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PMID: 24515854 Published · ppublish English Journal Article Research Support, N.I.H., Extramural Research Support, N.I.H., Intramural

Quantitative analysis of F-actin redistribution in astrocytoma cells treated with candidate pharmaceuticals.

Lockett S, Verma C, Brafman A, Gudla P, Nandy K, Mimaki Y, Fuchs PL, Jaja J, Reilly KM, Beutler J, Turbyville TJ

Abstract

Actin fibers (F-actin) control the shape and internal organization of cells, and generate force. It has been long appreciated that these functions are tightly coupled, and in some cases drive cell behavior and cell fate. The distribution and dynamics of F-actin is different in cancer versus normal cells and in response to small molecules, including actin-targeting natural products and anticancer drugs. Therefore, quantifying actin structural changes from high resolution fluorescence micrographs is necessary for further understanding actin cytoskeleton dynamics and phenotypic consequences of drug interactions on cells. We applied an artificial neural network algorithm, which used image intensity and anisotropy measurements, to quantitatively classify F-actin subcellular features into actin along the edges of cells, actin at the protrusions of cells, internal fibers and punctate signals. The algorithm measured significant increase in F-actin at cell edges with concomitant decrease in internal punctate actin in astrocytoma cells lacking functional neurofibromin and p53 when treated with three structurally-distinct anticancer small molecules: OSW1, Schweinfurthin A (SA) and a synthetic marine compound 23'-dehydroxycephalostatin 1. Distinctly different changes were measured in cells treated with the actin inhibitor cytochalasin B. These measurements support published reports that SA acts on F-actin in NF1(-/-) neurofibromin deficient cancer cells through changes in Rho signaling. Quantitative pattern analysis of cells has wide applications for understanding mechanisms of small molecules, because many anti-cancer drugs directly or indirectly target cytoskeletal proteins. Furthermore, quantitative information about the actin cytoskeleton may make it possible to further understand cell fate decisions using mathematically testable models.

Keywords
anti-cancer drugs artificial neural network cytoskeleton fibrillar actin fluorescence microscopy image analysis pattern analysis
MeSH 主题词
Actin Cytoskeleton/chemistry,metabolism,ultrastructure Actins/chemistry,metabolism,ultrastructure Astrocytoma/metabolism,pathology Cell Line, Tumor Cellular Structures/ultrastructure Humans Neural Networks, Computer Signal Transduction/genetics
化学物质
Actins
作者与单位
共 11 位作者,点击展开单位 / ORCID
Lockett Stephen
Optical Microscopy and Analysis Laboratory, Frederick National Laboratory for Cancer Research (FNLCR), Leidos Biomedical Research Inc, Frederick, Maryland.
Verma Chrissie
Brafman Alla
Gudla Prabhakar
Nandy Kaustav
Mimaki Yoshihiro
Fuchs Philip L
Jaja Joseph
Reilly Karlyne M
Beutler John
Turbyville Thomas J
Article Info
Journal
Cytometry. Part A : the journal of the International Society for Analytical Cytology
Abbr.
Cytometry A
ISSN
1552-4930
Published
2014-06-00
电子出版
2014-00-11
页码
512-21
Language
English
Country/Region
United States
NLM ID
101235694
基金资助
CCR NIH HHS · HHSN261200800001C · United States
NCI NIH HHS · HHSN261200800001E · United States
NCI NIH HHS · P30 CA023168 · United States
Intramural NIH HHS · United States
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