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In vivo spectroscopy to concurrently characterize five metabolic and vascular endpoints relevant to aggressive breast cancer.

Publication ,  Journal Article
D'Agostino, VW; Deutsch, RJ; Kwan, M; Sunassee, ED; Madonna, MC; Palmer, GM; Crouch, BT; Ramanujam, N
Published in: Biophotonics Discov
July 2024

SIGNIFICANCE: Emerging evidence that aggressive breast tumors rely on various substrates including lipids and glucose to proliferate and recur necessitates the development of tools to track multiple metabolic and vascular endpoints concurrently in vivo. AIM: Our quantitative spectroscopy technique provides time-matched measurements of the three major axes of breast cancer metabolism as well as tissue vascular properties in vivo. APPROACH: We leverage exogenous fluorophores to quantify oxidative phosphorylation, glucose uptake, and fatty acid oxidation and endogenous contrast for measurements of hemoglobin and oxygen saturation. An inverse Monte Carlo algorithm corrects for aberrations resulting from tissue optical properties, allowing the unmixing of spectrally overlapping fluorophores. RESULTS: Implementation of our inverse Monte Carlo resulted in a linear relationship of fluorophore intensity with concentration (R2>0.95) in phantom validation studies. We next sequenced fluorophore delivery to faithfully recapitulate independent measurement of each fluorophore. The ratio of Bodipy FL C16/2-NBDG administered to a single animal is not different from that in paired animals receiving individual fluorophores (p=n.s.). Clustering of five variables was effective in distinguishing tumor from mammary tissue (sensitivity=0.92, specificity=0.67, accuracy=0.79). CONCLUSIONS: Our system is capable of measuring major axes of metabolism and associated vascular endpoints, allowing for future study of tumor metabolic flexibility.

Duke Scholars

Published In

Biophotonics Discov

DOI

EISSN

3005-4745

Publication Date

July 2024

Volume

1

Issue

2

Location

United States
 

Citation

APA
Chicago
ICMJE
MLA
NLM
D’Agostino, V. W., Deutsch, R. J., Kwan, M., Sunassee, E. D., Madonna, M. C., Palmer, G. M., … Ramanujam, N. (2024). In vivo spectroscopy to concurrently characterize five metabolic and vascular endpoints relevant to aggressive breast cancer. Biophotonics Discov, 1(2). https://doi.org/10.1117/1.bios.1.2.025002
D’Agostino, Victoria W., Riley J. Deutsch, Michelle Kwan, Enakshi D. Sunassee, Megan C. Madonna, Gregory M. Palmer, Brian T. Crouch, and Nimmi Ramanujam. “In vivo spectroscopy to concurrently characterize five metabolic and vascular endpoints relevant to aggressive breast cancer.Biophotonics Discov 1, no. 2 (July 2024). https://doi.org/10.1117/1.bios.1.2.025002.
D’Agostino VW, Deutsch RJ, Kwan M, Sunassee ED, Madonna MC, Palmer GM, et al. In vivo spectroscopy to concurrently characterize five metabolic and vascular endpoints relevant to aggressive breast cancer. Biophotonics Discov. 2024 Jul;1(2).
D’Agostino, Victoria W., et al. “In vivo spectroscopy to concurrently characterize five metabolic and vascular endpoints relevant to aggressive breast cancer.Biophotonics Discov, vol. 1, no. 2, July 2024. Pubmed, doi:10.1117/1.bios.1.2.025002.
D’Agostino VW, Deutsch RJ, Kwan M, Sunassee ED, Madonna MC, Palmer GM, Crouch BT, Ramanujam N. In vivo spectroscopy to concurrently characterize five metabolic and vascular endpoints relevant to aggressive breast cancer. Biophotonics Discov. 2024 Jul;1(2).

Published In

Biophotonics Discov

DOI

EISSN

3005-4745

Publication Date

July 2024

Volume

1

Issue

2

Location

United States