Lin Yang,Pan Ji,Abel A Miranda Buzetta,Haolin Li,Matthew R Lockett,Haibo Zhou,Amy L Oldenburg
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引用次数: 0
摘要
我们研究了在三维人工细胞外基质中培养的乳腺上皮细胞(MCF10DCIS.com)球体在全氟辛酸(PFOA)暴露下的形态和胞内运动。采用动态光学相干断层扫描技术(OCT)对这些球形细胞进行了实时、无创的纵向成像,在PFOA暴露达500 µM的情况下进行了12天的成像。尽管球体的体积或非球面度没有发生明显变化,但在 100 µM 暴露的第 12 天和 500 µM 暴露的第 4 天,从球体的 OCT 图像中观察到了形态学变化。细胞内运动通过斑点波动谱的反幂律指数(α)和基于自相关性的运动幅度(M)进行评估。线性回归结果表明,相对于较低频率的α和M(p 2 Hz),PFOA浓度和培养时间都是非常显著的预测因子,M的降低表明细胞内运动受到了全面抑制。这项研究有助于未来利用动态 OCT 及其相关的定量指标工具包开发全氟和多氟烷基物质(PFAS)暴露的生物标记物。
Longitudinal tracking of perfluorooctanoic acid exposure on mammary epithelial cell spheroids by dynamic optical coherence tomography.
We investigated the morphology and intracellular motility of mammary epithelial cell (MCF10DCIS.com) spheroids cultured in 3D artificial extracellular matrix under perfluorooctanoic acid (PFOA) exposure. Dynamic optical coherence tomography (OCT) was employed for real-time, non-invasive imaging of these spheroids longitudinally over 12 days under PFOA exposures up to 500 µM. Despite no significant changes in volume or asphericity of spheroids, morphological alterations were observed in OCT images of spheroids at 100 µM on Day 12 and from Day 4 at 500 µM. Intracellular motility was assessed by the inverse-power-law exponent of the speckle fluctuation spectrum (α), and an autocorrelation-based motility amplitude (M). Linear regression indicated that both PFOA concentration and culture time are highly significant predictors for both α and M (p < 0.001 for all). Both PFOA concentration and culture time have positive associations with α and negative association with M, where increased α indicates suppression of higher frequency fluctuations (∼> 2 Hz) relative to those at lower frequencies, and decreased M indicates overall suppression of intracellular motility. This study can lead to the future development of biomarkers for per- and polyfluoroalkyl substances (PFAS) exposure using dynamic OCT and its associated toolkit of quantitative metrics.
期刊介绍:
The journal''s scope encompasses fundamental research, technology development, biomedical studies and clinical applications. BOEx focuses on the leading edge topics in the field, including:
Tissue optics and spectroscopy
Novel microscopies
Optical coherence tomography
Diffuse and fluorescence tomography
Photoacoustic and multimodal imaging
Molecular imaging and therapies
Nanophotonic biosensing
Optical biophysics/photobiology
Microfluidic optical devices
Vision research.