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Published in: Journal of Clinical Monitoring and Computing 1/2018

Open Access 01-02-2018 | Original Research

In vivo investigation of ear canal pulse oximetry during hypothermia

Authors: K Budidha, P A Kyriacou

Published in: Journal of Clinical Monitoring and Computing | Issue 1/2018

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Abstract

Pulse oximeters rely on the technique of photoplethysmography (PPG) to estimate arterial oxygen saturation (SpO\(_2\)). In conditions of poor peripheral perfusion such as hypotension, hypothermia, and vasoconstriction, the PPG signals detected are often weak and noisy, or in some cases unobtainable. Hence, pulse oximeters produce erroneous SpO\(_2\) readings in these circumstances. The problem arises as most commercial pulse oximeter probes are designed to be attached to peripheral sites such as the finger or toe, which are easily affected by vasoconstriction. In order to overcome this problem, the ear canal was investigated as an alternative site for measuring reliable SpO\(_2\) on the hypothesis that blood flow to this central site is preferentially preserved. A novel miniature ear canal PPG sensor was developed along with a state of the art PPG processing unit to investigate PPG measurements from the bottom surface of the ear canal. An in vivo study was carried out in 15 healthy volunteers to validate the developed technology. In this comparative study, red and infrared PPGs were acquired from the ear canal and the finger of the volunteers, whilst they were undergoing artificially induced hypothermia by means of cold exposure (10 \(^\circ\)C). Normalised Pulse Amplitude (NPA) and SpO\(_2\) was calculated from the PPG signals acquired from the ear canal and the finger. Good quality baseline PPG signals with high signal-to-noise ratio were obtained from both the PPG sensors. During cold exposure, significant differences were observed in the NPA of the finger PPGs. The mean NPA of the red and infrared PPGs from the finger have dropped by >80%. Contrary to the finger, the mean NPA of red and infrared ear canal PPGs had dropped only by 0.2 and 13% respectively. The SpO\(_2\)s estimated from the finger sensor have dropped below 90% in five volunteers (failure) by the end of the cold exposure. The ear canal sensor, on the other hand, had only failed in one volunteer. These results strongly suggest that the ear canal may be used as a suitable alternative site for monitoring PPGs and arterial blood oxygen saturation at times were peripheral perfusion is compromised.
Literature
1.
go back to reference Moyle JT. Pulse oximetry. London: BMJ Books; 2002. Moyle JT. Pulse oximetry. London: BMJ Books; 2002.
2.
go back to reference Severinghaus JW, Spellman M Jr. Pulse oximeter failure thresholds in hypotension and vasoconstriction. Anesthesiology. 1990;73(3):532–7.CrossRefPubMed Severinghaus JW, Spellman M Jr. Pulse oximeter failure thresholds in hypotension and vasoconstriction. Anesthesiology. 1990;73(3):532–7.CrossRefPubMed
3.
go back to reference Barrington KJ, Ryan CA, Finer NN. Pulse oximetry during hemorrhagic hypotension and cardiopulmonary resuscitation in the rabbit. J Crit Care. 1986;1(4):241–6.CrossRef Barrington KJ, Ryan CA, Finer NN. Pulse oximetry during hemorrhagic hypotension and cardiopulmonary resuscitation in the rabbit. J Crit Care. 1986;1(4):241–6.CrossRef
4.
go back to reference Shafique M, Kyriacou PA, Pal SK. Investigation of photoplethysmographic signals and blood oxygen saturation values on healthy volunteers during cuff-induced hypoperfusion using a multimode ppg/spo2 sensor. Med Biol Eng Comput. 2012;50(6):575–83. doi:10.1007/s11517-012-0910-z.CrossRefPubMed Shafique M, Kyriacou PA, Pal SK. Investigation of photoplethysmographic signals and blood oxygen saturation values on healthy volunteers during cuff-induced hypoperfusion using a multimode ppg/spo2 sensor. Med Biol Eng Comput. 2012;50(6):575–83. doi:10.​1007/​s11517-012-0910-z.CrossRefPubMed
5.
go back to reference Paelve H. Reflection and transmission pulse oximetry during compromised peripheral perfusion. J Clin Monit. 1992;8(1):12–5.CrossRef Paelve H. Reflection and transmission pulse oximetry during compromised peripheral perfusion. J Clin Monit. 1992;8(1):12–5.CrossRef
6.
go back to reference Hofman J, DePerio M, Konstadt SN, Kurki T. Predictors of pulse oximetry data failure. Anesthesiology. 1996;84(4):859–64.CrossRefPubMed Hofman J, DePerio M, Konstadt SN, Kurki T. Predictors of pulse oximetry data failure. Anesthesiology. 1996;84(4):859–64.CrossRefPubMed
7.
go back to reference Clayton D, Webb R, Ralston A, Duthie D, Runciman W. Pulse oximeter probes- a comparison between finger, nose, ear and forehead probes under conditions of poor perfusion. Anaesthesia. 1991;46(4):260–5.CrossRefPubMed Clayton D, Webb R, Ralston A, Duthie D, Runciman W. Pulse oximeter probes- a comparison between finger, nose, ear and forehead probes under conditions of poor perfusion. Anaesthesia. 1991;46(4):260–5.CrossRefPubMed
8.
go back to reference Rosenberg J, Pedersen M. Nasal pulse oximetry overestimates oxygen saturation. Anaesthesia. 1990;45(12):1070–1.CrossRefPubMed Rosenberg J, Pedersen M. Nasal pulse oximetry overestimates oxygen saturation. Anaesthesia. 1990;45(12):1070–1.CrossRefPubMed
10.
go back to reference Venema B, Blanik N, Blazek V, Gehring H, Opp A, Leonhardt S. Advances in reflective oxygen saturation monitoring with a novel in-ear sensor system: results of a human hypoxia study. IEEE Trans Biomed Eng. 2012;59(7):2003–10.CrossRefPubMed Venema B, Blanik N, Blazek V, Gehring H, Opp A, Leonhardt S. Advances in reflective oxygen saturation monitoring with a novel in-ear sensor system: results of a human hypoxia study. IEEE Trans Biomed Eng. 2012;59(7):2003–10.CrossRefPubMed
12.
go back to reference Hickey M, Samuels N, Randive N, Langford RM, Kyriacou PA. Measurement of splanchnic photoplethysmographic signals using a new reflectance fiber optic sensor. J Biomed Opt. 2010;15(2):027012.CrossRefPubMed Hickey M, Samuels N, Randive N, Langford RM, Kyriacou PA. Measurement of splanchnic photoplethysmographic signals using a new reflectance fiber optic sensor. J Biomed Opt. 2010;15(2):027012.CrossRefPubMed
13.
go back to reference Rybynok, V., May, J.M., Budidha, K., Kyriacou, P.A.: Design and development of a novel multi-channel photoplethysmographic research system. In: 2013 IEEE Point-of-Care Healthcare Technologies (PHT), pp. 267 –270 (2013). 10.1109/PHT.2013.6461336 Rybynok, V., May, J.M., Budidha, K., Kyriacou, P.A.: Design and development of a novel multi-channel photoplethysmographic research system. In: 2013 IEEE Point-of-Care Healthcare Technologies (PHT), pp. 267 –270 (2013). 10.1109/PHT.2013.6461336
14.
go back to reference Shelley KH, Jablonka DH, Awad AA, Stout RG, Rezkanna H, Silverman DG. What is the best site for measuring the effect of ventilation on the pulse oximeter waveform? Anest Analg. 2006;103(2):372–7.CrossRef Shelley KH, Jablonka DH, Awad AA, Stout RG, Rezkanna H, Silverman DG. What is the best site for measuring the effect of ventilation on the pulse oximeter waveform? Anest Analg. 2006;103(2):372–7.CrossRef
15.
go back to reference Kaciuba-Uscilko H, Greenleaf JE. Acclimatization to cold in humans. Moffett field: NASA Ames Research Center; 1989. Kaciuba-Uscilko H, Greenleaf JE. Acclimatization to cold in humans. Moffett field: NASA Ames Research Center; 1989.
16.
go back to reference Folk GE. Climatic change and acclimatization. Stud Environ Sci. 1981;10:157–68.CrossRef Folk GE. Climatic change and acclimatization. Stud Environ Sci. 1981;10:157–68.CrossRef
17.
go back to reference Awad AA, Ghobashy MAM, Ouda W, Stout RG, Silverman DG, Shelley KH. Different responses of ear and finger pulse oximeter wave form to cold pressor test. Anest Analg. 2001;92(6):1483–6.CrossRef Awad AA, Ghobashy MAM, Ouda W, Stout RG, Silverman DG, Shelley KH. Different responses of ear and finger pulse oximeter wave form to cold pressor test. Anest Analg. 2001;92(6):1483–6.CrossRef
18.
go back to reference Burton, A.C., Edholm, O.G., et al.: Man in a cold environment. physiological and pathological effects of exposure to low temperatures. Man in a cold environment. Physiological and pathological effects of exposure to low temperatures. (1955) Burton, A.C., Edholm, O.G., et al.: Man in a cold environment. physiological and pathological effects of exposure to low temperatures. Man in a cold environment. Physiological and pathological effects of exposure to low temperatures. (1955)
Metadata
Title
In vivo investigation of ear canal pulse oximetry during hypothermia
Authors
K Budidha
P A Kyriacou
Publication date
01-02-2018
Publisher
Springer Netherlands
Published in
Journal of Clinical Monitoring and Computing / Issue 1/2018
Print ISSN: 1387-1307
Electronic ISSN: 1573-2614
DOI
https://doi.org/10.1007/s10877-017-9975-4

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