Showing posts with label scientific studies. Show all posts
Showing posts with label scientific studies. Show all posts

Move Over Big Pharma Amphetamines — Cannabis Successfully Treats ADHD in Clinical Trials


Cannabis makes Big Pharma bow to it's numerous powers. It's no wonder why they lobby to make sure it stays illegal.




At an international symposium on cannabinoid therapeutics last month, researchers presented clinical data indicating that the use of herbal cannabis relieves symptoms of Attention Deficit Hyperactivity Disorder (ADHD) in adults.

German researchers selected 30 patients whose condition had proven resistant to conventional drug therapies, to study and evaluate the effects of cannabis on their ADHD symptoms.

Test subjects were reported to experience an easing of symptoms, including “improved concentration and sleep, and reduced impulsivity,” following the cannabis therapy, according to researchers.

Of the 30 patients, twenty-two in the study elected to suspend their use of pharmaceutical drugs during the study period—opting for use of cannabis as their sole means of treating their symptoms.
Prior to this study, there had been minimal clinical data on the subject, despite widespread anecdotal reports of relief from those suffering from ADHD.

Attention deficiency hyperactivity disorder is a condition that it typically identified in children and may persist into adulthood. It is characterized by hyperactivity, impulsivity, forgetfulness, difficulty paying attention and a lack of organization and prioritization skills.

There is widespread debate as to the cause, with some questioning whether it is even a real condition.
Approximately 11 percent of school-aged children in the U.S. have been diagnosed with the disorder, which is commonly treated with the use of amphetamines or amphetamine derivatives. Comparatively, only .5 percent of French children are diagnosed with ADHD.

According to a report by The Genetic Literacy Project:

For decades, much of the mental health profession has relied on the Diagnostic and Statistical Manual of Diseases, a tome updated periodically by the American Psychiatric Association. The latest three versions (DSM-III through DSM-V) zeroed in on what constitutes ADHD. French guidelines do not follow the DSMs, instead hewing to the Classification Francaise des Troubles Mentaux de l’Enfant et de L’Adolescent, or CFTMEA.
In France, CFTMEA guidelines require a much longer time to diagnose ADHD, and take in family and social issues that have had a role in the child’s life. After interviewing teachers, school officials, family members and the child, they’ll make a diagnosis. Often two years later.
In the United States, usually a single psychiatrist or psychologist makes a much faster diagnosis (about six months), after some input from teachers and others, but usually based on the psychologist’s impression.
While French psychiatrists do tend to look more for social context, it’s also illegal in France to prescribe stimulants (the main drug intervention in the US) to any child under 6 years old. Meanwhile, American physicians have been accused of overmedicating patients, particularly children and particularly children with ADHD.
Researchers have been studying whether ADHD is actually one syndrome, or rather a combinations of separate symptoms. It has yet to be made clear, whether in France, the U.S. or the rest of the world, where the boundaries lie between “normal” and ADHD. Perhaps if nothing else, the revisions of the DSM, and the French approach, call for a meeting of minds.

“Adults with ADHD in both regions were generally less likely to be married, employed, or rate their health as good/very good/excellent and were more likely to smoke, have experienced alcoholism, have other mental health conditions, have work productivity/activity impairments, and use healthcare resources,” according to researchers in both the U.S. and Europe.

Regardless of the cause, the results of this study clearly show that cannabis can be a useful treatment in alleviating the symptoms of ADHD. While the causes and solutions of ADHD are debated, a new natural treatment has emerged that has the potential to replace the pharmaceutical solutions consistently provided to those suffering from the disorder.



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 By Jay Syrmopoulos via The Free Thought Project


Jay Syrmopoulos is an investigative journalist, free thinker, researcher, and ardent opponent of authoritarianism. He is currently a graduate student at University of Denver pursuing a masters in Global Affairs. Jay’s work has been published on Ben Swann’s Truth in Media, Truth-Out, AlterNet, InfoWars, MintPressNews and maany other sites. You can follow him on Twitter @sirmetropolis, on Facebook at Sir Metropolis and now on tsu



34 Scientific Studies Showing Adverse Health Effects From Wi-Fi






Here is an excellent collection of scientific papers finding adverse biological effects or damage to health from Wi-Fi signals, Wi-Fi-enabled devices or Wi-Fi frequencies (2.4 or 5 GHz), complied by campaign group  WiFi In Schools.
The papers listed are only those where exposures were 16V/m or below.  Someone using a Wi-Fi-enabled tablet computer can be exposed to electromagnetic fields up to 16V/m.  Papers are in alphabetical order.  A file of first pages, for printing, can be found here.

If you feel like sending a copy of this collection to the local schools in your area, you can search for them here and either print out this article to post or email the link.
Wi-Fi papers
1. Atasoy H.I. et al., 2013. Immunohistopathologic demonstration of deleterious effects on growing rat testes of radiofrequency waves emitted from conventional Wi-Fi devices. Journal of Pediatric Urology 9(2): 223-229. http://www.ncbi.nlm.nih.gov/pubmed/22465825
2. Avendaño C. et al., 2012. Use of laptop computers connected to internet through Wi-Fi decreases human sperm motility and increases sperm DNA fragmentation. Fertility and Sterility 97(1): 39-45. http://www.ncbi.nlm.nih.gov/pubmed/22112647
3. Avendaño C. et al., 2010. Laptop expositions affect motility and induce DNA fragmentation in human spermatozoa in vitro by a non-thermal effect: a preliminary report. American Society for Reproductive Medicine 66th Annual Meeting: O-249 http://wifiinschools.org.uk/resources/laptops+and+sperm.pdf)
4. Aynali G. et al., 2013. Modulation of wireless (2.45 GHz)-induced oxidative toxicity in laryngotracheal mucosa of rat by melatonin. Eur Arch Otorhinolaryngol 270(5): 1695-1700. http://www.ncbi.nlm.nih.gov/pubmed/23479077
5. Gumral N. et al., 2009. Effects of selenium and L-carnitine on oxidative stress in blood of rat induced by 2.45-GHz radiation from wireless devices. Biol Trace Elem Res. 132(1-3): 153-163. http://www.ncbi.nlm.nih.gov/pubmed/19396408
6. Havas M. et al., 2010. Provocation study using heart rate variability shows microwave radiation from 2.4GHz cordless phone affects autonomic nervous system. European Journal of Oncology Library Vol. 5: 273-300. http://www.icems.eu/papers.htm?f=/c/a/2009/12/15/MNHJ1B49KH.DTL  part 2.
7. Havas M. and Marrongelle J. 2013. Replication of heart rate variability provocation study with 2.45GHz cordless phone confirms original findings. Electromagn Biol Med 32(2): 253-266. https://www.ncbi.nlm.nih.gov/pubmed/23675629
8. Maganioti A. E. et al., 2010. Wi-Fi electromagnetic fields exert gender related alterations on EEG. 6th International Workshop on Biological Effects of Electromagnetic fields. http://www.istanbul.edu.tr/6internatwshopbioeffemf/cd/pdf/poster/WI-FI%20ELECTROMAGNETIC%20FIELDS%20EXERT%20GENDER.pdf
9. Margaritis L.H. et al., 2013. Drosophila oogenesis as a bio-marker responding to EMF sources.
Electromagn Biol Med., Epub ahead of print. http://www.ncbi.nlm.nih.gov/pubmed/23915130
10. Naziroğlu M. and Gumral 2009. Modulator effects of L-carnitine and selenium on wireless devices (2.45 GHz)-induced oxidative stress and electroencephalography records in brain of rat. Int J Radiat Biol. 85(8): 680-689. http://www.ncbi.nlm.nih.gov/pubmed/19637079
11. Nazıroğlu M. et al., 2012. 2.45-Gz wireless devices induce oxidative stress and proliferation through cytosolic Ca2+ influx in human leukemia cancer cells. International Journal of Radiation Biology 88(6): 449–456. http://www.ncbi.nlm.nih.gov/pubmed/22489926
12. Nazıroğlu M. et al., 2012b. Melatonin modulates wireless (2.45 GHz)-induced oxidative injury through TRPM2 and voltage gated Ca(2+) channels in brain and dorsal root ganglion in rat. Physiol Behav. 105(3): 683-92. http://www.ncbi.nlm.nih.gov/pubmed/22019785
13. Oksay T. et al., 2012. Protective effects of melatonin against oxidative injury in rat testis induced by wireless (2.45 GHz) devices. Andrologia doi: 10.1111/and.12044, Epub ahead of print. http://www.ncbi.nlm.nih.gov/pubmed/23145464
14. Papageorgiou C. C. et al., 2011. Effects of Wi-Fi signals on the p300 component of event-related potentials during an auditory hayling task.  Journal of Integrative Neuroscience 10(2): 189-202. http://www.ncbi.nlm.nih.gov/pubmed/21714138 (Wi-Fi alters brain activity in young adults: http://wifiinschools.org.uk/resources/wifi+brain+July+2011.pdf)
15. Shahin S. et al., 2013. 2.45 GHz Microwave Irradiation-Induced Oxidative Stress Affects Implantation or Pregnancy in Mice, Mus musculus. Appl Biochem Biotechnol 169: 1727–1751. http://www.ncbi.nlm.nih.gov/pubmed/23334843
16. Türker Y. et al., 2011. Selenium and L-carnitine reduce oxidative stress in the heart of rat induced by 2.45-GHz radiation from wireless devices. Biol Trace Elem Res. 143(3): 1640-1650. http://www.ncbi.nlm.nih.gov/pubmed/21360060
And here are a few more studies of similar microwave frequencies at low exposures (6V/m or below)  (this is not comprehensive):
17. Balmori A. 2010. Mobile phone mast effects on common frog (Rana temporaria) tadpoles: the city turned into a laboratory. Electromagn. Biol. Med. 29(1-2):31-35. http://www.ncbi.nlm.nih.gov/pubmed/20560769
18. Erdinc O. O. et al., 2003. Electromagnetic waves of 900MHz in acute pentylenetetrazole model in ontogenesis in mice. Neurol. Sci. 24:111-116  http://www.ncbi.nlm.nih.gov/pubmed/14600821
19. Fesenko E. E. et al., 1999. Stimulation of murine natural killer cells by weak electromagnetic waves in the centimeter range. Biofizika 44:737–741 http://www.ncbi.nlm.nih.gov/pubmed/10544828
20. Fesenko E. E. et al., 1999. Microwaves and cellular immunity. I. Effect of whole body microwave irradiation on tumor necrosis factor production in mouse cells, Bioelectrochem. Bioenerg. 49:29–35 http://www.ncbi.nlm.nih.gov/pubmed/10619445
21. Havas M. et al., 2010. Provocation study using heart rate variability shows microwave radiation from 2.4GHz cordless phone affects autonomic nervous system. European Journal of Oncology Library Vol. 5: 273-300 http://www.icems.eu/papers.htm?f=/c/a/2009/12/15/MNHJ1B49KH.DTL part 2.
22. Kesari K. K. and Behari J., 2009. Microwave exposure affecting reproductive system in male rats. Appl. Biochem. Biotechnol. 162(2):416-428 http://www.ncbi.nlm.nih.gov/pubmed/19768389
23. Kesari K. K. and Behari J., 2009. Fifty-gigahertz microwave exposure effect of radiations on rat brain. Appl. Biochem. Biotechnol. 158:126-139 http://www.ncbi.nlm.nih.gov/pubmed/19089649
24. Khurana V. G. et al., 2010. Epidemiological Evidence for a Health Risk from Mobile Phone Base Stations. Int. J. Occup. Environ. Health 16:263–267 http://www.ncbi.nlm.nih.gov/pubmed/20662418
25. Maier R. et al., 2004. Effects of pulsed electromagnetic fields on cognitive processes – a pilot study on pulsed field interference with cognitive regeneration. Acta Neurologica Scandinavica 110: 46-52 http://www.ncbi.nlm.nih.gov/pubmed/15180806
26. Nittby H. et al., 2008. Cognitive impairment in rats after long-term exposure to GSM-900 mobile phone radiation. Bioelectromagnetics 29: 219-232 http://www.ncbi.nlm.nih.gov/pubmed/18044737
27. Novoselova E. G. et al., 1998. Stimulation of production of tumor necrosis factor by murine macrophages when exposed in vivo and in vitro to weak electromagnetic waves in the centimeter range Bofizika 43:1132–1333.
28. Novoselova E. G. et al., 1999. Microwaves and cellular immunity. II. Immunostimulating effects of microwaves and naturally occurring antioxidant nutrients. Bioelectrochem. Bioenerg. 49:37–41 http://www.ncbi.nlm.nih.gov/pubmed/10619446
29. Otitoloju A. A. et al., 2010. Preliminary study on the induction of sperm head abnormalities in mice, Mus musculus, exposed to radiofrequency radiations from Global System for Mobile Communication Base Stations. Bull. Environ. Contam. Toxicol. 84(1):51-4. http://www.ncbi.nlm.nih.gov/pubmed/19816647
30. Panagopoulos D. J.et al., 2010. Bioeffects of mobile telephony radiation in relation to its intensity or distance from the antenna. Int. J. Radiat. Biol. Vol 86(5):345-357. http://www.ncbi.nlm.nih.gov/pubmed/20397839
31. Persson B. R. R. et al., 1997. Blood-brain barrier permeability in rats exposed to electromagnetic fields used in wireless communication. Wireless Networks 3: 455-461.
32. Pyrpasopoulou A. et al., 2004. Bone morphogenic protein expression in newborn kidneys after prenatal exposure to radiofrequency radiation. Bioelectromagnetics 25:216-27 http://www.ncbi.nlm.nih.gov/pubmed/15042631
33. Salford L. G. et al., 2010. Effects of microwave radiation upon the mammalian blood-brain barrier. European Journal of Oncology Library Vol. 5:333-355 http://www.icems.eu/papers.htm?f=/c/a/2009/12/15/MNHJ1B49KH.DTL part 2.
34. Salford L. G., et al., 2003. Nerve cell damage in mammalian brain after exposure to microwaves from GSM mobile phones. Environ. Health Perspect. 111:881-883. http://www.ncbi.nlm.nih.gov/pubmed/12782486



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