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Sex differences in the relationship of body fat distribution with psychosocial variables.

OBJECTIVE: This study tested the hypothesis that the relationship of psychosocial variables to body fat distribution would differ in men and women and would vary according to gender differences in natural patterns of fat distribution. METHOD: Body fat distribution and psychological functioning were examined in 5,930 male and 7,598 female dieters. RESULTS: Upper body size and shape were more strongly related to psychological functioning in men and lower body size and shape were more important in women. DISCUSSION: To better understand the association of weight with psychosocial status, patterns of body fat distribution should be considered.

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Higher prevalence of diabetes in hypertensive subjects with upper body fat distribution.

OBJECTIVE: To analyze the association of hypertension and upper body fat distribution on the occurrence of non-insulin-dependent diabetes mellitus in Mexicans. MATERIAL AND METHODS: It was a population-based cross-sectional study in Cuajimalpa, a district of Mexico City. A total of 1066 subjects were home interviewed, and attended our clinic for fasting plasma glucose sampling, blood pressure and anthropometric measurements. Diabetes was defined according to the World Health Organization criteria, and hypertension as a blood pressure equal to or greater than 140/90. The ratio of upper to lower body skinfolds was used to estimate body fat distribution. RESULTS: The prevalence of diabetes was 12.0%. There was a significant positive trend in the age and sex adjusted prevalence of diabetes according to the magnitude of hypertension (p = 0.0006) and upper body fat distribution (p = 0.007). The age and sex adjusted prevalence in normotensive subjects with lower body fat distribution was 7.1% (95% confidence interval 5.9-8.2) whereas it was 19.9% (CI 17.0-22.8) in those with hypertension and upper body fat distribution. The prevalence of diabetes in Mexicans was high and it may be related to a genetic susceptibility for an insulin resistance syndrome. CONCLUSIONS: These results indicate that there is a dose response effect in the association of hypertension and upper body fat distribution with diabetes in Mexicans, and that there may be an interaction in the effect of hypertension and body fat distribution in this syndrome.

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Body fat distribution in women with polycystic ovary syndrome.

OBJECTIVE: To investigate body fat distribution in women with polycystic ovary syndrome (PCOS). METHODS: Body weight, body mass index (BMI), and six indices of body fat measured by dual-energy x-ray absorptiometry were compared in 40 women with PCOS and 97 age-matched controls. The possible correlations between the body fat characteristics and serum androgen levels were evaluated in the 40 PCOS women. Body fat distribution was classified into upper- (N = 24) and lower-half body type (N = 16), and androgen levels and the incidence of hirsutism were compared in the two types. RESULTS: The BMI, body fat ratio, upper-half body fat ratio, and upper-half/lower-half body fat ratio were significantly higher in PCOS women than in controls. After adjustment for age, height, and body weight, the upper-half/lower-half body fat ratio was still significant (P < .001). The PCOS subjects exhibited a significant positive correlation between the upper-half/lower-half body fat ratio and dehydroepiandrosterone-sulfate (DHEA-S) levels (r = 0.607, P < .01) as well as testosterone levels (r = 0.585, P < .05). Dehydroepiandrosterone-sulfate and testosterone levels were significantly higher in those with the upper-half body type than in those with the lower-half body type (P < .001). After adjustment for confounding variables, only DHEA-S was still significantly higher in this body type (P < .05). CONCLUSION: Serum DHEA-S levels seem to be associated with upper-half body fat distribution in women with PCOS, irrespective of body weight.

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Postmenopausal weight status, body composition and body fat distribution in relation to parameters of menstrual and reproductive history.

OBJECTIVES: In the present study the association between menstrual and reproductive history patterns and weight status, fat distribution and body composition during postmenopause was tested. METHODS: In 106 healthy postmenopausal women ranging in age from 48 to 58 years (x = 53.7 year) the weight status was classified according to the recommendations of the WHO. Additionally body composition was estimated by dual energy X-ray absorptiometry and fat distribution was calculated using the fat distribution index. Weight status, body composition and fat distribution were correlated with self-reported parameters of menstrual and reproductive history (age at menarche, average cycle length, number of births, age at first and last birth, average pregnancy weight gain, age at menopause). RESULTS: It was shown that number of births, age at first birth and pregnancy weight gain were related significantly to the postmenopausal weight status, body composition and fat distribution. CONCLUSION: An early first birth a low number of births and a high weight gain during pregnancies can be assumed as risk factors for overweight, a higher amount of adipose tissue, android fat patterning and therefore for the development of the metabolic syndrome during postmenopause. In contrast no adverse effect of menstrual and reproductive parameters on postmenopausal bone mass was found.

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Relationships between insulin metabolism, serum lipid profile, body fat distribution and blood pressure in healthy men.

Insulin resistance and hyperinsulinaemia may be important in a cluster of coronary heart disease-related metabolic disturbances known as the insulin resistance syndrome. Whether the relationships between insulin and other features of the syndrome are independent of the amount and distribution of body fat is uncertain. We have investigated these relationships in 103 healthy males, using dual-energy X-ray absorptiometry to measure body fat directly. Volunteers underwent an intravenous glucose tolerance test (IVGTT), from which insulin sensitivity, secretion and elimination were determined by mathematical modelling analysis. Independently of adiposity and body fat distribution, serum triglyceride concentration was correlated with fasting C-peptide concentration and second-phase intravenous glucose tolerance test insulin concentration (r = 0.42, P < 0.001; r = 0.28, P < 0.05). High density lipoprotein subfraction 2 (HDL2) cholesterol was correlated with fasting C-peptide, first-phase IVGTT insulin concentration, and the hepatic insulin throughout index (r = -0.15 -0.20, -0. 20 respectively, all P < 0.05). The association of HDL2 cholesterol with the hepatic throughput index was additionally independent of serum triglyceride concentration (r = -0.18, P < 0.05). Our results suggest that relative hyperinsulinaemia leads to elevated triglyceride concentration, independently of body fat mass and distribution. Furthermore, the independent association of HDL2 cholesterol with hepatic insulin throughput confirms that hepatic insulin processing may may directly influence lipoprotein metabolism.

Absorptiometry, Photon↗

Sex-dependence of body fat distribution in patients with obesity and hypertension.

The relationship of body fat distribution with blood pressure, fat cell weight and extracellular fluid volume was studied and compared in 20 obese hypertensive men and 20 obese hypertensive women of similar age, degree of overweight and blood pressure level. Body fat distribution, as reflected by the ratio between waist and hip circumference (W/H ratio), was significantly higher in male than in female obese patients. The W/H ratio was positively and independently correlated with systolic arterial pressure both in males and females. However, for the same W/H ratio, systolic arterial pressure was higher in females. The W/H ratio was positively correlated with gluteal fat cell weight only in males and not in females. Both in males and females, the W/H ratio was positively correlated with extracellular fluid volume, independently of the level of blood pressure level and/or the degree of obesity. The study provided evidence that the relationship between body weight and blood pressure in obese hypertensives is affected by the sex-dependence of body fat distribution with possible interferences on fat cell weight and extracellular fluid volume. Several epidemiological studies have emphasized the positive correlation observed between body weight and blood pressure in many. Many investigations have documented the association of blood pressure with body weight, weight to height, overweight or other indices of fatness such as skinfold thickness. However, the correlation coefficients of these different relationships were found constantly small, indicating that the relationship between overweight and blood pressure is somewhat complex. In patients with hypertension, body weight was shown to be strongly related with the levels of both blood pressure and extracellular fluid volume. On the other hand, patients with overweight and hypertension were found to be principally affected by hypertrophic obesity, as shown by the evaluation of fat cell weight. However these findings were exclusively observed in males. No solid data were reported in females. The relationships between body weight and extracellular fluid on one hand, and between body weight and fat cell weight on the other hand, are certainly different in males and in females. First, in females, extracellular fluid volume is submitted to cyclic changes in sodium balance involving the effect of sex steroid hormones. Second, body fat distribution, a parameter which is weakly correlated to blood pressure, is different in males and females. In males, body fat predominates in the upper part of the body while, in females, adiposity is mainly observed in the lower part of the body.(ABSTRACT TRUNCATED AT 400 WORDS)

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Relationship of body fat distribution to blood pressure, carbohydrate tolerance, and plasma lipids in healthy obese women.

In 110 obese, healthy women, a relationship was sought between distribution of body fat and blood pressure, glucose tolerance, plasma insulin, and fasting plasma lipid and serum uric acid concentrations. The index of body fat distribution was the ratio of waist circumference to hips circumference (WHR). The WHR range in this group was 0.5 to 0.99, with a median value of 0.78. Positive, significant correlations were found between WHR and both systolic and diastolic blood pressure and between WHR and the total integrated plasma glucose and insulin responses during 4 hr oral glucose tolerance tests. No relationship was found between WHR and age, the degree of obesity as defined by the weight-to-height ratio, or concentrations of fasting plasma free fatty acids, plasma triglyceride, plasma cholesterol, or serum uric acid. Subsequently, 27 women in the highest quartile of the WHR range (0.83 to 0.99) were compared to 28 age- and weight-matched subjects in the lowest quartile of WHR (0.5 to 0.73). Women in the highest quartile had systolic and diastolic blood pressure as well as total plasma glucose and insulin responses during glucose tolerance tests that significantly exceeded mean values of subjects in the lowest quartile. We conclude that in healthy, obese women, a continuum exists that relates increasing fat accumulation in the upper body to progressively higher blood pressure, reduced carbohydrate tolerance, and higher plasma insulin concentrations. These changes occurred independently of age of degree of obesity in this population.

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The relationship of body fat distribution to blood pressure in normotensive men: the normative aging study.

Body fat distribution may be a more specific marker than obesity for risk of cardiovascular disease and diabetes. The relationship between body fat distribution and sitting systolic and diastolic blood pressure was examined in a cross-sectional analysis of 1936 normotensive men aged 21 to 80 years. In this analysis body fat distribution was represented by the ratio of abdomen circumference to hip breadth (denoted as WHbR). Pearson product-moment correlations adjusted for age revealed a positive correlation between WHbR and both systolic and diastolic blood pressure (r = 0.13 and r = 0.14, respectively). In a multiple linear regression model controlling for age, smoking status and body mass index (BMI), WHbR was associated with systolic blood pressure [regression coefficient (standard error) = 3.58 (1.8), P = 0.048)], but had much less of an association with diastolic blood pressure [regression coefficient (standard error) = 1.90 (1.3), P = 0.141]. Further adjustment for alcohol intake decreased the association between WHbR and systolic blood pressure [regression coefficient (standard error) = 2.90 (1.81), P = 0.110]. Body fat distribution, as represented by WHbR was associated with level of systolic blood pressure independently of overall level of obesity (BMI) in normotensive men; adjustment for alcohol intake attenuated the relationship. These data suggest that dietary factors, notably alcohol intake, may influence the effect of body fat distribution on blood pressure.

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Body fat distribution and flow-mediated endothelium-dependent vasodilation in older men.

OBJECTIVE: Recent studies indicate that abdominal fat accumulation, in particular intra-abdominal fat, is related to impaired endothelial function in young healthy volunteers. The aim of this study was to examine whether the distribution of body fat depots is related to impaired endothelial function in older men. METHODS: Cross-sectional sample of 38 older (68+/-1 y) sedentary (VO(2max)=2.4+/-0.1 l/min) men. Flow-mediated endothelial dependent vasodilation (EDD) was assessed in the brachial artery in response to reactive hyperemia using high-resolution ultrasound. Abdominal subcutaneous and visceral fat depots were assessed by computed tomography scan (CT-scan) at the L(4)-L(5) region in the supine position. Percentage body fat was assessed via dual-energy X-ray absorptiometry (DEXA). RESULTS: Flow-mediated percentage change in brachial artery was 7.6+/-0.7%, suggesting an impaired flow-mediated EDD. Using simple linear regression analysis, there were no statistically significant relationship observed between flow-mediated EDD and the indices of total and abdominal adiposity (percentage body fat=29.3+/-0.9%, r=-0.11; total abdominal fat area=465+/-23 cm(2), r=-0.1; intra-abdominal fat area=200+/-14 cm(2), r=-0.14; subcutaneous fat area=265+/-13 cm(2), r=-0.05; BMI=29.3+/-0.9 kg/m(2), r=-0.07; and waist to hip ratio=0.98+/-0.01, r=-0.20). CONCLUSION: These findings suggest that in older sedentary men there is no clear correlation between adiposity and body fat distribution and impairment of flow-mediated endothelium dependent vasodilation.

Absorptiometry, Photon↗

Endometriosis and body fat distribution.

OBJECTIVE: To examine the association of body fat distribution with risk of endometriosis in an effort to determine whether a specific somatotype is related to the disease. METHODS: We conducted a case-control study of 88 laparoscopically confirmed cases of endometriosis, identified in a specialty gynecologic practice in western New York, and 88 age-matched friend controls. Data were collected by standardized personal interview, and body measurements were taken in a standardized fashion by one interviewer. Risk of endometriosis associated with body fat distribution, as expressed by waist-to-hip and waist-to-thigh ratios, was assessed using logistic regression. RESULTS: For women under 30 years of age (45 cases, 46 controls), endometriosis was inversely related to both waist-to-hip ratio (odds ratio 6.18, 95% confidence interval [CI] 2.01-19.01) and waist-to-thigh ratio (odds ratio 3.64, 95% CI 1.23-10.78). This effect was not evident among women aged 30 years and older (43 cases, 42 controls). CONCLUSION: Our results suggest a specific somatotype with a predominance of peripheral body fat among women with endometriosis. This finding may provide information useful in both the diagnosis and understanding of the disease etiology.

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Increase in both pro-thrombotic and anti-thrombotic factors in obese premenopausal women: relationship with body fat distribution.

OBJECTIVES: To examine the relationship of obesity, body fat distribution, and fasting plasma insulin concentrations with the plasma levels of both pro-thrombotic and anti-thrombotic factors in premenopausal women. SUBJECTS: 32 obese women with BMI > 28 and 33 age-matched non-obese = women with BMI < 25. MEASUREMENTS: (i) plasma concentrations of plasminogen activator inhibitor-1 antigen (PAI-1 Ag), plasminogen activator inhibitor-1 activity (PAI-1 activity), fibrinogen, von Willebrand factor antigen (vWF Ag), von Willebrand factor activity (vWF activity), and factor VII activity as pro-thrombotic factors; (ii) plasma concentrations of tissue plasminogen activator antigen (t-PA Ag), protein C, and antithrombin III as anti-thrombotic factors; (iii) fasting plasma insulin and glucose concentrations, and the lipid pattern (triglycerides, total and HDL-cholesterol) as metabolic parameters. The body fat distribution was evaluated by measuring the waist circumference and the waist-to-hip ratio (WHR). RESULTS: Obese subjects had higher plasma concentrations of all pro-thrombotic factors as compared to non-obese controls (PAI-1 Ag, P < 0.001; PAI-1 activity, P < 0.05; fibrinogen, P < 0.001; vWF Ag, P < 0.001; vWF activity, P < 0.05; factor VII, P < 0.05). The plasma concentrations of PAI-1 Ag and vWF Ag were directly correlated with the waist circumference independently of other metabolic and non-metabolic variables (P < 0.05). Obese women were also characterized by higher plasma concentrations of anti-thrombotic factors such as t-PA Ag and protein C as compared to non-obese controls (P < 0.001 and P < 0.001, respectively), although these factors were not independently correlated with the waist circumference or the WHR. CONCLUSION: Plasma concentrations of the pro-thrombotic factors are increased in obese women as compared to non-obese controls, and plasma levels of PAI-1 Ag and vWF Ag correlate with central fat accumulation specifically. Plasma concentrations of anti-thrombotic factors (namely protein C and t-PA Ag) are also raised in obese women, but they are not correlated with parameters of body fat distribution. The increase in protein C levels may represent a protective response partly counteracting the increase in pro-thrombotic factors in these individuals.

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Influence of weight and body fat distribution on bone density in postmenopausal women.

OBJECTIVE: To determine whether obesity or body fat distribution induces a greater modification on bone remodeling biochemistry (BRB) and bone density in postmenopausal women. METHODS: One hundred and thirteen postmenopausal patients were studied. They were initially divided according to body mass index (BMI), and afterwards by waist-hip ratio (WHR) as well as combinations of the two factors. Hormone measurements and assessments of BRB were also done. Dual-emission X-ray absorptiometry from the lumbar column and hip was performed with Lunar DPXL equipment, and the standard deviation in relation to young adult (T) and age-matched subjects (Z) was calculated. Statistical analysis was done by the Mann-Whitney U test. The relation of BMI and WHR with the variables was calculated by simple regression analysis. RESULTS: When divided according to BMI, there was greater bone density in the femoral neck in those with normal weight. After dividing according to WHR, the Z scores had a trend to a lesser decrease in those with upper level body fat distribution. Divided according to BMI and WHR, obese patients with upper-level body fat distribution had greater bone density in the lumbar column than those with normal weight and lower-level body fat distribution. With the same WHR, those with normal weight had greater bone density than those who were obese. CONCLUSIONS: A beneficial effect of upper-level body fat distribution on bone density was found. It is greater than that from obesity alone, and obesity and upper-level body fat distribution have an additive effect on bone density.

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Body composition, body fat distribution, and resting metabolic rate in healthy centenarians.

Our study investigated body composition and body fat distribution in healthy centenarians. Body composition, body fat distribution, and resting metabolic rate (RMR) were studied in 40 adult subjects aged < 50 y, 35 aged subjects > 75 y, and 15 healthy centenarians aged > 100 y. Body composition was determined by bioimpedance analysis, body fat distribution was calculated as waist-hip ratio (WHR), and RMR was calculated by using the Arciero-Poehlman formula. Healthy centenarians had a cognitive impairment and degree of disability greater than aged subjects. Despite such differences, fat-free mass (FFM) and RMR were not different in centenarians compared with aged subjects but were lower than in adult subjects. In contrast, healthy centenarians had a WHR lower than that of aged subjects but not different from that of the adult subjects. After the level of physical activity and degree of disability were adjusted for, FFM (44 +/- 2.7 and 40 +/- 1.1 kg; P < 0.05) and RMR (6757 +/- 761 and 5891 +/- 723 kJ/24 h; P < 0.05) were significantly higher in healthy centenarians than in aged subjects, respectively. Independent of age, sex, body weight, degree of disability, level of physical activity, and fasting plasma triiodothyronine, there was a strong correlation between RMR and FFM (r = 0.50, P < 0.05) in healthy centenarians. In conclusion, healthy centenarians had a lower FFM and higher body fat content than aged subjects. Level of physical activity and degree of disability seem to be the major determinants for explaining such differences.

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Is serum cortisol associated with body fat distribution in postmenopausal women?

The associations of body fat distribution, as measured by waist-to-hip circumference ratio (WHR), with fasting serum cortisol and adrenocorticotropic hormone (ACTH) were examined in 72 healthy postmenopausal women. WHR was not significantly correlated (P greater than 0.05) with either cortisol (r = -0.11) or ACTH (r = 0.10). There were no differences in either mean serum cortisol or ACTH for women in the highest tertile of WHR compared to those in the lowest tertile of WHR, even after adjustment for overall body mass. These results suggest that neither cortisol or ACTH is associated with body fat distribution in postmenopausal women.

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Relative reliability of circumferences and skinfolds as measures of body fat distribution.

The question has arisen whether patterns of body fat distribution can be identified by body circumferences, a method which is said to be more reliable and simpler than skinfold thickness or like measures of subcutaneous fat (Ashwell et al., Int. J. Obes. 6: 143-152, 1982). Here we address the question of whether body circumferences are inherently more reliable than skinfold thicknesses in 77 intra- and 224 interexaminer replicates from the Health Examination Survey of 12 to 17-year-olds in the U.S.A. Reliability of six body circumferences (0.96) was significantly (P less than .01) higher than that of skinfold thicknesses at five sites (0.91), suggesting that circumferences are a more reliable method. However, the reliability of skinfolds is still high, and skinfolds may be used in studies which focus on preadults or other groups in which the validity of circumferences as measures of body fat distribution is unknown.

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Lipid and lipoprotein changes after long-term weight reduction: the influence of gender and body fat distribution.

OBJECTIVES: This study was designed: 1) to evaluate the effect of weight loss on body fat distribution, 2) to determine whether indices of body fat distribution can be considered as a prognostic indicator for the ability to lose weight and 3) to evaluate whether a change of body fat distribution is associated with changes in plasma glucose, lipids and lipoproteins in both sexes in order to evaluate a gender difference. METHODS: 63 obese subjects (41 women and 22 men) were treated on an outpatient basis with an energy-reduced, protein-enriched low calorie diet (3150-4200 kJ/day) for a 6-month period. They were divided in different groups according to gender and body fat distribution using the waist-to-hip circumference ratio. RESULTS: Body fat topography can be altered by dieting, but not by more than it increases when a person gains weight. Body fat distribution seems to be a significant prognostic indicator for the ability to lose weight in women but not in men. Although body weight and the waist-to-hip circumference decreased significantly, no relationships were found between percent decrease in these parameters and percent changes in plasma glucose, lipids and lipoproteins. CONCLUSION: We conclude that an important caloric deficit may lead to a series of metabolic improvements but that gender and the type of fat distribution are important confounding factors in the prediction of metabolic success.

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Variation in body fat distribution and breast cancer risk in the families of patients with breast cancer and control families.

BACKGROUND: The pattern of body fat distribution in women has been correlated with the risk of developing breast and endometrial cancer. The authors determined whether body fat distribution varied between first-degree relatives of patients with breast cancer and in cancer-free families by comparing the body fat distribution of first-degree relatives of patients with breast cancer with age and Quetelet Index-matched controls. METHODS: Fifty-six first-degree relatives of newly diagnosed patients with breast cancer were compared with 56 controls (non-cancer family members) matched for age and Quetelet Index and were studied for variation in body fat distribution. Anthropometric measurements were taken for the abdomen, thigh, suprailiac, subscapular, biceps, and triceps skinfold thickness; waist and hip circumference; weight; and height. The distribution of body measurements and derived ratios in both case and control family members were compared using the Student t test. RESULTS: A significant variation in body fat distribution occurred among first-degree relatives in breast cancer and control families. In families with a history of breast cancer, first-degree family members were found to have significantly greater waist:hip ratio (P < 0.001) compared with controls without family history matched for age and Quetelet Index. Other variables indicating upper body fat localization, such as abdomen and suprailiac skinfold were significantly greater in family members of patients with breast cancer compared with controls. CONCLUSIONS: A marked variation occurred in body fat localization among first-degree relatives of patients with breast cancer and in cancer-free families. This finding implies a variation in breast cancer risk in these families. Identifying family members with upper body fat distribution in breast cancer families would allow targeting of these individuals for energetic screening and risk factor reduction interventions.

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Distribution of waist-to-hip ratio, other indices of body fat distribution and obesity and associations with HDL cholesterol in children and young adults aged 4-19 years: The Third National Health and Nutrition Examination Survey.

BACKGROUND: Little data has been published on the association of indices of body fat distribution and HDL cholesterol (HDL), a risk factor for cardiovascular morbidity, in representative samples of total populations of children and adolescents including blacks and Hispanics. OBJECTIVE: To describe the distribution of waist-to-hip ratio (WHR) in US children and adolescents and to assess the association with HDL. DESIGN: Cross-sectional survey of a large national sample, the Third National Health and Nutrition Examination Survey. PARTICIPANTS: People aged 4-19 y. MEASUREMENTS: Body circumferences, skinfold thickness, body mass index (BMI), and serum total and HDL cholesterol concentrations. RESULTS: Mean WHR varied consistently with age, gender, and ethnic group. Levels were highest in Mexican Americans. WHR showed significant negative associations with HDL cholesterol concentration and positive associations with the ratio of total serum cholesterol to HDL in pre- and postpubertal girls independent of age and BMI. However, associations were often not as strong as those with BMI. Other indices of body fat distribution were not superior to WHR. CONCLUSION: Further research is needed on the association of WHR, other indices of body fat distribution and HDL measured in childhood with subsequent risk of atherosclerosis.

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