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Obesity - Inducible Toll-like Receptor and NF-[kappa]B Regulatory Pathway Expression in... - 0 views

  • TLRs are functionally inducible and associated with downstream NF-B activation and proinflammatory cytokine production.
  • TLRs represent a family of receptors that are critical to the innate immune response against foreign pathogens and microorganisms
  • LPS has been shown to induce proinflammatory chemokine gene expression in differentiated human adipocytes through TLR and NF-B action
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  • Stimulation of TLRs initiates intracellular signaling cascades resulting in downstream NF-B and mitogen-activated protein kinase activation and production of proinflammatory chemokines associated with mechanisms of metabolic dysfunction and cardiovascular disease progression.
  • Elevated fatty acids levels associated with obesity activate TLR4 signaling in fat cells and macrophages, and induce insulin resistance in murine models
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    TLR, especially TLR-4, is directly involved in NF-KappaB activation and release of inflammatory cytokines
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Omega-3 polyunsaturated fatty acid suppl... [J Nutr Health Aging. 2011] - PubMed - NCBI - 0 views

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    omega-3 supplementation shown to slow cognitive decline in study of elderly Chinese women and men
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High consumption of Ω-3 polyunsaturated fatty acid... [Nutrition. 2011] - Pub... - 0 views

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    meta-analysis reveals that omega-3 supplementation can decrease levels of homocysteine
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Polycystic Ovary Syndrome with Hyperandrogenism Is Characterized by an Increased Risk o... - 0 views

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    PCOS with associated hyperandrogenism, is associated with increased risk of NAFLD versus PCOS without hyperandrogenism.
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GPR120 is an Omega-3 Fatty Acid Receptor Mediating Potent Anti-Inflammatory and Insulin... - 0 views

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    Omega-3, DHA and EPA, exert anti-inflammatory effects through GPR120 receptor.  This improved insulin sensitivity and had diabetes effects in-vivo model.  The effect was through the reduction of macrophage-induced inflammatory cytokines.
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'Metabolic syndrome' in the brain: deficiency in omega-3 fatty acid exacerbates dysfunc... - 0 views

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    diets with high high-fructose corn syrup and low omega-3 shown to slow cognitive processing in rat model.  This is basically, metabolic syndrome of the brain, as it is the result of hyperinsulinemia.
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International Journal of Obesity - The type and quantity of dietary fat and carbohydrat... - 0 views

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    Diet intake effects gut bacterial balance which effects metabolism and obesity risk.
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Probiotic as a Novel Treatment Strategy Against Liver Disease - Hepatitis Monthly - - K... - 0 views

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    probiotics shown to be useful and safe in those with liver disease.
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Inflammatory cause of metabolic syndrome via brain stress and NF-κB - 0 views

  • Mechanistic studies further showed that such metabolic inflammation is related to the induction of various intracellular stresses such as mitochondrial oxidative stress, endoplasmic reticulum (ER) stress, and autophagy defect under prolonged nutritional excess
  • intracellular stress-inflammation process for metabolic syndrome has been established in the central nervous system (CNS) and particularly in the hypothalamus
  • the CNS and the comprised hypothalamus are known to govern various metabolic activities of the body including appetite control, energy expenditure, carbohydrate and lipid metabolism, and blood pressure homeostasis
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  • Reactive oxygen species (ROS) refer to a class of radical or non-radical oxygen-containing molecules that have high oxidative reactivity with lipids, proteins, and nucleic acids
  • a large measure of intracellular ROS comes from the leakage of mitochondrial electron transport chain (ETC)
  • Another major source of intracellular ROS is the intentional generation of superoxides by nicotinamide adenine dinucleotide phosphate (NADPH) oxidase
  • there are other ROS-producing enzymes such as cyclooxygenases, lipoxygenases, xanthine oxidase, and cytochrome p450 enzymes, which are involved with specific metabolic processes
  • To counteract the toxic effects of molecular oxidation by ROS, cells are equipped with a battery of antioxidant enzymes such as superoxide dismutases, catalase, peroxiredoxins, sulfiredoxin, and aldehyde dehydrogenases
  • intracellular oxidative stress has been indicated to contribute to metabolic syndrome and related diseases, including T2D [72; 73], CVDs [74-76], neurodegenerative diseases [69; 77-80], and cancers
  • intracellular oxidative stress is highly associated with the development of neurodegenerative diseases [69] and brain aging
  • dietary obesity was found to induce NADPH oxidase-associated oxidative stress in rat brain
  • mitochondrial dysfunction in hypothalamic proopiomelanocortin (POMC) neurons causes central glucose sensing impairment
  • Endoplasmic reticulum (ER) is the cellular organelle responsible for protein synthesis, maturation, and trafficking to secretory pathways
  • unfolded protein response (UPR) machinery
  • ER stress has been associated to obesity, insulin resistance, T2D, CVDs, cancers, and neurodegenerative diseases
  • brain ER stress underlies neurodegenerative diseases
  • under environmental stress such as nutrient deprivation or hypoxia, autophagy is strongly induced to breakdown macromolecules into reusable amino acids and fatty acids for survival
  • intact autophagy function is required for the hypothalamus to properly control metabolic and energy homeostasis, while hypothalamic autophagy defect leads to the development of metabolic syndrome such as obesity and insulin resistance
  • prolonged oxidative stress or ER stress has been shown to impair autophagy function in disease milieu of cancer or aging
  • TLRs are an important class of membrane-bound pattern recognition receptors in classical innate immune defense
  • Most hypothalamic cell types including neurons and glia cells express TLRs
  • overnutrition constitutes an environmental stimulus that can activate TLR pathways to mediate the development of metabolic syndrome related disorders such as obesity, insulin resistance, T2D, and atherosclerotic CVDs
  • Isoforms TLR1, 2, 4, and 6 may be particularly pertinent to pathogenic signaling induced by lipid overnutrition
  • hypothalamic TLR4 and downstream inflammatory signaling are activated in response to central lipid excess via direct intra-brain lipid administration or HFD-feeding
  • overnutrition-induced metabolic derangements such as central leptin resistance, systemic insulin resistance, and weight gain
  • these evidences based on brain TLR signaling further support the notion that CNS is the primary site for overnutrition to cause the development of metabolic syndrome.
  • circulating cytokines can limitedly travel to the hypothalamus through the leaky blood-brain barrier around the mediobasal hypothalamus to activate hypothalamic cytokine receptors
  • significant evidences have been recently documented demonstrating the role of cytokine receptor pathways in the development of metabolic syndrome components
  • entral administration of TNF-α at low doses faithfully replicated the effects of central metabolic inflammation in enhancing eating, decreasing energy expenditure [158;159], and causing obesity-related hypertension
  • Resistin, an adipocyte-derived proinflammatory cytokine, has been found to promote hepatic insulin resistance through its central actions
  • both TLR pathways and cytokine receptor pathways are involved in central inflammatory mechanism of metabolic syndrome and related diseases.
  • In quiescent state, NF-κB resides in the cytoplasm in an inactive form due to inhibitory binding by IκBα protein
  • IKKβ activation via receptor-mediated pathway, leading to IκBα phosphorylation and degradation and subsequent release of NF-κB activity
  • Research in the past decade has found that activation of IKKβ/NF-κB proinflammatory pathway in metabolic tissues is a prominent feature of various metabolic disorders related to overnutrition
  • it happens in metabolic tissues, it is mainly associated with overnutrition-induced metabolic derangements, and most importantly, it is relatively low-grade and chronic
  • this paradigm of IKKβ/NF-κB-mediated metabolic inflammation has been identified in the CNS – particularly the comprised hypothalamus, which primarily accounts for to the development of overnutrition-induced metabolic syndrome and related disorders such as obesity, insulin resistance, T2D, and obesity-related hypertension
  • evidences have pointed to intracellular oxidative stress and mitochondrial dysfunction as upstream events that mediate hypothalamic NF-κB activation in a receptor-independent manner under overnutrition
  • In the context of metabolic syndrome, oxidative stress-related NF-κB activation in metabolic tissues or vascular systems has been implicated in a broad range of metabolic syndrome-related diseases, such as diabetes, atherosclerosis, cardiac infarct, stroke, cancer, and aging
  • intracellular oxidative stress seems to be a likely pathogenic link that bridges overnutrition with NF-κB activation leading to central metabolic dysregulation
  • overnutrition is an environmental inducer for intracellular oxidative stress regardless of tissues involved
  • excessive nutrients, when transported into cells, directly increase mitochondrial oxidative workload, which causes increased production of ROS by mitochondrial ETC
  • oxidative stress has been shown to activate NF-κB pathway in neurons or glial cells in several types of metabolic syndrome-related neural diseases, such as stroke [185], neurodegenerative diseases [186-188], and brain aging
  • central nutrient excess (e.g., glucose or lipids) has been shown to activate NF-κB in the hypothalamus [34-37] to account for overnutrition-induced central metabolic dysregulations
  • overnutrition can present the cell with a metabolic overload that exceeds the physiological adaptive range of UPR, resulting in the development of ER stress and systemic metabolic disorders
  • chronic ER stress in peripheral metabolic tissues such as adipocytes, liver, muscle, and pancreatic cells is a salient feature of overnutrition-related diseases
  • recent literature supports a model that brain ER stress and NF-κB activation reciprocally promote each other in the development of central metabolic dysregulations
  • when intracellular stresses remain unresolved, prolonged autophagy upregulation progresses into autophagy defect
  • autophagy defect can induce NF-κB-mediated inflammation in association with the development of cancer or inflammatory diseases (e.g., Crohn's disease)
  • The connection between autophagy defect and proinflammatory activation of NF-κB pathway can also be inferred in metabolic syndrome, since both autophagy defect [126-133;200] and NF-κB activation [20-33] are implicated in the development of overnutrition-related metabolic diseases
  • Both TLR pathway and cytokine receptor pathways are closely related to IKKβ/NF-κB signaling in the central pathogenesis of metabolic syndrome
  • Overnutrition, especially in the form of HFD feeding, was shown to activate TLR4 signaling and downstream IKKβ/NF-κB pathway
  • TLR4 activation leads to MyD88-dependent NF-κB activation in early phase and MyD88-indepdnent MAPK/JNK pathway in late phase
  • these studies point to NF-κB as an immediate signaling effector for TLR4 activation in central inflammatory response
  • TLR4 activation has been shown to induce intracellular ER stress to indirectly cause metabolic inflammation in the hypothalamus
  • central TLR4-NF-κB pathway may represent one of the early receptor-mediated events in overnutrition-induced central inflammation.
  • cytokines and their receptors are both upstream activating components and downstream transcriptional targets of NF-κB activation
  • central administration of TNF-α at low dose can mimic the effect of obesity-related inflammatory milieu to activate IKKβ/NF-κB proinflammatory pathways, furthering the development of overeating, energy expenditure decrease, and weight gain
  • the physiological effects of IKKβ/NF-κB activation seem to be cell type-dependent, i.e., IKKβ/NF-κB activation in hypothalamic agouti-related protein (AGRP) neurons primarily leads to the development of energy imbalance and obesity [34]; while in hypothalamic POMC neurons, it primarily results in the development of hypertension and glucose intolerance
  • the hypothalamus, is the central regulator of energy and body weight balance [
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    Great article chronicles the biochemistry of "over nutrition" and inflammation through NF-kappaB activation and its impact on the brain.
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Resveratrol up-regulates hepatic uncoupling protein... [Nutr Res. 2012] - PubMed - NCBI - 0 views

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    Not only does resveratrol reduce inflammation, but resveratrol inhibits NAFLD in rats fed a high fat diet.  
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Blood Level Omega-3 Fatty Acids as Risk Determinant Molecular Biomarker for Prostate Ca... - 0 views

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    study, that I have yet to fully analyze, claims increased risk of prostate cancer in men with the highest levels of omega-3.
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Prophylactic and therapeutic effects of n-3 polyunsaturated fatty acids, capsaicin, and... - 0 views

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    Rat study, but it finds that n-3, capsaicin, and curcumin can not only decrease the inflammation associatied with arthritis, but it can delay it all together.
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Obstructive Sleep Apnea Predisposes to Nonalcoh... [Endocr Pract. 2013] - PubMed - NCBI - 0 views

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    sleep apnea in women with PCOS found to be associated with NAFLD. The free Testosterone was directly associated with sleep apnea.
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17β-ESTRADIOL AND ESTRADIOL FATTY ACYL ESTERS AND ESTROGEN-CONVERTING ENZYME ... - 0 views

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    Interesting study.  Adipose production of Estradiol in both men and women not reflected in serum Estradiol.  Serum Estradiol is just transport hormones.  This same finding has been shown in prostate aromatase activity.  
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Polychlorinated Biphenyls, Lead, and Mercury Are Associated with Liver Disease in Ameri... - 0 views

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    full article that revealed PCBs, Lead, and Mercury associated with elevated liver enzymes and NAFLD.
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Effect of the long-term feeding of dietary lipids on the learning ability, fatty acid c... - 0 views

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    mouse study finds high DHA diet improved learning.
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Dietary omega-3 fatty acids normalize BDNF lev... [J Neurotrauma. 2004] - PubMed - NCBI - 0 views

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    Another rat study as alot of the studies are with BDNF.  Dietary n-3 reduce oxidative stress and inflammation and increase BDNF.
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Omega-3 fatty acid supplementation and reduction... [J Neurosurg. 2011] - PubMed - NCBI - 0 views

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    Animal model shows that n-3 intake reduced axonal injury after injury insult.  This implies a use in n-3 intake even after an insult has occured. This implies a role for n-3 in neuroplasticity.
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Metabolic Effects of Dietary Fiber Consumption and Prevention of Diabetes - 0 views

  • DF are highly complex substances that can be described as any nondigestible carbohydrates and lignins not degraded in the upper gut
  • Commonly, DF are classified according to their solubility in water, even though grading according to viscosity, gel-forming capabilities, or fermentation rate by the gut microbiota might be physiologically more relevant
  • Main sources of soluble DF are fruits and vegetables
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  • n increased intake of total DF was inversely associated with markers of insulin resistance in several studies
  • consumption of insoluble DF increased whole body glucose disposal independent of changes in body weight in both short-term and more prolonged studies
  • Short-chain fatty acids (SCFA) such as acetate, propionate, and butyrate are produced by bacterial fermentation of indigestible DF polysaccharides in the colon
  • increased production of SCFA is assumed to be beneficial by reducing hepatic glucose output and improving lipid homeostasis
  • a high DF diet (oligofructose) reduced gram-negative bacterial content and body weight, whereas a high fat diet increased the proportion of a gram-negative bacterial lipopolysaccharides (LPS) containing microbiota in humans
  • Prospective cohort studies indicate that diets high in insoluble cereal DF and whole grains might reduce diabetes risk
  • soluble DF (i.e., pectin, inulin, and β-glucans)
  • cereal DF (i.e., cellulose and hemicelluloses)
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    Good discussion of dietary fiber intake and Diabetes.  
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Interplay between lipids and branched-chain amino acids in development of insulin resis... - 0 views

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    High branch chain amino acids can promote insulin resistance.  This study points out that long-term high protein dietary intake can actually have significant deleterious effects and lead to disease.  A high fat diet appears to be required for this effect.
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