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Nathan Goodyear

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.
umar111

Computer Science: Computer hardware - 0 views

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    Computer Science Tuesday, April 25, 2023 Computer hardware Computer hardware is the physical components that make up a computer system. It includes everything from the central processing unit (CPU) to the monitor, keyboard, and mouse. Understanding the different types of hardware and how they work together is essential for anyone who works with computers. In this article, we will explore the various components of computer hardware, including internal and external components, and the peripherals that connect to them. We will also discuss the importance of hardware maintenance, the latest advancements in computer technology, and factors to consider when choosing the right hardware for your needs. Whether you are a computer technician, a gamer, or simply someone who uses a computer for everyday tasks, this article will help you better understand the world of computer hardware. Introduction to Computer Hardware Computer hardware refers to the physical components that make up a computer system. It includes everything from the processor and memory to input/output devices such as the keyboard and monitor. In this article, we will explore the different types of computer hardware and their functions. What is Computer Hardware Computer hardware refers to the physical components of a computer system. It includes all the components that can be touched, seen, and used to interact with a computer, such as the monitor, keyboard, and mouse. Hardware is different from computer software, which refers to the programs and applications that run on a computer system. History of Computer Hardware The history of computer hardware dates back to the 1820s when Charles Babbage, an English mathematician, and inventor, designed the first analytical engine, which was considered to be the first mechanical computer. With time, more complex electronic computers were developed, including the first Intel microprocessor in 1971. Since then, computer hardware has continued to evolve, becoming
Nathan Goodyear

Use of the peripherally inserted central catheter ... [Obstet Gynecol. 1993] - PubMed r... - 0 views

  • CONCLUSIONS: The peripherally inserted central catheter avoids some of the risks related to obtaining central venous access and permits long-term administration of parenteral nutrition into the central venous circulation.
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    peripheral IVs safe alternative to central venous IVs during pregnancy
Nathan Goodyear

Central obesity and increased risk of dementia mor... [Neurology. 2008] - PubMed result - 0 views

  • Fifty percent of adults have central obesity
  • Central obesity in midlife increases risk of dementia independent of diabetes and cardiovascular comorbidities
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    central obesity and dementia
Jadibuti jadibuti.net

Shilajit - 0 views

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    Shilajit is perhaps the most potent rejuvenator and anti aging block buster ever known to the mankind. Shilajit is found predominately in the Himalayan region bordering India, China, Tibet and parts of central Asia. The Indian Yogis considered ...
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    Shilajit is perhaps the most potent rejuvenator and anti aging block buster ever known to the mankind. Shilajit is found predominately in the Himalayan region bordering India, China, Tibet and parts of central Asia. The Indian Yogis considered ...
Nathan Goodyear

A role for ghrelin in the central regulation of feeding : Abstract : Nature - 0 views

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    ghrelin plays central role in positive energy balance.  Ghrelin is produced from stomach to increase appetite prior to eating and then decreases post meal to provide satiety.  In some, the post meal ghrelin remains elevated and thus overeating ensues.  Important point, is that low ghrelin has been shown to lead to insulin resistance.
Nathan Goodyear

Total and free testosterone concentrations are strongly influenced by age and central o... - 0 views

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    Testosterone levels, measured as total, bioavailable and free, found to be associated with age and central (not visceral) obesity in those men with type I and II Diabetes.  Weakly with symptoms of low T and ED.
Nathan Goodyear

A strong association between biologically active testosterone and leptin in non-obese m... - 0 views

  • strongly supports an association between levels of androgens and leptin in both men and women
  • The association between androgen levels and leptin seems to be dependent of fat distribution in men
  • There is a growing bulk of evidence suggesting that testosterone may influence leptin levels. Testosterone administration reduces leptin levels in hypogonadal27,28 and eugonadal men
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  • testosterone suppression by GnRH agonist treatment of central precocious puberty in boys increases leptin levels
  • Testosterone levels decreased with increasing central obesity in healthy men, while they increase with increasing obesity in healthy women, the latter irrespective of menstrual status
  • this could be due to obesity-related hyperleptinemia that inhibits testosterone secretion at the testicular level.46,47 These changes, which are proposed to be components of the insulin resistance syndrome,48 are associated with increased risk for cardiovascular disease in both men and women
  • in the more obese subjects, the higher leptin levels due to increased adiposity might reduce secretion of testosterone
  • loss of regulation of leptin by testosterone in obese men and women could be an important feature of the insulin resistance syndrome
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    Leptin and Testosterone.  Interesting relationship that differs between the sexes.
Nathan Goodyear

5B.06: ASSOCIATION OF PLASMA TESTOSTERONE WITH CENTRAL HAEMODYNAMICS IN HYPERTENSIVE ME... - 0 views

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    low total Testosterone is associated with increased central blood pressure elevation.  Less association was found with peripheral blood pressure.
Nathan Goodyear

Inflammatory bio-markers and cardiovascular risk prediction - Blake - 2002 - Journal of... - 0 views

  • Inflammatory processes are now recognized to play a central role in the pathogenesis of atherosclerosis and its complications. Plasma levels of several markers of inflammation have been found to be associated with future cardiovascular risk in a variety of clinical settings.
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    inflammation (point 5 of the 5 points of wellness) shown to play central role in atherosclerosis.  See CRP
Nathan Goodyear

Mitochondria: a therapeutic target in neurodegener... [Biochim Biophys Acta. 2010] - Pu... - 0 views

  • mitochondrial dysfunction has a central role in the pathogenesis of Alzheimer's, Parkinson's and Huntington's diseases and amyotrophic lateral sclerosis
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    mitochondrial dysfunction has a central role in the pathogenesis of Alzheimer's, Parkinson's and Huntington's diseases and amyotrophic lateral sclerosis
Nathan Goodyear

Endothelial cell damage is the central part of COVID-19 and a mouse model induced by in... - 0 views

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    It is concluded that ACE2+ endothelial damage is a central part of SARS-CoV2 pathology and may be induced by the spike protein alone.
Nathan Goodyear

Endocrinology of the Aging Male - 0 views

  • All steps beyond the formation of pregnenolone take place in the smooth endoplasmic reticulum
  • Cytochrome P450 enzyme, CYP11A is located on the inner mitochondrial membrane and catalyses the rate limiting step of pregnenolone synthesis
  • Estrogen and related steroids, thyroid hormone and insulin increase SHBG levels.
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  • SHBG decreases in response to androgens, and in the presence of hypothyroidism, and insulin resistance.
  • Plasma SHBG levels tend to increase with increasing age
  • The apparent metabolic clearance rate of testosterone is decreased in elderly as compared to younger men
  • Testosterone circulates predominantly bound to the plasma proteins SHBG and albumin, with high and low affinity respectively
  • Testosterone is secreted in a pulsatile fashion
  • Current clinical guidelines suggest at least two measurements
  • In adult men, there is a well-documented diurnal variation (particularly in younger subjects) in testosterone levels, which are highest in the early morning and progressively decline throughout the day to a nadir in the evening
  • In older men, the diurnal variation is blunted
  • it is standard practice for samples to be obtained between 0800 and 1100 h.
  • Testosterone and DHEA decline, whereas LH, FSH, and SHBG rise
  • DHT remains constant despite the decline of its precursor testosterone
  • Longitudinal studies show an average annual decline of 1–2% total testosterone levels, with decline in free testosterone more rapid because of increases in SHBG with aging
  • Massachusetts Male Aging Study (MMAS) data show DHEA, DHEAS, and Ae declining at 2–3% per year
  • DHT showed no cross-sectional age trend
  • Androstanediol glucuronide (AAG) declined cross-sectionally with age in the MMAS sample, at 0.6% per year
  • The EMAS data show that, consistent with the longitudinal findings of MMAS (Figure 1), the core hormonal pattern with increasing age is suggestive of incipient primary testicular dysfunction with maintained total testosterone and progressively blunted free testosterone associated with higher LH
    • Nathan Goodyear
       
      This author proves the point in the review of these two studies, that TT may remain constant in aging men, however, FT drops.
  • obesity impairs hypothalamic/pituitary function
  • Androgen deprivation in men with prostate cancer has been associated with increased insulin resistance, worse glycemic control, and a significant increase in risk of incident diabetes
  • Low serum testosterone is associated with the development of metabolic syndrome 116, 117 and type 2 diabetes. 118 SHBG has been inversely correlated with type 2 diabetes
  • Improvement in insulin sensitivity with testosterone treatment has been reported in healthy 121 and diabetic 122 adult men
  • In studies conducted in men with central adiposity, testosterone has been shown to inhibit lipoprotein lipase activity in abdominal adipose tissue leading to decreased triglyceride uptake in central fat depots. 123
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    great review of hormone changes associated with aging in men.
Nathan Goodyear

Activation of the hypothalamo-pituitary-a... [Intensive Care Med. 1999] - PubMed - NCBI - 0 views

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    Septic illnesses found to be associated with suppression of TSH centrally in the HPA axis. The cytokines found to be elevated were IL-1beta, TNF-alpha, and IL-6.
Nathan Goodyear

ScienceDirect.com - Cell Metabolism - Estrogen Receptors and the Metabolic Network - 0 views

  • The pro-opiomelanocortin (POMC) neurons have an anorexigenic action and, when activated, reduce food intake through the release of two peptides, α-melanocyte-stimulating hormone (α-MSH) and cocaine-and-amphetamine-regulated transcripts (CART). The neuropeptide Y (NPY) neurons, on the other hand, release NPY hormone and agouti gene-related protein (AgRP), which prevent the binding of α-MSH to MC3R and MC4R, increasing food intake
  • This suggests that the central anorexic effects of E2 may occur via ERβ
  • The main hypothalamic areas involved in food intake and satiety are the arcuate nucleus (ARC), the lateral hypothalamus (LH), the paraventricular nucleus (PVN), the ventromedial hypothalamus (VMH), and the dorsomedial hypothalamus (DMH)
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  • Leptin is a potent anorexigenic and catabolic hormone secreted by adipose cells that reduces food intake and increases energy expenditure
  • E2 not only modulates leptin receptor mRNA in the ARC and VMH, but also increases hypothalamic sensitivity to leptin, altering peripheral fat distribution
  • ghrelin. It acts on growth hormone secretagogue receptors (GHSR1a) located in the ARC and is a potent stimulator of food intake
  • It thus appears that of the two ERs, ERα plays a predominant role in the CNS regulation of lipid and carbohydrate homeostasis.
  • Both ERs have been identified in the ARC
  • Stimulation of MCH neurons increases food intake and fat accumulation while its inhibition leads to decreased food intake and reduced fat accumulation.
  • Both ERs have been identified in the LH
  • both ERs have been identified in this nucleus
  • The PVN is the region of the hypothalamus with the highest expression of ERβ and is reported to be weakly ERα positive
  • The VMH is ERα regulated
  • Skeletal muscle is responsible for 75% of the insulin-induced glucose uptake in the body
  • GLUT4 is highly expressed in muscle and represents a rate-limiting step in the insulin-induced glucose uptake
  • data suggest that in the physiological range, E2 is beneficial for insulin sensitivity, whereas hypo- or hyperestrogenism is related to insulin resistance
  • In aging female rats, E2 treatment improves glucose homeostasis mainly through its ability to increase muscle GLUT4 content on the cell membrane
  • It is evident that ERα and ERβ have distinct actions and that much more research is needed to clearly identify the function of each receptor in muscle.
  • E2 prevents accumulation of visceral fat, increases central sensitivity to leptin, increases the expression of insulin receptors in adipocytes, and decreases the lipogenic activity of lipoprotein lipase in adipose tissue
  • In rats, ovariectomy increases body weight, intra-abdominal fat, fasting glucose and insulin levels, and insulin resistance followed by decreased phosphorylation of AMPK and its substrate acetyl-CoA carboxylase in adipose tissue
  • decreased adiponectin, PPARγ coactivator-1α (PGC-1α), and uncoupling protein 2 (UCP2) and increased resistin
  • Men with aromatase deficiency have truncal obesity, elevated blood lipids, and severe insulin resistance
  • Although not all studies are in agreement, polymorphisms of ERα in humans have been associated with risk factors for CVDs
  • Human subcutaneous and visceral adipose tissues express both ERα and ERβ, whereas only ERα mRNA has been identified in brown adipose tissue
  • suggesting that ERα is the main regulator of GLUT4 expression in adipose tissue
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    very nice article that looks at the balance of ER-alpha/ER-beta and their role in metabolic syndrome.  This article discusses the balance of  these receptors are tissue dependent in their effect.  I like their conclusion: "...but these mechanisms will never be completely understood if they are not considered in the context of a whole system.
Nathan Goodyear

Effect of vasopressin 1b receptor blockade on the hypothalamic-pituitary-adrenal respon... - 0 views

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    repeated stress results in down regulation of central stress response ie. blunted CRH response.
Nathan Goodyear

The Role of Androgen in the Adipose Tissue of Males - 0 views

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    great review of the current knowledge of how adipose tissue influences androgen production and how androgens influence adipose tissue.  For example, leptin has an androgen inhibition centrally and peripherally.
Nathan Goodyear

Acute exercise suppresses hypothalamic PTP1B protein level and improves insulin and lep... - 0 views

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    exercise found to improve central insulin and leptin resistance in obese animal model.  The mechanism was via a decrease in inflammation through decrease in PTP1B protein transcription.
Nathan Goodyear

Articles | Physiological Reports - 0 views

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    4 grams of daily n-3 decreased pulse wave velocity--decreased arteriosclerosis.  No change in blood pressure noted through the change in central pulse pressure.
Nathan Goodyear

Obesity and cortisol - 0 views

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    central and peripheral cortisol are 2 different things as it relates to obesity.  
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