Showing posts with label Natural Medicine. Show all posts
Showing posts with label Natural Medicine. Show all posts

Friday, April 20, 2018

Governments Can’t Stop The Use Of This Cancer Cure … (VIDEO)

Governments Can’t Stop The Use Of This Cancer Cure … (VIDEO) | hemp-cbd-oil-cannabis-oil-medical-marijuana-natural-medicine | Government Government Control Multimedia Natural Medicine Sleuth Journal Special Interests


Cannabis oil is gathering an unstoppable momentum as a world class healer, and there is little or nothing Western Governments are going to be able to do stop it. Cases are popping up all over the world showing that cannabis oil has healed some very serious diseases, including anxiety disorders, epilepsy, MS (Multiple Sclerosis), cerebral palsy and cancer. This young man healed his stage IV throat, stomach and pancreatic cancer with cannabis oil. This Australian women healed her terminal stage IV lung cancer with it. Wallace Rose in the video clip above explains how cannabis oil cured his stage IV pancreatic cancer. It is a fundamental human right, no matter where you live on the planet, to be able to access and use whatever medicine you want to heal yourself. And, thankfully, we are beginning to see that Governments worldwide will not have the power to stand in the way of this natural right any longer.



What’s the Difference among Cannabis, Hemp and Marijuana?


First of all, let’s clear up some definitions. Cannabis sativa is the plant and species; hemp and marijuana are both varieties or subspecies of it. Marijuana is actually a Spanish slang term meaning “Mary-Jane”. Marijuana is simply considered to have a higher THC content than hemp. THC (Tetrahydrocannabinol) is one of the unique phytonutrients or plant chemicals of cannabis. However, both hemp and marijuana contain various cannabinoids, a class of chemicals that activate cell membrane receptors.


A Brief History of the Suppression of Cannabis


To those unfamiliar with the beginning of the United States, it may come as a shock to learn that hemp was a big part of the inception. Not only was hemp (in all of its forms) completely legal, but also it was actually required to be planted by the early colonists! The Founding Fathers made references to it in their writings and grew it themselves. It was widely know that hemp was an incredible plant with a wide variety of uses: textiles, rope, clothing, paper, fuel, nutrition, medicine and recreation. So how did hemp fall from such exalted status to become an illegal “controlled substance”, for which you could be imprisoned due to mere possession of it?


The answer, as with many of aspects of the global conspiracy, comes back to the mega rich and powerful ruling elite families, in this case the Rockefellers. I have written other articles exposing how the Rockefellers invented modern (Western) medicine and created the Big Pharma cartel as a way to sell their petroleum-based drugs. John D. Rockefeller had the reputation as a ruthless businessman who once said, “Competition is sin.” The prohibition movement of the 1920s to ban alcohol was not really about making America more pure or morally upright. It was about the bottom line; Rockefeller wanted to eliminate competition to oil for fuel for motor-based vehicles. Similarly, the movement to ban hemp was also an attempt to destroy competition to oil-based products. Hemp is a powerful competitor to crude oil in many ways. Thus, the propaganda campaign was launched to demonized hemp and marijuana by inventing the fake phenomenon of “reefer madness”. The brainwashing worked and Congress outlawed the plant in various stages, eventually declaring it a controlled substance in 1970.


What is Cannabis Oil?


Cannabis oil is not to be confused with hempseed oil, which is the nutritional oil made from pressing hemp seeds, and is used as a food not a medicine. Medicinal cannabis oil is made by gathering large quantities of cannabis leaves from female plants, using a solvent to strip off some or all of the THC, and boiling off the excess water to produce a rich, gold or brown-colored concentrate. Depending on who is making it, the final product may have little or no THC, the chemical responsible for getting people “high”. For more information on one way to prepare cannabis oil, see Rick Simpson’s Run From The Cure.


Science has not yet discovered all of the hundreds or thousands of cannabis phytonutrients which are responsible for the healing effects of cannabis oil, but one of the main ones is CBD (Cannabidiol). Excitingly, CBD is being studied all over the world as people are beginning to realize its phenomenal healing benefits. Many clinical studies have shown that CBD is a very effective painkiller – especially for peripheral neuropathy associated with diabetes, arthritis, MS, cancer and other neurodegenerative conditions. CBD is especially brilliant because it prevents and suppresses inflammation. This means it is both a preventative and curative natural medicine. Chronic low level inflammation, as you may know, is the hidden cause of much pain and many diseases, so the potential for cannabis oil to help a lot of people is huge.


How Does Cannabis Oil Beat Cancer?


All of the cells in our body have cannabinoid receptor sites, including cells which have gone rogue and become cancerous. The brilliant thing about cannabis oil is that its THC and CBD connect to these cannabinoid receptor sites, causing the cell to increase ceramide, which then causes apoptosis or cell death. However, normal cells are unaffected by this, so cannabis oil is a targeted killer of cancer cells, leaving healthy cells intact. It reminds my very much of laetrile (or amygdalin or Vitamin B17) which functions in exactly the same way with cyanide as a targeted killer of cancer. As Dennis Hill writes, “Nature has designed the perfect medicine that fits exactly with our own immune system of receptors and signaling metabolites to provide rapid and complete immune response for systemic integrity and metabolic homeostasis.”


The Unstoppable Momentum of Cannabis Oil in the US


Due to recent changes in State legislation in 2014, marijuana is now legal in 20 of the 50 states in the USA. In 2 of these states (Colorado and Washington), it is fully legalized for recreational use, with Oregon and Alaska to come, while the other states or territories require a medical marijuana license (you can see the state-by-state details here). So it has already come a long way, and will continue to go much further. I predict at one point it will be legal in all 50 states in the US, and eventually throughout the world. There is already legislation pending in other American states, and the US Federal Government just decided in its 2015 spending measure that it would no longer allocate funds to the DOJ (Department of Justice) to enforce marijuana laws. That’s the beginning of the end of Federal cannabis prohibition!


The Unstoppable Momentum of Cannabis Oil Throughout the World


Many countries around the world are leaning towards legalization, including the Czech Republic, Ecuador, Jamaica, Mexico, Canada, Spain, Argentina and India, according to this article. Uruguay became the first country in 2013 to fully legalize cannabis. It is also legal in North Korea, believe it or not!


The Case of Cannabis Oil Shows the People Have the Power


Cannabis can have healing effects not just as cannabis oil; check out this video showing the power of raw cannabis leaves too. Truth be told, the healing power of cannabis has just barely been tapped. And, for those who don’t need to use cannabis medicinally, why not add it to your diet? The nutritional profile of hemp is unparalleled. Its protein profile is similar to that of human blood. It contains all 8 essential amino acids, as well as 2 key globulins, albumin and edestin (the latter of which is found only in hemp seeds). Edestin is so similar to protein found in the human body that it can actually repair your DNA! Additionally, hemp seeds contain the essential fatty acids linoleic acid (omega-6) and alpha-linoleic acid (omega-3) – in the ideal ratio for optimal health (3:1). These healthy fats reduce inflammation, boost the immune system and are responsible for strong and shiny skin, hair and nails. Hemp seeds have high quantities of iron, magnesium and zinc, and so combat many ailments resulting from a deficiency in these minerals. Other benefits of hemp seeds include reducing craving for junk foods and boosting memory.


The case of cannabis is a further positive indication to me that the NWO elite, the global conspirators, are not as powerful as they would like to think. We the people ultimately have the power, and the truth will ultimately triumph over lies, just as the powerful medicinal value of cannabis has outrun and outstripped the propaganda of “reefer madness”. Sometimes, though, it does take a long time for truth to prevail …


 


The post Governments Can’t Stop The Use Of This Cancer Cure … (VIDEO) appeared first on The Sleuth Journal.

Wednesday, April 18, 2018

Why All Diabetics Should Know About Turmeric

Why All Diabetics Should Know About Turmeric | Diabetics-Turmeric | Natural Medicine Special Interests


Many diabetics already know about the benefits of a low-glycemic diet, but why haven’t they heard about turmeric, one of the world’s most extensively researched anti-diabetic plants?


A literature review published in the International Journal of Endocrinology and Metabolism titled, “Anti-Hyperglycemic Effect and Insulin Sensitizing Effects of Turmeric and Its Principle Constituent Curcumin,” adds promising new support to the notion that the ancient Indian spice turmeric may provide an ideal drug alternative to treating and perhaps even preventing type 2 diabetes, which has become of the world’s most prevalent diagnoses.


The study reviewed research published between 1998 to 2013 that indicates the active polyphenol in turmeric known as curcumin may provide an ideal intervention for type 2 diabetes, capable of mitigating characteristic pathophysiological hallmarks of the disease such as elevated blood sugar (hyperglycemia) and insulin resistance.


Nineteen of the studies reviewed were cell (in vitro) and animal (in vivo), all which showed beneficial effects.  Five of the studies were human clinical trials using turmeric or curcumin, three of which were performed in those with either diabetes or prediabetes.


Amazingly, the animal and cell research literature review concluded that curcumin could improve the type 2 diabetic state through 10 distinctly different mechanisms, such as:



  • Reduction in liver glucose production

  • Reduction in liver glycogen production

  • Stimulation of increased glucose uptake (by increasing GLUT4, GLUT2 and GLUT3 gene expressions)

  • Increasing the activation of AMP kinase

  • Promoting PPAR γ ligand- binding activity

  • Suppressing hyperglycemia-induced inflammatory state

  • Stimulating insulin secretion from pancreatic tissues

  • Improvement in pancreatic cell function,

  • Increasing phosphorylation of AKT

  • Increasing insulin receptor β and reduction of insulin resistance


The human clinical research conducted on diabetic and pre-diabetic patients revealed that curcumin had the following beneficial effects:



  • Glucose lowering effect

  • Improved beta cell function

  • Improved fatty acid oxidation and utilization


One of these studies is especially worth highlighting, as it found a turmeric extract was highly effective in preventing the development of diabetes within pre-diabetic subjects. The study published in 2012, in the American Diabetic Association’s own journal, Diabetes Care, and titled, “Curcumin extract for the prevention of type 2 diabetes,” found that the administration of six capsules containing 250 mg of curcumin daily for 9 months was 100% effective at preventing the development of type 2 diabetes in prediabetics; more specifically: “16.4% of the subjects in the placebo group were diagnosed with T2DM, whereas none were diagnosed with T2DM.”



Observed effects like these are extremely promising when viewed within the context of the highly dismal pharmaceutically-based standard of care. For instance, oral anti-diabetic drugs like metformin are notorious for their serious side effects. They often lower blood sugar, generating the surface appearance of physiological normality, e.g. blood sugar within range, but actually increase morbidity and mortality. With the possibility of deadly side effects, we need natural, safe, affordable and easily accessible alternatives like turmeric now more than ever.


Moreover, despite the well known problem of insulin resistance in type 2 diabetes, recombinant or genetically modified insulin is often used in these patients – a highly illogical and irresponsible approach, and which is endemic to a medical paradigm that does not seek to identity for resolve root causes of disease. A small, but highly concerning recent clinical study found that insulin accelerated the progression of type 2 diabetes, as well as caused type 1 diabetes, or “double diabetes.”


Diabetes is, of course, driven by a dietary pattern that reflects evolutionary mismatch, i.e. the Western diet is a lethal disease vector that has no resemblance to the traditional diet humans consumed for thousands of years, and upon which it still depends for good health. Turmeric, therefore, while an amazing alternative to diabetic drugs, should not be considered a “natural cure”; rather, it is something of a palliative counter-balance to a biologically inappropriate diet, which while far better than pharmaceuticals (learn more by reading: Science Confirms Turmeric As Effective As 14 Drugs), still needs to be part of a broader, more holistic plan that takes into account diet, exercise, toxicant exposure, and mind-body/emotional factors that underpin well-being and contribute significantly to most dis-eases.


For more information on the therapeutic value of turmeric/curcumin diabetes, read our previous articles on the topic:



Learn even more by viewing the firsthand research on the anti-type 2 diabetic effects of turmeric by viewing these 23 studies, as well as visiting our Blood Sugar Disorder research page, which covers natural health information on both type 1 and type 2 diabetes.


The post Why All Diabetics Should Know About Turmeric appeared first on The Sleuth Journal.

Thursday, April 12, 2018

The Dark Side of Wheat – New Perspectives On Celiac Disease and Wheat Intolerance

The Dark Side of Wheat - New Perspectives On Celiac Disease and Wheat Intolerance | Dark-side-of-Wheat | General Health Natural Medicine Sleuth Journal Special Interests


The globe-spanning presence of wheat and its exalted status among secular and sacred institutions alike differentiates this food from all others presently enjoyed by humans. Yet the unparalleled rise of wheat as the very catalyst for the emergence of ancient civilization has not occurred without a great price 


While wheat was the engine of civilization’s expansion and was glorified as a “necessary food,” both in the physical (staff of life) and spiritual sense (the body of Christ), those suffering from celiac disease are living testimony to the lesser known dark side of wheat. A study of celiac disease and may help unlock the mystery of why modern man, who dines daily at the table of wheat, is the sickest animal yet to have arisen on this strange planet of ours.


The Celiac Iceberg


Celiac disease (CD) was once considered an extremely rare affliction, limited to individuals of European descent. Today, however, a growing number of studies indicate that celiac disease is found throughout the world at a rate of up to 1 in every 100 persons, which is several orders of magnitude higher than previously estimated.   


These findings have led researchers to visualize CD as an iceberg. The tip of the iceberg represents the relatively small number of the world’s population whose gross presentation of clinical symptoms often leads to the diagnosis of celiac disease. This is the classical case of CD characterized by gastrointestinal symptoms, malabsorption and malnourishment. It is confirmed with the “gold standard” of an intestinal biopsy. The submerged middle portion of the iceberg is largely invisible to classical clinical diagnosis, but not to modern serological screening methods in the form of antibody testing. This middle portion is composed of asymptomatic and latent celiac disease as well as “out of the intestine” varieties of wheat intolerance. Finally, at the base of this massive iceberg sits approximately 20-30% of the world’s population – those who have been found to carry the HLA-DQ locus of genetic susceptibility to celiac disease on chromosome 6.*


The “Celiac Iceberg” may not simply illustrate the problems and issues associated with diagnosis and disease prevalence, but may represent the need for a paradigm shift in how we view both CD and wheat consumption among non-CD populations.


First let us address the traditional view of CD as a rare, but clinically distinct species of genetically-determined disease, which I believe is now running itself aground upon the emerging, post-Genomic perspective, whose implications for understanding and treating disease are Titanic in proportion. 


It Is Not In the Genes, But What We Expose Them To


Despite common misconceptions, monogenic diseases, or diseases that result from errors in the nucleotide sequence of a single gene are exceedingly rare. Perhaps only 1% of all diseases fall within this category, and Celiac disease is not one of them. In fact, following the completion of the Human Genome Project (HGP) in 2003 it is no longer accurate to say that our genes “cause” disease, any more than it is accurate to say that DNA alone is sufficient to account for all the proteins in our body. Despite initial expectations, the HGP revealed that there are only 20,000-25,000 genes in human DNA (genome), rather than the 100,000 + believed necessary to encode the 100,000 + proteins found in the human body (proteome).


The “blueprint” model of genetics: one gene → one protein → one cellular behavior, which was once the holy grail of biology, has now been supplanted by a model of the cell where epigenetic factors (literally: “beyond the control of the gene”) are primary in determining how DNA will be interpreted, translated and expressed. A single gene can be used by the cell to express a multitude of proteins and it is not the DNA alone that determines how or what genes will be expressed. Rather, we must look to the epigenetic factors to understand what makes a liver cell different from a skin cell or brain cell. All of these cells share the exact same 3 billion base pairs that make up our genome, but it is the epigenetic factors, e.g. regulatory proteins and post-translational modifications, that make the determination as to which genes to turn on and which to silence, resulting in each cell’s unique phenotype. Moreover, epigenetic factors are directly and indirectly influenced by the presence or absence of key nutrients in the diet, as well as exposures to chemicals, pathogens and other environmental influences. 


In a nutshell, what we eat and what we are exposed to in our environment directly affects our DNA and its expression.


Within the scope of this new perspective even classical monogenic diseases like cystic fibrosis (CF) can be viewed in a new, more promising light. In CF many of the adverse changes that result from the defective expression of the Cystic Fibrosis Transmembrane Conductance Regulator (CFTR) gene may be preventable or reversible, owing to the fact that the misfolding of the CFTR gene product has been shown to undergo partial or full correction (in the rodent model) when exposed to phytochemicals found in turmeric, cayenne, and soybean Moreover, nutritional deficiencies of seleniun, zinc, riboflavin, vitamin e, etc. in the womb or early in life, may “trigger” the faulty expression or folding patterns of the CFTR gene in cystic fibrosis which might otherwise have avoided epigenetic activation. This would explain why it is possible to live into one’s late seventies with this condition, as was the case for Katherine Shores (1925-2004). The implications of these findings are rather extraordinary: epigenetic and not genetic factors are primary in determining disease outcome. Even if we exclude the possibility of reversing certain monogenic diseases, the basic lesson from the post-Genomic era is that we can’t blame our DNA for causing disease. Rather, it may have more to do with what we choose to expose our DNA to.


Celiac Disease Revisited


What all of this means for CD is that the genetic susceptibility locus, HLA-DQ, does not by itself determine the exact clinical outcome of the disease. Instead of being ‘the cause,’ the HLA genes may be activated as a consequence of the disease process. Thus, we may need to shift our epidemiological focus from viewing this as a classical “disease” involving a passive subject controlled by aberrant genes, to viewing it as an expression of a natural, protective response to the ingestion of something that the human body was not designed to consume.


If we view celiac disease not as an unhealthy response to a healthy food, but as a healthy response to an unhealthy food, classical CD symptoms like diarrhea may make more sense. Diarrhea can be the body’s way to reduce the duration of exposure to a toxin or pathogen, and villous atrophy can be the body’s way of preventing the absorption and hence, the systemic effects of chronic exposure to wheat. 


I believe we would be better served by viewing the symptoms of CD as expressions of bodily intelligence rather than deviance. We must shift the focus back to the disease trigger, which is wheat itself.


People with celiac disease may actually have an advantage over the apparently non-afflicted because those who are “non-symptomatic” and whose wheat intolerance goes undiagnosed or misdiagnosed because they lack the classical symptoms and may suffer in ways that are equally or more damaging, but expressed more subtly, or in distant organs. Within this view celiac disease would be redefined as a protective (healthy?) response to exposure to an inappropriate substance, whereas “asymptomatic” ingestion of the grain with its concomitant “out of the intestine” and mostly silent symptoms, would be considered the unhealthy response insofar as it does not signal in an obvious and acute manner that there is a problem with consuming wheat. 


It is possible that celiac disease represents both an extreme reaction to a global, species-specific intolerance to wheat that we all share in varying degrees. CD symptoms may reflect the body’s innate intelligence when faced with the consumption of a substance that is inherently toxic. Let me illustrate this point using wheat germ agglutinin (WGA), as an example. 


WGA is classified as a lectin and is known to play a key role in kidney pathologies, such as IgA nephropathy. In the article: “Do dietary lectins cause disease?” the Allergist David L J Freed points out that WGA binds to “glomerular capillary walls, mesangial cells and tubules of human kidney and (in rodents) binds IgA and induces IgA mesangial deposits,” indicating that wheat consumption may lead to kidney damage in susceptible individuals. Indeed, a study from the Mario Negri Institute for Pharmacological Research in Milan Italy published in 2007 in the International Journal of Cancer looked at bread consumption and the risk of kidney cancer. They found that those who consumed the most bread had a 94% higher risk of developing kidney cancer compared to those who consumed the least bread. Given the inherently toxic effect that WGA may have on kidney function, it is possible that in certain genetically predisposed individuals (e.g. HLA-DQ2/DQ8) the body – in its innate intelligence – makes an executive decision: either continue to allow damage to the kidneys (or possibly other organs) until kidney failure and rapid death result, or launch an autoimmune attack on the villi to prevent the absorption of the offending substance which results in a prolonged though relatively malnourished life. This is the explanation typically given for the body’s reflexive formation of mucous following exposure to certain highly allergenic or potentially toxic foods, e.g. dairy products, sugar, etc? The mucous coats the offending substance, preventing its absorption and facilitating safe elimination via the gastrointestinal tract. From this perspective the HLA-DQ locus of disease susceptibility in the celiac is not simply activated but utilized as a defensive adaptation to continual exposure to a harmful substance. In those who do not have the HLA-DQ locus, an autoimmune destruction of the villi will not occur as rapidly, and exposure to the universally toxic effects of WGA will likely go unabated until silent damage to distant organs leads to the diagnosis of a disease that is apparently unrelated to wheat consumption.  


Loss of kidney function may only be the “tip of the iceberg,” when it comes to the possible adverse effects that wheat proteins and wheat lectin can generate in the body. If kidney cancer is a likely possibility, then other cancers may eventually be linked to wheat consumption as well. This correlation would fly in the face of globally sanctioned and reified assumptions about the inherent benefits of wheat consumption. It would require that we suspend cultural, socio-economic, political and even religious assumptions about its inherent benefits. In many ways, the reassessment of the value of wheat as a food requires a William Boroughs-like moment of shocking clarity when we perceive “in a frozen moment….what is on the end of every fork.” Let’s take a closer look at what is on the end of our forks.


Our Biologically Inappropriate Diet


In a previous article, I discussed the role that wheat plays as an industrial adhesive (e.g. paints, paper mache’, and book binding-glue) in order to illustrate the point that it may not be such a good thing for us to eat. The problem is implicit in the word gluten, which literally means “glue” in Latin and in words like pastry and pasta, which derives from wheatpaste, the original concoction of wheat flour and water which made such good plaster in ancient times. What gives gluten its adhesive and difficult-to-digest qualities are the high levels of disulfide bonds it contains. These same sulfur-to-sulfur bonds are found in hair and vulcanized rubber products, which we all know are difficult to decompose and are responsible for the sulfurous odor they give off when burned. 


There will be 676 million metric tons of wheat produced this year alone, making it the primary cereal of temperate regions and third most prolific cereal grass on the planet. This global dominance of wheat is signified by the Food & Agricultural Organization’s (FAO) (the United Nation’s international agency for defeating hunger) use of a head of wheat as its official symbol. Any effort to indict the credibility of this “king of grains” will prove challenging. As Rudolf Hauschka once remarked, wheat is “a kind of earth-spanning organism.” It has vast socio-economic, political, and cultural significance. For example, in the Catholic Church, a wafer made of wheat is considered irreplaceable as the embodiment of Christ.


Our dependence on wheat is matched only by its dependence on us. As Europeans have spread across the planet, so has this grain. We have assumed total responsibility for all phases of the wheat life cycle: from fending off its pests; to providing its ideal growing conditions; to facilitating reproduction and expansion into new territories. We have become so inextricably interdependent that neither species is sustainable at current population levels without this symbiotic relationship.  


It is this co-dependence that may explain why our culture has for so long consistently confined wheat intolerance to categorically distinct, “genetically-based” diseases like “celiac.” These categorizations may protect us from the realization that wheat exerts a vast number of deleterious effects on human health in the same way that “lactose intolerance” distracts attention from the deeper problems associated with the casein protein found in cow’s milk. Rather than see wheat for what it very well may be: a biologically inappropriate food source, we “blame the victim,” and look for genetic explanations for what’s wrong with small subgroups of our population who have the most obvious forms of intolerance to wheat consumption, e.g. celiac disease, dermatitis herpetiformis, etc.   The medical justification for these classifications may be secondary to economic and cultural imperatives that require the inherent problems associated with wheat consumption be minimized or occluded.


In all probability the celiac genotype represents a surviving vestigial branch of a once universal genotype, which through accident or intention, have had through successive generations only limited exposure to wheat. The celiac genotype, no doubt, survived through numerous bottlenecks or “die offs” represented by a dramatic shift from hunted and foraged/gathered foods to gluten-grain consumption, and for whatever reason simply did not have adequate time to adapt or select out the gluten-grain incompatible genes. The celiac response may indeed reflect a prior, species-wide intolerance to a novel food source: the seed storage form of the monocotyledonous cereal grasses which our species only began consuming 1-500 generations ago at the advent of the Neolithic transition (10-12,000 BC). Let us return to the image of the celiac iceberg for greater clarification.


Our Submerged Grain-Free Prehistory


The iceberg metaphor is an excellent way to expand our understanding of what was once considered to be an extraordinarily rare disease into one that has statistical relevance for us all, but it has a few limitations. For one, it reiterates the commonly held view that Celiac is a numerically distinct disease entity or “disease island,” floating alongside other numerically distinct disease “ice cubes” in the vast sea of normal health. Though accurate in describing the sense of social and psychological isolation many of the afflicted feel, the celiac iceberg/condition may not be a distinct disease entity at all. 


Although the HLA-DQ locus of disease susceptibility on chromosome 6 offers us a place to project blame, I believe we need to shift the emphasis of responsibility for the condition back to the disease “trigger” itself: namely, wheat and other prolamine rich grains, e.g. barley, rye, spelt, and oats. Without these grains the typical afflictions we call celiac would not exist. Within the scope of this view the “celiac iceberg” is not actually free floating but an outcropping from an entire submerged subcontinent, representing our long-forgotten (cultural time) but relatively recent metabolic prehistory as hunters-and-gatherers (biological time), where grain consumption was, in all likelihood, non-existent, except in instances of near-starvation.


The pressure on the celiac to be viewed as an exceptional case or deviation may have everything to do with our preconscious belief that wheat, and grains as a whole are the “health foods,” and very little to do with a rigorous investigations of the facts.


Grains have been heralded since time immemorial as the “staff of life,” when in fact they are more accurately described as a cane, precariously propping up a body starved of the nutrient-dense, low-starch vegetables, fruits, edible seeds and meats, they have so thoroughly supplanted (c.f. Paleolithic Diet). Most of the diseases of affluence, e.g. type 2 diabetes, coronary heart disease, cancer, etc. can be linked to the consumption of a grain-based diet, including secondary “hidden sources” of grain consumption in grain-fed fish, poultry, meat and milk products.


Our modern belief that grains make for good food, is simply not supported by the facts. The cereal grasses are within an entirely different family: monocotyledonous (one leafed embryo) than that from which our body sustained itself for millions of years: dicotyledonous (two leafed embryo). The preponderance of scientific evidence points to a human origin in the tropical rainforests of Africa where dicotyledonous fruits would have been available for year round consumption. It would not have been monocotyledonous plants, but the flesh of hunted animals that would have allowed for the migration out of Africa 60,000 years ago into the northern latitudes where vegetation would have been sparse or non-existent during winter months. Collecting and cooking grains would have been improbable given the low nutrient and caloric content of grains and the inadequate development of pyrotechnology and associated cooking utensils necessary to consume them with any efficiency. It was not until the end of the last Ice Age 20,000 years ago that our human ancestors would have slowly transitioned to a cereal grass based diet coterminous with emergence of civilization. 20,000 years is probably not enough time to fully adapt to the consumption of grains. Even animals like cows with a head start of thousands of years, having evolved to graze on monocotyledons and equipped as ruminants with the four-chambered fore-stomach enabling the breakdown of cellulose and anti-nutrient rich plants, are not designed to consume grains. Cows are designed to consume the sprouted mature form of the grasses and not their seed storage form. Grains are so acidic/toxic in reaction that exclusively grain-fed cattle are prone to developing severe acidosis and subsequent liver abscesses and infections, etc. Feeding wheat to cattle provides an even greater challenge:


Beef: Feeding wheat to ruminants requires some caution as it tends to be more apt than other cereal grains to cause acute indigestion in animals which are unadapted to it. The primary problem appears to be the high gluten content of which wheat in the rumen can result in a “pasty” consistency to the rumen contents and reduced rumen motility. – (source: Ontario ministry of Agriculture food & Rural affairs)


Seeds, after all, are the “babies” of these plants, and are invested with not only the entire hope for continuance of its species, but a vast armory of anti-nutrients to help it accomplish this task: toxic lectins, phytates and oxalates, alpha-amalyase and trypsin inhibitors, and endocrine disrupters. These not so appetizing phytochemicals enable plants to resist predation of their seeds, or at least preventing them from “going out without a punch.”  


Wheat: An Exceptionally Unwholesome Grain


Wheat presents a special case insofar as wild and selective breeding has produced variations which include up to 6 sets of chromosomes (3x the human genome worth!) capable of generating a massive number of proteins each with a distinct potentiality for antigenicity. Common bread wheat (Triticum aestivum), for instance, has over 23,788 proteins cataloged thus far. In fact, the genome for common bread wheat is actually 6.5 times larger than that of the human genome!


With up to a 50% increase in gluten content of some varieties of wheat, it is amazing that we continue to consider “glue-eating” a normal behavior, whereas wheat-avoidance is left to the “celiac” who is still perceived by the majority of health care practitioners as mounting a “freak” reaction to the consumption of something intrinsically wholesome.


Thankfully we don’t need to rely on our intuition, or even (not so) common sense to draw conclusions about the inherently unhealthy nature of wheat. A wide range of investigation has occurred over the past decade revealing the problem with the alcohol soluble protein component of wheat known as gliadin, the sugar-binding protein known as lectin (Wheat Germ Agglutinin), the exorphin known as gliadomorphin, and the excitotoxic potentials of high levels of aspartic and glutamic acid found in wheat. Add to these the anti-nutrients found in grains such as phytates, enzyme inhibitors, etc. and you have a substance which we may more appropriately consider the farthest thing from wholesome. 


The remainder of this article will demonstrate the following adverse effects of wheat on both celiac and non-celiac populations: 1) wheat causes damage to the intestines 2) wheat causes intestinal permeability 3) wheat has pharmacologically active properties 4) wheat causes damage that is “out of the intestine” affecting distant organs 5) wheat induces molecular mimicry 6) wheat contains high concentrations of excitoxins.


1) WHEAT GLIADIN CREATES IMMUNE MEDIATED DAMAGE TO THE INTESTINES


Gliadin is classified as a prolamin, which is a wheat storage protein high in the amino acids proline and glutamine and soluble in strong alcohol solutions. Gliadin, once deamidated by the enzyme Tissue Transglutaminase, is considered the primary epitope for T-cell activation and subsequent autoimmune destruction of intestinal villi. Yet gliadin does not need to activate an autoimmune response, e.g. Celiac disease, in order to have a deleterious effect on intestinal tissue.


In a study published in GUT in 2007 a group of researchers asked the question: “Is gliadin really safe for non-coeliac individuals?” In order to test the hypothesis that an innate immune response to gliadin is common in patients with celiac disease and without celiac disease, intestinal biopsy cultures were taken from both groups and challenged with crude gliadin, the gliadin synthetic 19-mer (19 amino acid long gliadin peptide) and 33-mer deamidated peptides. Results showed that all patients with or without Celiac disease when challenged with the various forms of gliadin produced an interleukin-15-mediated response. The researchers concluded:


“The data obtained in this pilot study supports the hypothesis that gluten elicits its harmful effect, throughout an IL15 innate immune response, on all individuals [my italics].”


The primary difference between the two groups is that the celiac disease patients experienced both an innate and an adaptive immune response to the gliadin, whereas the non-celiacs experienced only the innate response. The researchers hypothesized that the difference between the two groups may be attributable to greater genetic susceptibility at the HLA-DQ locus for triggering an adaptive immune response, higher levels of immune mediators or receptors, or perhaps greater permeability in the celiac intestine. It is possible that over and above the possibility of greater genetic susceptibility, most of the differences are from epigenetic factors that are influenced by the presence or absence of certain nutrients in the diet. Other factors such as exposure to NSAIDs like naproxen or aspirin can profoundly increase intestinal permeability in the non-celiac, rendering them susceptible to gliadin’s potential for activating secondary adaptive immune responses. This may explain why in up to 5% of all cases of classically defined celiac disease the typical HLA-DQ haplotypes are not found. However, determining the factors associated greater or lesser degrees of susceptibility to gliadin’s intrinsically toxic effect should be a secondary to the fact that it is has been demonstrated to be toxic to both non-celiacs and celiacs. 


2) WHEAT GLIADIN CREATES INTESTINAL PERMEABILITY


Gliadin upregulates the production of a protein known as zonulin, which modulates intestinal permeability. Over-expression of zonulin is involved in a number of autoimmune disorders, including celiac disease and Type 1 diabetes. Researchers have studied the effect of gliadin on increased zonulin production and subsequent gut permeability in both celiac and non-celiac intestines, and have found that “gliadin activates zonulin signaling irrespective of the genetic expression of autoimmunity, leading to increased intestinal permeability to macromolecules.”10 These results indicate, once again, that a pathological response to wheat gluten is a normal or human, species specific response, and is not based entirely on genetic susceptibilities. Because intestinal permeability is associated with wide range of disease states, including cardiovascular illness, liver disease and many autoimmune disorders, I believe this research indicates that gliadin (and therefore wheat) should be avoided as a matter of principle.


3) WHEAT GLIADIN HAS PHARMACOLOGICAL PROPERTIES


Gliadin can be broken down into various amino acid lengths or peptides. Gliadorphin is a 7 amino acid long peptide: Tyr-Pro-Gln-Pro-Gln-Pro-Phe which forms when the gastrointestinal system is compromised. When digestive enzymes are insufficient to break gliadorphin down into 2-3 amino acid lengths and a compromised intestinal wall allows for the leakage of the entire 7 amino acid long fragment into the blood, glaidorphin can pass through to the brain through circumventricular organs and activate opioid receptors resulting in disrupted brain function. 


There have been a number of gluten exorphins identified: gluten exorphin A4, A5, B4, B5 and C, and many of them have been hypothesized to play a role in autismschizophreniaADHD and related neurological conditions. In the same way that the celiac iceberg illustrated the illusion that intolerance to wheat is rare, it is possible, even probable, that wheat exerts pharmacological influences on everyone. What distinguishes the schizophrenic or autistic individual from the functional wheat consumer is the degree to which they are affected.


Below the tip of the “Gluten Iceberg,” we might find these opiate-like peptides to be responsible for bread’s general popularity as a “comfort food”, and our use of phrases like “I love bread,” or “this bread is to die for” to be indicative of wheat’s narcotic properties. I believe a strong argument can be made that the agricultural revolution that occurred approximately 10-12,000 years ago as we shifted from the Paleolithic into the Neolithic era was precipitated as much by environmental necessities and human ingenuity, as it was by the addictive qualities of psychoactive peptides in the grains themselves.  


The world-historical reorganization of society, culture and consciousness accomplished through the symbiotic relationship with cereal grasses, may have had as much to do with our ability to master agriculture, as to be mastered by it. The presence of pharmacologically active peptides would have further sweetened the deal, making it hard to distance ourselves from what became a global fascination with wheat.


An interesting example of wheat’s addictive potential pertains to the Roman army. The Roman Empire was once known as the “Wheat Empire,” with soldiers being paid in wheat rations. Rome’s entire war machine, and its vast expansion, was predicated on the availability of wheat. Forts were actually granaries, holding up to a year’s worth of grain in order to endure sieges from their enemies. Historians describe soldiers’ punishment included being deprived of wheat rations and being given barley instead.   The Roman Empire went on to facilitate the global dissemination of wheat cultivation which fostered a form of imperialism with biological as well as cultural roots.


The Roman appreciation for wheat, like our own, may have had less to do with its nutritional value as “health food” than its ability to generate a unique narcotic reaction. It may fulfill our hunger while generating a repetitive, ceaseless cycle of craving more of the same, and by doing so, enabling the surreptitious control of human behavior. Other researchers have come to similar conclusions. According to the biologists Greg Wadley & Angus Martin:


“Cereals have important qualities that differentiate them from most other drugs. They are a food source as well as a drug, and can be stored and transported easily. They are ingested in frequent small doses (not occasional large ones), and do not impede work performance in most people. A desire for the drug, even cravings or withdrawal, can be confused with hunger. These features make cereals the ideal facilitator of civilization (and may also have contributed to the long delay in recognizing their pharmacological properties).”


4) WHEAT LECTIN (WGA) DAMAGES OUR TISSUE


Wheat contains a lectin known as Wheat Germ Agglutinin which is responsible for causing direct, non-immune mediated damage to our intestines, and subsequent to entry into the bloodstream, damage to distant organs in our body. 


Lectins are sugar-binding proteins which are highly selective for their sugar moieties. It is believed that wheat lectin, which binds to the monosaccharide N-acetyl glucosamine (NAG), provides defense against predation from bacteria, insects and animals. Bacteria have NAG in their cell wall, insects have an exoskeleton composed of polymers of NAG called chitin, and the epithelial tissue of mammals, e.g. gastrointestinal tract, have a “sugar coat” called the glycocalyx which is composed, in part, of NAG. The glycocalyx can be found on the outer surface (apical portion) of the microvilli within the small intestine.


There is evidence that WGA may cause increased shedding of the intestinal brush border membrane, reduction in surface area, acceleration of cell losses and shortening of villi, via binding to the surface of the villi. WGA can mimic the effects of epidermal growth factor (EGF) at the cellular level, indicating that the crypt hyperplasia seen in celiac disease may be due to a mitogenic reponse induced by WGA. WGA has been implicated in obesity and “leptin resistance” by blocking the receptor in the hypothalamus for the appetite satiating hormone leptin. WGA has also been shown to have an insulin-mimetic action, potentially contributing to weight gain and insulin resistance.15 And, as discussed earlier, wheat lectin has been shown to induce IgA mediated damage to the kidney, indicating that nephropathy and kidney cancer may be associated with wheat consumption.


5) WHEAT PEPTIDES EXHIBIT MOLECULAR MIMICRY


Gliadorphin and gluten exporphins exhibit a form of molecular mimicry that affects the nervous system, but other wheat proteins effect different organ systems. The digestion of gliadin produces a peptide that is 33 amino acids long and is known as 33-mer which has a remarkable homology to the internal sequence of pertactin, the immunodominant sequence in the Bordetella pertussis bacteria (whooping cough). Pertactin is considered a highly immunogenic virulence factor, and is used in vaccines to amplify the adaptive immune response. It is possible the immune system may confuse this 33-mer with a pathogen resulting in either or both a cell-mediated and adaptive immune response against Self.  


6) WHEAT CONTAINS HIGH LEVELS OF EXCITO-TOXINS


John B. Symes, D.V.M. is responsible for drawing attention to the potential excitotoxicity of wheat, dairy, and soy, due to their exceptionally high levels of the non-essential amino acids glutamic and aspartic acid. Excitotoxicity is a pathological process where glutamic and aspartic acid cause an over-activation of the nerve cell receptors (e.g. NMDA and AMPA receptor) leading to calcium induced nerve and brain injury. Of all cereal grasses commonly consumed wheat contains the highest levels of glutamic acid and aspartic acid. Glutamic acid is largely responsible for wheat’s exceptional taste. The Japanese coined the word umami to describe the extraordinary “yummy” effect that glutamic acid exerts on the tongue and palate, and invented monosodium glutamate (MSG) to amplify this sensation. Though the Japanese first synthesized MSG from kelp, wheat can also be used due to its high glutamic acid content. It is likely that wheat’s popularity, alongside its opiate-like activity, has everything to do with the natural flavor-enhancers already contained within it. These amino acids may contribute to neurodegenerative conditions such as multiple sclerosis, Alzhemier diseaseHuntington’s disease, and other nervous disorders such as epilepsyattention deficit disorder and migraines.


CONCLUSION


In this article I have proposed that celiac disease be viewed not as a rare “genetically-determined” disorder, but as an extreme example of our body communicating to us a once universal, species-specific affliction: severe intolerance to wheat. Celiac disease reflects back to us how profoundly our diet has diverged from what was, until only recently a grain free diet, and even more recently, a wheat free one. We are so profoundly distanced from that dramatic Neolithic transition in cultural time that “missing is any sense that anything is missing.” The body, on the other hand, cannot help but remember a time when cereal grains were alien to the diet, because in biological time it was only moments ago.


Eliminating wheat, if not all of the members of the cereal grass family, and returning to dicotyledons or pseudo-grains like quinoa, buckwheat and amaranth, may help us roll back the hands of biological and cultural time, to a time of clarity, health and vitality that many of us have never known before. When one eliminates wheat and fills the void left by its absence with fruits, vegetables, high quality meats and foods consistent with our biological needs we may begin to feel a sense of vitality that many would find hard to imagine. If wheat really is more like a drug than a food, anesthetizing us to its ill effects on our body, it will be difficult for us to understand its grasp upon us unless and until we eliminate it from our diet. I encourage everyone to see celiac disease not as a condition alien to our own. Rather, the celiac gives us a glimpse of how profoundly wheat may distort and disfigure our health if we continue to expose ourselves to its ill effects. I hope this article will provide inspiration for non-celiacs to try a wheat free diet and judge for themselves if it is really worth eliminating.  


A critically acclaimed internet classic, The Dark Side of Wheat is now available to own as a downloadable document exclusively from GreenMedInfo.com. Members receive it free, along with $300 of additional content. It includes two hard-hitting essays that represent a seachange in the way wheat intolerance is comprehended; no longer a rare, strictly genetically-based disease, wheat is revealed to be a species-specific intolerance, whose role in health and disease has been greatly misunderstood since ancient times. The downloadable document also includes a 90-page quick reference guide containing hyperlinks to research on the National Library of Medicine on over 120 diseases that have been linked to wheat consumption.


The Dark Side of Wheat has changed many minds about the exalted status of wheat among secular and sacred institutions alike.


As Dr. Ron Hoggan, co-author of “Dangerous Grains” puts it in the foreword: “Sir Isaac Newton’s famous metaphor (perhaps quoting others) said something to the effect that we see further, not because of any special endowment of our own, but because we are standing on the shoulders of giants. After reading Sayer’s work on wheat, I felt as if I had just been boosted to a higher plane from which I could see and understand much, much more. Sayer’s insights continue to shape and inform much of my effort to understand the various impacts of grains on human health.”


Click here to read a sample of this document.




REFERENCES


Genome screening of coeliac disease


Celiac disease: an emerging global problem Journal of Pediatric Gastroenterology and Nutrition 2002 Oct; 35 (4): 472-4


2 Richard Logan is responsible for first introducing the “Celiac Iceberg” metaphor in 1991


3 Antibody testing for gliadin, tissue transglutaminase and endomysium indicates that “silent” or “latent” celiac disease is up to a 100 times more frequent than represented by the classical form.


Frontiers in Celiac Disease by Alessio Fasano, R. Troncone, D. Branski  Published by Karger Publishers, pg. 242


5 See: www.patienthealthyself.info/Cystic_Fibrosis.html for Medline citations.


6 Cystic Fibrosis: a perinatal manifestation of selenium deficiency. Wallach JD, Germaise B. In: Hemphill DD, ed. Trace substances in environmental health. Columbia: University of Missouri Press, 1979; 469-76


Genetic dissection between silent and clinically diagnosed symptomatic forms of coeliac disease in multiplex  families. Digestive and Liver Disease 2002 Dec;34(12):842-5.


Coelionomics”: towards understanding the molecular pathology of coeliac disease. Clinical Chemistry and Laboratory Medicine 2005;43(7):685-95.


Is gliadin really safe for non-coeliac individuals? Gut 2007;56:889-890; doi:10.1136/gut.2006.


10 “Do Dietary Lectins cause disease?” David L J Freed, BMJ 1999;318:1023-1024


11 “Food groups and renal cell carcinoma: a case-control study from Italy.” International Journal of Cancer 2007 Feb 1;120(3):681-5.


12 Unglued: The Sticky Truth About Wheat, Dairy, Corn and Soy. Scott-Free Newsletter, Autumn 2008


13 Exploring the Plant Transcriptome through Phylogenetic Profiling. Plant Physiology Vol. 137, 2005; pg. 33


14 An Introduction to Genetic Engineering. By Desmond S. T. Nicholl, Cambridge University Press, 2002, pg. 24


15 Genetic dissection between silent and clinically diagnosed symptomatic forms of coeliac disease in multiplex  families. Digestive and Liver Disease 2002 Dec;34(12):842-5.


16 “Gliadin, zonulin and gut permeability: Effects on celiac and non-celiac intestinal mucosa and intestinal cell  lines.” Scandinavian Journal of Gastroenterology Apr;41(4):408-19.


17 “The origins of agriculture ? a biological perspective and a new hypothesis” by Greg Wadley & Angus Martin,Australian Biologist 6:96- 105, June 1993


18 In vivo responses of rat intestinal epithelium to intraluminal dietary lectins. Gastroenterology. 1982 May;82(5 Pt 1):838-48.


19 Elevated levels of serum antibodies to the lectin wheat germ agglutinin in celiac children lend support to the  gluten-lectin theory of celiac disease. Pediatric Allergy Immunology 1995 May;6(2):98-102.


20 Agrarian diet and diseases of affluence – Do evolutionary novel dietary lectins cause leptin resistance BMC Endocrine Disorders 2005, 5:10


21 Insulin-mimetic actions of wheat germ agglutinin and concanavalin A on specific mRNA levels. Archives of Biochemistry and Biophysics 1987 Apr;254(1):110-5.


© April 12, 2018 GreenMedInfo LLC. This work is reproduced and distributed with the permission of GreenMedInfo LLC. Want to learn more from GreenMedInfo? Sign up for the newsletter here http://www.greenmedinfo.com/greenmed/newsletter.


The post The Dark Side of Wheat – New Perspectives On Celiac Disease and Wheat Intolerance appeared first on The Sleuth Journal.

Tuesday, April 10, 2018

Turmeric Rich Curry’s Amazing Artery-Opening Properties

Turmeric Rich Curry


Did you know that a single culinary serving of spices in the form of curry can dilate your arteries, preventing the cardiovascular harms associated with eating common foods?


While spices are thought of mainly as culinary agents for the aesthetical enhancement of the flavor of food, they are also powerful medicinal agents, and in certain respects may actually mitigate the harms of things we like to eat that may not be as good for us as their pleasurable tastes and textures would have us believe.


A recent study published in Nutrition Journal titled, “A single consumption of curry improved postprandial endothelial function in healthy male subjects: a randomized, controlled crossover trial,” brought home exactly this point. Moreover, it reveals that certain culinary formulas, sometimes handed down through countless generations, may have indispensable value for our health. Interestingly, we find this concept echoed in the word recipe itself, whose first recorded use in Mid 16-century French literally means “medical prescription.”


A curry is essentially a blend of various spices used as a sauce in dishes, and in the case of this study’s tested formula, a traditional Japanese combination was used containing the following 8 herbs:  Clovecoriandercumingarlicgingeronionred pepperturmeric. [Note: click the hyperlinks of the preceding 8 herbs to view the extensive database of healing properties we have amassed on each one]  Interesting, Japanese curry was actually introduced to Japan by the British during the Meiji period (1868–1912) when India was still under colonial rule, making it a “Western” influence there, even though it ultimately originated in the Indian subcontinent and Southeast Asia.


In the study, researchers tested 14 healthy male subjects with an average age of 45 years, who were given either a single serving of curry meal or spice-free control meal (180 g of curry or control and 200 g of cooked rice; approximately 500 kcal in total). Researchers then tested what happened to the blood vessels of subjects before and consuming either meal.


Turmeric Rich Curry


A variety of Indian curries. Image Source: Wikicommons.


Based on post-meal measurements of the ability of blood to pass through the blood vessels (postprandial flow-mediated vasodilation (FMD)) and other parameters, clearly the consumption of curry increased the blood flow through the blood vessels (increased FMD), whereas the consumption of the curry-free control meal resulted in a decrease in blood flow (decreased FMD). More specifically, the results were reported as follows:



The consumption of the control meal decreased FMD from 5.8 ± 2.4% to 5.1 ± 2.3% (P = 0.039). On the other hand, the consumption of the curry meal increased FMD from 5.2 ± 2.5% to 6.6 ± 2.0% (P = 0.001), and the postprandial FMD after the curry meal was higher than that after the control meal (P = 0.002). Presence of spices in the curry did not alter significantly the systemic and forearm hemodynamics, or any biochemical parameters including oxidative stress markers measured.”



The researchers concluded that curry prevented the negative effects of the meal upon post-meal “endothelial function,” that is, it prevented the inner lining (endothelium) of the blood vessels from contracting and inhibiting the normal flow of blood throughout the cardiovascular system. They surmised that the antioxidant activity of the spices likely are responsible for the observed positive outcomes, possibly through blunting the post-meal increases in blood sugar and/or oxidative stress. They summarized their findings:


Curry consumption ameliorates postprandial endothelial dysfunction and may be beneficial for preventing cardiovascular events. Lifestyle-related diseases such as atherosclerosis and diabetes mellitus have become serious health problems in the modern world. Curry may be helpful in the fight against those lifestyle-related diseases.”


The reason why this finding is highly relevant to concerns about cardiovascular function is because atherosclerosis — the so-called “hardening of the arteries” — takes decades to develop within the system, often completely without symptoms, and one of the characteristic predisposing features of this pathological process is endothelial dysfunction, often starting with the inability of the blood vessels to fully relax when confronted with any number of stressors – dietary incompatibilities (e.g. wheat) and deficiencies (e.g. magnesium), environmental (e.g. smoking), infectious (e.g. periodontal pathogens), and psychological (e.g. stress) — and resultant damage incurred by them. You can see a more extensive list of nutritional approaches to keeping your arteries healthy here.


Imagine what would happen if we could address endothelial dysfunction decades before it progresses into atherosclerosis?  Since heart disease is the #1 killer, worldwide, adding certain medicinal spices to the diet could perhaps help to neutralize the cardiotoxic and highly lethal disease vector which is the standard Western diet. We’ve reported, previously, on how something so simple as adding fresh avocado to a traditional American hamburger completely ameliorates the artery-contracting properties of this typical meal. It is amazing when you consider all of the edible things now studied which are capable of ameliorating endothelial dysfunction. You can peruse the Endothelial Dysfunction page on GreenMedInfo.com’s healing substances database and find over 90 substances that may help with this goal.


Turmeric Rich Curry


Take a look at the 1700 studies on turmeric’s health benefits on our database.


Consider, also, that some of the spices in curry, such as turmeric, and which features almost universally in all the different cultural variations, have themselves been studied individually to have powerful cardiovascular benefits. Turmeric extract, for instance, was found to confer health benefits to the cardiovascular system as powerful as exercise. Garlic has been found to clear the arteries of plaque and to have blood-pressure lowering properties in hypertensive patients about as potent as pharmaceutical drugs.  You can learn more by looking at the over 1,000 studies we have indexed on the therapeutic potential of dozens of culinary herbs and spices here.


The beauty, however, is that culinary combinations of herbs often require lower doses than are typically used in the context of traditional herbal medicine. In fact, recent research on the spice rosemary known by poets and herbalists for centuries to be “for remembrance,” shows that lower culinary doses are much more effective than larger ‘pharmacologic’ doses for boosting cognitionLess can be more, and with the possibility of synergistic combinations, even lower amounts are needed to obtain a beneficial effect, especially when the purpose is to prevent disease, rather than just treat it after the fact with an aggressive ’emergency care’ model typical of allopathic approaches. Also, for those who do not like “spicy food,” consider drinking spices like turmeric by preparing beverage called “Turmeric Milk.” Check out this DIY recipe here.


Also, consider that the quality of the spices you consume may make all the difference to your health. It is a underreported fact that many of the spices available on the shelf in the U.S. today are irradiated with massive doses of gamma radiation, in a process euphemistically called “cold-pasteurization.” Read my article on the topic, “The Invisible Nuclear Threat Within Non-Organic Food,” to learn more. Suffice it to say, unless it is certified organic, or wild-harvested, it may actually be harmful to your health.


Finally, another useful culinary hack you can employ to reduce white rice’s potential toxicity is to cook it with coconut. It will significantly reduce both the caloric content and blood-sugar elevating properties of the dish if you do so. Learn more by reading: Coconut Oil May Reduce White Rice Calories 50-60%.


© April 6, 2018 GreenMedInfo LLC. This work is reproduced and distributed with the permission of GreenMedInfo LLC. Want to learn more from GreenMedInfo? Sign up for the newsletter here http://www.greenmedinfo.com/greenmed/newsletter.


The post Turmeric Rich Curry’s Amazing Artery-Opening Properties appeared first on The Sleuth Journal.

Make Your Own Whipped Vapor Rub

Make Your Own Whipped Vapor Rub | whipped-cream | Natural Medicine Special Interests


I grew up with Vick’s VapoRub always being present in my childhood medicine cabinet. When I was feeling under the weather, my mother would rub this on my chest, and almost immediately, the mentholated fumes would start working their magic.


I decided to make my own whipped version of this old-fashioned herbal ointment using natural ingredients and couldn’t be more pleased with the end result. By whipping the coconut oil and shea butter together it created a soft texture that rubs on smoothly. And, since this was such a simple recipe, I had to share it!


Alleviate Cold and Cough Symptoms with Essential Oils


Ensure that the essential oils you purchase are therapeutic grade oils. The essential oils I used were ones that were decongestants, helped relieve symptoms associated with cold and flu symptoms, and possessed antimicrobial properties.



  • Camphor essential oil acts as an antispasmodic, antiseptic, decongestant, anesthetic, anti-inflammatory, disinfectant, calms and gently sedates.

  • Eucalyptus essential oil is antimicrobial, as well as an expectorant, making it a good oil to use for respiratory issues.

  • Peppermint essential oil is antibacterial, soothes pain and has anti-inflammatory properties. The menthol cools and refreshes.

  • Lavender essential oil is soothing and promotes sleep.

  • Tea tree essential oil is antimicrobial, making it a good addition to this rub if the chest congestion is the caused by some sort of pathogen.


A Special Note: If you plan on making a Vapor rub for children to use, reduce the essential oil amounts by half. The essential oils listed in the recipe below can be harmful to youngsters. It has ingredients that act as irritants which the body reacts to by producing even more mucous. Reducing the essential oil amounts and using small amounts on children will help reduce the reaction.


 Vapor Rub




  1. In a mixer ( I use an immersion hand mixer), whip coconut oil and shea butter together until combined. About 45 seconds.

  2. Stop mixer and use spatula to bring whipped mixture to middle of bowl.

  3. Add the essential oils to whipped butter mixture and slowly stir to blend. Note: Reduce essential oils by half if vapor rub will be used on children.

  4. Pour mixture into clean containers and add lid.


To use: Rub a small amount on the chest as needed to relieve congestion and reduce coughing.


Also, try these vapor bath blocks to add to your bathwater. The essential oils in the bath blocks create a powerful bond and helps to ease symptoms through aromatherapy; especially those of the upper respiratory tract, nose and sinuses. Additionally, the baking soda in these bath blocks assists your body in purging toxins and softens the skin.


The post Make Your Own Whipped Vapor Rub appeared first on The Sleuth Journal.

Curtailing Cures?

Curtailing Cures? | essential-oil | FDA Medical & Health Natural Medicine Petitions Special Interests


For more than 25 years, the U.S. Food & Drug Administration (FDA) has relied on established clear and enforceable standards for the manufacture and sale of homeopathic medicines in the U.S.


Now the FDA wants to withdraw this standard and replace it with a vague enforcement policy. Without clear guidance on what is legal, regulatory enforcement quickly becomes arbitrary and capricious.


Why is the FDA taking this step? We’re not sure. All the FDA says is that there has been a significant increase in products labeled as homeopathic.


Homeopathic medicines are used by millions of Americans and their kids. These remedies gently stimulate the body to heal itself, and are safe, natural and without side effects.


In an era where the U.S. healthcare system ranks dead last among industrialized nations, based on things like quality of care, access to doctors and equity throughout the country, consumer choice is more important than ever.


Could the FDA be trying to limit access to homeopathic medicines in favor of protecting the $446-billion pharmaceutical industry?


TAKE ACTION: Don’t Let FDA Needlessly Restrict Your Access to Homeopathic Remedies!


h/t: The Organic Consumers Association


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