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Biomedical subjects

C S Potten

Publications and source records attributed to C S Potten.

At least 217 records · Page 12Linked to original sources

Effects of puromycin, cycloheximide and noradrenaline on cell migration within the crypts and on the villi of the small intestine. A model to explain cell movement in both regions.

The normal process of cell migration, occurring as part of the replacement scheme within the small intestinal epithelium, was investigated extensively. The effects of puromycin, cycloheximide and noradrenaline on the movement of tritiated thymidine [( 3H]TdR) prelabelled crypt or villus cells have been studied. These studies have led to the formulation of a model for the mechanism of cell migration, postulating that the crypts and villi behave as separate units, with regard to cell migration, in addition to their distinct structural and functional properties. It is proposed that crypt cell migration is an active process requiring protein synthesis and protein glycosylation, whilst movement of villus epithelial cells is passive, depending on the continued contraction of smooth muscle cells in the lamina propria.

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Intestinal cell proliferation. I. A comprehensive model of steady-state proliferation in the crypt.

Cell replacement in the crypt of the murine small intestine has been studied and modelled mathematically under steady-state conditions. A great deal of information is available for this system, e.g. cell cycle times, S phase durations, the rate of daily cell production, the Paneth cell distribution etc. The purpose of the present work was to consider simultaneously as much of these data as possible and to formulate a model based upon the behaviour of individual cells which adequately accounted for them. A simple mathematical representation of the crypt has been developed. This consists of sixteen stem cells per crypt (TC = 16 hr, TS = 9 hr), and four subsequent transit cell divisions (TC = 11 to 12 hr, TS = 8 hr) before maturation. Experimental data considered to test the modelling were LI and data on the number of vertical runs of similarly labelled cells. All data were obtained from the ileum after 25 microCi [3H]TdR given at 09:00 hours. A number of alternative assumptions have been considered and either accepted or rejected. Two alternative model concepts of cell displacement explain the data equally well. One is dependent upon strong local cell generation age determinance while the other could accommodate any weak local cell displacement process in conjunction with an environmental cut-off determinant at the middle of the crypt. Both models provide new interpretations of the data, e.g. certain rates of lateral cell exchange between neighbouring columns (250 to 350 per crypt per day out of a total of 420 cell divisions per day) can be concluded from run data, while LI data provide information about the mechanisms involved in maintaining a position-related age order in the crypt.

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Cell position dependence of labelling thymidine nucleotides using the de novo and salvage pathways in the crypt of small intestine.

About twice as much tritiated thymidine ([3H]TdR) is taken up by cells at the bottom of the crypt of the small intestine as by the rapidly cycling mid-crypt cells. However, the uptake of tritiated deoxyuridine ([3H]UdR) is even throughout the crypt. Exogenous thymidine is incorporated about four times and eight times more efficiently than deoxyuridine by the cells in the mid-crypt and cells at the bottom of the crypt, respectively. However all S phase cells in the crypt appear to be capable of using either precursors, i.e. either the de novo or salvage pathway. Since methotrexate (1 or 5 mg/kg) inhibits (at 5 mg/kg completely) the uptake of [3H]UdR, but has no effect on [3H]TdR uptake, the de novo and salvage pathways appear to be independent. Within the precision of the methods used in the experiments the 3 hr inhibition of the de novo pathway of deoxythymidylic acid (dTMP) synthesis by methotrexate does not produce any increase in utilization of the salvage pathway measured by incorporation of [3H]TdR into DNA. The increased efficiency of thymidine utilization by crypt base cells is not attributable to differences in accessibility of thymidine; differences in the rate of DNA synthesis or the size of the nuclei. It appears that crypt base cells (which include the putative stem cells) are efficient scavengers of [3H]TdR, and this might be related to the level of thymidine kinase activity within the cells, and/or to changes in the availability of endogenous thymidine (break-down products) which compete with exogenous [3H]TdR.(ABSTRACT TRUNCATED AT 250 WORDS)

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Cell death (apoptosis) in hair follicles and consequent changes in the width of hairs after irradiation of growing follicles.

Irradiation of anagen (growing) hair follicles results in a dose-dependent increase in the number of histologically identifiable fragments of dead cells (apoptotic fragments). The incidence of apoptotic fragments is linearly related to dose, increasing at a rate of 2.92 fragments per follicle section per Gy. The effects of doses of 0.2 Gy can be easily detected. Subjective attempts to associate clusters of fragments with dead or dying cells suggests that the number of fragments per cell increases with dose (about 1.7 fragments per cell after 1 Gy to about 2.7 fragments per cell after 5 Gy). There is a natural incidence of cell death in controls (0.13 +/- 0.06 fragments per follicle section with about 1.4 fragments per dead or dying cell). Damage to the follicle cells is expressed in the differentiated product of the follicle, the hair, by a reduction in width. This is probably the cellular basis for the production of dysplastic hairs. The hair width has been measured and is reduced by about 7 per cent for every gray of radiation. The value of the hair and hair follicles as potential biological dosimeters is discussed.

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Recruitment of cells in the small intestine into rapid cell cycle by small doses of external gamma or internal beta-radiation.

Epithelial cell recruitment was examined in mouse ileum after external gamma-irradiation (50 cGy) or internal beta-irradiation (0.148 MBq/g of [3H]thymidine), using the per cent-labelled-mitoses method and by analysing the distribution of mitotic cells in the crypts. In the presumptive stem cell zone at the lower cell positions of the crypt, the slowly cycling cells decreased their cell cycle 6 or 12 hours after a dose of 50 cGy. In the higher cell positions, a slight shortening of the cell cycle was also observed. After administration of a high dose of [3H]thymidine, dormant (G0) cells also entered the cell cycle in the lower cell positions. The results suggest that stem cells in the crypt may react to irradiation in two ways: first, by shortening the cell cycle in cycling cells; secondly, by an entry into the cell cycle by other dormant cells. There was destruction of some cycling stem cells before any recruitment. The data support the idea that the stem cell population in the crypt is heterogeneous.

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Cell kinetic studies in the epidermis of mouse. III. The percent labelled mitosis (PLM) technique.

Full PLM curves have been obtained for four sites in the mouse. The first peaks have been analysed by computer and the duration of the G2 + M and S phases determined together with their standard deviations. The full curves showed a general similarity for all four sites with no clear second peak. The data are compared with the published data for mouse and human epidermis using the in vivo PLM technique. The timing and shape of the first peak can vary considerably even for one site in mice. Hence, both G2 + M and S can vary in their durations. Cells labelled at one time of day exhibit different kinetic properties to those labelled at another time of day. The duration of G2 + M is shortest in dorsum labelled at 03.00 hours (3 X 2 hr) and longest in tail (up to 7 X 5 hr). The S-phase is shortest in dorsum (6 X 3-7 X 2 hr) and longest in tail or ear (13 X 3-14 X 1 hr). There is also a very large standard deviation in tail and foot. There is little general variability when the psoriatic human data are considered, which is surprising. The general variability amongst the data from experimental mice might also be expected amongst humans which might make comparisons between the cell kinetics of normal and diseased skin difficult.

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The recruitability and cell-cycle state of intestinal stem cells.

Evidence is presented which suggests that the crypts of the small intestine contain at least two discrete but interdependent classes of stem cells, some with discrete cell kinetic properties and some with discrete radiation responses or radiosensitivities. Very low doses of X rays or gamma rays, or neutrons, kill a few cells in the stem cell regions of the crypt in a sensitive dose-dependent manner. Similar doses generate several different cell kinetic responses within either the clonogenic fraction or the cells at the stem cell position within the crypt. The cell kinetic responses range from apparent recruitment of G0 clonogenic cells into cycle, to a marked shortening of the average cell cycle of the cells at the stem cell position. It is suggested that the cell kinetic changes may be the consequence of the cell destruction.

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The re-establishment of hypersensitive cells in the crypts of irradiated mouse intestine.

Within 3-6 h of small doses of radiation (gamma-rays) the number of dead cells (apoptotic cells) in the crypts of the small intestine reaches peak values. These return to normal levels only after times later than 1 day. After higher doses elevated levels of cell death persist for longer times. The dead cells first occur most frequently at the lower positions of the crypt (median value for the distribution of apoptotic fragments is about cell position 6). At later times more dead cells are observed at higher positions. Two doses of radiation separated by various time intervals have been used to investigate when after irradiation the cell population susceptible to acute cell death is re-established. Dead cells were scored 3 or 6 h after the second dose. The yield of dead cells after two doses represents the sum of the dead cells produced by, and persisting from, the first dose and new apoptotic cells induced by the second dose. Since the temporal and dose-dependence aspects of the dead-cell yield after the first dose alone is known, the additional dead cells attributable to the second dose alone can be determined by subtraction. Within 1-2 days of small doses (0.5 Gy) the sensitive cells, recognized histologically as apoptotic cells, are re-established at the base of the crypt (around cell position 6). After higher doses (9.0 Gy) they are not re-established until about the fourth day after irradiation. Even in the enlarged regenerating crypts the sensitive cells are found at the same position at the crypt base. It has been estimated that the crypt contains five or six cells that are susceptible to low doses (0.5 Gy) (hypersensitive cells) and up to a total of only seven or eight susceptible cells that can be induced by any dose to enter the sequence of changes implicit in apoptosis. Between 4 and 10 days after an initial irradiation of 9.0 Gy the total number of susceptible cells increased from seven to eight to about 10 to 13 per crypt.

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The proliferative status of microcolony-forming cells in mouse small intestine.

The technique of thymidine (TdR) suicide has been used with the intestinal microcolony assay to demonstrate that in the middle of the light cycle, nearly all intestinal clonogenic cells, in the B6D2F1 mice used in these experiments, were not in S phase. Doses of tritiated thymidine [3H]TdR up to 1 mCi/mouse did not kill a significant fraction of those clonogenic cells which survived a test dose of 12 Gy gamma-rays. This finding supports some data in the literature, but conflicts with others. However, the suicide technique was found in the studies reported here to be very efficient in sterilizing clonogenic cells in the middle of the dark cycle, and also in a regenerating epithelium at day 3 after a dose of 9 Gy. This implies that the technique can discriminate well between populations of clonogenic cells which differ in their content of cells in S phase. The lack of a suicide effect in the middle of the light cycle indicates that the majority of proliferative epithelial cells are not clonogenic.

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Clonogenic, stem and carcinogen-target cells in small intestine.

The small intestine is an epithelial site which rarely undergoes carcinogenic transformation in spite of the fact that it is one of the most rapidly replacing tissues of the body. Some possible explanations for the low cancer incidence are discussed, with particular reference to the target cell population within the epithelium which is capable of carcinogenic transformation. It is proposed that the carcinogen target cells are the stem cells of the tissue and a possible defect which might lead to cancer is a slight alteration in the self-maintenance/differentiation probabilities in favour of self-maintenance.

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Cell kinetic studies in the epidermis of the mouse. I. Changes in labeling index with time after tritiated thymidine administration.

The changes in the labeling index (LI) with time after a single injection of tritiated thymidine (3HTdR) at each of 4 different times of the day have been studied. Slight differences occur in the shape of these LI curves, (e.g. in the timing of the peaks) depending on the time of day when the initial injection was given. Thus, the time of day influences not only the number of cells in DNA synthesis but also determines the subsequent behavior of the labeled cells. The curves show 3 distinct peaks from which estimates of the cell cycle time can be made. The technique permits the cell cycle time to be estimated. From the data as a whole a minimum cell cycle time of 90 h for basal cells in the epidermis on the back of a mouse is obtained. The technique also provides estimates for the duration of S + G2 + M which varies depending on the time of day that the label is given. The LI curves can best be understood if the basal layer is assumed to contain 2 cell populations with differing cell cycle times; one having a long cell cycle (about 180 h) but short S-phase and containing the stem cells, the other having a short cell cycle (about 90 h) and a long S-phase duration and consisting of transit cells.

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Response of intestinal cells of differing topographical and hierarchical status to ten cytotoxic drugs and five sources of radiation.

The spacial distribution of cell death among the epithelial cells lining the adult mammalian small intestinal mucosa at various times after a range of doses of 10 different drugs as well as after internal or external irradiation (beta particles from tritium, gamma- and X-rays and neutrons) has been recorded. Cell death, expressed as pycnosis or apoptosis, has been recorded for each cell position up the side of the crypts of the small intestine. The results, in the form of distributions of dead cells at each cell position, show that each of the various cytotoxic agents tends to act preferentially over a characteristic small range of cell positions. Since cell position is likely to be related to hierarchical cell position within a family tree or cell lineage, each agent tends to act with greatest efficiency on cells at a particular position within the lineage. Adriamycin and the various forms of radiation tend to kill cells preferentially at cell position 4-5 i.e. on cells very early in the lineage, probably stem cells. Isopropyl-methane-sulphonate, nitrogen mustard and possibly Actinomycin-D act on cell position 6-7, while 5-fluorouracil, Myleran, cyclophosphamide, and cycloheximide tend to kill cells at cell position 7-9. Vincristine and hydroxyurea are the 2 agents that exhibit a specificity for cells highest up the crypt, i.e. latest in transit population of the cell lineage by acting on cell positions 10 or 11. The data also suggest that normal healthy cells continue to migrate up the crypt and onto the villus in spite of considerable cell death and reduced cell production.

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Radiosensitivity of normal human epidermal cells in culture.

Using an in vitro culture system we have derived radiation survival curves for the clonogenic cells of normal human epidermis. The culture system used allows the epidermal cells to stratify and form a multi-layered sheet of keratinizing cells. The cultures appear to be a very good model for epidermis in vivo. The survival curves show a population which is apparently more sensitive than murine epidermis in vivo. It remains unclear whether this is an intrinsic difference between the species or is a consequence of the in vitro cultivation of the human cells.

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