General fitness, health and nutrition · Public discussion

Dietary fat and cardiovascular risk

Started by Fresh~Horses · · Last activity · 128 posts · 4,974 views

Thread navigation

Jump through the discussion

Go to the original post, the replies on this page, or the latest preserved contribution.

Thread details

What we know about this thread

Original section
General fitness, health and nutrition
Published
11 May 2004
Last activity
7 June 2004
Original author
Fresh~Horses
Posts
128
Discussion status
Public discussion
Total views
4,974
Views / 30 days
0

The navigation and discussion metadata provide context. Posts remain in their original chronological order.

Showing posts 1–20 of 128
Posts remain in their original chronological order.

Text size
  1. Effect of Low and High Fat Diets on Nutrient Intakes
    and Selected Cardiovascular Risk Factors in Sedentary
    Men and Women

    jacn.org131

    Conclusion: A low fat diet (19%) may not provide sufficient
    calories, essential fatty acids, and some micronutrients
    (especially vitamin E and zinc) for healthy untrained
    individuals, and it also lowered ApoA1 and HDL-C.
    Increasing fat intake to 50% of calories improved
    nutritional status, and did not negatively affect certain
    cardiovascular risk factors.

    Does Fat in Milk, Butter and Cheese Affect Blood Lipids and
    Cholesterol Differently?

    jacn.org169

    Conclusions: A different effect of fat in milk and butter
    could not be confirmed in this study. The moderately lower
    LDL cholesterol after cheese diet compared to butter diet
    should be investigated further.

    Comparison of a Very Low-Carbohydrate and Low-Fat Diet on
    Fasting Lipids, LDL Subclasses, Insulin Resistance, and
    Postprandial Lipemic Responses in Overweight Women

    jacn.org177

    Conclusions: Compared to a low-fat weight loss diet, a short-
    term very low-carbohydrate diet did not lower LDL-C but did
    prevent the decline in HDL-C and resulted in improved
    insulin sensitivity in overweight and obese, but otherwise
    healthy women. Small decreases in body mass improved
    postprandial lipemia, and therefore cardiovascular risk,
    independent of diet composition.

  2. These studies are interesting but lacking in accuracy as to
    what food source was utilized for fat, protein and
    micronutrients. However, foodsource is of primary importance
    with the fat/no fat debate. If these studies were performed
    on animal fats vs soybean fats perhaps completly different
    results would be obtained.

    Even different lysine/L-arginine ratios of proteins for
    animal vs soy can have different end results with
    cardiovascular disease, for example.

    Nutrition Facts of a soybean

    Serving Size 1/4 cup dry Calories 180 Total Fat 8g
    Cholesterol 0mg Sodium 0mg Total Carbohydrates 14g Dietary
    Fiber 10g Sugars 3g Protein 15g

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

  3. These studies are interesting but lacking in accuracy as to
    what food source was utilized for fat, protein and
    micronutrients. However, foodsource is of primary importance
    with the fat/no fat debate. If these studies were performed
    on animal fats vs soybean fats perhaps completly different
    results would be obtained.

    Even different lysine/L-arginine ratios of proteins for
    animal vs soy can have different end results with
    cardiovascular disease, for example.

    Nutrition Facts of a soybean

    Serving Size 1/4 cup dry Calories 180 Total Fat 8g
    Cholesterol 0mg Sodium 0mg Total Carbohydrates 14g Dietary
    Fiber 10g Sugars 3g Protein 15g

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

  4. "Sonos" <[email hidden]> wrote in message news:<[email hidden]>...

    Quoted message said:

    These studies are interesting but lacking in accuracy as
    to what food source was utilized for fat, protein and
    micronutrients. However, foodsource is of primary
    importance with the fat/no fat debate. If these studies
    were performed on animal fats vs soybean fats perhaps
    completly different results would be obtained.

    Even different lysine/L-arginine ratios of proteins for
    animal vs soy can have different end results with
    cardiovascular disease, for example.

    Nutrition Facts of a soybean

    Serving Size 1/4 cup dry Calories 180 Total Fat 8g
    Cholesterol 0mg Sodium 0mg Total Carbohydrates 14g Dietary
    Fiber 10g Sugars 3g Protein 15g

    I don't have access to the full studies.

    I hate soy.

    ;-)

  5. "Sonos" <[email hidden]> wrote in message news:<[email hidden]>...

    Quoted message said:

    These studies are interesting but lacking in accuracy as
    to what food source was utilized for fat, protein and
    micronutrients. However, foodsource is of primary
    importance with the fat/no fat debate. If these studies
    were performed on animal fats vs soybean fats perhaps
    completly different results would be obtained.

    Even different lysine/L-arginine ratios of proteins for
    animal vs soy can have different end results with
    cardiovascular disease, for example.

    Nutrition Facts of a soybean

    Serving Size 1/4 cup dry Calories 180 Total Fat 8g
    Cholesterol 0mg Sodium 0mg Total Carbohydrates 14g Dietary
    Fiber 10g Sugars 3g Protein 15g

    I don't have access to the full studies.

    I hate soy.

    ;-)

  6. (fresh~horses) said:

    I hate soy.

    ;-)

    Why?

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

  7. "Sonos" <[email hidden]> wrote in message news:<[email hidden]>...

    Quoted message said:

    These studies are interesting but lacking in accuracy as
    to what food source was utilized for fat, protein and
    micronutrients.

    The contact for the third study said:

    Jeff said:

    "We did not control type of fat but the actual types
    consumed were about 45% saturated, 45% mono, and 10%
    polys. Total fat intake was about 60% of total energy."

    -----Original Message----- From: Sent: Wed 5/12/2004
    11:40 PM To: [email hidden]
    Cc: Subject: what fats used in this study?

    Quoted message said:
    Quoted message said:

    Comparison of a Very Low-Carbohydrate and


    Low-Fat Diet on Fasting Lipids, LDL Subclasses, Insulin
    Resistance, and Postprandial Lipemic Responses in
    Overweight Women

    Soy: tastes horrid and the texture is worse. And: it is a
    *very* highly processed food, when I choose to eat as
    unprocessed as possible. However, I do sometimes eat
    edamame, and soy beans in recipes like any other bean.

    Zee

  8. "Sonos" <[email hidden]> wrote in message news:<[email hidden]>...

    Quoted message said:

    On 12-May-2004, [email hidden]

    (fresh~horses) said:

    I hate soy.

    ;-)

    Why?

    More on the third study: I chastized Jeff Voltek (one of
    study authors) for saying "about" in his first response to
    my request for more info on fats.

    "About! Is this science?" I snorted. (Applying all the
    derision for non-scientific discussion I have learned here.)

    He has now sent me the pdf for the study. But I don't know
    how to get it to you.

    Zee

  9. (fresh~horses) said:

    Soy: tastes horrid and the texture is worse. And: it is a
    *very* highly processed food, when I choose to eat as
    unprocessed as possible. However, I do sometimes eat
    edamame, and soy beans in recipes like any other bean.

    Zee

    I have also found that in the US, obtaining a reliable,
    nutrient dense and low processed source of soy is difficult
    and expensive. It is ironic because the US is a world leader
    in soybean production!

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

  10. Sonos said:

    On 13-May-2004, [email hidden]

    (fresh~horses) said:

    Soy: tastes horrid and the texture is worse. And: it is
    a *very* highly processed food, when I choose to eat as
    unprocessed as possible. However, I do sometimes eat
    edamame, and soy beans in recipes like any other bean.

    Zee

    I have also found that in the US, obtaining a reliable,
    nutrient dense and low processed source of soy is
    difficult and expensive. It is ironic because the US is a
    world leader in soybean production!

    I should say unless you purchase the dried soybean from the
    farmer. In my state, 60 lbs of certified organic soybeans
    costs only $18.00 when purchased from the field.

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

  11. fresh~horses said:

    Effect of Low and High Fat Diets on Nutrient Intakes and
    Selected Cardiovascular Risk Factors in Sedentary Men
    and Women

    jacn.org131

    Conclusion: A low fat diet (19%) may not provide
    sufficient calories, essential fatty acids, and some
    micronutrients (especially vitamin E and zinc) for healthy
    untrained individuals, and it also lowered ApoA1 and HDL-
    C. Increasing fat intake to 50% of calories improved
    nutritional status, and did not negatively affect certain
    cardiovascular risk factors.

    "...but intake was significantly lower on the 19% fat diet
    and led to a loss of 0.6 kg body weight."

    They say that like it is a bad thing!

    -Jay

  12. Jay Tanzman <[email hidden]> wrote in message news:<[email hidden]>...

    Quoted message said:
    fresh~horses said:

    Effect of Low and High Fat Diets on Nutrient Intakes and
    Selected Cardiovascular Risk Factors in Sedentary Men
    and Women

    jacn.org131

    Conclusion: A low fat diet (19%) may not provide
    sufficient calories, essential fatty acids, and some
    micronutrients (especially vitamin E and zinc) for
    healthy untrained individuals, and it also lowered ApoA1
    and HDL-C. Increasing fat intake to 50% of calories
    improved nutritional status, and did not negatively
    affect certain cardiovascular risk factors.

    "...but intake was significantly lower on the 19% fat diet
    and led to a loss of 0.6 kg body weight."

    They say that like it is a bad thing!

    I think it must be if it comes hand in hand with
    malnutrition. "...may not provide sufficient calories,
    essential fatty acids, and some micronutrients... ."

    Zee

    Quoted message said:


    -Jay

  13. "Sonos" <[email hidden]> wrote in message news:<[email hidden]>...

    Quoted message said:
    Sonos said:

    On 13-May-2004, [email hidden]

    (fresh~horses) said:

    Soy: tastes horrid and the texture is worse. And: it
    is a *very* highly processed food, when I choose to
    eat as unprocessed as possible. However, I do
    sometimes eat edamame, and soy beans in recipes like
    any other bean.

    Zee

    I have also found that in the US, obtaining a reliable,
    nutrient dense and low processed source of soy is
    difficult and expensive. It is ironic because the US is
    a world leader in soybean production!

    I should say unless you purchase the dried soybean from
    the farmer. In my state, 60 lbs of certified organic
    soybeans costs only $18.00 when purchased from the field.

    Ok while I'm dragging my sack in read this. Sorry no url
    for this pdf. And the tables, graphs and charts didn't
    copy properly.

    Original Research

    Address correspondence to: Jeff S. Volek, Ph.D., R.D.,
    Assistant Professor, Department of Kinesiology, 2095
    Hillside Road, Unit 1110, University of Connecticut, Storrs,
    CT 06269-1110.

    E-mail: [email hidden] This study was supported by
    a grant from The Robert C. Atkins Foundation, New York, NY.

    Presented in part at Federation of American Societies for
    Experimental Biology, San Diego, CA, April, 2003. Journal of
    the American College of Nutrition, Vol. 23, No. 2, 177–184
    (2004) Published by the American College of Nutrition 177

    Comparison of a Very Low-Carbohydrate and Low-Fat Diet on
    Fasting Lipids, LDL Subclasses, Insulin Resistance, and
    Postprandial Lipemic Responses in Overweight Women

    Jeff S. Volek, PhD, RD, FACN, Matthew J. Sharman, MA, Ana L.
    Go´mez, MS, Chris DiPasquale, MS, Melissa Roti, PhD, Amy
    Pumerantz, BS, and William J. Kraemer, PhD

    Human Performance Laboratory, Department of Kinesiology,
    University of Connecticut, Storrs, Connecticut

    Key words: triglycerides, weight loss, postprandial lipemia,
    lipoprotein subclasses, Atkins diet

    Objective: Very low-carbohydrate diets are widely used for
    weight loss yet few controlled studies have determined how
    these diets impact cardiovascular risk factors compared to
    more traditional low-fat weight loss diets. The primary
    purpose of this study was to compare a very low-carbohydrate
    and a low-fat diet on fasting blood lipids, LDL subclasses,
    postprandial lipemia, and insulin resistance in overweight
    and obese women.

    Methods: Thirteen normolipidemic, moderately overweight
    (body fat 30%) women were prescribed two hypocaloric (500
    kcal/day) diets for 4 week periods, a very low-carbohydrate
    (10% carbohydrate) and a low-fat (30% fat) diet. The diets
    were consumed in a balanced and randomized fashion. Two
    fasting blood draws were performed on separate days and an
    oral fat tolerance test was performed at baseline, after the
    very low-carbohydrate diet, and after the low-fat diet.

    Results: Compared to corresponding values after the very low-
    carbohydrate diet, fasting total cholesterol, LDL-C, and HDL-
    C were significantly (p  0.05) lower, whereas fasting
    glucose, insulin, and insulin resistance (calculated using
    the homeostatic model assessment) were significantly higher
    after the low-fat diet.

    Both diets significantly decreased postprandial lipemia and
    resulted in similar nonsignificant changes in the total
    cholesterol/ HDL-C ratio, fasting triacylglycerols, oxidized
    LDL, and LDL subclass distribution.

    Conclusions: Compared to a low-fat weight loss diet, a short-
    term very low-carbohydrate diet did not lower LDL-C but did
    prevent the decline in HDL-C and resulted in improved
    insulin sensitivity in overweight and obese, but otherwise
    healthy women. Small decreases in body mass improved
    postprandial lipemia, and therefore cardiovascular risk,
    independent of diet composition.

    INTRODUCTION

    Very low-carbohydrate diets have been promoted for several
    decades as a superior alternative weight loss approach, best
    exemplified by the best-selling Atkins diet having sold
    several million copies [1]. Very low-carbohydrate diets have
    recently been examined in several clinical trials that
    primarily focused on weight loss. Results generally indicate
    that very low-carbohydrate diets result in greater weight
    loss compared to traditional low-fat diets [2–5]. However,
    few studies have rigorously examined the effects of very low-
    carbohydrate diets on risk factors for cardiovascular
    disease including postprandial lipemia, a significant and
    independent risk factor for coronary artery disease [6,7].
    Although carbohydrate restriction could favorably impact
    certain aspects of lipid metabolism compared to low-fat
    diets, such as decreasing hepatic production of
    triacylglycerols [8], they are inherently high in saturated
    fat and cholesterol, and therefore could be potentially
    atherogenic.

    In addition to studies aimed at determining the effects of
    carbohydrate restriction on weight loss and body
    composition, an understanding of the effects on accepted
    risk factors for cardiovascular disease should be known in
    different populations before this diet is widely
    recommended. To address this concern, our laboratory has
    assessed the effects of very low carbohydrate diets in normal-
    weight men and women under conditions of weight maintenance
    to isolate the effects of the diet independent of weight
    loss. Collectively these studies have shown that short-term
    carbohydrate restriction (10% of total energy) for 4 to 8
    weeks reduces fasting triacylglycerols, postprandial lipemic
    responses to a fat-rich meal, and insulin levels, and
    increases HDL-C, LDL-C, and LDL particle size [9–12].
    Whether similar responses occur in overweight women
    consuming a hypocaloric very low-carbohydrate weight loss
    diet is unknown.

    Thus, the primary purpose of this study was to shed light on
    the short-term cardiovascular risk responses to consumption
    of a hypocaloric very low-carbohydrate diet in overweight
    women. Since weight loss alone tends to improve risk status,
    the responses were compared to those achieved after
    consumption of a traditional low-fat diet. We tested the
    hypothesis that a very low-carbohydrate diet would not have
    a detrimental effect on cardiovascular risk status compared
    to a low-fat diet. Because blood lipid responses to diet are
    quite variable, we utilized a within subjects design in
    order enhance statistical power and the chances of detecting
    significant differences between diets.

    MATERIALS AND METHODS

    Subjects Thirteen moderately overweight and obese
    (percentage body fat 30%) but otherwise healthy women
    volunteered to participate in this investigation. Their
    physical characteristics were (mean  SD) age 34.0  8.6
    years, body mass 76.2 
    12.9 kg, body fat 42.0  5.1% (determined by dual-energy
    X-ray absorptiometry) and body mass index 29.6  4.0
    kg/m2. The subjects had been weight stable for the past
    month (2 kg), were not adhering to special diets or
    regular consumers of nutritional supplements (except a
    daily multi-vitamin/mineral) and habitually consumed
    between 27% and 41% of energy as fat (assessed via a seven-
    day food diary at baseline). All subjects were
    nonsmokers, not prescribed any medication known to
    affect serum lipoproteins, and premenopausal. All blood
    samples were obtained during days 2–4 of the follicular
    phase to control for possible effects of menstrual phase
    on lipoproteins, even though the variation is small
    [13]. Subjects were either sedentary or moderately
    active and maintained the same level of physical
    activity throughout the study documented by analysis of
    log sheets on which all exercise sessions were recorded.
    The study was conducted in accordance with the
    guidelines of the Institutional Review Board at the
    University of Connecticut.

    Experimental Design Subjects consumed two experimental
    weight loss diets for 4 week periods, a low-fat and a very
    low-carbohydrate diet. The diets were consumed in a balanced
    and randomized fashion. Two fasting blood draws were
    performed at the same time of day on separate days (to
    account for diurnal and day-to-day variation in lipids), and
    an oral fat tolerance test was performed at baseline, after
    the very low-carbohydrate diet and after the low-fat diet.

    Diet Interventions Both experimental diets were designed to
    be hypoenergetic (500 kcal/day). Energy levels were
    assigned to the nearest 200 kcal increment based on resting
    energy expenditure obtained using indirect calorimetry
    (MedGraphics CPX/D, Medical Graphics Corporation, St. Paul,
    MN) at the start of the study and appropriate activity
    factors. Standard diabetic exchange lists were used to
    ensure a constant energy and macronutrient balance of
    protein (20% energy), fat (25% energy), and carbohydrate
    (55% of energy) during the low-fat diet. The low-fat diet
    was also designed to contain 10% saturated fat and 300 mg
    cholesterol (i.e., a Step I diet). Foods encouraged during
    the low-fat diet included whole grains (breads, cereals and
    pastas), fruit/fruit juices, vegetables, vegetable oils, and
    low-fat dairy and meat products. We developed customized
    diabetic exchange lists for the very low-carbohydrate diet
    period in order to ensure a constant energy and balance of
    protein (30% energy), fat (60% energy) and carbohydrate
    (10% of energy) throughout the day. There were no
    restrictions on the type of fat from saturated and
    unsaturated sources or cholesterol levels. Foods commonly
    consumed on the very lowcarbohydrate diet were beef (e.g.,
    hamburger, steak), poultry
    (e.g., chicken, turkey), fish, oils, various nuts/seeds and
    peanut butter, moderate amounts of vegetables, salads
    with low-carbohydrate dressing, moderate amounts of
    cheese, eggs, protein powder, and water or low-
    carbohydrate diet drinks. Low-carbohydrate bars and
    shakes (Atkins Nutritionals, Inc., Hauppauge, NY) were
    provided to subjects during the very lowcarbohydrate
    diet. A daily multi-vitamin/mineral complex that
    provided micronutrients at levels 100% of the RDA was
    given to subjects during both experimental diets. All
    subjects received extensive initial instruction and follow-
    up by registered dietitians on how to translate
    foods/meals into diabetic exchanges. Subjects were also
    provided with a packet outlining specific lists of
    appropriate foods, recipes and sample meal plans that
    were compatible with their individual preferences for
    both experimental diets. Subjects received follow- up
    counseling on a weekly basis during which time body
    mass was measured, compliance was assessed and further
    dietetic education provided.

    Subjects received thorough instructions for completing
    detailed weighed food records during weeks 1, 3, and 4 of
    each experimental diet (21 days total). Food measuring
    utensils and scales were provided to subjects to ensure
    accurate reporting of food/beverage amounts consumed. Food
    diaries were analyzed for energy and macro/micronutrient
    content (Nutritionist Pro™, Version 1.3, First Databank Inc,
    The Hearst Corporation, San Bruno, CA).

    The program had no missing values for the nutrients
    reported. The database was extensively modified by our group
    to include new foods and recipes. To ensure that
    carbohydrates were restricted throughout the very low-
    carbohydrate diet, subjects tested their urine daily using
    reagent strips (Bayer Corporation, Elkhart, IN). The test is
    specific for acetoacetic acid, which produces a relative
    color change when it reacts with nitroprusside. We have
    found this to be a very sensitive indicator of carbohydrate
    restriction and compliance to a very low-carbohydrate diet
    in our prior studies [9–11].

    Fasting Blood Collection Blood samples were obtained on two
    separate days before and after each 4 week experimental
    diet. Samples were obtained following an overnight fast and
    abstinence from alcohol and strenuous exercise for 24
    hours. Subjects reported to the laboratory between 0700 and
    0900 hours, rested quietly for 10 minutes in the supine
    position, and a blood sample was obtained from an
    antecubital vein and collected into a tube coated with a
    silicone-gel. Blood was separated by centrifugation at 1500
     g for 15 minutes at 4°C.

    Oral Fat Tolerance Test An oral fat tolerance test was
    performed after each experimental diet using standard
    procedures in our laboratory [9–11]. Subjects arrived at the
    laboratory after a 12 hour overnight fast and abstinence
    from alcohol and strenuous exercise for 24 hours. A flexible
    catheter was inserted into a forearm vein and blood samples
    were obtained from a 3-way stopcock connected to the end of
    the catheter. Blood was collected with a syringe and
    transferred to a silicone-gel-coated tube for processing as
    above for determination of triacylglycerol. The catheter was
    kept patent with a constant saline drip. Subjects rested in
    a seated position for 10 minutes and two baseline blood
    samples were obtained separated by 10 minutes. The test meal
    (150 mL heavy whipping cream, sugar-free pudding, 5 mL
    canola oil,
    28.5 g macadamia nuts) was then consumed. This meal
    provided 867 kcal, 13% carbohydrate, 3% protein, 84%
    fat, 38 g saturated fat, 33 g monounsaturated fat, 4 g
    polyunsaturated fat, and 207 mg cholesterol.
    Postprandial blood samples were obtained immediately
    after the meal and hourly for a total of eight hours.
    Subjects rested quietly in a seated position and
    consumed exactly one liter of water only during the 8
    hour postprandial period.

    Determination of Serum Lipids, Oxidized LDL, Glucose, and
    Insulin After processing, serum collected for the
    determination of insulin, LDL particle size and oxidized LDL
    (oxLDL) were immediately stored at 80°C. The remaining
    serum (3 mL) was sent to a certified medical laboratory
    (Quest Diagnostics, Wallingford, CT) for determination of
    glucose, total cholesterol, HDL-C, and triacylglycerol
    concentrations using automated enzymatic procedures (Olympus
    America Inc., Melville, NY). The Friedewald formula [14] was
    used to calculate LDL-C: [LDL-C  total cholesterol  (HDL-C
     triacylglycerols/
    29)]. Fasting oxidized LDL-C was determined in duplicate
    using an enzyme-linked immuno sorbent assay (American
    Laboratory Products Company, Windham, NH) that is based
    on the direct sandwich technique in which two monoclonal
    antibodies are directed against separate antigenic
    determinants on the oxidized apolipoprotein B molecule
    [15]. Intra-assay coefficient of variance was 7.9%.
    Fasting serum insulin concentrations were determined in
    duplicate using an ELISA kit with a sensitivity of 1.81
    pmol/L (#10-1600, Diagnostic Systems Laboratory, Webster,
    TX). Intra-assay coefficient of variance was
    30.5%. Absorbances were read on a multilabel counter (Versa-
    Max, Molecular Devices, Sunnyvale, CA). The homeostasis
    model assessment (HOMA) was used to estimate insulin
    resistance using the formula: glucose (mmol/L) 
    [insulin (mU/L)/
    30.1] [1]. Normal-weight subjects aged 35 years have an
    insulin resistance of 1 [16].

    Determination of Lipoprotein Particle Size Lipoprotein
    particle size was determined using non-gradient
    polyacrylamide gel electrophoresis (Lipoprint LDL System,
    Quantimetrix Co., Redondo Beach, CA). The method has been
    described in detail in a recent publication by our
    laboratory [10] and others [17] and validated against non-
    denaturing gradient gel electrophoresis and nuclear magnetic
    resonance spectroscopy
    [31]. Seven bands of LDL, 3 bands of IDL, and VLDL were
    quantitatively evaluated using computer software (NIH
    imaging software, utilizing the Lipoprint LDL macro).
    The scanned gel image is divided at designated Rf
    values identified by their relative mobility, which is
    based on particle size (smaller particles migrate
    further). The area under the curve is calculated for
    each fraction. The percentage of LDL, IDL, and VLDL in
    each band and mean and peak LDL particle diameter are
    reported. Based on the distribution of LDL subclasses,
    subjects were classified as either Pattern A
    (predominance of large LDL particles) or Pattern B
    (predominance of small LDL particles).

    Statistical Analysis All statistical analyses were done with
    Statistica software, Version 5.5 (StatSoft Inc, Tulsa, OK).
    Means for fasting serum total cholesterol, HDL-C, LDL-C, and
    triacylglycerols were calculated from both fasting samples
    obtained at each time point and used for statistical
    analysis. Paired comparison t tests (two-tailed) were used
    to evaluate values after each diet intervention.
    Triacylglycerol total area under curve (AUC) was calculated
    from individual values obtained during the oral fat
    tolerance test using the trapezoidal method. The alpha level
    for significance was set at 0.05.

    RESULTS Dietary Intakes All dietary macronutrients were
    significantly different when women were on the very low-
    carbohydrate diet compared to the low-fat diet with the
    exception of total dietary energy and alcohol (Table 1). We
    achieved our goals for each diet with 21% of total energy
    coming from fat on the low-fat diet and 9% of total energy
    coming from carbohydrate on the very lowcarbohydrate diet.
    All subjects were in ketosis throughout the very low-
    carbohydrate diet as indicated by color changes on the
    urinary reagent strips (data not shown), indicating
    compliance in terms of carbohydrate restriction. Subjects
    lost significantly more weight on the very low-carbohydrate
    diet (2.96  1.45 kg) compared with the low-fat diet (1.06
     2.07 kg). Fasting Lipids, Glucose, and Insulin Fasting
    total cholesterol, LDL-C, and HDL-C were significantly lower
    after the low-fat diet but there was no significant
    difference between diets for the total cholesterol/HDL-C
    ratio. Fasting triacylglycerol responses were not different
    between diets but the triacylglycerol/HDL-C ratio was
    significantly lower after the very low-carbohydrate diet.
    Fasting oxidized LDL was unchanged by either diet. Fasting
    glucose, insulin, and insulin resistance HOMA were
    significantly lower after the very low-carbohydrate diet

    Lipoprotein Particle Size All but one subject was classified
    as Pattern A at the start of the study, which is reflected
    by the low percentage of smaller LDL-3 particles (1%).
    There were no differences in the relative percent of
    lipoprotein fractions or LDL size responses between diets
    with the exception of VLDL, which was significantly lower
    after the very low-carbohydrate diet.

    Analysis performed on 7 days of diet records during baseline
    and 21 days during the very low-carbohydrate and low-fat
    diets. There was a significant relation between peak LDL
    size at the start of the study and the change in LDL peak
    size after the very lowcarbohydrate (r  0.59) but not the
    low-fat (r  0.49) diet (Table 3), (Fig. 1).

    Oral Fat Tolerance Test Postprandial triacylglycerol values
    generally peaked about 3 hours after the meal and gradually
    returned to baseline after 7 to 8 hours (Fig. 2). Compared
    to the baseline triacylglycerol AUC (1304  555 mg/dL  8
    hours), postprandial lipemic responses were reduced to a
    similar extent after the very low-carbohydrate (927  452
    mg/dL  8 hours) compared to the low-fat (984  444 mg/dL 
    8 hours) diet.

    DISCUSSION Interest in very low-carbohydrate diets for the
    purpose of weight loss has increased in recent years. These
    diets have been criticized because they differ from
    traditional recommendations for healthy weight loss [19–21].
    We studied overweight, but otherwise healthy women with
    normal lipid profiles. In this population, the results of
    this study demonstrate both a shortterm hypocaloric very low-
    carbohydrate and low-fat diet had a similar effect on
    cardiovascular risk as shown by similar changes in the total
    cholesterol/HDL-C ratio and fasting and postprandial
    triacylglycerols. However, a very low-carbohydrate diet was
    more effective than a low-fat diet at improving insulin
    sensitivity as measured by the homeostatic model assessment
    using fasting glucose and insulin, but the significance of
    this small decrease is probably not physiological relevant
    in terms of glucose clearance or insulin effectiveness. Fig.
    2. Values are means  SEM, n  13. Serum triacylglycerol
    responses after ingestion of a high-fat meal at baseline and
    after a 4 week very low-carbohydrate diet and a 4 week low-
    fat diet in overweight women.

    Our prior work in men indicated that a very low-carbohydrate
    diet improved the lipid abnormalities characteristic of the
    metabolic syndrome (i.e., the diet decreased fasting and
    postprandial triacylglycerols, increased HDL-C, and
    increased LDL size distribution) [9,10]. The magnitude of
    these improvements was related to the severity of the
    dyslipidemia. That is men who started with higher
    triacylglycerols, lower HDL-C, and/or smaller LDL particles,
    demonstrated the greatest improvements in response to the
    very low-carbohydrate diet. In the present study, there were
    no significant differences between the very low-carbohydrate
    and low-fat diets on fasting and postprandial
    triacylglycerols and LDL particle distribution. Different
    from the men in our prior studies, the overweight women in
    this study showed little evidence of any dyslipidemia. In
    fact only one woman was characterized as Pattern B at
    baseline. This is consistent with other research showing
    that women have larger less atherogenic LDL particles than
    men [22–25]. Similar to our prior work [9–11], we did
    observe an inverse correlation between baseline peak LDL
    size and the change in LDL size to the very low-carbohydrate
    indicating that women who have smaller more atherogenic LDL
    particles do increase LDL size in response to a very low-
    carbohydrate diet. As expected the low-fat diet decreased
    both LDL-C and HDL-C resulting in no change in the total cholesterol/HDL-
    C ratio. The very low-carbohydrate diet did not lower LDL-C,
    but it prevented the decline in HDL-C also resulting in no
    change in the total cholesterol/HDL-C ratio. The lack of a
    decrease in LDL-C on a very low-carbohydrate diet could be
    of concern because several clinical trials clearly show that
    LDL-lowering therapy reduces risk of coronary heart disease
    and is therefore a primary target of therapy [26]. The goal
    of this study was not to isolate a particular nutrient but
    rather to examine how a diet pattern characterized by a very
    low-carbohydrate intake affects cardiovascular risk factors.
    However, the lower fiber intake on the very low-carbohydrate
    diet could be an important factor that contributed to the
    lack of a decrease in LDL-C because fiber alters metabolic
    pathways of hepatic cholesterol and lipoprotein metabolism,
    resulting in lowering of plasma LDL-C [27].

    Caution should be taken when interpreting these short-term
    changes in lipids, because whether subjects are weight
    stabilized or actively losing weight will affect the
    magnitude of the LDL-C and the direction of the HDL-C
    responses [28,29]. Regardless of whether weight is
    stabilized or at a plateau, HDL-C responses are better
    maintained or increased and LDL-C does not decrease as much
    on a very low-carbohydrate diet compared to a low-fat diet
    [9–11] and a recent study showed that this pattern of LDL-C
    and HDL-C response is sustained for one year [2]. Elevated
    postprandial lipemia is a significant and independent risk
    factor for cardiovascular disease [6,7]. Fasting and
    postprandial triacylglycerols are higher in obesity,
    especially abdominal obesity [30]; however, few studies have
    examined the effect of moderate weight loss on postprandial
    lipemia. Women in this study demonstrated a "normal"
    postprandial lipemic response to the fat-rich meal,
    consistent with their relatively low fasting
    triacylglycerols. However, the small weight loss resulted in
    rather dramatic improvements in the total area under the
    triacylglycerol curve. We hypothesized the magnitude of the
    reduction would be greater after the very low-carbohydrate
    diet based on our prior work in normalweight men [9,10], normal-
    weight women [11], and overweight men [31]. However, the
    decrease on the very low-carbohydrate diet (29%) was
    similar to the low-fat diet (25%). The reason for this
    difference is unclear. Women have been shown to have lower
    postprandial lipemic responses compared to men
    [32], an anti-atherogenic trait shown to be due to a greater
    contribution of skeletal muscle to lipid clearance [33].
    One important feature of the design used in this study
    was that the fat tolerance test was similar in
    composition to the very lowcarbohydrate diet and
    therefore may have gave an advantage to this diet
    because individuals tend to metabolize a meal that
    reflects the composition of their background diet more
    effectively
    [33]. From this perspective, a hypocaloric low-fat diet
    could be viewed as having an advantage because it
    resulted in a similar reduction in postprandial
    lipemia despite being quite different in composition
    to the test meal.

    Women lost more weight on the very low-carbohydrate diet
    (2.96 kg) than the low-fat diet (1.06 kg). Based on the
    expected changes in lipids with weight loss [35], the
    change in body weight alone should have decreased TC, LDL-
    C, HDL-C, and triacylglycerols by 5.7, 2.3, 0.8, and 3.9
    mg/dL, respectively, on the very low-carbohydrate diet and
    by 2.1, 0.8, 0.3, and 1.4 mg/dL, respectively, on the low-
    fat diet. This is much different than the actual changes
    observed (Table 2), suggesting that the composition of the
    diet, not weight loss per se, is the major stimulus for
    changes in lipids.

    There is concern that very low carbohydrate diets,
    especially diets high in saturated fat, might lead to
    insulin resistance; however we observed a significant
    reduction in insulin resistance after the very low-
    carbohydrate diet as measured by the homeostatic model
    assessment technique [16], which uses fasting levels of
    glucose and insulin. Adaptation to a threeweek very low
    carbohydrate diet (8% carbohydrate, 75% fat) in healthy
    subjects resulted in no change in resting or
    insulinstimulated total glucose disposal [36]. There was
    however a significant decrease in insulin-stimulated glucose
    oxidation and a proportional increase in nonoxidative
    glucose metabolism, presumably glycogen formation [36]. This
    study also showed that insulin-stimulated suppression of
    lipid oxidation was nearly prevented (i.e., insulin was
    ineffective at inhibiting oxidation of fat) after a low
    carbohydrate diet compared to an 80% reduction after a
    standard diet [36]. Similar results were obtained in healthy
    men who consumed 3 isoenergetic liquid diets equal in
    protein (15% of energy) but different in carbohydrate (2%,
    44% and 85% of energy) [37]. Glucose disposal was similar
    between all three diets but the low carbohydrate diet
    resulted in lower rates of insulin-stimulated glucose
    oxidation and increased nonoxidative glucose disposal. The
    low carbohydrate diet also prevented insulin-stimulated
    inhibition of lipid oxidation. Collectively, these findings
    do not support the notion that very low carbohydrate diets
    exacerbate risk of type II diabetes mellitus and insulin
    resistance. The results of this study indicate that,
    although short-term hypocaloric low-fat and very low-
    carbohydrate diets have different effects on HDL-C and LDL-C
    metabolism, they have a similar effect on the total cholesterol/HDL-
    C ratio. This study shows that even small reductions in body
    mass resulting from either type of diet can result in
    significant improvements in the postprandial lipemic
    response to a fat-rich meal. The overall clinical
    significance of these changes in lipids and insulin
    sensitivity are unknown, and it remains to be determined if
    these short-term responses can be sustained or are
    reflective of long term benefits that are associated with
    reduced morbidity and mortality. Limitations of this study
    include a short duration, small sample size, and the fact
    that we did not measure all cardiovascular biomarkers such
    as those related to inflammation, endothelial function and
    thrombosis, nor did we assess other important clinical
    endpoints such as renal function or bone health. These data
    should be viewed as pilot data that warrant further in-depth
    studies to determine the robustness and ability to
    generalize these data. The findings do support the concept
    that overweight individuals have some flexibility and can
    choose different dietary strategies depending on a number of
    factors such as food preference, baseline lipid profile,
    degree of obesity and the like.

    REFERENCES
    34. Atkins R: Dr. Atkins new diet revolution. New York:
    Avon Books, 1992.
    35. Foster GD, Wyatt HR, Hill JO, McGuckin BG, Brill C,
    Mohammed BS, Szapary PO, Rader DJ, Edman JS, Klein S: A
    randomized trial of a low-carbohydrate diet for
    obesity. N Eng J Med 348: 2082–2090, 2003.
    36. Samaha FF, Iqbal N, Seshadri P, Chicano KL, Daily DA,
    McGrory J, Williams T, Williams M, Gracely EJ, Stern L:
    A lowcarbohydrate as compared with a low-fat diet in
    severe obesity. N Eng J Med 348:2074–2081, 2003.
    37. Sondike SB, Copperman N, Jacobson MS: Effects of a
    lowcarbohydrate diet on weight loss and cardiovascular
    risk factors in overweight adolescents. J Pediatr
    142:253–258, 2003.
    38. Brehm BJ, Seely RJ, Daniels SR, D'Alessio DA: A
    randomized trial comparing a very low-carbohydrate diet
    and a calorierestricted low-fat diet on body weight and
    cardiovascular risk factors in healthy women. J Clin
    Endocrinol Metab 88:1617–1623, 2003.
    39. Patsch JR, Miesenbock G, Hopferwieser T, Muhlberger V,
    Knapp E, Dunn JK, Gotto AM, Patsch W: Relation of
    triglyceride metabolism and coronary artery disease:
    studies in the postprandial state. Thrombosis
    12:1336–1345, 1992.
    40. Ebenbichler CF, Kirchmair R, Egger C, Patsch JR:
    Postprandial state and atherosclerosis. Curr Opin
    Lipidol 6:286–290, 1995.
    41. Parks EJ: Effect of dietary carbohydrate on
    triglyceride metabolism in humans. J Nutr
    131:2772S–2774S, 2001.
    42. Volek JS, Go´mez AL, Kraemer WJ: Fasting lipoprotein
    and postprandial triacylglycerol responses to a low-
    carbohydrate diet supplemented with n-3 fatty acids. J
    Am Coll Nutr 19:383–391, 2000.
    43. Sharman MJ, Kraemer WJ, Love DM, Avery NG, Gomez AL,
    Scheett TP, Volek JS: A ketogenic diet favorably
    affects serum biomarkers for cardiovascular disease in
    normal-weight men. J Nutr 132:1879–1885, 2002.
    44. Volek JS, Sharman MJ, Go´mez AL, Scheett TP, Kraemer
    WJ: An isoenergetic very low-carbohydrate diet is
    associated with improved serum high-density lipoprotein
    cholesterol (HDL-C), total cholesterol to HDL-C ratio,
    triacylglycerols, and postprandial lipemic responses
    compared to a low-fat diet in normal weight,
    normolipidemic women. J Nutr 133:2756–2761, 2003.
    45. Volek JS, Westman EC: Low carbohydrate weight-loss
    diets revisited. Clev Clin J Med 69:849–862, 2002.
    46. Reed RG, Kris-Etherton P, Stewart PW, Pearson TA:
    Variation of lipids and lipoprotein in premenopausal
    women compared with men and postmenopausal women. DELTA
    (Dietary Effects on Lipoprotein and Thrombogenic
    Activity) Investigators. Metabolism
    47:1101–1105, 2000.
    48. Friedewald WT, Levy RI, Fredrickson DS: Estimation of
    the concentration of low-density lipoprotein
    cholesterol in plasma, without use of the preparative
    ultracentrifuge. Clin Chem 18:499– 502, 1972.
    49. Sigurdardottir V, Fagerberg B, Hulthe J: Circulating
    oxidized low-density lipoprotein (LDL) is associated
    with risk factors of the metabolic syndrome and LDL
    size in clinically healthy 58-year-old men (AIR study).
    J Intern Med 252:440–447, 2002.
    50. Matthews DR, Hosker JP, Rudenski AS, Naylor BA,
    Treacher DF, Turner RC: Homeostasis model assessment:
    insulin resistance and beta-cell function from fasting
    plasma glucose and insulin concentrations in man.
    Diabetologia 28:412–419, 1985.
    51. Rajman I, Kendall MJ, Cramb R, Holder RL, Salih
    M, Gammage
    MD: Investigation of low density lipoprotein subfractions as
    a coronary risk factor in normotriglyceridaemic men.
    Atherosclerosis
    125:231–242, 1996.
    126. Hoefner DM, Hodel SD, O'Brien JF, Branum EL, Sun D,
    Meissner I, McConnell JP: Development of a rapid,
    quantitative method for LDL subfractions with the use
    of the Quantimetrix Lipoprint LDL System. Clin Chem
    47:266–274, 2001.
    127. Blackburn GL, Phillips JC, Morreale S: Physician's
    guide to popular low-carbohydrate weight-loss diets.
    Clev Clin J Med 68:761– 774, 2001.
    128. St Jeor ST, Howard BV, Prewitt TE, Bovee V, Bazzarre T,
    Eckel RH; Nutrition Committee of the Council on
    Nutrition, Physical Activity, and Metabolism of the
    American Heart Association: Nutrition Committee of the
    Council on Nutrition, Physical Activity, and Metabolism
    of the American Heart Association. Dietary protein and
    weight reduction: a statement for healthcare
    professionals from the Nutrition Committee of the
    Council on Nutrition, Physical Activity, and Metabolism
    of the American Heart Association. Circulation
    104:1869–1874, 2000.
    129. Freedman MR, King J, Kennedy E: Popular diets: A
    scientific review. Obesity Res 9:1S–40S, 2001. Very Low-
    Carbohydrate Diets and Blood Lipids JOURNAL OF THE
    AMERICAN COLLEGE OF NUTRITION 183
    130. Nikkila M, Pitkajarvi T, Koivula T, Solakivi T,
    Lehtimaki T, Laippala P, Jokela H, Lehtomaki E, Seppa
    K, Sillanaukee P: Women have a larger and less
    atherogenic low density lipoprotein particle size than
    men. Atherosclerosis 37:1886–1896, 1996.
    131. Li Z, McNamara JR, Fruchart JC, Luc G, Bard JM, Ordovas
    JM, Wilson PW, Schaefer EJ: Effects of gender and
    menopausal status on plasma lipoprotein subspecies and
    particle sizes. J. Lipid Res
    132:181–190, 1996.
    133. Carr MC, Hokanson JE, Zambon A, Deeb SS, Barrett
    PH, Purnell JQ, Brunzell JD: The contribution of
    intraabdominal fat to gender differences in hepatic
    lipase activity and low/high density lipoprotein
    heterogeneity. J Clin Endocrinol Metab
    86:2831–2837, 2001.
    134. Lemieux I, Pascot A, Lamarche B, Prud'homme D, Nadeau
    A, Bergeron J, Despres JP: Is the gender difference in
    LDL size explained by the metabolic complications of
    visceral obesity? Eur. J Clin Invest 32:909–917, 2002.
    135. National Cholesterol Education Program Expert Panel on
    Detection, Evaluation, and Treatment of High Blood
    Cholesterol in Adults (Adult Treatment Panel III). (NIH
    Publication No. 01- 3670). Bethesda, MD: National
    Heart, Lung and Blood Institute and National Institutes
    of Health, 2001.
    136. Fernandez ML: Soluble fiber and nondigestible
    carbohydrate effects on plasma lipids and
    cardiovascular risk. Curr Opin Lipidol
    137:35–40, 2001.
    138. Noakes M, Clifton PM: Weight loss and plasma lipids.
    Curr Opin Lipidol 11:65–70, 2000.
    139. Dattilo AM, Kris-Etherton PM: Effects of weight
    reduction on blood lipids and lipoproteins: a meta-
    analysis. Am J Clin Nutr
    140:320–328, 1992.
    141. Mekki N, Christofilis MA, Charbonnier M, Atlan-Gepner
    C, Defoort C, Juhel C, Borel P, Portugal H, Pauli AM,
    Vialettes B, Lairon D: Influence of obesity and body
    fat distribution on postprandial lipemia and triglyceride-
    rich lipoproteins in adult women. J Clin Endocrinol
    Metab 84:184–191, 1999.
    142. Sharman MJ, Go´mez AL, Kraemer WJ, Volek JS: Comparison
    of a very low-carbohydrate and a low-fat diet on
    fasting lipids and postprandial lipemic responses in
    overweight men. J Nutr, submitted.
    143. Jensen MD: Gender differences in regional fatty acid
    metabolism before and after meal ingestion. J Clin
    Invest 96:2297–2303, 1995.
    144. Horton TJ, Commerford SR, Pagliassotti MJ, Bessesen DH:
    Postprandial leg uptake of triglyceride is greater in
    women than in men. Am J Physiol Endocrinol Metab
    283:E1192–E1202, 2002.
    145. Robertson MD, Henderson RA, Vist GE, Rumsey RD:
    Extended effects of evening meal carbohydrate-to-fat
    ratio on fasting and postprandial substrate metabolism.
    Am J Clin Nutr 75:505–510, 2002.
    146. Dattilo AM, Kris-Etherton PM: Effects of weight
    reduction on blood lipids and lipoproteins: a meta-
    analysis. Am J Clin Nutr
    147:320–328, 1992.
    148. Cutler DL, Gray CG, Park SW, Hickman MG, Bell JM,
    Kolterman OG. Low-carbohydrate diet alters
    intracellular glucose metabolism but not overall
    glucose disposal in exercise-trained subjects.
    Metabolism
    149:1264–1270, 1995.
    150. Bisschop PH, de Metz J, Ackermans MT, Endert E, Pijl H,
    Kuipers F, Meijer AJ, Sauerwein HP, Romijn JA. Dietary
    fat content alters insulin-mediated glucose metabolism
    in healthy men. Am J Clin Nutr 73:554–559, 2001.
    Received July 14, 2003; revision accepted October 29,
    2003. Very Low-Carbohydrate Diets and Blood Lipids 184
    VOL. 23, NO. 2

  14. "Jay Tanzman" <[email hidden]> píse v diskusním príspevku
    "]news:[email hidden]...

    Quoted message said:
    fresh~horses said:

    Effect of Low and High Fat Diets on Nutrient Intakes and
    Selected Cardiovascular Risk Factors in Sedentary Men
    and Women

    jacn.org131

    Conclusion: A low fat diet (19%) may not provide
    sufficient


    calories,

    Quoted message said:
    Quoted message said:

    essential fatty acids, and some micronutrients
    (especially vitamin E and zinc) for healthy untrained
    individuals, and it also lowered


    ApoA1

    Quoted message said:
    Quoted message said:

    and HDL-C. Increasing fat intake to 50% of calories
    improved nutritional status, and did not negatively
    affect certain cardiovascular risk factors.

    "...but intake was significantly lower on the 19% fat diet
    and led to


    a loss

    Quoted message said:

    of 0.6 kg body weight."

    They say that like it is a bad thing!

    Perhaps when high-carb diet would provide sufficient
    calories, its effects on lipids would be even worse....

    Mirek

  15. Mirek Fidler said:


    "Jay Tanzman" <[email hidden]> píse v diskusním
    príspevku "]news:[email hidden]...

    Quoted message said:
    fresh~horses said:

    Effect of Low and High Fat Diets on Nutrient Intakes
    and Selected Cardiovascular Risk Factors in Sedentary
    Men and Women

    jacn.org131

    Conclusion: A low fat diet (19%) may not provide
    sufficient


    calories,

    Quoted message said:
    Quoted message said:

    essential fatty acids, and some micronutrients
    (especially vitamin E and zinc) for healthy untrained
    individuals, and it also lowered


    ApoA1

    Quoted message said:
    Quoted message said:

    and HDL-C. Increasing fat intake to 50% of calories
    improved nutritional status, and did not negatively
    affect certain cardiovascular risk factors.

    "...but intake was significantly lower on the 19% fat
    diet and led to


    a loss

    Quoted message said:

    of 0.6 kg body weight."

    They say that like it is a bad thing!

    Perhaps when high-carb diet would provide sufficient
    calories, its effects on lipids would be even worse....

    Mirek

    You certainly can hope that per your bias.

    You remain in my prayers to God in Christ's name.

    Servant to the humblest person in the universe,

    Andrew

    --
    Dr. Andrew B. Chung, MD/PhD
    Board-Certified Cardiologist
    heartmdphd.comheartmdphd.com

    **
    Who is the humblest person in the universe?
    makeashorterlink.commakeashorterlink.com

    What is all this about?
    makeashorterlink.commakeashorterlink.com

    Is this spam?
    makeashorterlink.commakeashorterlink.com

  16. fresh~horses said:


    "Sonos" <[email hidden]> wrote in message
    news:<[email hidden]>...

    Quoted message said:
    Sonos said:

    On 13-May-2004, [email hidden]
    (fresh~horses) wrote:

    > Soy: tastes horrid and the texture is worse. And: it
    > is a *very* highly processed food, when I choose to
    > eat as unprocessed as possible. However, I do
    > sometimes eat edamame, and soy beans in recipes like
    > any other bean.
    >
    > Zee

    I have also found that in the US, obtaining a
    reliable, nutrient dense and low processed source of
    soy is difficult and expensive. It is ironic because
    the US is a world leader in soybean production!

    I should say unless you purchase the dried soybean from
    the farmer. In my state, 60 lbs of certified organic
    soybeans costs only $18.00 when purchased from the
    field.

    Ok while I'm dragging my sack in read this. Sorry no url
    for this pdf. And the tables, graphs and charts didn't
    copy properly.

    Original Research

    Address correspondence to: Jeff S. Volek, Ph.D., R.D.,
    Assistant Professor, Department of Kinesiology, 2095
    Hillside Road, Unit 1110, University of Connecticut,
    Storrs, CT 06269-1110.

    E-mail: [email hidden] This study was supported
    by a grant from The Robert C. Atkins Foundation, New
    York, NY.

    Presented in part at Federation of American Societies for
    Experimental Biology, San Diego, CA, April, 2003. Journal
    of the American College of Nutrition, Vol. 23, No. 2,
    177–184 (2004) Published by the American College of
    Nutrition 177

    Comparison of a Very Low-Carbohydrate and Low-Fat Diet on
    Fasting Lipids, LDL Subclasses, Insulin Resistance, and
    Postprandial Lipemic Responses in Overweight Women

    Jeff S. Volek, PhD, RD, FACN, Matthew J. Sharman, MA, Ana
    L. Go´mez, MS, Chris DiPasquale, MS, Melissa Roti, PhD,
    Amy Pumerantz, BS, and William J. Kraemer, PhD

    Human Performance Laboratory, Department of Kinesiology,
    University of Connecticut, Storrs, Connecticut

    Key words: triglycerides, weight loss, postprandial
    lipemia, lipoprotein subclasses, Atkins diet

    Objective: Very low-carbohydrate diets are widely used for
    weight loss yet few controlled studies have determined how
    these diets impact cardiovascular risk factors compared to
    more traditional low-fat weight loss diets. The primary
    purpose of this study was to compare a very low-
    carbohydrate and a low-fat diet on fasting blood lipids,
    LDL subclasses, postprandial lipemia, and insulin
    resistance in overweight and obese women.

    Methods: Thirteen normolipidemic, moderately overweight
    (body fat 30%) women were prescribed two hypocaloric
    (500 kcal/day) diets for 4 week periods, a very low-
    carbohydrate (10% carbohydrate) and a low-fat (30% fat)
    diet. The diets were consumed in a balanced and randomized
    fashion. Two fasting blood draws were performed on
    separate days and an oral fat tolerance test was performed
    at baseline, after the very low-carbohydrate diet, and
    after the low-fat diet.

    Results: Compared to corresponding values after the very
    low-carbohydrate diet, fasting total cholesterol, LDL-C,
    and HDL-C were significantly (p  0.05) lower,

    Al Lohse and Mirek Fidler probably did not like
    reading this.

    Quoted message said:

    whereas fasting glucose, insulin, and insulin resistance
    (calculated using the homeostatic model assessment) were
    significantly higher after the low-fat diet.

    Both diets significantly decreased postprandial lipemia
    and resulted in similar nonsignificant changes in the
    total cholesterol/ HDL-C ratio, fasting triacylglycerols,
    oxidized LDL, and LDL subclass distribution.

    Conclusions: Compared to a low-fat weight loss diet, a short-
    term very low-carbohydrate diet did not lower LDL-C but
    did prevent the decline in HDL-C and resulted in improved
    insulin sensitivity in overweight and obese, but otherwise
    healthy women. Small decreases in body mass improved
    postprandial lipemia, and therefore cardiovascular risk,
    independent of diet composition.

    Now imagine what large decreases in body mass will do for
    those who are very overweight.

    Servant to the humblest person in the universe,

    Andrew

    --
    Dr. Andrew B. Chung, MD/PhD
    Board-Certified Cardiologist
    heartmdphd.comheartmdphd.com

    **
    Who is the humblest person in the universe?
    makeashorterlink.commakeashorterlink.com

    What is all this about?
    makeashorterlink.commakeashorterlink.com

    Is this spam?
    makeashorterlink.commakeashorterlink.com

  17. Quoted message said:
    Quoted message said:

    Perhaps when high-carb diet would provide sufficient
    calories, its effects on lipids would be even worse....

    Mirek

    You certainly can hope that per your bias.

    So you think that increasing carb calories would not
    increase TG levels ?

    Mirek

  18. Mirek Fidler said:
    Quoted message said:
    Quoted message said:

    Perhaps when high-carb diet would provide sufficient
    calories, its effects on lipids would be even
    worse....

    Mirek

    You certainly can hope that per your bias.

    So you think that increasing carb calories would not
    increase TG levels ?

    Mirek

    It seems that you have difficulty discerning the truth.

    You remain in my prayers to God in Christ's name, neighbor.

    Servant to the humblest person in the universe,

    Andrew

    --
    Dr. Andrew B. Chung, MD/PhD
    Board-Certified Cardiologist
    heartmdphd.comheartmdphd.com

    **
    Who is the humblest person in the universe?
    makeashorterlink.commakeashorterlink.com

    What is all this about?
    makeashorterlink.commakeashorterlink.com

    Is this spam?
    makeashorterlink.commakeashorterlink.com

  19. (fresh~horses) said:

    Foods commonly consumed on the very lowcarbohydrate diet
    were beef (e.g., hamburger, steak), poultry
    (e.g., chicken, turkey), fish, oils, various nuts/seeds
    and peanut butter, moderate amounts of vegetables,
    salads with low-carbohydrate dressing, moderate
    amounts of cheese, eggs, protein powder, and water or
    low-carbohydrate diet drinks. Low-carbohydrate bars
    and shakes (Atkins Nutritionals, Inc., Hauppauge, NY)
    were provided to subjects during the very
    lowcarbohydrate diet.

    FIW, individuals substituting animal protein and fats with
    soybean protein and fats, inclusive of the remaining Atkins
    menu will also enter ketosis. I guess you could call it the
    vegans approach to Atkins.

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

  20. (fresh~horses) said:

    Ok while I'm dragging my sack in read this.

    Relax. It's not that difficult. Visit our website and send
    an email to our medical director. We can have UPS deliver a
    bushel (60 pounds) of certified organic soybeans grown in
    Kansas to your doorstep for $40.00 plus shipping.

    Or, you can call your state's organic soybean growers coop
    and find a reputable source closer to home for even less.
    Perhaps Pastorio knows some good sources too.

    So as not to stray too far from the thread topic...

    tinyurl.com2jwpf

    Atherosclerosis. 1989 Feb;75(2-3):123-7. Experimental
    atherosclerosis in rabbits fed cholesterol-free diets. 13.
    Interaction of proteins and fat.

    Kritchevsky D, Tepper SA, Davidson LM, Fisher EA,
    Klurfeld DM. Wistar Institute of Anatomy and Biology,
    Philadelphia, PA 19104.

    The atherogenic and cholesterolemic effects of animal
    protein vis-a-vis plant protein are well documented.
    Virtually all the studies were carried out using diets high
    in saturated fat, such as coconut oil. In order to determine
    if the same effects were seen with less saturated fat, we
    have compared atherogenic effects of an animal protein
    (casein) with those of a plant protein (soybean protein
    isolate) fed with partially hydrogenated soybean oil (PHS)
    (iodine value 72) or soybean oil (iodine value 134) as part
    of a cholesterol-free semipurified diet. After 6 months only
    rabbits fed casein-PHS exhibited elevated levels of plasma
    and liver cholesterol and triglycerides and atherosclerosis.
    Rabbits fed soy protein-PHS had slightly higher plasma
    cholesterol and triglycerides than did those fed soy protein
    and soybean oil, but values in both groups were in the
    normal range. The different effects of animal and plant
    protein on lipidemia and atherosclerosis can be influenced
    by dietary fat and appear to be dependent on fat saturation.

    --
    Winning against heart attack and stroke
    sonoscore.comsonoscore.com

Active in the last 60 minutes

Active in this thread

0 users · 0 guests ·0 bots ·0 total

No signed-in users are active right now.

No known search crawlers active right now.