» Articles » PMID: 30315644

Preclinical Quantitative In-vivo Assessment of Skin Tissue Vascularity in Radiation-induced Fibrosis with Optical Coherence Tomography

Overview
Journal J Biomed Opt
Date 2018 Oct 14
PMID 30315644
Citations 7
Authors
Affiliations
Soon will be listed here.
Abstract

Radiation therapy (RT) is widely and effectively used for cancer treatment but can also cause deleterious side effects, such as a late-toxicity complication called radiation-induced fibrosis (RIF). Accurate diagnosis of RIF requires analysis of histological sections to assess extracellular matrix infiltration. This is invasive, prone to sampling limitations, and thus rarely used; instead, current practice relies on subjective clinical surrogates, including visual observation, palpation, and patient symptomatology questionnaires. This preclinical study demonstrates that functional optical coherence tomography (OCT) is a useful tool for objective noninvasive in-vivo assessment and quantification of fibrosis-associated microvascular changes in tissue. Data were collected from murine hind limbs 6 months after 40-Gy single-dose irradiation and compared with nonirradiated contralateral tissues of the same animals. OCT-derived vascular density and average vessel diameter metrics were compared to quantitative vascular analysis of stained histological slides. Results indicate that RIF manifests significant microvascular changes at this time point posttreatment. Abnormal microvascular changes visualized by OCT in this preclinical setting suggest the potential of this label-free high-resolution noninvasive functional imaging methodology for RIF diagnosis and assessment in the context of clinical RT.

Citing Articles

Radiation-induced alterations in multi-layered, in-vitro skin models detected by optical coherence tomography and histological methods.

Bromberger L, Heise B, Felbermayer K, Leiss-Holzinger E, Ilicic K, Schmid T PLoS One. 2023; 18(3):e0281662.

PMID: 36862637 PMC: 9980765. DOI: 10.1371/journal.pone.0281662.


Binary dose level classification of tumour microvascular response to radiotherapy using artificial intelligence analysis of optical coherence tomography images.

Majumdar A, Allam N, Zabel W, Demidov V, Flueraru C, Vitkin I Sci Rep. 2022; 12(1):13995.

PMID: 35978040 PMC: 9385745. DOI: 10.1038/s41598-022-18393-4.


2-Methoxyestradiol Inhibits Radiation-Induced Skin Injuries.

Kim J, Nam J, Kim A, Park M, Lee H, Park J Int J Mol Sci. 2022; 23(8).

PMID: 35456989 PMC: 9032705. DOI: 10.3390/ijms23084171.


Quantification metrics for telangiectasia using optical coherence tomography.

Cardinell J, Ramjist J, Chen C, Shi W, Nguyen N, Yeretsian T Sci Rep. 2022; 12(1):1805.

PMID: 35110554 PMC: 8810896. DOI: 10.1038/s41598-022-05272-1.


Volumetric tumor delineation and assessment of its early response to radiotherapy with optical coherence tomography.

Demidov V, Demidova N, Pires L, Demidova O, Flueraru C, Wilson B Biomed Opt Express. 2021; 12(5):2952-2967.

PMID: 34123510 PMC: 8176804. DOI: 10.1364/BOE.424045.