Key result
Blood pulsation imaging revealed extensive spatial and temporal variability in blood pulsation amplitude and phase, successfully detecting reduced perfusion during an arm occlusion test.
Observational (n=4)
No
Blood pulsation imaging provides a non-invasive, cost-effective method to map the 2D distribution and variability of peripheral microcirculation, revealing asynchronous blood supply in adjacent tissue spots.
May support microcirculation mapping in research; leaves open clinical utility pending validation.
The non-invasive assessment of blood flow is invaluable for the diagnostic and monitoring treatment of numerous vascular and neurological diseases. We developed a non-invasive and non-contact method of blood pulsation imaging capable of visualizing and monitoring of the two-dimensional distribution of two key parameters of peripheral blood flow: the blood pulsation amplitude and blood pulsation phase. The method is based on the photoplethysmographic imaging in the reflection mode. In contrast with previous imaging systems we use new algorithm for data processing which allows two dimensional mapping of blood pulsations in large object's areas after every cardiac cycle. In our study we carried out the occlusion test of the arm and found (i) the extensive variability of 2D-distribution of blood pulsation amplitude from one cardiac cycle to another, and (ii) existence of the adjacent spots to which the blood is asynchronously supplied. These observations show that the method can be used for studying of the multicomponent regulation of peripheral blood circulation. The proposed technique is technologically simple and cost-effective, which makes it applicable for monitoring the peripheral microcirculation in clinical settings for example, in diagnostics or testing the efficiency of new medicines.
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Kamshilin et al. (2013) conducted an observational in Healthy volunteers (n=4). Blood pulsation imaging during arm occlusion vs. Baseline (pre-occlusion) and inanimate object was evaluated on Spatial distribution and temporal variability of blood pulsation amplitude and phase. Blood pulsation imaging revealed extensive spatial and temporal variability in blood pulsation amplitude and phase, successfully detecting reduced perfusion during an arm occlusion test.
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