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F Kendall

Publications and source records attributed to F Kendall.

10 recordsLinked to original sources

Nuclear morphometry during the cell cycle.

Directly measured and derived geometric and densitometric parameters were obtained by means of the automated image analyzer Quantimet 720-D in Feulgen-stained HeLa cells synchronized by selective mitotic detachment. These data indicate substantial alteration of nuclear morphology during the entire cell cycle, even during the G1 and G2 phases, and the late G1-early S and late S-G2 transitions.

Cell Division

Objective identification of cell cycle phases and subphases by automated image analysis.

Frequency distributions of integrated optical density, perimeter, projection, area, form factor, average optical density, and mean dispersion path of nuclear images of Feulgen-stained HeLa S3 cells were obtained by automated image analysis at the base threshold of 0.04 OD. The mean values and standard deviations of these geometric parameters were then computed versus increasing values of threshold (0.08--0.32 OD). There is clear evidence of differential chromatin dispersion and convolution during the cycle of synchronized HeLa S3 cells at different times after selective mitotic detachment. The combination of average OD, form factor, and mean dispersion path at base threshold with the threshold dependence of nuclear morphometric parameters permits objective identification of cell cycle phases and their subphases, by characterizing variations in chromatin geometry within and between phases, regardless of whether DNA content remains constant (early G1, middle G1, late G1), varies only slightly (late G1-early S or late S-G2 transitions), or varies significantly (early S-middle S).

Autoanalysis

Experimental results on mammalian cells growing in vitro in deuterated medium for neutron-scattering studies.

SV-40 virus-transfromed human diploid fibroblasts (2RA) were grown in a monolayer on plastic Petri dishes in an aqueous medium deuterated to different concentrations of deuterium oxide: 10, 20, 30, up to 60%. The cells must be acclimatized to concentrations higher than 20% D2O by stepping them from a lower initial concentration during their exponential growth. The increase of cell doubling time with increasing deuterium concentrations seems to correlate, at least at 20% D20, with an initial period of suspended cell growth (lag-phase), and is qualitatively similar to that previously reported for Escherichia coli.

Cell Division

DNA structure in sheared and unsheared chromatin.

Shearing chromatin, by either sonication or vortex homogenization, introduces significant structural artifacts. These may be detected by the anomalously large increase in the number of ethidium bromide binding sites and the large alteration of the circular dichroism spectra of chromatin. Structural alterations are also suggested by the disappearance of differential light scattering after shearing.

Binding Sites

Thermal denaturation of sheared and unsheared chromatin by absorption and circular dichroism measurements.

Thermal denaturation of chromatin is observed by simultaneously monitoring absorption and circular dichroism at 276 nm as functions of temperature. Either observation indicates that sheared chromatins shows less thermal stability than native chromatin. The temperature-dependent ellipticities at 276 nm of these chromatins show features not seen in the absorption curves: the ellipticity of unsheared chromatin increases with temperature, while this increase is abolished or greatly reduced in the same chromatin after shearing. After its first thermal transition (prior to the helix-coli transition) the unsheared chromatin achieves the same ellipticity as sheared chromatin.

Chromatin

Physicochemical alterations in the conformation of rat liver chromatin induced by carcinogens in vivo.

Administration of methylating carcinogens such as methyl methanesulfonate (120 mg/kg), dimethylnitrosamine (5 mg/kg), or methylnitrosourea (80 mg/kg) to rats resulted in an increased ellipticity in circular dichroism spectra and in an enhanced ability to bind ethidium bromide in the liver chromatin. Although shearing of the chromatin preparations increased both the ellipticity and number of binding sites for ethidium bromide, the carcinogen-induced effects were noticeable whether or not chromatin was sheared. Although the doses of the 3 carcinogens used in these studies are equivalent in their ability to induce strand breaks in liver DNA at 4 hr, their effects on the induction of conformational changes in liver chromatin are different. For example, methyl methanesulfonate induced the minimum conformational changes in liver chromatin at 4 hr, whereas methylnitrosourea induced the maximum changes at 4 hr. Methyl methanesulfonate and dimethylnitrosamine, on the other hand, induced maximum changes at 3 days. The conformational changes induced by methyl methanesulfonate and methylnitrosourea, and not by dimethylnitrosamine, tend to be repaired by 14 days.

Animals

Physical-chemical characterization of living cells by laser-flow microfluorometry.

A rapid method for the laser-flow microfluorometry determination of nucleic-acid content per cell is presented. A frequency distribution of fluorescence is obtained from suspensions of living cells treated with ethidium bromide directly in their own medium (or calcium-magnesium-free Hanks' balanced solution). For a fixed number of cells, a frequency distribution of fluorescence is obtained as a function of the amount of ethidium bromide progressively added to the suspension until staturation. At any ratio of added dye per unit of DNA, histograms generated from cells stained with this method give results similar to those generated after fixation and staining by the Feulgen technique, both in terms of cell-cycle phases and ploidy-level determination. The present technique requires a minimal amount of material, is instantaneous, and is conducted directly on living cells. Furthermore, dye concentration-dependence studies of mean fluorescence per cell allow determination of association constant and binding process (primary and secondary) between the intact cell and ethidium bromide. Cells which have the same amount of DNA but vary in the amount of RNA and/or chromatin conformation (like G0 and G1) can then be distinguished.

Animals

A clarification of the complex spectrum observed with the ultraviolet circular dichroism of ethidium bromide bound to DNA.

Ethidium bromide intercalation strongly effects the circular dichroism spectrum of DNA in the region of 230-300 mu, in a complex manner. In this report we present a study that quantitizes the relationships of the circular dichroism spectrum in the region of 230-300 mu and the ethidium bromide induced optical activity centered around 308 mu. We present evidence of two hidden cooperative bands that are probably the negative counterparts of the 308 mu band and 330 mu shoulder positive cooperative bands. The hidden band is quantitatively characterized. We confirm that the direct effect of ethidium bromide on the DNA spectrum is simply linearly proportional to the amount of intercalated dye. We also observe that the ethidium bromide enters freely when there is a molecule intercalated for every 3 sites, but that the intercalation is more difficult when the molecule intercalates at every second site.

Animals