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RR Watson

Publications and source records attributed to RR Watson.

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Pine bark extract reduces platelet aggregation.

The effects of long-term consumption of the bioflavonoid mixture, French maritime pine bark extract (Pycnogenol(R)), were assessed on aggregation of platelets from cigarette smokers and nonsmokers. Previously we showed that a single dose of Pycnogenol(R) reduced platelet aggregation in cigarette smokers in a dose-response fashion. Cigarette smoking increased platelet reactivity aggregation when measured 2 h after smoking the first cigarette of the day. Blood was collected immediately before and 5 min after smoking three cigarettes each. Smoking increased platelet aggregation (1.17 +/- 0.04). However 200 mg Pycnogenol(R)/day, taken 3 h prior to first cigarette for the day for 2 months, significantly (p <.0023) reduced smoke-induced platelet aggregation (0.98 +/- 0.05) to the level of nonsmokers. In a group of 19 nonsmokers, platelet aggregation was measured during in vitro stimulation by platelet aggregation factor (PAF) after 4 or 8 weeks of 200 mg/day of Pycnogenol(R) consumption. Platelet aggregation was significant when induced in vitro by PAF. However, Pycnogenol(R) consumption did not change platelet aggregation, suggesting that Pycnogenol(R)'s regulation of aggregation is by another mechanism. Thromboxane A2 (TxA2) is increased in smokers by release from platelets and rapidly becomes thromboxane B2 (TxB2). Smoking increased TxB2, which was prevented by Pycnogenol(R), lowering TxB2 levels to those of nonsmokers. However, Pycnogenol(R) had no effect on the lower levels of TxB2 in nonsmokers. These observations suggest that Pycnogenol(R) supplementation reduces a risk factor for cardiovascular diseases, that is, platelet aggregation in smokers. The bioflavonoids in Pycnogenol(R) reduced platelet aggregation stimulated by tobacco smoke.

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beta-Carotene and selenium supplementation enhances immune response in aged humans.

Background: Nutritional research has focused on the effects of specific nutrients' ability to cause or prevent cancer. While beta-carotene and selenium (both important for antioxidant systems) have cancer prevention capabilities, their antineoplastic mechanism(s) remains to be elucidated. Methods: In a prospective, randomized study design we evaluated immunological changes in free-living, healthy aged humans (57-84 years of age) given a placebo, beta-carotene (45 mg/day), and/or selenium (400 µg/day) supplement for 6 months and after 2 months of discontinuation. Peripheral blood lymphocytes were evaluated and subtyped using flowcytometry. Natural killer (NK) cell cytotoxicity was determined by a fluorescent method. Plasma diene conjugates were assessed to evaluate changes in oxidative stress. Results: Selenium and selenium plus beta-carotene supplementation caused an increase in total T cells by 27% and 31%, respectively (p <.05). The only group that was different (in T lymphocytes) from the controls (placebo group) after 6 months of supplementation (p <.05) was the selenium-supplemented group (+65%). Much of this increase was the result of an increase in CD4(+) T-cell subsets. Selenium or beta-carotene supplementation for 3 months increased NK cell cytotoxicity over pretreatment levels by 58% and 34%, respectively; however, these levels returned to +12% and -6% of pretreatment levels after 6 months supplementation. Selenium plus beta-carotene supplementation caused an increase in the percentage of NK cell by 121% and 161% at 3 and 6 months, respectively. However, the increased numbers of NK cells were not correlated with NK cell activity. Conclusions: We found that selenium enhanced immune function (NK cell cytotoxicity) and phenotypic expression of T-cell subsets, whereas beta-carotene affected only immune function. Increased NK cell cytotoxicity may last for only a short period of supplementation and was not sustained throughout the 6 months of supplementation. Supplemental selenium and beta-carotene seemed to affect immune function in aged subjects by different mechanisms.

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