Time-lapse microscopy approaches to track cell cycle progression at the single-cell level. 2005

Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
School of Medicine, Heath Park, Cardiff, United Kingdom.

Time-lapse microscopy can be described as the repeated collection of a field of view from a microscope at discrete time intervals. The duration of the time interval defines the temporal resolution, which in turn characterizes the type of event detected. This unit describes the implementation of time-lapse microscopy to link initial cell cycle position during acute exposures to anti-cancer agents with anti-proliferative consequences for individual cells. The approach incorporates fundamental concepts arising from the ability to capture simple video sequences of cells from which it is possible to extract kinetic descriptors that reflect the interplay of mitosis and cell death in the growth of an unsynchronized tumor population. Utilizing a multi-well format enables the user to test different drug derivatives, multiple dose ranges, or cell cultures with unique genetic backgrounds. The objective of this unit is to present a generic methodology for capturing time-lapse sequences and subsequently mining the data for comprehensive event analysis.

UI MeSH Term Description Entries
D002453 Cell Cycle The complex series of phenomena, occurring between the end of one CELL DIVISION and the end of the next, by which cellular material is duplicated and then divided between two daughter cells. The cell cycle includes INTERPHASE, which includes G0 PHASE; G1 PHASE; S PHASE; and G2 PHASE, and CELL DIVISION PHASE. Cell Division Cycle,Cell Cycles,Cell Division Cycles,Cycle, Cell,Cycle, Cell Division,Cycles, Cell,Cycles, Cell Division,Division Cycle, Cell,Division Cycles, Cell
D002455 Cell Division The fission of a CELL. It includes CYTOKINESIS, when the CYTOPLASM of a cell is divided, and CELL NUCLEUS DIVISION. M Phase,Cell Division Phase,Cell Divisions,Division Phase, Cell,Division, Cell,Divisions, Cell,M Phases,Phase, Cell Division,Phase, M,Phases, M
D000818 Animals Unicellular or multicellular, heterotrophic organisms, that have sensation and the power of voluntary movement. Under the older five kingdom paradigm, Animalia was one of the kingdoms. Under the modern three domain model, Animalia represents one of the many groups in the domain EUKARYOTA. Animal,Metazoa,Animalia
D013997 Time Factors Elements of limited time intervals, contributing to particular results or situations. Time Series,Factor, Time,Time Factor
D016923 Cell Death The termination of the cell's ability to carry out vital functions such as metabolism, growth, reproduction, responsiveness, and adaptability. Death, Cell
D018715 Microscopy, Video Microscopy in which television cameras are used to brighten magnified images that are otherwise too dark to be seen with the naked eye. It is used frequently in TELEPATHOLOGY. Video Microscopy,Videomicrography,Videomicroscopy,Microscopies, Video,Video Microscopies,Videomicrographies,Videomicroscopies

Related Publications

Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
March 2021, Plant methods,
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
October 2014, The Analyst,
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
September 2017, Scientific reports,
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
March 2010, IEEE transactions on medical imaging,
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
April 2023, mSphere,
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
January 2015, Methods in molecular biology (Clifton, N.J.),
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
January 2021, Methods in molecular biology (Clifton, N.J.),
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
January 2020, Methods in molecular biology (Clifton, N.J.),
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
January 2009, Annual review of cell and developmental biology,
Rachel J Errington, and Nuria Marquez, and Sally C Chappell, and Marie Wiltshire, and Paul J Smith
January 2024, Methods in molecular biology (Clifton, N.J.),
Copied contents to your clipboard!