Because premenopausal women experience cyclic fluctuations of plasma carotenoids and their lipoprotein carriers, it is hypothesized that carotenoid concentrations in lipoprotein fractions fluctuate by phase of the menstrual cycle. Nine women ate a standard set of carotenoid-rich foods daily for two cycles under isoenergetic conditions. In the second cycle, hormones and carotenoids in lipoprotein fractions were measured in the early and late follicular and luteal phases. alpha-Carotene concentrations in the LDL fraction were lower in the early than in the late follicular phase (P = 0.03) on the basis of regression analysis. beta-carotene concentrations in the LDL fraction and the HDL2 subfraction were higher in the late follicular than in the luteal phase (P = 0.02 and P = 0.04, respectively). Lutein/zeaxanthin concentrations in the LDL and HDL fractions were higher in the late follicular than in the luteal phase (P = 0.03 and P = 0.02, respectively). In each phase, 80% of alpha-carotene, 82% of beta-carotene, 85% of lycopene, and 64% of lutein/zeaxanthin were distributed in the LDL fraction. Among the hydrocarbon cartenoids, 18% of alpha-carotene and of beta-carotene and 13% of lycopene were distributed in the HDL fraction, with slightly more in the HDL2 than in the HDL3 subfraction. In contrast 34% of lutein/zeaxanthin was distributed in the HDL fraction with more concentrated in the HDL3 than in the HDL2 subfraction. Less than 4% of any carotenoid was found in the VLDL + IDL (intermediate-density-lipoprotein) fractions. Thus, the hydrocarbon carotenoids were highly concentrated in the LDL fraction and xanthophyll was more evenly distributed in the LDL and HDL fractions. The cyclic fluctuations of these carotenoids in lipoprotein fractions add another dimension to the understanding of their transport and physiologic function.
Objective: To determine whether sodium balance affects expression of menstrual symptoms.Design: Prospective study of menstrual symptoms during three cycles: a baseline month (usual intake of sodium, 115 mmol/d) followed by 2 months of sodium restriction (intake of sodium, 73.0 mmol/d). Added salt was allowed during the last month, Investigators were aware of the diet sequence.Setting: Outpatient. Meals were prepared by a metabolic kitchen during the 2 months that the participants received salt-restricted diets.Participants: 13 healthy menstruant women.Measurements: Plasma sodium levels, urinary sodium excretion, and plasma renin activity were measured for five time periods during the baseline cycle and the two cycles of salt-restricted diet. Eleven women completed a questionnaire assessing somatic symptoms and sensory cravings at the same time every day during the 3-month study period.Results: Sodium restriction was associated with a mean decrease (+/- one half of the 95% CI) in plasma sodium levels of 0.9 +/- 0.9 mmol/L from a mean of 139.3 mmol/L during the baseline cycle (P = 0.018), a decrease in urinary sodium excretion of 40.3 +/- 18 mmol/d from a mean of 117 mmol/d during the baseline cycle (P = 0.001), and an increase in plasma renin activity of 0.14 +/- 0.08 ng/(L - s) from a mean of 0.28 ng/(L s) during the baseline cycle (P = 0.008). During the luteal phase of the sodium restriction cycle, significant decreases in plasma sodium levels of 1.23 +/- 0.5 mmol/L (from values of 138.8 mmol/L during the follicular phase) and increases in urinary sodium excretion of 27.2 +/- 10 mmol/d (from values of 65.5 mmol/d during the follicular phase) preceded periods when menstrual symptoms were most severe. Ratings of breast tenderness increased sixfold to eightfold in the late luteal phase (P < 0.001) and those of swelling or bloating increased twofold to threefold during early menses (P < 0.001) compared with nadir symptom ratings during each cycle. Sodium cravings increased in the luteal phase of all cycles but were not accompanied by increased sodium intake when access to added salt was allowed.Conclusions: Breast tenderness and bloating did not result from sodium retention in the luteal phase of the menstrual cycle. During normal and sodium-restricted diet cycles, women actually had urinary sodium loss, not retention, during the luteal phase; severity of menstrual symptoms was unchanged.
This is the first controlled diet study to examine the fluctuation of plasma carotenoids, lipoproteins, and serum hormone concentrations by phase of the menstrual cycle. Nonsmoking, premenopausal women (n = 12) with confirmed ovulatory cycles were given a standard diet with 10 mg total carotenoids/d for two cycles under isoenergetic conditions. Blood was drawn for simultaneous measurement of carotenoids, lipoproteins, and hormones on menses days 1-2, 4-6, 11 through 1 d after the luteinizing hormone surge, and 7-8 d after the surge, representing the menses, early and late follicular, and midluteal phases, respectively. Regression modeling with adjustment for plasma cholesterol concentrations was used to compare mean individual and total plasma carotenoid concentrations by phase of the cycle. Plasma carotenoid concentrations were at their lowest at menses and significantly higher thereafter, except for alpha-carotene. Compared with plasma concentrations at menses, beta-carotene peaked (increased by 9%, P = 0.01) in the late follicular phase. Plasma lutein/zeaxanthin and anhydrolutein concentrations were higher by 8-11% (P < or = 0.006) and by 15-31% (P < or = 0.02), respectively, during the last three phases. Plasma lycopene and phytofluene concentrations peaked (increased by 12%, P = 0.004; and by 21%, P = 0.006, respectively) at the midluteal phase. This cyclic fluctuation may affect the estimation of the plasma carotenoid-disease relation in studies of premenopausal women.
Lipoprotein, apolipoprotein (apo), and hormone levels were measured in 12 healthy women over three consecutive menstrual cycles, one free-living and two under controlled dietary conditions. Serum hormone levels were measured to identify menstrual cycle phases (menses, early follicular, late follicular, and midluteal). After stabilization for one cycle on the controlled diet, ANOVA modeling of the second controlled-diet cycle revealed that low-density lipoprotein (LDL) cholesterol levels in the midluteal phase were significantly lower (by 7%) than in the early follicular phase. High-density lipoprotein (HDL) cholesterol levels during the late follicular phase were higher (by 6%) than menses levels. Differences in the HDL-cholesterol and apoA-I fluctuations resulted in a higher proportion of HDL-cholesterol to apoA-I during the late follicular phase than that during the menses phase. The ratios of LDL cholesterol/HDL cholesterol and apoB/apoA-I in the early follicular phase were greater by 5.6% and 6.0%, respectively, than those in the midluteal phase. Fluctuations in total cholesterol, triglyceride, apoA-I, and apoB did not reach significance. Thus, the cyclic fluctuations of LDL and HDL cholesterol need to be considered in the screening and medical monitoring of women with borderline lipoprotein levels, as well as in the design and the interpretation of results of studies involving premenopausal women.
The diet-plasma relationships for carotenoids were examined in a group of 98 nonsmoking premenopausal women who participated in the cross-sectional phase of the National Cancer Institute (NCI)-US Department of Agriculture (USDA) diet study on alcohol-hormone metabolism, 1988-90. With use of the newly developed USDA-NCI carotenoid food-composition database, the mean daily intakes of carotenoids were significantly higher when estimated from the food-frequency questionnaire (FFQ) than from the 7-d diet records. Lycopene (mean = 0.58 mmol/L), lutein plus zeaxanthin (mean = 0.46 mmol/L), and beta-carotene (mean = 0.34 mmol/L) were the major plasma carotenoids. After adjustment for body mass index, energy and alcohol intakes, and total plasma cholesterol concentration, the following significant correlation (P < 0.05) were observed between the diet record and the FFQ-estimated carotenoid intakes and their respective plasma concentrations: alpha-carotene (r = 0.58 vs 0.49), beta-carotene (r = 0.51 vs 0.49), beta-cryptoxanthin (r = 0.49 vs 0.36), lutein plus zeaxanthin (r = 0.31 vs 0.37), lycopene (r = 0.50 vs 0.26), and total carotenoids (r = 0.57 vs 0.49). These data indicate that plasma carotenoid concentrations are reflective of dietary intake, but the magnitude of the correlation varies depending on the specific carotenoid and on the dietary assessment tool.