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In Vivo Dynamic and Static Analysis of Lymphatic Dysfunction in Lymphedema Using Near-Infrared Fluorescence Indocyanine Green Lymphangiography

Authors
Cheon, HwayeongLee, Sang-HunKim, Sang AhKim, BumchulSuh, Hyunsuk PeterJeon, Jae Yong
Issue Date
Oct-2023
Publisher
LIPPINCOTT WILLIAMS & WILKINS
Keywords
fluid dynamics; Fourier analysis; indocyanine green; lymphatics vessels; lymphedema; lymphography; wavelet analysis
Citation
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY, v.43, no.10, pp.2008 - 2022
Journal Title
ARTERIOSCLEROSIS THROMBOSIS AND VASCULAR BIOLOGY
Volume
43
Number
10
Start Page
2008
End Page
2022
URI
https://scholarworks.bwise.kr/kumoh/handle/2020.sw.kumoh/21776
DOI
10.1161/ATVBAHA.123.319188
ISSN
1079-5642
Abstract
BACKGROUND:Near-infrared fluorescence indocyanine green lymphangiography, a primary modality for detecting lymphedema, which is a disease due to lymphatic obstruction, enables real-time observations of lymphatics and reveals not only the spatial distribution of drainage (static analysis) but also information on the lymphatic contraction (dynamic analysis).METHODS:We have produced total lymphatic obstruction in the upper limbs of 18 Sprague-Dawley rats through the dissection of proximal (brachial and axillary) lymph nodes and 20-Gy radiation (dissection limbs). After the model formation for 1 week, 9 animal models were observed for 6 weeks using near-infrared fluorescence indocyanine green lymphangiography by injecting 6-& mu;L ICG-BSA (indocyanine green-bovine serum albumin) solution of 20-& mu;g/mL concentration. The drainage pattern and leakage of lymph fluid were evaluated and time-domain signals of lymphatic contraction were observed in the distal lymphatic vessels. The obtained signals were converted to frequency-domain spectrums using signal processing.RESULTS:The results of both static and dynamic analyses proved to be effective in accurately identifying the extent of lymphatic disruption in the dissection limbs. The static analysis showed abnormal drainage patterns and increased leakage of lymph fluid to the periphery of the vessels compared with the control (normal) limbs. Meanwhile, the waveforms were changed and the contractile signal frequency increased by 58% in the dynamic analysis. Specifically, our findings revealed that regular lymphatic contractions, observed at a frequency range of 0.08 to 0.13 Hz in the control limbs, were absent in the dissection limbs. The contractile regularity was not fully restored for the follow-up period, indicating a persistent lymphatic obstruction.CONCLUSIONS:The dynamic analysis could detect the abnormalities of lymphatic circulation by observing the characteristics of signals, and it provided additional evaluation indicators that cannot be provided by the static analysis. Our findings may be useful for the early detection of the circulation problem as a functional evaluation indicator of the lymphatic system.
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