4.6 Article

Characterization and quantification of necrotic tissues and morphology in multicellular ovarian cancer tumor spheroids using optical coherence tomography

期刊

BIOMEDICAL OPTICS EXPRESS
卷 12, 期 6, 页码 3352-3371

出版社

OPTICAL SOC AMER
DOI: 10.1364/BOE.425512

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资金

  1. National Institute of General Medical Sciences [P20GM103639]
  2. National Cancer Institute of the National Institutes of Health [P30CA225520]
  3. Stephenson Cancer Center Trainee Research Award - National Cancer Institute Cancer Center Support Grant [P30CA225520]

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The study focused on visualizing and characterizing 3D morphological and physiological information of multicellular ovarian tumor spheroids using swept-source optical coherence tomography (SS-OCT). Different growth curves and rates were observed in ovarian tumor spheroids with varying initial cell numbers over 18 days. Among the four mathematical models tested, the Boltzmann model showed the best fitting performance for the growth of tumor spheroids and necrotic tissues.
The three-dimensional (3D) tumor spheroid model is a critical tool for high-throughput ovarian cancer research and anticancer drug development in vitro. However, the 3D structure prevents high-resolution imaging of the inner side of the spheroids. We aim to visualize and characterize 3D morphological and physiological information of the contact multicellular ovarian tumor spheroids growing over time. We intend to further evaluate the distinctive evolutions of the tumor spheroid and necrotic tissue volumes in different cell numbers and determine the most appropriate mathematical model for fitting the growth of tumor spheroids and necrotic tissues. A label-free and noninvasive swept-source optical coherence tomography (SS-OCT) imaging platform was applied to obtain two-dimensional (2D) and 3D morphologies of ovarian tumor spheroids over 18 days. Ovarian tumor spheroids of two different initial cell numbers (5,000-and 50,000-cells) were cultured and imaged (each day) over the time of growth in 18 days. Four mathematical models (Exponential-Linear, Gompertz, logistic, and Boltzmann) were employed to describe the growth kinetics of the tumor spheroids volume and necrotic tissues. Ovarian tumor spheroids have different growth curves with different initial cell numbers and their growths contain different stages with various growth rates over 18 days. The volumes of 50,000-cells spheroids and the corresponding necrotic tissues are larger than that of the 5,000-cells spheroids. The formation of necrotic tissue in 5,000-cells numbers is slower than that in the 50,000-cells ones. Moreover, the Boltzmann model exhibits the best fitting performance for the growth of tumor spheroids and necrotic tissues. Optical coherence tomography (OCT) can serve as a promising imaging modality to visualize and characterize morphological and physiological features of multicellular ovarian tumor spheroids. The Boltzmann model integrating with 3D OCT data of ovarian tumor spheroids provides great potential for high-throughput cancer research in vitro and aiding in drug development. (c) 2021 Optical Society of America under the terms of the OSA Open Access Publishing Agreement

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