Javascript must be enabled to continue!
Pulse Oximetry: Beyond S pO 2
View through CrossRef
Newer pulse oximetry technology is available that uses multiple wavelengths of light and is thereby able to measure more than 2 forms of hemoglobin, including carboxyhemoglobin (SpCO), methemoglobin (SpMet), and total hemoglobin (SpHb). Several studies have shown relatively low bias, but poor precision, for SpCO compared with HbCO. Evaluations of SpMet have been conducted primarily in normal subjects. Clinical evaluations of SpHb suggest that it might not yet be accurate enough to make transfusion decisions. Respiratory waveform variability of the pulse oximeter plethysmogram might be useful to assess pulsus paradoxus in patients with airway obstruction; it might also be used to measure the breathing frequency. The change in pulse pressure over the respiratory cycle has been used to assess fluid responsiveness in mechanically ventilated patients, and similarly, the pulse oximetry plethysmogram waveform amplitude variability might be used to assess fluid responsiveness. However, there are limitations to this approach, and it remains to be determined how well it can be applied clinically using existing pulse oximetry technology. The pulse oximeter signal is probably useful for applications beyond S
pO
2
. However, the current technology is not mature, and improvements are necessary. With technology improvements, the use of pulse oximetry to detect SpCO, SpMet, SpHb, pulsus paradoxus, breathing frequency, and fluid responsiveness is likely to improve in the future.
Title: Pulse Oximetry: Beyond S
pO
2
Description:
Newer pulse oximetry technology is available that uses multiple wavelengths of light and is thereby able to measure more than 2 forms of hemoglobin, including carboxyhemoglobin (SpCO), methemoglobin (SpMet), and total hemoglobin (SpHb).
Several studies have shown relatively low bias, but poor precision, for SpCO compared with HbCO.
Evaluations of SpMet have been conducted primarily in normal subjects.
Clinical evaluations of SpHb suggest that it might not yet be accurate enough to make transfusion decisions.
Respiratory waveform variability of the pulse oximeter plethysmogram might be useful to assess pulsus paradoxus in patients with airway obstruction; it might also be used to measure the breathing frequency.
The change in pulse pressure over the respiratory cycle has been used to assess fluid responsiveness in mechanically ventilated patients, and similarly, the pulse oximetry plethysmogram waveform amplitude variability might be used to assess fluid responsiveness.
However, there are limitations to this approach, and it remains to be determined how well it can be applied clinically using existing pulse oximetry technology.
The pulse oximeter signal is probably useful for applications beyond S
pO
2
.
However, the current technology is not mature, and improvements are necessary.
With technology improvements, the use of pulse oximetry to detect SpCO, SpMet, SpHb, pulsus paradoxus, breathing frequency, and fluid responsiveness is likely to improve in the future.
Related Results
Pulse Oximetry in the Evaluation of Peripheral Vascular Disease
Pulse Oximetry in the Evaluation of Peripheral Vascular Disease
The role of pulse oximetry in the evaluation of peripheral vascular disease (PVD) was investigated. In addition, the value of elevating the limb to improve the sensitivity of detec...
Clinical use of pulse oximetry in adults
Clinical use of pulse oximetry in adults
The article is devoted to the practical aspects of pulse oximetry. Pulse oximetry is a photoplethysmographic method for determining heart rate and the percentage of oxyhemoglobin i...
Knowledge of pulse oximetry: comparison among intensive care, anesthesiology and emergency nurses
Knowledge of pulse oximetry: comparison among intensive care, anesthesiology and emergency nurses
Aims and objectives. To evaluate pulse oximetry knowledge of nurses employed in the Intensive Care Unit (ICU), Anesthesiology Department (AD) and Emergency Department (ED) and to ...
Clinical Decision Support for Pediatric Home Pulse Oximetry Orders
Clinical Decision Support for Pediatric Home Pulse Oximetry Orders
Objective:
Home pulse oximetry is often prescribed to children
with chronic disease upon hospital discharge. Children monitored at home
may generate >20 alarms...
Public Views on Pulse Oximetry Screening for Critical Congenital Heart Disease
Public Views on Pulse Oximetry Screening for Critical Congenital Heart Disease
Objectives:
To understand public views on pulse oximetry screening for critical congenital heart disease.
...
Pulse diagnostics of the Tibetan medical tradition: the experience of objectification of the basic principles of pulse diagnostics using a pulse diagnostic device.
Pulse diagnostics of the Tibetan medical tradition: the experience of objectification of the basic principles of pulse diagnostics using a pulse diagnostic device.
The study shows the experience of objectification of the basic characteristics of pulse waves in the diagnosis of the pulse of the Tibetan medical tradition. An experienced doctor ...
Step oximetry test: a validation study
Step oximetry test: a validation study
Introduction
Step climbing is a potentially useful modality for testing exercise capacity. However, there are significant variations between test protocols and la...
1178 CASE REPORT – USE of WEARABLE OXIMETRY DEVICE to TITRATE HYPOGLOSSAL NERVE STIMULATION SETTINGS
1178 CASE REPORT – USE of WEARABLE OXIMETRY DEVICE to TITRATE HYPOGLOSSAL NERVE STIMULATION SETTINGS
Abstract
Introduction
Obstructive sleep apnea (OSA) is characterized by repetitive airway narrowing or collapse during sleep. Hy...

