.6 | 106.3 | ±2.4 | 0.046 |
| mmol/L | 107.4 | ±3.1 | 106.6 | ±2.8 | 103.9 | ±2.6 | 106.3 | ±2.4 | ||
| P− | mEq/L | 2.2 | ±0.4 | 2.2 | ±0.5 | 2.0 | ±0.5 | 2.2 | ±0.5 | 0.606 |
| mmol/L | 2.2 | ±0.4 | 2.2 | ±0.5 | 2.0 | ±0.5 | 2.2 | ±0.5 | ||
| Proteins | ||||||||||
| Albumin | g/dL | 4.4 | ±0.3 | 4.2 | ±0.3 | 3.6 | ±0.2 | 3.7 | ±0.1 | <0.001 |
| Globulin | g/dL | 1.8 | ±0.3 | 1.6 | ±0.3 | 1.5 | ±0.3 | 1.4 | ±0.2 | 0.003 |
| Haematocrit | L/L | 0.29 | ±0.03 | 0.28 | ±0.03 | 0.18 | ±0.02 | 0.20 | ±0.03 | <0.001 |
| Haemoglobin | g/dL | 9.98 | ±0.86 | 9.42 | ±1.22 | 6.12 | ±0.72 | 6.72 | ±0.88 | <0.001 |
| Independent variables affecting pH | ||||||||||
| PaCO2 | mmHg | 51.5 | ±8.6 | 51.2 | ±6.7 | 71.4 | ±15.6 | 73.8 | ±9.1 | <0.001 |
| SIDa | mEq/L | 40.7 | ±1.9 | 42.7 | ±2.7 | 47.0 | ±4.3 | 46.2 | ±1.4 | <0.001 |
| mmol/L | 40.1 | ±1.9 | 42.1 | ±2.7 | 46.4 | ±4.3 | 45.7 | ±1.6 | ||
| SIDe | mEq/L | 34.1 | ±3.0 | 35.1 | ±3.6 | 40.4 | ±6.0 | 40.8 | ±2.0 | <0.001 |
| mmol/L | 34.1 | ±3.0 | 35.1 | ±3.6 | 40.4 | ±6.0 | 40.8 | ±2.0 | ||
| SIG | mEq/L | 6.6 | ±3.3 | 7.5 | ±1.8 | 6.5 | ±3.2 | 5.5 | ±2.2 | 0.243 |
| mmol/L | 6.0 | ±3.2 | 7.0 | ±1.4 | 6.0 | ±3.2 | 5.0 | ±2.2 | ||
| AG | mEq/L | 13.5 | ±4.0 | 14.3 | ±2.1 | 10.2 | ±2.8 | 9.5 | ±1.7 | <0.001 |
| mmol/L | 13.5 | ±4.0 | 14.3 | ±2.1 | 10.2 | ±2.8 | 9.5 | ±1.7 | ||
| Atot | mmol/L | 16.4 | ±1.2 | 15.7 | ±1.2 | 13.8 | ±1.1 | 14.3 | ±1.0 | <0.001 |
Time1: sampling prior to maintenance of general anaesthesia; Time 2: sampling 1 min prior to ending general anaesthesia; P-TMP protocol using thiafentanil-medetomidine immobilisation and propofol-ketamine-medetomidine infusion for general anaesthesia maintenance, P-EME protocol using etorphine-medetomidine immobilisation and etorphine-ketamine-medetomidine infusion for general anaesthesia, P value level of significance estimated over time, min minute, Resp rate respiratory rate, MAP direct mean arterial blood pressure, HCO bicarbonate ion, BE base excess, Na sodium ion, K potassium ion, Ca calcium ion, Cl chloride ion, P phosphorus ion, PaCO arterial partial pressure of carbon dioxide, SIDa apparent strong ion difference, SIDe effective strong ion difference, SIG strong ion gap, AG anion gap Atot total weak acids in plasma, mmHg millimetres mercury, g/dL grams per decilitre, mEq/L milliequivilent per litre, mg/dL milligrams per decilitre, mmol/L millimoles per litre
Fig. 1Box plot and whiskers of the independent variables in healthy impala (Aepyceros melampus) thought responsible for the change in hydrogen ion concentration (pH) in the plasma. Time 1 was sampling after immobilisation with either thiafentanil-medetomidine (P-TMP) or etorphine-medetomidine (P-EME). Time 2 was sampling at the end of either a propofol-ketamine-medetomidine (P-TMP) or an etorphine-ketamine-medetomidine (P-EME) total intravenous infusion. Where: PaCO2 is the arterial partial pressure of carbon dioxide; SIDa is the apparent strong ion difference; Atot is the total weak acid concentration in plasma; mmHg: millimetres mercury; mEq/L: milliequivence per litre and mmol/L: millimoles per litre; †: significant change in variable value over time for P-TMP protocol; ‡: significant