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用于监测单个癌细胞生长动力学和药物反应的高灵敏度定量成像。

Highly sensitive quantitative imaging for monitoring single cancer cell growth kinetics and drug response.

作者信息

Mir Mustafa, Bergamaschi Anna, Katzenellenbogen Benita S, Popescu Gabriel

机构信息

Quantitative Light Imaging Laboratory, Department of Electrical and Computer Engineering, Beckman Institute for Advanced Science and Technology, University of Illinois at Urbana-Champaign, Urbana, Illinois, United States of America.

Department of Molecular and Integrative Physiology, University of Illinois at Urbana-Champaign, Urbana, Illinois, United States of America.

出版信息

PLoS One. 2014 Feb 18;9(2):e89000. doi: 10.1371/journal.pone.0089000. eCollection 2014.

Abstract

The detection and treatment of cancer has advanced significantly in the past several decades, with important improvements in our understanding of the fundamental molecular and genetic basis of the disease. Despite these advancements, drug-screening methodologies have remained essentially unchanged since the introduction of the in vitro human cell line screen in 1990. Although the existing methods provide information on the overall effects of compounds on cell viability, they are restricted by bulk measurements, large sample sizes, and lack capability to measure proliferation kinetics at the individual cell level. To truly understand the nature of cancer cell proliferation and to develop personalized adjuvant therapies, there is a need for new methodologies that provide quantitative information to monitor the effect of drugs on cell growth as well as morphological and phenotypic changes at the single cell level. Here we show that a quantitative phase imaging modality known as spatial light interference microscopy (SLIM) addresses these needs and provides additional advantages over existing proliferation assays. We demonstrate these capabilities through measurements on the effects of the hormone estradiol and the antiestrogen ICI182,780 (Faslodex) on the growth of MCF-7 breast cancer cells. Along with providing information on changes in the overall growth, SLIM provides additional biologically relevant information. For example, we find that exposure to estradiol results in rapidly growing cells with lower dry mass than the control population. Subsequently blocking the estrogen receptor with ICI results in slower growing cells, with lower dry masses than the control. This ability to measure changes in growth kinetics in response to environmental conditions provides new insight on growth regulation mechanisms. Our results establish the capabilities of SLIM as an advanced drug screening technology that provides information on changes in proliferation kinetics at the cellular level with greater sensitivity than any existing method.

摘要

在过去几十年中,癌症的检测和治疗取得了显著进展,我们对该疾病基本分子和遗传基础的理解有了重要提升。尽管有这些进步,但自1990年引入体外人类细胞系筛选以来,药物筛选方法基本上没有改变。虽然现有方法能提供化合物对细胞活力总体影响的信息,但它们受大量测量、大样本量限制,且缺乏在单个细胞水平测量增殖动力学的能力。为了真正理解癌细胞增殖的本质并开发个性化辅助疗法,需要新的方法来提供定量信息,以监测药物对细胞生长以及单细胞水平形态和表型变化的影响。在此,我们表明一种称为空间光干涉显微镜(SLIM)的定量相成像模式满足了这些需求,并且相对于现有的增殖测定方法具有额外优势。我们通过测量激素雌二醇和抗雌激素ICI182,780(氟维司群)对MCF - 7乳腺癌细胞生长的影响来证明这些能力。除了提供关于总体生长变化的信息外,SLIM还提供了其他生物学相关信息。例如,我们发现暴露于雌二醇会导致细胞快速生长,但其干质量低于对照群体。随后用ICI阻断雌激素受体会导致细胞生长变慢,干质量也低于对照。这种测量响应环境条件下生长动力学变化的能力为生长调节机制提供了新的见解。我们的结果确立了SLIM作为一种先进药物筛选技术的能力,它能在细胞水平提供关于增殖动力学变化的信息,且比任何现有方法具有更高的灵敏度。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/f07b/3928317/50252c22b2a2/pone.0089000.g001.jpg

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