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Biomedical subjects

J P Smith

Publications and source records attributed to J P Smith.

At least 19 recordsLinked to original sources

Binocular accommodative facility testing reliability.

This study evaluated the reliability of the 1-min binocular accommodative facility test by extending the testing period for 2 additional minutes. Subjects, ages 8 to 12 years, were tested for an initial 1-min period, to identify 2 groups, high fail (greater than 3, but less than 8 cpm, N = 30) and low fail (less than 3 cpm, N = 30), and then tested for an additional 2 min. The low fail group had greater test-retest reliability in both minutes 2 and 3. Both groups improved (high fails mean = 0.93 cpm, low fails mean = 0.37 cpm), but no clear statistical difference was found between groups. When diagnostic classification was monitored over the 3 min, 40% of high fails passed, whereas no low fails passed. The 1-min testing method appears reliable if the initial rate is less than 3 cpm. For patients whose initial rate is between 3 and 8 cpm, extended testing (1 to 2 additional minutes) may be needed to arrive at an accurate diagnosis, especially if presenting symptoms are absent.

Accommodation, Ocular

Trophic effects of unsulfated cholecystokinin on mouse pancreas and human pancreatic cancer.

The effect of unsulfated cholecystokinin on pancreatic growth was evaluated in two experimental models in vivo and in vitro. Mice were injected with sulfated cholecystokinin (CCKs) or unsulfated cholecystokinin (CCKu) (10 or 20 micrograms/kg) or vehicle twice daily for 15 days. Animals were then killed and pancreatic weights, protein, amylase, and DNA content were evaluated. In vitro, growth was evaluated by DNA synthesis and viable cell counts. MIA PaCa-2 and BxPC-3 human pancreatic cancer cells were treated with CCKs or CCKu (10(-12) to 10(-9) M) for 48 or 72 h in the presence of [3H]thymidine to evaluate DNA synthesis. Viable cell counts were performed on both cell lines grown in the presence or absence of unsulfated CCK (10(-12) to 10(-9) M) for 96 h. Pancreatic weight, protein, amylase, and DNA were significantly increased in animals treated with either CCKs or CCKu. However, pancreatic weight, protein, and amylase were significantly higher in mice treated with CCKs compared to CCKu (p less than 0.005). DNA content and index of hyperplasia were the same whether mice were treated with CCKs or CCKu. CCKu was as potent a stimulus for DNA synthesis as CCKs in MIA PaCa-2 and BxPC-3 cells. Finally, CCKu increased cell counts in both pancreatic cancer cell lines. These data suggest that the mechanisms responsible for CCK-induced growth of normal pancreas and pancreatic cancer may differ from those that regulate secretion.

Amylases

Effects of cholecystokinin on cytosolic calcium in human pancreatic cancer cells.

Cholecystokinin (CCK) has been shown to increase cytosolic calcium and stimulate enzyme release from pancreatic acinar cells and a rat acinar cell line, AR42J. CCK is also trophic to normal pancreas and pancreatic cancer; however, the cellular mechanisms which regulate CCK-stimulated growth are unknown. The effect of CCK on intracellular calcium was evaluated in four human pancreatic cancer cell lines known to grow in response to CCK but not secrete enzymes (SW-1990, MIA PaCa-2, BXPC-3 and PANC-1) and a rat acinar cell line (AR42J) shown to secrete enzymes but not grow with CCK. By using single cell fluorescence microscopy in fura-2 loaded cells, intracellular calcium [Ca2+]i was measured. After obtaining baseline fluorescent cell images, synthetic CCK-octapeptide (CCK8) was added to the cells and images of cell fluorescence captured. [Ca2+]i of the rat acinar cells increased (603%) over the baseline within the first minute after the addition of CCK (4.10(-13) M to 4.10(-10) M) in 77% of cells tested. In contrast [Ca2+]i failed to significantly change in the human cancer cells treated with CCK. To further localize the defect in hormone signal transduction in cancer cells, cells were suspended in low calcium media and the plasma membranes were selectively permeabilized with digitonin. Media free calcium concentration was continuously monitored by fura-2 fluorescence. Addition of inositol 1,4,5-trisphosphate (IP3) resulted in a marked increase in medium calcium concentration indicating IP3 was capable of releasing calcium from intracellular stores in both the AR42J rat acinar cell line and in the human pancreas cancer cell lines. In conclusion, CCK does not increase cytosolic calcium in human pancreatic cancer cells in contrast to rat acinar cells although all contain IP3-sensitive intracellular Ca2+ pools. Our results suggest that growth promoting and secretory effects of CCK on pancreatic cells may occur via two independent signalling pathways.

Adenocarcinoma

CCK stimulates growth of six human pancreatic cancer cell lines in serum-free medium.

The growth responses of six human pancreatic cancer cell lines (SW-1990, PANC-1, MIA PaCa-2, BxPC-3, RWP-2 and CAPAN-2) to cholecystokinin (CCK) were evaluated in serum-free medium (SFM). In each experiment cells were initially plated in media containing fetal calf serum (FCS) grown for 48-72 h, and then washed with saline. Cells were incubated for an additional 72 to 96 h in medium devoid of FCS in the absence (control) or presence of synthetic CCK analogue (Thr4,Nle7)CCK9 (10(-13) to 10(-9) M), or CCK8 (10(-12) to 10(-9) M), or CCK39 (10(-12) to 10(-9) M). Viable cell counts were performed with a hemocytometer. Growth of each cell line was stimulated in the presence of CCK in serum-free medium, although the magnitude of responses differed. The concentrations of (Thr4,Nle7)CCK9 which stimulated the greatest increase in cell counts as compared to controls for each cell line were: SW-1990, 39% (10(-12) M, P less than 0.05); PANC-1, 45% (10(-9) M, P less than 0.005); MIA PaCa-2, 42% (10(-12) M, P less than 0.005); BxPC-3, 32% (10(-13) M, P less than 0.05); RWP-2, 37% (10(-11) M, P less than 0.005). Maximal response to CCK8 occurred at the 10(-9) M dose for each cell line: MIA PaCa-2, 40% (P less than 0.025); PANC-1, 85% (P less than 0.001); RWP-2, 68% (P less than 0.001) and CAPAN-2, 52% (P less than 0.001). The maximal increase in cell count with CCK39 ranged from 44-74% and occurred with either 10(-11) or 10(-10) M. CCK8 in SFM also stimulated cell growth as well as or better than FCS alone in three out of four pancreatic cell lines.(ABSTRACT TRUNCATED AT 250 WORDS)

Adenocarcinoma

Kinetics of the tingible body macrophage response in mouse germinal center development and its depression with age.

Although tingible body macrophages (TBM) have been recognized in germinal centers for over 100 years, their role in the germinal center response is not clear. In this study, the kinetics of the TBM response was quantitatively assessed and correlated with the kinetics of germinal center development in young mice. The TBM response in old mice (which have an age-related depression of germinal center development; Szakal et al., 1990) was analyzed for comparison. Young and old immune mice were challenged with human serum albumin and 0, 1, 3, 5, 7, 10, and 14 days later the popliteal and axillary lymph nodes were evaluated. Germinal centers were localized histochemically in alternate serial sections using horseradish peroxidase conjugated peanut agglutinin. TBM numbers were determined per germinal center on adjacent sections by the presence of tingible bodies or histochemically by using the monoclonal antibody Mac-2. Analysis of lymph nodes from young mice showed that TBM numbers decreased with the dissociation of preexisting germinal centers. TBM reappeared 5 days after challenge and the TBM kinetics paralleled the increase in size of de novo germinal centers. In fact, a constant ratio of one TBM to every 350-450 B cells was maintained from day 5 to day 10. In old lymph nodes, TBM were generally absent throughout germinal center development. The lack of TBM prior to germinal center development and their absence in aged mice are inconsistent with the concept that TBM are required for the induction of the germinal center reaction. However, the data are consistent with a role for TBM in regulating the magnitude of the germinal center reaction.

Aging

Effects of fat and fiber on human colon cancer xenografted to athymic nude mice.

The effects of unsaturated fat and fiber (cellulose) on the growth of human colon cancer explanted to athymic nude mice was evaluated. Eighty-seven male nude mice bearing xenografts of human HT29 or WiDr colon cancer were divided into three groups of equal weight and tumor volume. Each group was fed one of three diets: normal fat/no fiber (N/N), high fat/no fiber (H/N) or high fat/high fiber (H/H). To equalize caloric intake, animals in the H/N group received 4 g of food per day and the other animals were fed 5 g of food per day. At sacrifice tumor volume and weight was recorded, and tumors were analyzed for protein and DNA content and ornithine decarboxylase activity. Tumor volume, weight, and protein were greater in the H/N group compared to the N/N group for both colon cancer cell lines. Tumor DNA content was greater in the HT29 H/N group compared to the N/N group (P less than 0.05) and tumor ornithine decarboxylase activity in the WiDr H/N group was greater than the N/N animals (P less than 0.002). The tumor growth-promoting effects of the high unsaturated fat diet were attenuated by the addition of fiber. Animal weight was higher in the H/N group compared to the N/N and H/H groups. This study suggested that a high-fat diet stimulated and fiber decreased the growth of human colon cancer explanted to athymic nude mice. The growth-promoting effects of a high-fat diet in colorectal cancer may be due in part to a circulating trophic factor since these tumors were remote from the large intestine.

Animals

Aflatoxins in food: occurrence, biosynthesis, effects on organisms, detection, and methods of control.

Aflatoxins are secondary metabolites produced by species of Aspergilli, specifically Aspergillus flavus and Aspergillus parasiticus. These molds are ubiquitous in nature and grow on a variety of substrates, thereby producing aflatoxins. Aflatoxins are of great concern due to their biochemical and biological effects on living organisms. In this article, the occurrence of aflatoxins, their biosynthesis, factors influencing their production, their effects on living organisms, and methods of detection and control in food are reviewed. Future areas of research involving mathematical modeling of factors influencing aflatoxin production and alternative methods of control, such as modified atmosphere packaging, are also discussed.

Aflatoxins

Effects of pancreastatin (24-49) on growth of normal pancreas and pancreatic cancer.

In the present study, the effects of pancreastatin on growth are evaluated in two human pancreatic cancer cell lines, in vivo and in vitro, and on athymic nude mouse pancreas. SW-1990 and MIA PaCa-2 pancreatic cancer cell lines were grown in serum-supplemented and serum-free medium in the presence of pancreastatin (10(-11)-10(-6) M), or cholecystokinin (CCK) (10(-11)-10(-8) M) or combinations thereof. Growth was evaluated by [3H]thymidine incorporation and cell counts. Pancreastatin significantly inhibited DNA synthesis in both cell lines, and cell counts in SW-1990 on days 3 and 5 but not 7. CCK-stimulated cell growth was inhibited in both cell lines and mouse pancreas by pancreastatin. Pancreastatin had no effect in the presence of fetal bovine serum. In the in vivo experiments, pancreastatin (15 micrograms/kg) did not affect growth of SW-1990 xenografts to nude mice, but inhibited CCK-stimulated growth transiently. Pancreastatin (100 micrograms/kg) transiently decreased volumes of MIA PaCa-2 xenografts to nude mice and significantly decreased weight, protein, and DNA of mouse pancreas. Fasting glucose levels of mice treated with pancreastatin 100 micrograms/kg for 35 days were significantly lower than controls. Our results demonstrate that pancreastatin not only inhibits CCK-stimulated pancreatic growth but also has inhibitory effects by itself.

Animals