Archive for the ‘research’ Category

Altered DNA Methylation, Mental Illness, & Lyme/MSIDS

https://www.nature.com/articles/s41537-018-0047-7

Altered DNA methylation associated with a translocation linked to major mental illness

Published online March, 2018
Daniel L. McCartney, Rosie M. Walker, Stewart W. Morris, Susan M. Anderson, Barbara J. Duff, Riccardo E. Marioni, J. Kirsty Millar, Shane E. McCarthy, Niamh M. Ryan, Stephen M. Lawrie, Andrew R. Watson, Douglas H. R. Blackwood, Pippa A. Thomson, Andrew M. McIntosh, W. Richard McCombie, David J. Porteous & Kathryn L. Evans
npj Schizophrenia volume 4, Article number: 5 (2018)
doi:10.1038/s41537-018-0047-7
Abstract
Recent work has highlighted a possible role for altered epigenetic modifications, including differential DNA methylation, in susceptibility to psychiatric illness. Here, we investigate blood-based DNA methylation in a large family where a balanced translocation between chromosomes 1 and 11 shows genome-wide significant linkage to psychiatric illness. Genome-wide DNA methylation was profiled in whole-blood-derived DNA from 41 individuals using the Infinium HumanMethylation450 BeadChip (Illumina Inc., San Diego, CA). We found significant differences in DNA methylation when translocation carriers (n = 17) were compared to related non-carriers (n = 24) at 13 loci. All but one of the 13 significant differentially methylated positions (DMPs) mapped to the regions surrounding the translocation breakpoints. Methylation levels of five DMPs were associated with genotype at SNPs in linkage disequilibrium with the translocation. Two of the five genes harbouring significant DMPs, DISC1 and DUSP10, have been previously shown to be differentially methylated in schizophrenia. Gene Ontology analysis revealed enrichment for terms relating to neuronal function and neurodevelopment among the genes harbouring the most significant DMPs. Differentially methylated region (DMR) analysis highlighted a number of genes from the MHC region, which has been implicated in psychiatric illness previously through genetic studies. We show that inheritance of a translocation linked to major mental illness is associated with differential DNA methylation at loci implicated in neuronal development/function and in psychiatric illness. As genomic rearrangements are over-represented in individuals with psychiatric illness, such analyses may be valuable more widely in the study of these conditions.
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This study links to Lyme/MSIDS in more than one way.
  • First, many Lyme/MSIDS patients have methylation problems and can not detox properly.  Imagine a kitty litter box that never gets cleaned out.  That’s what happens inside a body that can’t clear itself of debris.
  • Second, many Lyme/MSIDS patients have mental health issues:  https://madisonarealymesupportgroup.com/2017/10/24/the-lyme-wars-faces-of-the-health-crisis-a-digital-documentary/  (5-Part Series showing how Lyme/MSIDS manifests)
  • Third, Lyme/MSIDS mimics methylation problems and vice versa.  One of the challenges of treatment is teasing out what is active infection(s) and what is a methylation problem.

https://suzycohen.com/articles/methylation-problems/  Pharmacist Suzy Cohen states 100’s of diseases are the result of methylation problems, including Lyme, chronic viral infections, schizophrenia, Dementia/Alzheimer’s, addictive behavior, insomnia, cancer, and more.

While methylation problems do not directly cause Lyme (it is caused by a pleomorphic bacteria called borrelia) it causes severe symptoms due to the inability to clear infections & their by-products, as well as repairing the damage they cause.

Methylation also helps you clear toxins such as hormones from chemicals, and rogue neurotransmitters that can cause seizures, anxiety, rage, and insomnia.

If you are extremely sensitive to medicine you probably have a methylation problem.  Cohen also states that while some of this stems from genetics, there are other reasons for it such as a lack of the following vitamins:

  • Zinc
  • B2/riboflavin
  • Magnesium
  • B6/pyridoxine
  • B12/methylcobalamin
  • Folate (from food or folinic acid)

1) Poor diet, poor probiotic status, digestive issues, medications, medical conditions like Crohn’s or Celiac, and other genetic traits may cause any or all of these nutrient deficiencies.

2) Xenobiotics – which are chemicals found in our air, water, food, home, work, schools, parks, beds, cosmetics and more.

3) Taking medications that are drug muggers that deplete you of the nutrients in #1 above. Some of the worst offenders (in terms of stealing your methylation nutrients) are methotrexate, metformin, antacids, acid blockers, proton pump inhibitors, corticosteroids, estrogen-containing drugs and nitrous oxide.

4) Drinking alcohol will pretty much shut down your methylation and wipe out your glutathione stores.

5) Green coffee bean extract is incredibly high in catechols and those use up your methylation pathway nutrients fast!

7) If you have Lyme disease, and many people do whether they know it or not, the Borrelia burgdorferi germ uses up all your magnesium (this supplement is a unique and highly absorbable form) to make biofilms and hide. Low mag reduces your ability to methylate. As an aside, this explains why some ‘Lymies’ have bad reactions during antibiotic treatment. Those drugs kill the organism but then your body is faced with poison such as ‘dead bug parts’ as well as ammonia which spikes when Borrelia dies off. Point is, you can’t remove easily the toxins from your body and it backs up in your system (by christopher at www.dresshead.com). If this is you, then use really low doses if you have to take antibiotics, until you’ve opened up your methylation (and other detoxification) pathways.

8) If you take nutrients that deplete methyl groups (like high dose niacin, or the prescription version of that called Slo-Niacin and Niaspan).

9) Heavy metals (think mercury in your diet, or your teeth) or lead in your bloodstream, cadmium if you smoke, high copper, arsenic, etc.

10) High levels of acetylaldehyde, this is a potent neurotoxin released by Candida, and also a by-product of drinking alcohol (even red wine). Don’t drink if you’re a poor methylator. Most of you know who you are, meaning you are a lightweight when it comes to alcohol. Yep, it is likely you are a poor methylator. I will share more about the Candida toxin known as “acetylaldehyde” shortly.

12) Anxiety or a lot of stress. I’m not sure why, but a pessimist or “I can’t do it” kind of outlook seems to make things worse. I think it has to do with your belief systems and how they impact your genes. In my summary, I’ll give you some links to an author and lecturer that has clues on how to change your outlook. (Dr. Bruce Lipton).

Please see Cohen’s article for options if you suspect a methylation defect:  https://suzycohen.com/articles/methylation-problems/

 

Dementia & Lyme – Hangout with Dr. Cameron

Lyme Hangout with Dr. Cameron:  Dementia and Lyme Disease

HOST: Dr. Daniel Cameron

DATE: Tuesday, March 27, 2018

TIME: 8 PM EST

Dementia and Lyme disease are common. Kris Kristofferson was thought to have suffered from Alzheimer’s disease for ten years before he was diagnosed with Lyme disease. Two other individuals who were thought to suffer from dementia before being diagnosed with Lyme disease were also described in my book, Lyme Disease takes on Medicine. I will discuss these three cases during my next live Lyme Hangout Tuesday, March 27, 8PM EST.

REGISTER NOW TO SAVE YOUR SEAT!

Share your thoughts, ask questions or just listen in and hangout!

SAVE YOUR SEAT FOR THE LYME HANGOUT:  http://danielcameronmd.com/lyme-hangout-registration/

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More more:  https://madisonarealymesupportgroup.com/2017/01/04/aluminum-alzheimers-ld/  Kris Kristofferson’s story.

https://madisonarealymesupportgroup.com/2017/06/10/the-coming-pandemic-of-lyme-dementia/

https://madisonarealymesupportgroup.com/2017/01/18/a-bug-for-alzheimers/

https://madisonarealymesupportgroup.com/2016/06/09/alzheimers-byproduct-of-infection/

https://madisonarealymesupportgroup.com/2016/11/17/antibiotics-and-alzheimers/

https://madisonarealymesupportgroup.com/2016/06/03/borrelia-hiding-in-worms-causing-chronic-brain-diseases/

https://madisonarealymesupportgroup.com/2016/08/09/dr-paul-duray-research-fellowship-foundation-some-great-research-being-done-on-lyme-disease/

https://madisonarealymesupportgroup.com/2017/06/26/important-example-of-iv-antibiotics-for-lymemsids/

Reporting Tick Bites to Public Health Agencies Helps ID Risk Areas for Lyme Disease

https://entomologytoday.org/2018/03/07/reporting-tick-bites-to-public-health-agencies-helps-id-risk-areas-for-lyme-disease/  Entomology Today

Reporting Tick Bites to Public Health Agencies Helps ID Risk Areas for Lyme Disease
blacklegged-tick-life-stages

The blacklegged tick (Ixodes scapularis)—shown here in adult form (at right) and nymph (on blade of grass at left)—is the primary vector of the bacterial pathogen that causes Lyme disease. A study in Quebec has found that analysis of ticks submitted by citizens to public health agencies can help identify areas of emerging risk for Lyme disease outbreak. (Photo credit: Jim Occi, BugPics, Bugwood.org)

By Andrew Porterfield

Lyme disease is the most common vector-borne illness in the United States, amounting to between 20,000 and 35,000 reported cases every year. But not every state reports the disease; instead, nearly all cases come from 14 states, largely in the Northeast or Upper Midwest.

And now, Canada has started to report more cases. In the Province of Quebec alone, human cases have risen from two in 2008 to 174 in 2016. Public health officials are often challenged to find early signs of tick and disease infestation before the number of cases start increasing. The “gold standard” method of surveillance is “active,” which involves collecting tickets through dragging tick habitat with white flannel sampling equipment or capturing rodents and testing for tick presence. This method, however, is expensive, especially if it involves multiple sites and combining drag sampling and rodent capture.

Researchers at the University of Montreal have studied active surveillance as well as two other methods: “passive” methods that involve collecting ticks that are submitted voluntarily by veterinary clinics from pets and documenting reported human cases of Lyme disease that are submitted from medical clinics.

Lyme disease, named after the Connecticut town where it was first discovered, is spread by a bacterial spirochete, Borrelia burgdorferi, which is carried by ticks and some mammals. Typically, a blacklegged tick (Ixodes scapularis) will attach and feed on a mammal, often a rodent or deer. If that mammal is already carrying the pathogen, it can be transmitted to the tick. Or, conversely, an infected tick can transmit it to the host animal, which can then transmit it to other ticks. Then, when an infected tick bites a human, the human can become infected and contract the disease.

Marion Ripoche, a Ph.D. student at the University of Montreal, and her team discovered that passive surveillance was the most accurate method for predicting an emerging risk of Lyme disease. The team published its results today in the Journal of Medical Entomology.

The researchers used data collected in Quebec from 2009 to 2014 on I. scapularis collected through passive surveillance and tick nymphs collected through active methods (nymphs are far more prevalent and active, so make a better active collection target), as well as human disease reports.

For passive surveillance testing, the team used census subdivision data that had at least one passive tick report or human case (totaling 870 cases). To test active surveillance, they looked at census data and density of nymphs or infected nymphs, totaling 217 cases. They also collected human cases and compared active surveillance as a possible predictor of passive tick submissions.

Between 2009 and 2014, 6,261 I. scapularis larvae, nymphs, or adults were gathered through active surveillance. Of those, 13.4 percent were positive for B. burgdorferi. During the same period, passive surveillance data showed 1,702 people submitted a tick, mostly adults. About 12.9 percent were positive for B. burgdorferi. For human cases, 145 diseases were reported, 92 from local sites.

The study found that all three methods could signal some risk of a Lyme disease outbreak but that passive surveillance had the strongest relationship, comparing number of people bitten by a tick and the eventual number of human cases reported. The passive surveillance method could detect areas with at least three human cases and showed its usefulness as an early-detection system for public health officials.

“Public health authorities need an early signal for the timely detection of new at-risk areas,” the authors write. “This finding is significant in that it shows that the volume of passive tick submissions received from a municipality, which is the most geographically continuous signal of risk currently available, is able to successfully predict the emergence of human cases in that municipality.”

The researchers emphasize, however, that passive surveillance is good at early detection, but it should work in concert with the other two methods, not as a replacement. Both dragging and capture (active) and reported humn cases are essential for further determination of the extent of an infection, and successful public health agencies (such as in the Province of Quebec) will employ all three methods.

“Passive Tick Surveillance Provides an Accurate Early Signal of Emerging Lyme Disease Risk and Human Cases in Southern Canada”  Journal of Medical Entomology  https://academic.oup.com/jme/advance-article/doi/10.1093/jme/tjy030/4911759

Andrew Porterfield is a writer, editor, and communications consultant for academic institutions, companies, and nonprofits in the life sciences. He writes frequently about agriculture issues for the Genetic Literacy Project. He is based in Camarillo, California. Follow him on Twitter at @AMPorterfield or visit his Facebook page.

 

 

 

 

 

 

 

Ticks & TBI’s in Kentucky

https://www.ncbi.nlm.nih.gov/pubmed/29502988

Ticks Tick Borne Dis. 2018 Mar 1. pii: S1877-959X(17)30571-X. doi: 10.1016/j.ttbdis.2018.02.016. [Epub ahead of print]

Widespread distribution of ticks and selected tick-borne pathogens in Kentucky (USA).

Lockwood BH1, Stasiak I2, Pfaff MA1, Cleveland CA1, Yabsley MJ3.
Author information

Abstract
The geographical distribution of Ixodes scapularis and Amblyomma maculatum ticks is poorly understood in Kentucky. We conducted a convenience survey of wildlife species (white-tailed deer (Odocoileus virginianus), elk (Cervus canadensis) and black bears (Ursus americanus) for ticks from October 2015 to January 2017. We detected four tick species including Amblyomma americanum, Dermacentor albipictus, I. scapularis and A. maculatum. Although the former two tick species were previously known to be widely distributed in Kentucky, we also found that I. scapularis and A. maculatum were also widespread. Because of the limited data available for pathogens from I. scapularis and A. maculatum, we tested them for Borrelia and Rickettsia spp. by polymerase chain reaction assays. Prevalence of Borrelia burgdorferi sensu stricto and Rickettsia parkeri were 11% and 3%, respectively. These data indicate that public health measures are important to prevent tick-borne diseases in Kentucky.

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**Comment**

The data is going to continue to pour in from all over.  Those in the South have long been pushed aside, denied diagnosis and treatment due to certain ticks or diseases. “not being there.”  Somebody has to be the first case, but if you don’t allow a first case, “it doesn’t exist there.”  It’s like being trapped in a Kafka novel with no way out.

https://madisonarealymesupportgroup.com/2017/10/06/remembering-dr-masters-the-rebel-for-lyme-patients-who-took-on-the-cdc-single-handedly/

https://madisonarealymesupportgroup.com/2016/09/24/arkansas-kids-denied-lyme-treatment/

https://madisonarealymesupportgroup.com/2018/02/06/lyme-in-the-southern-hemisphere-sexual-transmission/

https://madisonarealymesupportgroup.com/2018/03/11/range-expansion-of-tick-disease-vectors-in-north-america-implications-for-spread-of-tick-borne-disease/

I wish they would test these ticks for more than the one or two pathogens that seem popular these days.  There are approximately 16 diseases that ticks can spread.  Authorities are still bickering about Bartonella being transmitted by ticks; however, the majority of patients I work with all have Bart, making transmission by ticks highly probable. 

https://madisonarealymesupportgroup.com/2017/07/01/one-tick-bite-could-put-you-at-risk-for-at-least-6-different-diseases/ (The number is more like 16 not 6.  It’s probably more than that.)

Babesiosis
Bartonellosis
Borrelia miyamotoi
Bourbon Virus
Colorado Tick Fever
Ehrlichiosis/Anaplasmosis
Heartland Virus
Meat Allergy/Alpha Gal
Pacific Coast Tick Fever: Richettsia philipii
Powassan Encephalitis
Q Fever
Rickettsia parkeri Richettsiosis
Rocky Mountain Spotted Fever
STARI: Southern Tick-Associated Rash Illness
Rick Paralysis
Tularemia

Then there’s the whole issue of other insects being able to transmit.

We have a lot of work to do and a lot of answers to find.

 

 

Lyme & Malaria – Most Common Vector-borne Diseases in U.S. Armed Forces

https://www.ncbi.nlm.nih.gov/m/pubmed/29485891/

Surveillance for vector-borne diseases among active and reserve component service members, U.S. Armed Forces, 2010-2016.

Authors

O’Donnell FL, Stahlman S, Fan M.  MSMR. 2018.

Abstract

This report summarizes available health record information about the occurrence of vector-borne infectious diseases among members of the U.S. Armed Forces during a recent 7-year surveillance period. Information about confirmed, possible, and suspected cases was obtained from electronic reports of reportable medical events (RMEs) and records of diagnoses documented during hospitalizations and outpatient healthcare encounters. Lyme disease and malaria were the most common diagnoses among confirmed and possible cases. Diagnoses of chikungunya and Zika were elevated in the years following their respective entries into the Western Hemisphere. Large numbers of diagnoses of arboviral diseases were recorded in the category of suspected cases, but the overwhelming majority were associated with coding errors and tentative diagnoses not subsequently confirmed. For many confirmed cases, documentation could not be found in healthcare databases for positive laboratory tests that would be the basis for confirmation. Discussion covers the limitations of the available data and the importance to surveillance of RMEs, confirmatory laboratory tests, and accurate recording of diagnoses and their codes.

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**Comment**

Houston we have a problem.  Due to the military’s over reliance upon the antiquated and unscientific CDC-two-tiered testing that misses over half of all cases, the numbers for Lyme Disease are going to be infinitely higher.  Not only that, many coinfections are not even reportable so nobody has a bead on those.

I have buddies who are dropped into Northern Wisconsin for drill.  They report to me that literally thousands of ticks are crawling all over them.  How many ticks does it take to become infected?  ONE.  However, I know many of these soldiers who have had to quit their military careers as the military will not acknowledge their infection with Lyme/MSIDS let alone treat it beyond 21 days of doxycycline.

Our service men and women are in harms way – probably far more from ticks and other insects than from enemy fire.

https://madisonarealymesupportgroup.com/2017/03/21/military-veterans-suicide-and-lymemsids/  A true story of how a soldier with Lyme/MSIDS was treated by the military. 

https://madisonarealymesupportgroup.com/2017/03/30/gulf-war-illness-vaccines-msids-brain-damage/

https://madisonarealymesupportgroup.com/2017/06/27/military-vaccines-lymemsids/

https://madisonarealymesupportgroup.com/2015/08/12/connecting-dots-mycoplasma/  “Cancer, AIDS, Weaponized Mycoplasmas & Gulf War Illness. Prof. Garth Nicolson’s hypothesis is straightforward: “The emergence of new illnesses and an increase in the incidence rate of previously described signs & symptoms are due to our toxic environment & the purposeful development & testing of Weapons of Mass Destruction.”