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The repair of the mouse seminiferous epithelium after cell loss has been studied in seminiferous tubules mounted in toto . Cell loss was inflicted by injection of Myleran in a dose of 10 mg/kg body weight. In stages 7–8, in which we mainly counted, the numbers of Aisolated (Ais), Apaired (Apr), Aaligned (Aal) and A1 spermatogonia and resting primary spermatocytes decreased after injection. After about 24 days normal numbers of A1 spermatogonia were found again. Thereafter a substantial overshoot in the number of A1 spermatogonia was found.
While normally most of the Apr and Aal cells differentiate into A1 spermatogonia in stages 3 and 4 and do not divide until stage 9, during repair they pass through one more division during stages 6 and 7. Normally, during these stages divisions of these spermatogonia are rare. Owing to this extra division the transformation of Apr and Aal into A1 spermatogonia is delayed from stage 3 or 4 to stage 8, i.e. still before stage 9, in which A1 spermatogonia divide. From 16 days after the injection onwards the extra division takes place less generally and more and more cells transform into A1 spermatogonia at the normal time.  相似文献   

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Abstract— An analysis of the [3H]DFP-labelled catalytic subunits of mammalian (bovine SCG) acetylcholinesterase (AChE, EC 3.1.1.7.) indicates a monomer molecular weight of 75,000. This is equivalent to the mass previously determined for the smallest active form and demonstrates that the globular, or G forms, are respectively monomeric (G1 form, 4S), dimeric (G2 form, 6.5S) and tetrameric (G4 form, 10S). In the tetrameric G4 form the catalytic chains are associated in dimers, by disulphide bonds.
The effect of reduction and proteolysis has shown that the dimeric form (G2 form, 6.5S) is readily reduced into G1, while the tetramer G4 is very stable, being only dissociated by a combination of reduction and proteolysis by high concentration of trypsin. The asymmetric forms A12 (16S), A8 (13S) and A4 (9S) are not sensitive to reduction, but are readily dissociated by low concentrations of trypsin, into each other, progressively liberating isolated tetramers. We obtained essentially identical results with AChE preparations from rat brain or superior cervical ganglion. These observations support a general model for the quaternary structure of acetylcholinesterase molecular forms.  相似文献   

5.
Abstract. The kinetics of isthmal cells in mouse antrum were examined in three ways: (a) the duration of cell cycle and DNA-synthesizing (S) stage was measured by the 'fraction of labelled mitoses' method; (b) the duration of interphase and mitotic phases was determined from how frequently they occurred; and (c) mice were killed at various intervals after an intravenous injection of 3H-thymidine to time the acquisition of label by the various phases of mitosis.
The duration of the isthmal cell cycle was found to be 13.8 hr and that of the DNA-synthesizing (S) stage, 5.8 h. Estimates for the duration of the G1 and G2 stages were 6.8 and 1.0 hr, respectively.
From the frequency of mitotic phases, defined as indicated in the preceding article (El-Alfy & Leblond, 1987) and corrected for the probability of their occurence, it was estimated that prophase lasted 4.8 hr; metaphase, 0.2 hr; anaphase, 0.06 hr and telophase, 3.3 hr, while the interphase lasted 5.4 hr. In accordance with this, the duration of the whole mitotic process was 8.4 hr.
Ten minutes after an intravenous injection of 3H-thymidine, 38% of labelled isthmal cells were in interphase and 62% in early or mid prophase, while cells in late prophase and other mitotic phases were unlabelled. After 60 min, label was in late prophase, after 120 min, in mid telophase and after 180 min, in late telophase.
We conclude that there is overlap between some mitotic phases and cycle stages. Thus, while nuclei are at interphase during the early third of S, they are in prophase during the late two-thirds as well as during G2. Also, nuclei are in telophase during the early half of G1 but at interphase during the late half. Differences in nuclear diameter show that subdivision of both S and G1 into early and late periods is practical.  相似文献   

6.
Actinomycin D (0.5 μg/ml) did not prevent M stage cells from entering G1 stage, but blocked their progress from G1 to S stage. The position of the block was approximately 1.4 hr before S stage or just after the beginning of G1 stage. Actinomycin D in this concentration also significantly depressed uridine-3H uptake into G1 stage cells, but did not suppress leucine-3H uptake by M and G1 cells. This suggests that some proteins may be synthesized in M and G1 stage cells by messenger RNA left over from the previous cell cycle. However, entry of G1 cells into S stage would require synthesis of new messenger RNA near the beginning of G1 stage. Puromycin (10 μg/ml) did not prevent M cells from entering G1 stage, but blocked their progress from G1 to S stage. The site of blockage was about 0.7 hr before S stage or in the first two-third of G1 stage. This might be the site where the cells synthesize new G1 proteins necessary for entry to S stage.
Comparison of sensitivities of G1 and G2 stages to the two antibiotics reveals that the puromycin sensitivity of G1 cells was similar to that of G2 cells, but the actinomycin D sensitivity of G1 was greater than that of G2 cells.  相似文献   

7.
Ehrlich ascites tumours were transplanted from their normal hosts (mice) into rats, and studies made of the timing of cell cycle 120-170 hr after transplantation, when tumour regression was under way. There was no significant change in the duration of the cell cycle. Some increase was found in the average and spread of G2 durations, largely compensated by a decrease in S duration. When taken together with previously published work the results suggest that the immunological pressure of transplantation into a heterologous host prolongs the G2 period.  相似文献   

8.
Abstract. Tape stripping of human skin elicits a proliferative response of a synchronously-dividing group of cells. The progress of this cohort of cells has been monitored using two windows in the cell cycle, one located in mid-S phase and the other centred around G2+ M. The cellular DNA is measured with flow cytometry, the windows are defined by two ranges in the DNA histogram.
The cohort can be described as the recruitment of cells from a pre-existing G0 compartment which consists of 76% of all proliferative cells. The duration of the S phase is calculated to be 10.2 hr and G2+ M phase 5.1 hr. The cell cycle time of 39 hr for normal human keratinocytes derived from these figures is in line with recent values obtained by different techniques.  相似文献   

9.
The cell cycles of the early cleavage stages of the mouse were analyzed by examining Feulgen-stained ova. The period from ovulation to the completion of second cleavage division was investigated. The ova donors were C57BL/6 × DBA/2 female mice, which were hormonally superovulated. To estimate the durations of DNA synthesis and mitotic phases of the cleavage divisions, the ova were pooled into culture medium, and as a function of time, aliquots were removed from the batch of pooled ova. The ova specimens were Feulgen-stained and classified as the ova nuclei in G1, S, G2 or mitosis by use of a cytophotometric technique and then the durations of these phases were determined by probit analysis.
The pronuclear stage had a generation time of 11 hr, with a G1 phase of 6 hr and a short S phase of 1.7 hr. In contrast the two-cell stage had a generation time of 18 hr, with a G1 phase of 2 hr and an S phase of 3 hr. The duration of cleavage division also changed; the first cleavage division spanned 3 hr while the second spanned 1 hr.  相似文献   

10.
Abstract. In order to characterize the growth pattern of the human promyelocytic leukaemia cell line HL60, its kinetic parameters were studied. The doubling time was calculated from serial cell counts, the duration of the various cell cycle phases from the analysis of the labelled mitoses curve, and quiescent population from continuous labelling experiments. Proliferation in culture was exponential up to a saturation density of about 3.0 × 106 cells/ml, with a doubling time of 34.0 hr. The cell cycle duration was 24.3 ± 4.1 hr (SD), and that of the cell cycle phases was: G1, 3.8 ± 2.2 hr; S, 15.1 ± 3 hr; and G2, 5.4 ± 1.2 hr. The growth fraction was 0.85, and cell loss was restricted to the quiescent cells. The HL60 cell line, with fully characterized kinetics, provides a useful tool for the in vitro study of substances which may affect human leukaemic myelopoietic proliferation.  相似文献   

11.
Abstract. The initiation of DNA synthesis and further cell cycle progression in cells during and following exposure to extremely hypoxic conditions in either G1 or G2+M has been studied in human NHIK 3025 cells. Populations of cells, synchronized by mitotic selection, were rendered extremely hypoxic (< 4 p.p.m. O2) for up to 24n h. Cell cycle progression was studied from flow cytometric DNA recordings. No accumulation of DNA was found to take place during extreme hypoxia. Cells initially in G1 at the onset of treatment did not enter S during up to 24 h exposure to extreme hypoxia, but started DNA synthesis in a highly synchronous manner within 1.5 to 2.25 h after reoxygenation. The duration of S phase was only slightly affected (increased by ≅10%) by the hypoxic treatment. This suggests that the DNA synthesizing machinery either remains intact during hypoxia or is rapidly restored after reoxygenation. Cells initially in G2 at the onset of hypoxia were able to complete mitosis, but further cell cycle progression was blocked in the subsequent G^ Following reoxygenation, these cells progressed into S phase, but the initiation of DNA synthesis was delayed for a period corresponding to at least the duration of normal G1 and did not appear in a synchronous manner. In fact, cell cycle variability was found to be increased rather than decreased as a result of exposure to hypoxia starting in G2. We interpret these findings as an indication that important steps in the preparation for initiation of DNA synthesis take place before mitosis. Furthermore, the change in cell cycle duration induced by hypoxia commencing in G1 is of a nature other than that induced by hypoxia commencing in other parts of the cell cycle.  相似文献   

12.
Abstract. Differentiation of mammalian cells is accompanied by reduced rates of proliferation and an exit from the cell cycle. Human leukemic cells HL60 present a widely used model of neoplastic cell differentiation, and acquire the monocytic phenotype when exposed to analogs of vitamin D3 (VD3). The maturation process is accompanied by two blocks in the cell cycle: an arrest in the G1/G0 phase, and a recently described G2+ M block. In this study we have analyzed the traverse of the cell cycle phases of the well-differentiating HL60-G cells exposed to one of ten analogs of VD3, and compared the cell cycle effects of each compound with its potency as a differentiation-inducing agent. We found that in general there was a good correlation between the effects of these compounds on the cell cycle and on differentiation, but the best cell cycle predictor of differentiation potency was the extent of accumulation of the cells in the G2 compartment. All analogs induced a marked decrease in the mitotic index, and polynucleation of HL60 cells was produced, especially by compounds which were effective as inducers of differentiation. Time course studies showed that induction of differentiation was accompanied by a transient increase of the proportion of cells in the G2+ M compartment, but preceded the G1 to S, and the G2 compartment blocks. These studies indicate that complex changes in the cell cycle traverse accompany, but do not precede, the acquisition of the monocytic phenotype by HL60 cells.  相似文献   

13.
Single-celled protonemata of the fern Adiantum capillus-veneris, kept under continuous red light, grew with a very low rate of cell division, and the cell cycle was arrested in the early G1 phase. Cell division was induced by transferring the protonemata to the dark after various light treatments, and the duration of component phases in the cell cycle was determined by a continuous-labelling technique with 3H-thymidine. Blue light irradiation greatly reduced the duration of the G1 phase but did not affect that of other phases. The greater the fluence of blue light, the shorter was the duration of G1 phase was observed. In contrast, a brief exposure of red-light-grown protonemata to far-red light given immediately before the dark incubation showed no effect on the duration of G1 S and M phases but significantly extended that of the G2 phase. The effect of far-red light on the G2 phase was reversed by red light, and the effects of red and far-red light were repeatedly reversible. The progression in the M phase was shown by means of a time-lapse video system to be not at all influenced by any pre-irradiation described above.  相似文献   

14.
Abstract. We have previously found that DNA replication was affected within one cell cycle after seeding Chinese hamster ovary (CHO) cells in the presence of the polyamine biosynthesis inhibitor 2-difluoromethylornithine (DFMO). We could, however, not rule out if this was due to an effect on the G1/S transition and/or on DNA synthesis elongation. In the present paper, we use a bromodeoxyuridine-flow cytometric method to more specifically study the G1/S transition, the S phase length, and the progression of cells from S phase through G2+ M and into G1, after seeding plateau phase CHO cells at low density in the absence or presence of 5 mM DFMO. We report here that DFMO-induced polyamine depletion increased the length of the S phase within one cell cycle after seeding of CHO cells in the presence of the inhibitor. No effect on the G1/S transition was observed until 2 days after seeding, suggesting that a DFMO-induced lengthening of the G1 phase occurred later than the effect on S phase progression. These results imply that the G2+ M phase was not prolonged until 2 days after seeding CHO cells in the presence of DFMO.  相似文献   

15.
Influence of denervation on the regeneration of Pleurodele limbs   总被引:2,自引:0,他引:2  
Abstract. A cytophotometric study of Feulgen-stained mesenchymal cell nuclei from regeneration blastemas of both innervated and denervated limbs over the 1st 7 days following the midbud stage showed a diminution of the percentage of cells in the S + G2 phases and a corresponding augmentation of the percentage of cells in the G0+ G1 phases. This change, which was temporally correlated with the redifferentiation of the innervated blastemas, was greater in denervated blastemas, even though they do not redifferentiate. From these results, it is concluded that the denervation of midbud blastemas brings about either an extension of the G1 phase or an exiting from the cell cycle to G1 (G0–1), or both phenomena.  相似文献   

16.
The second messenger cAMP is a key regulator of growth in many cells. Previous studies showed that cAMP could reverse the growth inhibition of indoleamines in the dinoflagellate Crypthecodinium cohnii Biecheler. In the present study, we measured the level of intracellular cAMP during the cell cycle of C. cohnii . cAMP peaked during the G1 phase and decreased to a minimum during S phase. Similarly, cAMP-dependent protein kinase activities peaked at both G1 and G2+M phases of the cell cycle, decreasing to a minimum at S phase. Addition of N6, O2'-dibutyryl (Bt2)-cAMP directly stimulated the growth of C. cohnii . Flow cytometric analysis of synchronized C. cohnii cells suggested that 1 mM cAMP shortened the cell cycle, probably at the exit from mitosis. The size of Bt2-cAMP treated cells at G1 was also larger than the control cells. The present study demonstrated a regulatory role of cAMP in the cell cycle progression in dinoflagellates.  相似文献   

17.
SYNOPSIS. Tritiated thymidine and autoradiographic methods were used to investigate the cyclic DNA synthesis in the culture form of Trypanosoma mega. It was found that the mean generation time of 18.9 hours comprises four successive periods: G1, S, G2 and D. The interphase lasts through the first three. S is the phase of DNA synthesis of both the nucleus and the kinetonucleus (kinetoplast). The cell divides during D, beginning with the division of the kinetonucleus. The respective durations of G1, S, G2 and D are 8.5, 7, 2 and 1.4 hours. The close time relationship between the two DNA synthesizing bodies is considered as bringing support to the old theory of the Binucleates and the possible genetic function of the kinetonucleus is suggested.  相似文献   

18.
Abstract: Rat glioma mouse neuroblastoma hybrid neurotumor cells (NG108-15), synchronized by amino acid deprivation, showed a cell-cycle-dependent peak of activity of a ganglioside N-acetylgalactosaminyl transferase 14-24 h following release from the cell cycle block (S/G2 phase). Maximal expression of two typical lysosomal hydrolases, N-acetyl-β-hexosaminidase and β-galactosidase, occurred between 18 and 21 h following release (S phase), declining to G1 phase levels during the peak of N-acetylgalactosamine (GalNAc) transferase activity. In addition, glycosyltransferase activity in G2 phase cells showed an increase in apparent Vmax (suggesting the presence of more enzyme/mg of cell protein) and apparent binding affinity for uridine diphosphate N-acetylgalactosamine (UDP-GalNAc) (32 versus 14 M) when compared to transferase activity in the G1 phase. However, the opioid peptide enkephalin [D-Ala2, o-Leu5], which inhibits ganglioside GalNAc transferase activity in unsynchronized NG108-15 cultures, was much more inhibitory in whole cells 8 h after release from the cell cycle block (G1 phase) than in cells 20 h after release (G, phase), with 50% inhibition occurring at 2 ± 10-9M and 2 ± 10-7M, respectively. These results suggest that the GalNAc transferase activity is regulated in more than one way during the cell cycle, since both Vmax and Km changes are observed, and that the cyclic AMP-dependent mechanism by which opiates reduce transferase activity is receptor mediated and cell cycle dependent.  相似文献   

19.
Abstract. Multivariate analysis of the expression of cyclin proteins and DNA content has opened new possibilities for the study of the cell cycle. By virtue of their cell cycle phase specificity, the expression of cyclins may serve, in addition to DNA content, as another marker of a cell's position in the cycle, and provide information about the proliferative potential of cell populations. Several applications of the methodology based on bivariate analysis of DNA content v . expression of B, E and D type cyclins are reviewed: 1 expression of cyclins by individual cells during their progression through the cycle can be studied, using exponentially growing cells without the necessity of cell synchronization or other perturbations of the cycle; 2 cells having the same DNA content but residing in different phases of the cycle (e.g. G2 diploid v. G1 tetraploid) can be distinguished; 3 cell transition from G0 to G1 and progression through G1 (e.g. mitogen stimulated lymphocytes) can be assayed; 4 the population of proliferating cells can be distinguished from noncycling cells based on dual cell labelling with a G1 and G2 cyclin antibody; 5 cyclin restriction points can serve as additional cell cycle landmarks to map the point of action of antitumour drugs; 6 unscheduled expression of cyclins (e.g. the presence of cyclin B1 during G1 and S) can be detected in several tumour transformed cell lines, possibly indicating disregulation of the machmery of cell cycle progression. The last finding 6 is of special importance, because such disregulation may be of prognostic consequence in human tumours.  相似文献   

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