» Articles » PMID: 37645586

Microcomputed Tomography Visualization and Quantitation of the Pulmonary Arterial Microvascular Tree in Mouse Models of Chronic Lung Disease

Overview
Journal Pulm Circ
Publisher Wiley
Specialty Pulmonary Medicine
Date 2023 Aug 30
PMID 37645586
Authors
Affiliations
Soon will be listed here.
Abstract

Pulmonary vascular dysfunction is characterized by remodeling and loss of microvessels in the lung and is a major manifestation of chronic lung diseases (CLD). In murine models of CLD, the small arterioles and capillaries are the first and most prevalent vessels that are affected by pruning and remodeling. Thus, visualization of the pulmonary arterial vasculature in three dimensions is essential to define pruning and remodeling both temporally and spatially and its role in the pathogenesis of CLD, aging, and tissue repair. To this end, we have developed a novel method to visualize and quantitate the murine pulmonary arterial circulation using microcomputed tomography (µCT) imaging. Using this perfusion technique, we can quantitate microvessels to approximately 6 µM in diameter. We hypothesize that bleomycin-induced injury would have a significant impact on the arterial vascular structure. As proof of principle, we demonstrated that as a result of bleomycin-induced injury at peak fibrosis, significant alterations in arterial vessel structure were visible in the three-dimensional models as well as quantification. Thus, we have successfully developed a perfusion methodology and complementary analysis techniques, which allows for the reconstruction, visualization, and quantitation of the mouse pulmonary arterial microvasculature in three-dimensions. This tool will further support the examination and understanding of angiogenesis during the development of CLD as well as repair following injury.

Citing Articles

Multiscale Three-Dimensional Evaluation and Analysis of Murine Lung Vasculature From Macro- to Micro-Structural Level.

Tielemans B, Marain N, Kerstens A, Peredo N, Coll-Llado M, Gritti N Pulm Circ. 2025; 15(1):e70038.

PMID: 39845890 PMC: 11751252. DOI: 10.1002/pul2.70038.


Skeletal muscle myosin heavy chain expression and 3D capillary network changes in streptozotocin-induced diabetic female mice.

Umek N, Pusnik L, Ugwoke C, Sink Z, Horvat S, Janacek J Biomol Biomed. 2023; 24(3):582-592.

PMID: 37902457 PMC: 11088899. DOI: 10.17305/bb.2023.9843.


Microcomputed tomography visualization and quantitation of the pulmonary arterial microvascular tree in mouse models of chronic lung disease.

Schneider B, Kopf K, Mason E, Dawson M, Coronado Escobar D, Majka S Pulm Circ. 2023; 13(3):e12279.

PMID: 37645586 PMC: 10461042. DOI: 10.1002/pul2.12279.

References
1.
Majka S, Rojas M, Petrache I, Foronjy R . Mesenchymal Regulation of the Microvascular Niche in Chronic Lung Diseases. Compr Physiol. 2019; 9(4):1431-1441. DOI: 10.1002/cphy.c180043. View

2.
Irvin M, Zijlstra A, Wikswo J, Pozzi A . Techniques and assays for the study of angiogenesis. Exp Biol Med (Maywood). 2014; 239(11):1476-88. PMC: 4216737. DOI: 10.1177/1535370214529386. View

3.
Jorgensen S, Demirkaya O, Ritman E . Three-dimensional imaging of vasculature and parenchyma in intact rodent organs with X-ray micro-CT. Am J Physiol. 1998; 275(3):H1103-14. DOI: 10.1152/ajpheart.1998.275.3.H1103. View

4.
Gaskill C, Carrier E, Kropski J, Bloodworth N, Menon S, Foronjy R . Disruption of lineage specification in adult pulmonary mesenchymal progenitor cells promotes microvascular dysfunction. J Clin Invest. 2017; 127(6):2262-2276. PMC: 5451236. DOI: 10.1172/JCI88629. View

5.
Degryse A, Tanjore H, Xu X, Polosukhin V, Jones B, McMahon F . Repetitive intratracheal bleomycin models several features of idiopathic pulmonary fibrosis. Am J Physiol Lung Cell Mol Physiol. 2010; 299(4):L442-52. PMC: 2957416. DOI: 10.1152/ajplung.00026.2010. View