[Analysis of the cell cycle using a cell sorter (FACS-II) and its theoretical background].
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Spontaneous rosette formation with sheep erythrocytes (SRBC) was studied in the peripheral blood and bone marrow lymphoid cells from a patient whose leukemic cells appeared to be T-lymphocytes. Simultaneous morphological examination of the peripheral blood white cells indicated that they consisted of 21% lymphoblast; 26% prolymphocytes and 48% mature lymphocytes. The distribution of bone marrow cells within the cell cycle was determined by flow microfluorometry and 7 hours after treatment with vincristine consisted of 69% in G1, 21% in S, and 9% in mitosis. Since virtually all the cells both in marrow and blood formed rosettes with SRBC this implies that the expression of this T cell marker is independent both of the morphological appearance of these cells and their position within the cell cycle.
The cell cycle distribution of in vitro cultured Ehrlich ascites tumor (EAT) cells was analysed by pulse-cytophotometry to characterize the growth cessation observed under anaerobic conditions. DNA histograms provided evidence that in the absence of oxygen EAT cells accumulate in the G1 and early S phase of the cell cycle while in the presence of oxygen an increase in G2 was observed during 24h culture period. Cellular recovery from anaerobiosis was observed soon after transfer of the cells into fresh aerobic culture medium but occurred slowly if the cells were only resupplied with air. Cell cycle analyses as well as (14C)-thymidine incorporation suggest considerable synchronization results from the introduction of anaerobiosis.
Further evidence is presented in support of a model for growth control in which commitment for cell division is determined by an event in the preceding cell cycle. A study was made of conditions affecting synchronous growth following treatment of murine mastocytoma cells with excess thymidine at different phases of the cell cycle. Cells were synchronized by a physical procedure involving velocity sedimentation in a zonal rotor. Pulse treatment of such cultures with thymidine at times corresponding to the S, G2, and M periods had no effect on further growth. However, addition at G1, although having no immediate effect, arrested cell growth in the next cell cycle. This temporal effect may account for the decay of synchrony observed during double thymidine blockade or thymidine-FUdR blockade. When the time interval between two such blocks was 7 hr or less, P815Y cells were arrested after one synchronous division. At this critical time a majority of cells were at, or near, G1. It is suggested that thymidine exerts a hitherto unrecognized effect at the G1 interval.
The expression of cell cycle events in Caulobacter crescentus CB13 has been shown to be associated with regulation of carbohydrate utilization. Growth on lactose and galactose depends on induction of specific enzymes. Prior growth on glucose results in a delay in enzyme expression and cell cycle arrest at the nonmotile, predivisional stage. Dibutyryl cyclic adenosine 3',5'-monophosphate (AMP) was shown to stimulate expression of the inducible enzymes and, thus, the initiation of the cell cycle. beta-Galactosidase-constitutive mutants did not exhibit a cell cycle arrest upon transfer of cultures from glucose to lactose. Furthermore, carbon source starvation results in accumulation of the cells at the predivisional stage. The cell cycle arrest therefore results from nutritional deprivation and is analogous to the general control system exhibited by yeast (Hartwell, Bacteriol. Rev. 38:164-198, 1974; Wolfner et al., J. Mol. Biol. 96:273-290, 1975), which coordinates cell cycle initiation with metabolic state. Transfer of C. crescentus CB13 from glucose to mannose did not result in a cell cycle arrest, and it was demonstrated that this carbon source is metabolized by constitutive enzymes. Growth on mannose, however, is stimulated by exogenous dibutyryl cyclic AMP without a concomitant increase in the specific activity of the mannose catabolic enzymes. The effect of cyclic AMP on growth on sugars metabolized by inducible enzymes, as well as on sugars metabolized by constitutive enzymes, may represent a regulatory system common to both types of sugar utilization, since they share features that differ from glucose utilization, namely, temperature-sensitive growth and low intracellular concentrations of cyclic guanosine 3',5'-monophosphate.
1. Changes in activity of ATPase (adenosine triphosphatase) during the cell cycle of Schizosaccharomyces pombe were analysed in cell-free extracts of cells harvested from different stages of growth of synchronous cultures and also after cell-cycle fractionation. 2. Oligomycin-sensitive ATPase oscillates in both glucose-repressed synchronous cultures and shows four maxima of activity approximately equally spaced through the cell cycle. The amplitude of the oscillations accounts for between 13 and 80% of the total activity at different times in the cell cycle. 3. Oligomycin sensitivity varies over a fourfold range at different stages of the cell cycle. 4. The periodicity of maximum oligomycin sensitivity is one-quarter of a cell cycle. 5. These results were confirmed for the first three-quarters of the cell cycle by cell-cycle fractionation. 6. In cells growing synchronously with glycerol, ATPase activity increases in a stepwise pattern, with two steps per cell cycle; the first of these occurs at 0.54 of the cell cycle and the second at 0.95. 7. These results are discussed in relation to previously obtained data on the development of mitochondrial activities during the cell cycle.
Interphase cells stained with quinacrine dihydrochloride show distinctive fluorescent nuclear patterns according to their position in the cell cycle. These patterns were used to determine whether temperature-sensitive growth mutants of the Syrian hamster cell line BHK-21 are blocked at specific stages of the cell cycle. These cytological studies confirmed the previous conclusion that ts Af8 cell line derived from BHK cells is a GI cell-cycle mutant. The method promises to be of use as an initial probe in screening for cell-cycle mutants.
BHK cells were synchronized by excess thymidine treatment, which resulted in approximately 90% synchrony. The activity of ornithine decarboxylase (ODC), the rate-limiting enzyme in polyamine biosynthesis, elevated in early S phase, decreased in G2 + M and G1 phase and then increased during late G1 approximately second round of early S phase. The concentration of cyclic adenosine-3'-5'-monophosphate (cAMP) gradually decreased during S approximately G2 + M phase and then increased during late G1 approximately second round of early S phase, preceding that of ODC activity. The data suggest that ODC activity might be regulated by cellular cAMP level.
The growth regulation of cultured mouse fibroblasts and functional adrenal cells was studied. Variants of mutants from these cell lines were obtained. The effects of classical hormones (insulin, hydrocortisone and adrenocorticotropin) and of growth factors (EGF and PF) were analysed. These hormones stimulate or inhibit the entry of cells into S phase. However G1 cells become irreversibly committed to DNA synthesis 5 hours before entering S phase.
We have investigated the induction of ornithine decarboxylase (L-ornithine carboxy-lyase, EC 4.1.1.17) activity in a temperature-sensitive cell cycle mutant of Chinese hamster fibroblasts. This activity is not induced at the nonpermissive temperature, although the synthesis of the majority of proteins is normal. From a combination of studies with inhibitors of mRNA synthesis and maturation (alpha-amanitin, and cordycepin) and of proteins synthesis (cycloheximide, diphtheria toxin, and emetine), we conclude that the temperature-sensitive block is at the level of translation of one or more specific mRNAs.
Existing relationships between cell cycle phases and chromatin scattering within the nucleus led us to state more precisely our first alogrithm for cell cycle phases recognition. These refundments give evidence for the accuracy and the improving performance of the densitometric and morphologic analysis system used in this study: the "Samba".
BACKGROUND: Ovarian follicle development plays a crucial role in mammalian fertility, which is primarily regulated by granulosa cell (GC) proliferation and cell cycle. Cell cycle dysregulation collectively might drive follicular atresia through GC dysfunction. However, the underlying molecular mechanisms remain largely unexplored. METHODS: The scRNA-seq and integrative analysis revealed that PAFAH1B1 was involved in cell cycle. Functional assays, including overexpression/knockdown, flow cytometry, EdU, HE, and TUNEL, confirmed that PAFAH1B1 regulated cell cycle and follicular development in vitro and in vivo. CoIP showed that PAFAH1B1 bound CCNE1-CDK2-CDK1 to arrest G2/M phase. Chromatin accessibility and CRISPR/dCas9-TET1 demonstrated that DNA methylation modulated PAFAH1B1 transcription. RESULTS: A novel regulator of cell cycle, PAFAH1B1, was identified in Pig Genotype-Tissue Expression (PigGTEx). During GC proliferation, we found that PAFAH1B1 transcription was correlated with the distribution rate of G1 phase in GCs. PAFAH1B1 protein was confirmed to specifically bind to CCNE1-CDK2-CDK1 to arrest G2/M phase. Notably, PAFAH1B1 appeared to hinder the development of follicles. Furthermore, the demethylation significantly promoted the transcription activity and chromatin accessibility of CpG island (-7 bp to +170 bp) of PAFAH1B1. Taken together, PAFAH1B1 physically interacted with the CCNE1-CDK2-CDK1 complex to arrest G2/M phase and inhibit the GCs proliferation and follicular development. Additionally, demethylation of CpG island significantly promoted the transcription of PAFAH1B1. CONCLUSION: These findings not only advance understanding of cell proliferation and cycle regulation but also identify PAFAH1B1 as a candidate gene for further investigation in follicular development.
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A HeLa cell line synchronized by double thymidine block and mitotic shake off was shown to have a characteristic surface morphology for each of the different cell cycle stages. Inhibitors of cell multiplication were used to arrest cells in specific cell cycle phases, and these cells had a surface morphology similar to that of synchronized cells in the same phase. The results indicated a close association between the cell surface topography and the cycles of DNA synthesis in the cell nucleus of this HeLa line.
A new rapid method for the cell cycle analysis of asynchronously growing cells is presented. The new method is an alternative to the more time consuming and subjective fraction of labeled mitoses (FLM) method. Like the FLM method, all cells in the S phase of the cell cycle are marked by pulse labeling with a radioactive DNA precursor. The subsequent progress of the cohort of cells thus labeled is monitored through a narrow window in the cell cycle. The window is defined by a narrow range of DNA contents corresponding to cells in mid-S phase and is designated Si. The cellular DNA content is measured by flow cytometry and the cells in the window Si are selected by electronic cell sorting. The radioactivity per cell in Si (RCSi) is determined by liquid scintillation counting. The duration of S phase and of the total cycle and the dispersions therein are determined from the oscillation of the RCSi values with time. The complete cell cycle analysis can be accomplished in as little as 1 day following the collection of samples. Exponentially growing Chinese hamster ovary (CHO) cells were analyzed according to the RCSi method and the FLM method. It is demonstrated that the two techniques give essentially the same results.
Events associated with endotoxin-induced mitogenesis in murine spleen cells were investigated. Commitment to deoxyribonucleic acid (DNA) synthesis, the onset of DNA synthesis, and phases of cell cycle were timed. Increased levels of DNA synthesis in murine spleen cells stimulated with endotoxin were observed 12 to 16 h after the addition of the mitogen. The total cell cycle time of stimulated B-cells was 11 to 14 h. The S-phase was 8 h. The G2-phase was 1 h, and the combined M-plus G1-phase of cycling cells was 2 to 5 h. A 1- to 4-h exposure to lipopolysaccharide elicited a significant increase in DNA synthesis. Progressively longer exposures to lipopolysaccharide, up to 24 h, produced further increases in first-cycle DNA synthesis. Polymyxin B, when added with endotoxin to cultures from the outset, inhibited first-cycle DNA synthesis. However, if addition of the antibiotic was delayed, progressive increases in first-cycle dna synthesis were observed. These data indicate a heterogeneity among B-cells in their responsiveness to endotoxin.