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Real-Time Assessment of Spinal Cord Microperfusion in a Porcine Model of Ischemia/Reperfusion
Published on: December 10, 2020
[The advances in the application of peripheral perfusion index in patients with septic shock]
Jiapan An1, Xinqi Xu1, Tingyu Yang1
1The First School of Clinical Medicine, Lanzhou University, Lanzhou 730000, China.
Abstract:
Septic shock, a prevalent critical condition in intensive care units (ICU) and a major cause of patient mortality, is fundamentally attributed to microcirculatory dysfunction. Traditional macrocirculatory parameters are often insufficiently sensitive to reflect microcirculatory status. Consequently monitoring peripheral microcirculatory function holds crucial significance for assessing disease progression and evaluating therapeutic efficacy in septic shock. The peripheral perfusion index (PPI), obtained from a standard pulse oximeter, is based on photoplethysmography (PPG). It calculates the differential absorption of red and infrared light emitted by the sensor between pulsatile arterial blood and non-pulsatile tissue, enabling real-time reflection of peripheral perfusion and thus providing non-invasive, continuous monitoring of microcirculatory function. Although often overlooked compared to other ICU monitoring parameters, PPI has demonstrated notable clinical advances in septic shock management. Specifically, in early identification, PPI combined with sequential organ failure assessment (SOFA) predicts disease progression, with its dynamic changes further aiding prognosis assessment. During fluid resuscitation, it guides fluid responsiveness evaluation and serves as a therapeutic target to optimize strategies. In circulatory support, it assists in determining vasoactive drug initiation timing and dosage titration. Additionally, PPI aids mechanical ventilation weaning and organ dysfunction evaluation. This article reviews the principles, influencing factors, and clinical application advances of PPI in septic shock, aiming to provide clinicians with a basis for individualized intervention, improved patient outcomes, and the advancement of precision medicine in septic shock management.
Insights
Peripheral perfusion index (PPI), a non-invasive measure from pulse oximetry, offers crucial insights into septic shock microcirculatory dysfunction. Dynamic PPI changes aid in early identification, prognosis, and guiding therapeutic interventions for improved patient outcomes.
Area of Science:
- Critical care medicine
- Hemodynamics
- Microcirculation
Background:
- Septic shock causes significant mortality due to microcirculatory dysfunction.
- Macrocirculatory parameters inadequately reflect microcirculatory status.
- Monitoring peripheral microcirculation is vital for septic shock management.
Purpose of the Study:
- To review the principles, influencing factors, and clinical applications of peripheral perfusion index (PPI) in septic shock.
- To highlight PPI's role in enhancing patient outcomes and precision medicine.
Main Methods:
- Utilizes photoplethysmography (PPG) from standard pulse oximeters.
- Calculates PPI based on differential light absorption between pulsatile and non-pulsatile tissue.
- Enables non-invasive, continuous monitoring of peripheral microcirculatory function.
Main Results:
- PPI combined with SOFA score aids in early disease identification and progression prediction.
- Dynamic PPI changes assist in prognosis assessment.
- PPI guides fluid resuscitation, circulatory support, mechanical ventilation weaning, and organ dysfunction evaluation.
Conclusions:
- Peripheral perfusion index is a valuable, often overlooked, tool in septic shock management.
- PPI facilitates individualized interventions and optimizes therapeutic strategies.
- Advancing the use of PPI supports precision medicine in critical care.
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