Reliability of calculated arterial oxygen-haemoglobin saturation in determining blood oxygenation of immobilised white rhinoceros (Ceratotherium simum)

Arterial oxygen-haemoglobin saturation (SaO 2 ) is an important biomarker of hypoxaemia, but is difficult to measure accurately in rhinoceros, especially during severe hypoxaemia. Pulse oximetry can reliably estimate SaO 2 in rhinoceros when attached to the third eyelid but only at SaO 2 ≥70%. The need for alternative methods led us to assess the reliability of the following approaches in calculating SaO 2 (cSaO 2 ) from conventional blood gas analysis: (i) Hill equation when the body mass-estimated P 50 (PO 2 when haemoglobin is 50% saturated with oxygen) is adjusted for pH alone (“pH-adjusted Hill cSaO 2 ”), (ii) Hill equation when P 50 is adjusted for pH, base excess and body temperature (“multivariable-adjusted Hill cSaO 2 ”), and (iii) the Siggaard-Andersen algorithm (“Siggaard-Andersen cSaO 2 ”). Sixteen white rhinoceroses ( Ceratotherium simum ) were immobilised with etorphine-based drug combinations and given butorphanol and, or oxygen. Arterial blood was drawn from the auricular artery and PaO 2 , PaCO 2 , and pH were measured using a portable Enterprise Point-of-Care (EPOC) blood gas analyser, and SaO 2 measured using a benchtop AVOXimeter 4000 co-oximeter (reference method). Bland-Altman and area root mean squares (ARMS) assessed the reliability of cSaO 2 values when compared to the co-oximeter SaO 2 measurements, with the reliability threshold set at ARMS ≤ 4%. The pH-adjusted Hill cSaO 2 and the multivariable-adjusted Hill cSaO 2 values were reliable within the 70–100% saturation range (bias 0% and − 2%, precision 3% and 4%, ARMS 3% and 4%, respectively). The Siggaard-Andersen cSaO 2 values were reliable only within the 90–100% range (bias 2%, precision 2%, ARMS 3%). Below 70%, all cSaO 2 methods were unreliable. However, across the entire 0-100% range, the pH-adjusted Hill cSaO 2 and multivariable-adjusted Hill cSaO 2 were only slightly above the reliability threshold (ARMS of 5%). The pH-adjusted Hill equation is best suited for calculating SaO 2 across the 70–100% saturation range in immobilised white rhinoceros. Although this equation did not meet the reliability threshold when saturations were below 70%, it nonetheless showed a marked improvement over previous pulse oximetry analyses. A simple calculator is presented to convert PaO 2 and pH into an estimate of SaO 2 , offering an additional tool to pulse oximetry especially during prolonged or complex procedures and for research applications.

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Journal
BMC Veterinary Research
Published
2026-09-15
DOI
https://doi.org/10.1186/s12917-026-05929-3
Primary Topic
Non-Invasive Vital Sign Monitoring
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article
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article

Reliability of calculated arterial oxygen-haemoglobin saturation in determining blood oxygenation of immobilised white rhinoceros (Ceratotherium simum)

Thembeka K. Mtetwa, Leith C. R. Meyer, Edward P. Snelling, Ashleigh C. Donaldson et al.
BMC Veterinary Research
Non-Invasive Vital Sign Monitoring
article

Reliability of calculated arterial oxygen-haemoglobin saturation in determining blood oxygenation of immobilised white rhinoceros (Ceratotherium simum)

Thembeka K. Mtetwa, Leith C. R. Meyer, Edward P. Snelling, Ashleigh C. Donaldson, Peter E. Buss
article en

Abstract

Arterial oxygen-haemoglobin saturation (SaO 2 ) is an important biomarker of hypoxaemia, but is difficult to measure accurately in rhinoceros, especially during severe hypoxaemia. Pulse oximetry can reliably estimate SaO 2 in rhinoceros when attached to the third eyelid but only at SaO 2 ≥70%. The need for alternative methods led us to assess the reliability of the following approaches in calculating SaO 2 (cSaO 2 ) from conventional blood gas analysis: (i) Hill equation when the body mass-estimated P 50 (PO 2 when haemoglobin is 50% saturated with oxygen) is adjusted for pH alone (“pH-adjusted Hill cSaO 2 ”), (ii) Hill equation when P 50 is adjusted for pH, base excess and body temperature (“multivariable-adjusted Hill cSaO 2 ”), and (iii) the Siggaard-Andersen algorithm (“Siggaard-Andersen cSaO 2 ”). Sixteen white rhinoceroses ( Ceratotherium simum ) were immobilised with etorphine-based drug combinations and given butorphanol and, or oxygen. Arterial blood was drawn from the auricular artery and PaO 2 , PaCO 2 , and pH were measured using a portable Enterprise Point-of-Care (EPOC) blood gas analyser, and SaO 2 measured using a benchtop AVOXimeter 4000 co-oximeter (reference method). Bland-Altman and area root mean squares (ARMS) assessed the reliability of cSaO 2 values when compared to the co-oximeter SaO 2 measurements, with the reliability threshold set at ARMS ≤ 4%. The pH-adjusted Hill cSaO 2 and the multivariable-adjusted Hill cSaO 2 values were reliable within the 70–100% saturation range (bias 0% and − 2%, precision 3% and 4%, ARMS 3% and 4%, respectively). The Siggaard-Andersen cSaO 2 values were reliable only within the 90–100% range (bias 2%, precision 2%, ARMS 3%). Below 70%, all cSaO 2 methods were unreliable. However, across the entire 0-100% range, the pH-adjusted Hill cSaO 2 and multivariable-adjusted Hill cSaO 2 were only slightly above the reliability threshold (ARMS of 5%). The pH-adjusted Hill equation is best suited for calculating SaO 2 across the 70–100% saturation range in immobilised white rhinoceros. Although this equation did not meet the reliability threshold when saturations were below 70%, it nonetheless showed a marked improvement over previous pulse oximetry analyses. A simple calculator is presented to convert PaO 2 and pH into an estimate of SaO 2 , offering an additional tool to pulse oximetry especially during prolonged or complex procedures and for research applications.

BMC Veterinary Research
South African National Parks (ZA), University of the Witwatersrand (ZA), Onderstepoort Veterinary Academic Hospital (ZA), Massey University (NZ), University of Pretoria (ZA)
National Research Foundation, University of Pretoria
Openalex Percentile: Top 21%
Non-Invasive Vital Sign Monitoring
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