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J Vasc Res ; 61(4): 197-211, 2024.
Artigo em Inglês | MEDLINE | ID: mdl-38749406

RESUMO

INTRODUCTION: Acquisition of a deeper understanding of microvascular function across physiological and pathological conditions can be complicated by poor accessibility of the vascular networks and the necessary sophistication or intrusiveness of the equipment needed to acquire meaningful data. Laser Doppler fluximetry (LDF) provides a mechanism wherein investigators can readily acquire large amounts of data with minor inconvenience for the subject. However, beyond fairly basic analyses of erythrocyte perfusion (fluximetry) data within the cutaneous microcirculation (i.e., perfusion at rest and following imposed challenges), a deeper understanding of microvascular perfusion requires a more sophisticated approach that can be challenging for many investigators. METHODS: This manuscript provides investigators with clear guidance for data acquisition from human subjects for full analysis of fluximetry data, including levels of perfusion, single- and multiscale Lempel-Ziv complexity (LZC) and sample entropy (SampEn), and wavelet-based analyses for the major physiological components of the signal. Representative data and responses are presented from a recruited cohort of healthy volunteers, and computer codes for full data analysis (MATLAB) are provided to facilitate efforts by interested investigators. CONCLUSION: It is anticipated that these materials can reduce the challenge to investigators integrating these approaches into their research programs and facilitate translational research in cardiovascular science.


Assuntos
Fluxometria por Laser-Doppler , Microcirculação , Fluxo Sanguíneo Regional , Pele , Humanos , Fluxometria por Laser-Doppler/métodos , Pele/irrigação sanguínea , Análise de Ondaletas , Velocidade do Fluxo Sanguíneo , Valor Preditivo dos Testes , Processamento de Sinais Assistido por Computador , Entropia
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