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The role of cell size in density gradient electrophoretic separation of mouse leukemia cells according to position in the cell cycleCultured mouse leukemia cells line L5178Y were subjected to upward electrophoresis in a density gradient and the slower migrating cell populations were enriched in G2 cells. It is indicated that this cell line does not change electrophoretic mobility through the cell cycle. The possibility that increased sedimentation downward on the part of the larger G2 cells caused this separation was explored. Two different cell populations were investigated. The log phase population was found to migrate upward faster than the G2 population, and a similar difference between their velocities and calculated on the basis of a 1 um diameter difference between the two cell populations. The G2 and G1 enriched populations were isolated by Ficoll density gradient sedimentation. The bottom fraction was enriched in G2 cells and the top fraction was enriched with G1 cells, especially when compared with starting materials. The electrophoretic mobilities of these two cell populations did not differ significantly from one another. Cell diameter dependent migration curves were calculated and were found to be different. Families of migration curves that differ when cell size is considered as a parameter are predicted.
Document ID
19850023447
Acquisition Source
Legacy CDMS
Document Type
Other
Authors
Plank, L. D.
(Pennsylvania State Univ. University Park, PA, United States)
Kunze, M. E.
(Pennsylvania State Univ. University Park, PA, United States)
Todd, P. W.
(Pennsylvania State Univ. University Park, PA, United States)
Date Acquired
August 12, 2013
Publication Date
January 1, 1985
Publication Information
Publication: Kidney Cell Electrophoresis
Subject Category
Inorganic And Physical Chemistry
Accession Number
85N31760
Distribution Limits
Public
Copyright
Work of the US Gov. Public Use Permitted.

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