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		<title>Judge Speaks Out on Cannabis and his Cancer</title>
		<link>http://www.medicinalgenomics.com/judge-speaks-out-on-cannabis-and-his-cancer/</link>
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		<pubDate>Thu, 17 May 2012 20:21:16 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
				<category><![CDATA[Cannabinoid Sciences]]></category>
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		<a href="http://www.medicinalgenomics.com/judge-speaks-out-on-cannabis-and-his-cancer/" title="Pancreatic_Cancer"><img title="Pancreatic_Cancer" src="http://www.medicinalgenomics.com/wp-content/uploads/2012/05/Pancreatic_Cancer.jpg" alt="Judge Speaks Out on Cannabis and his Cancer" width="150" height="124" /></a>
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		&#160; Judge Speaks out on Cannabis and Cancer. &#160;]]></description>
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&nbsp;

<a href="http://www.nytimes.com/2012/05/17/opinion/a-judges-plea-for-medical-marijuana.html?smid=fb-share">Judge Speaks out on Cannabis and Cancer.</a>

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		<title>Mito Action</title>
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		<pubDate>Mon, 07 May 2012 15:52:13 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
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		<a title="Mito Action" href="http://www.mitoaction.org/">Mito Action</a>

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		<title>THCA Metabolism</title>
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		<pubDate>Sat, 14 Apr 2012 18:06:30 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
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		&#160; Drug test vary on which metabolite they screen for. Only delta 9 THC produces impairment while 11-COOH-THC can be in your system for weeks to months. More accurate tests measure the ratio of 11-OH-THC to 11-COOH-THC to predict time since impairment with delta 9-THC. CYP2C9 is a p450 cyctochrome gene which is thought to [...]]]></description>
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&nbsp;

Drug test vary on which metabolite they screen for. Only delta 9 THC produces impairment while 11-COOH-THC can be in your system for weeks to months. More accurate tests measure the ratio of 11-OH-THC to 11-COOH-THC to predict time since impairment with delta 9-THC.

CYP2C9 is a p450 cyctochrome gene which is thought to metabolize these compounds. DNA polymorphisms in this gene have are predictive of Warfarin sensitivity and are likely important to other drug metabolism.

&nbsp;

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		<title>Our Facebook Site</title>
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		<pubDate>Fri, 23 Mar 2012 22:17:27 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
				<category><![CDATA[Cannabinoid Sciences]]></category>
		<category><![CDATA[Cannabis Genome Project Facebook Medicinal Genomics]]></category>

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		News about Medicinal Genomics now on Facebook &#160;]]></description>
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		<h3><strong><a title="Medicinal Genomics on Facebook" href="https://www.facebook.com/pages/Medicinal-Genomics/196436767091419">News about Medicinal Genomics now on Facebook</a><a href="http://www.medicinalgenomics.com/wp-content/uploads/2012/03/Hemp_Mountain1.jpg"><img class="aligncenter size-full wp-image-6846" title="Hemp_Mountain" src="http://www.medicinalgenomics.com/wp-content/uploads/2012/03/Hemp_Mountain1.jpg" alt="" width="246" height="204" /></a></strong></h3>
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		<title>Medicinal Genomics Sequences the Cannabis Genome to Assemble the Largest Known Gene Collection of this Therapeutic Plant</title>
		<link>http://www.medicinalgenomics.com/medicinal-genomics-sequences-the-cannabis-genome-to-assemble-the-largest-known-gene-collection-of-this-therapeutic-plant/</link>
		<comments>http://www.medicinalgenomics.com/medicinal-genomics-sequences-the-cannabis-genome-to-assemble-the-largest-known-gene-collection-of-this-therapeutic-plant/#comments</comments>
		<pubDate>Thu, 12 Jan 2012 18:37:19 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
				<category><![CDATA[Uncategorized]]></category>

		<guid isPermaLink="false">http://www.medicinalgenomics.com/?p=6493</guid>
		<description><![CDATA[Medicinal Genomics, a pioneer in the genomics of medicinal plants, today announced that the company has sequenced the entire genome of Cannabis sativa and Cannabis indica, assembling the largest known gene collection of this therapeutic plant. The DNA purification was performed at the company’s research facility in Amsterdam, and the sequencing was conducted by several [...]]]></description>
			<content:encoded><![CDATA[<div>

Medicinal Genomics, a pioneer in the genomics of medicinal plants, today announced that the company has sequenced the entire genome of <em>Cannabis sativa</em> and <em>Cannabis indica</em>, assembling the largest known gene collection of this therapeutic plant. The DNA purification was performed at the company’s research facility in Amsterdam, and the sequencing was conducted by several service providers, including the latest long read technology from Roche’s 454 sequencing center.

Previously, only two million bases of <em>Cannabis</em> sequence have been deposited in GenBank, a sequence database provided by the National Center for Biotechnology Information (NCBI). To date, Medicinal Genomics has privately sequenced over 131 billion bases of sequence, which represents a 65,000 fold increase in what has been publicly shared about the <em>Cannabis</em> genome. Concurrently, Medicinal Genomics has <a href="http://cts.businesswire.com/ct/CT?id=smartlink&amp;url=http%3A%2F%2Fcsativa.org%2F&amp;esheet=6834391&amp;lan=en-US&amp;anchor=published+the+raw+reads+from+Cannabis+sativa&amp;index=1&amp;md5=4b803fd2b207a45383d5c979368e7a53" target="_blank">published the raw reads from <em>Cannabis sativa</em></a> on Amazon’s EC2, a public cloud computing service, giving the scientific community access to conduct further research. The <em>Cannabis indica</em> genome sequence will be made available on the EC2 in a few weeks as well. The genome annotations will be made accessible via an iPad application that the company expects to launch in the fall.

“Despite compelling evidence of the therapeutic benefits of <em>Cannabis</em>, very little genomics research has been performed in this area,” said Kevin McKernan, founder and head of scientific operations of Medicinal Genomics. “<em>Cannabis</em> was one of the most difficult genomes that I ever sequenced, and even though only a draft assembly has been constructed, it is important to provide the scientific community with the raw data as quickly as possible. Ongoing scientific research suggests that some of the non-toxic compounds in this plant may ultimately prove to be powerful therapeutics that can treat a wide range of health conditions, including cancer and inflammatory diseases.”

More than 40 U.S. Food and Drug Administration (FDA) approved clinical trials evaluating <em>Cannabis</em> as a therapy have been completed or are underway, according to information obtained from <a href="http://cts.businesswire.com/ct/CT?id=smartlink&amp;url=http%3A%2F%2Fwww.clinicaltrials.gov&amp;esheet=6834391&amp;lan=en-US&amp;anchor=www.clinicaltrials.gov&amp;index=2&amp;md5=f175f2e95beab14837fe7b10290abda7" target="_blank">www.clinicaltrials.gov</a>.

“This is a significant accomplishment,” said Richard Gibbs, Ph.D., director of the human genome sequencing center at the Baylor College of Medicine. “It is excellent to see rapid data release policies being upheld by public and private organizations, particularly when it comes to such challenging genomes.”

With the complete genome in hand, researchers can begin to identify non-psychoactive compounds or enzyme pathways to better elucidate the therapeutic benefits of <em>Cannabis</em>, including the plant’s anti-cancer properties. These pathways can be optimized in the plant or cloned into other hosts for more efficient biologic production. In addition, it may be possible through genome directed breeding to attenuate the psychoactive effects of <em>Cannabis</em>, while enhancing the medicinal aspects.

<strong>Medicinal Benefits of <em>Cannabis</em></strong>

Ongoing scientific research suggests that the <em>Cannabis</em> plant harbors beneficial compounds as it pertains to cancer apoptosis, antiemesis for HIV and chemotherapy patients, reduction of muscle spasms for multiple sclerosis patients, as well as the treatment of glaucoma, inflammatory diseases, anxiety, and post-traumatic stress disorder, among other health conditions. Of the 85 identified Cannabinoids in the plant, only one is independently psychoactive. The other 84 appear to be non-psychoactive and are still powerful therapeutics. Many Cannabinoids have been bred to low expression levels over the years but are excellent small molecule therapeutic drug candidates for cancer and inflammatory diseases. The genome sequence can be utilized to design breeding strategies to resurrect these nearly extinct pathways. In addition, Cannabinoids have also been shown to have a very favorable therapeutic index making them a unique class of anti-cancer compounds because the lethal dose is much higher than the effective dose. Furthermore, Cannabinoids are less addictive analgesics than opiates, and target different pain pathways in the body.

Another benefit of <em>Cannabis</em> as a source for a therapeutic drug is that its toxicity is low and well-known. This is unique in drug discovery where every drug candidate must go through expensive and lengthy clinical trials to establish its safety. With <em>Cannabis</em>, side effects have previously been established and might be mitigated with genome directed breeding, whereas many drug candidates are not easily modified and end up failing in clinical trials because of adverse effects on a small percentage of the population.

The American Medical Association, as well as the American College of Physicians each have independently issued reports on the medicinal benefits of <em>Cannabis</em> to justify a reclassification of the plant<em> </em>so it can be more easily researched. By digitizing the genome of <em>Cannabis</em>, researchers from around the world can now study this plant without having to handle it. Assembling the complete <em>Cannabis</em> genome was a logical first step to enable more comprehensive scientific research to begin.

<strong>About Medicinal Genomics</strong>

Medicinal Genomics is the first known organization to sequence the complete genomes of <em>Cannabis sativa</em> and <em>Cannabis indica</em>. Aside from being a useful tool to discover small molecule therapeutic drug candidates, there are many other commercial applications of these sequences, including the design of genomic assays that measure genes predictive of Cannabinoid levels in the plants at seedling stages. Use of this information will enhance breeding strategies to develop high CBD or other medicinal traits into strains. These genomic assays can also be utilized to help regulate the medicinal <em>Cannabis</em> market through better oversight and labeling. The non psycho-active plant known as hemp is also a productive plant for fiber production and may benefit from genome sequencing in its pursuit to improve breeding programs.

The company was founded by Kevin McKernan, a recognized thought leader and innovator in DNA sequencing. Kevin co-invented a magnetic bead-based chemistry, called SPRI, which enabled fully automated nucleic acid purification for the Human Genome Project. Based on the SPRI technology, Kevin, along with his two brothers, founded Agencourt Bioscience, an efficient, low cost sequencing laboratory. Agencourt was the only commercial laboratory selected to participate in the Human, Rat, and Puffer Fish Genome Projects, in addition to serving as the lone sequencing facility for the Mammalian Gene Collection. Agencourt was sold to Beckman Coulter in 2005. Prior to the sale to Beckman, Agencourt spun off its subsidiary, Agencourt Personal Genomics, to its shareholders. Agencourt Personal Genomics was a next generation sequencing (NGS) project that Kevin had also co-invented, which subsequently became known as SOLiD. Agencourt Personal Genomics created an instrument that advanced the accuracy and throughput of NGS, lowering the cost of sequencing by a factor of 100,000. Nine months after the spin out, Agencourt Personal Genomics was purchased by Applied Biosystems, the then leader in DNA sequencers. Kevin remained with Applied Biosystems for 5 years, even after Applied Biosystems was acquired by Life Technologies, to complete the family of NGS products. He most recently served as vice president of advanced research and head of research and development for the Ion Torrent division of Life Technologies.

Medicinal Genomics maintains its corporate headquarters in Marblehead, Mass. All scientific operations are conducted at the company’s research facility in Amsterdam, Netherlands.

</div>]]></content:encoded>
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		<title>Jane-Ome App</title>
		<link>http://www.medicinalgenomics.com/the-jane-ome/</link>
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		<pubDate>Mon, 09 Jan 2012 21:38:43 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
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		<title>Cannabinoid Papers</title>
		<link>http://www.medicinalgenomics.com/cannabinoid-papers/</link>
		<comments>http://www.medicinalgenomics.com/cannabinoid-papers/#comments</comments>
		<pubDate>Sat, 17 Dec 2011 20:24:32 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
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		<description><![CDATA[Involvement of PPARg in the antitumoral action of cannabinoids Cannabidiol_attenuates_Inflamation- MS paper Cannabinoid induced expression Evolutionary_conservation_CB_receptors Charles Darwin had Mitochondrial Disease Darwins_MELAS Database of clinical studies on cannabinoids Id1 and CBD tackle GBM. Cancer Res-2013-Soroceanu-1559-69 Mark Anderson MMJ- Suicide Mark_Anderson_Medical_MJ_Suicide_dp6280 Mark Anderson Teen Use Anderson_2012-Medical-Marijuana-Laws-and-Teen-Marijuana-Use Mark Anderson Anderson_Medical_Marijuana_Accidents_and_Alcohol_10_16_12_v1 CNR1_anti-psych_weight_gain-npp2009235a Neurologin_mutations_endocannabinoid_signalling MA_DPH_med-marijuana-propose-reg http://www.druglibrary.org/olsen/hemp/IHA/iha03109.html http://www.ncbi.nlm.nih.gov/pubmed/23467947 http://www.ncbi.nlm.nih.gov/m/pubmed/22963825/?i=7&#38;from=cannabidiol http://www.sciencedirect.com/science/article/pii/S0040402011004157 http://onlinelibrary.wiley.com/doi/10.1002/ejoc.200901464/abstract http://www.sciencedirect.com/science/article/pii/S0308814612018468 http://www.ncbi.nlm.nih.gov/pubmed/23107724 Cannabinoid_GPR55_PNAS-2013-Sylantyev-5193-8 Pervasive_gene_patents_cover_the_entire_Human_genome [...]]]></description>
			<content:encoded><![CDATA[<div></div>
<ul>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Involvement-of-PPARg-in-the-antitumoral-action-of-cannabinoids.pdf">Involvement of PPARg in the antitumoral action of cannabinoids</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabidiol_attenuates_Inflamation.pdf">Cannabidiol_attenuates_Inflamation</a>- MS paper</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinoid-induced-expression.pdf">Cannabinoid induced expression</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Evolutionary_conservation_CB_receptors.pdf">Evolutionary_conservation_CB_receptors</a></li>
	<li>Charles Darwin had Mitochondrial Disease <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Darwins_MELAS.pdf">Darwins_MELAS</a></li>
	<li><a href="http://www.cannabis-med.org/studies/study.php">Database of clinical studies on cannabinoids</a></li>
	<li>Id1 and CBD tackle GBM. <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cancer-Res-2013-Soroceanu-1559-69.pdf">Cancer Res-2013-Soroceanu-1559-69</a></li>
	<li>Mark Anderson MMJ- Suicide <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Mark_Anderson_Medical_MJ_Suicide_dp6280.pdf">Mark_Anderson_Medical_MJ_Suicide_dp6280</a></li>
	<li>Mark Anderson Teen Use <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Anderson_2012-Medical-Marijuana-Laws-and-Teen-Marijuana-Use.pdf">Anderson_2012-Medical-Marijuana-Laws-and-Teen-Marijuana-Use</a></li>
	<li>Mark Anderson <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Anderson_Medical_Marijuana_Accidents_and_Alcohol_10_16_12_v1.pdf">Anderson_Medical_Marijuana_Accidents_and_Alcohol_10_16_12_v1</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CNR1_anti-psych_weight_gain-npp2009235a.pdf">CNR1_anti-psych_weight_gain-npp2009235a</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Neurologin_mutations_endocannabinoid_signalling1.pdf">Neurologin_mutations_endocannabinoid_signalling</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/MA_DPH_med-marijuana-propose-reg.pdf">MA_DPH_med-marijuana-propose-reg</a></li>
	<li><a href="http://www.druglibrary.org/olsen/hemp/IHA/iha03109.html">http://www.druglibrary.org/olsen/hemp/IHA/iha03109.html</a></li>
	<li><a href="http://www.ncbi.nlm.nih.gov/pubmed/23467947">http://www.ncbi.nlm.nih.gov/pubmed/23467947</a></li>
	<li><a href="http://www.ncbi.nlm.nih.gov/m/pubmed/22963825/?i=7&amp;from=cannabidiol">http://www.ncbi.nlm.nih.gov/m/pubmed/22963825/?i=7&amp;from=cannabidiol</a></li>
	<li><a href="http://www.sciencedirect.com/science/article/pii/S0040402011004157">http://www.sciencedirect.com/science/article/pii/S0040402011004157</a></li>
	<li><a href="http://onlinelibrary.wiley.com/doi/10.1002/ejoc.200901464/abstract">http://onlinelibrary.wiley.com/doi/10.1002/ejoc.200901464/abstract</a></li>
	<li><a href="http://www.sciencedirect.com/science/article/pii/S0308814612018468">http://www.sciencedirect.com/science/article/pii/S0308814612018468</a></li>
	<li><a href="http://www.ncbi.nlm.nih.gov/pubmed/23107724">http://www.ncbi.nlm.nih.gov/pubmed/23107724</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinoid_GPR55_PNAS-2013-Sylantyev-5193-8.pdf">Cannabinoid_GPR55_PNAS-2013-Sylantyev-5193-8</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Pervasive_gene_patents_cover_the_entire_Human_genome.pdf">Pervasive_gene_patents_cover_the_entire_Human_genome</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Perils-of-gene-patents-reprint-CPT2012.pdf">Perils-of-gene-patents-reprint-CPT2012</a></li>
	<li>Sirtuins and Mitochondrial function-<a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/aging21.pdf">aging21</a></li>
	<li>THC as an Alzheimers Drug. Scripps 2006- <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/AChE-Aricept_vs_THC.pdf">AChE-Aricept_vs_THC</a></li>
	<li>Novel Insights into CB1 signaling: A key interaction identified between EC-3 Loop and TMH2-<a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/J-Pharmacol-Exp-Ther-2013-Marcu-jpet.112.201046.pdf">J Pharmacol Exp Ther-2013-Marcu-jpet.112.201046</a></li>
	<li>Anti-Sense CBR1 oligos and the impact on typeII Diabetes.<a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Anti-Sense_CBR1_oligos_for_Diebetes.pdf">Anti-Sense_CBR1_oligos_for_Diebetes</a></li>
	<li>CBG and Colitis-<a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBG_Colitis.pdf">CBG_Colitis</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBD_Prion.pdf">CBD_Prion</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CB1_Neuro-stemcells.pdf">CB1_Neuro-stemcells</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBD_as_an_Anxiolytic_drug.pdf">CBD_as_an_Anxiolytic_drug</a>- Cannabidiol and Anxiety</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Genetic_Variability_J-Psychopharmacol-2012-Mitjans-1391-8.pdf">CNR1 CNR2 and FAAH SNPs and their impact on SSRIs</a>- <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Genetic_Variability_J-Psychopharmacol-2012-Mitjans-1391-8.pdf">Genetic_Variability_J Psychopharmacol-2012-Mitjans-1391-8</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBD_Microparticles_GBM.pdf">CBD_Microparticles_GBM</a>- Microparticles loaded with cannabinoids take on Glioblastoma Multiforme.</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Kids_on_EtOH_vs_Cannabis.pdf">Kids_on_EtOH_vs_Cannabis</a>- White Matter decay not present with cannabis users. Very noticable with alcohol use in adolescents</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/High_on_Life.pdf">High_on_Life</a>- Decreased Suicide rates in medical marijuana states vs non MMJ states.</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBD_Kaposi_sarcoma-Genes-Cancer-2012-Maor-1947601912466556.pdf">CBD_Kaposi_sarcoma-Genes &amp; Cancer-2012-Maor-1947601912466556</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Functional-diversity-on-synaptic-plasticity-mediated-by-endocannabinoids.pdf">Functional diversity on synaptic plasticity mediated by endocannabinoids</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Diacylglycerol-Lipases-structure-regulation-and-roles-in-and-beyond-endocannabinoid-signalling.pdf">Diacylglycerol Lipases-structure, regulation and roles in and beyond endocannabinoid signalling</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Modulation-of-neuropathic-pain-related-behaviour-by-the-spinal-endocannabinoid-endovanilloid-system1.pdf">Modulation of Neuropathic-pain-related behaviour by the spinal endocannabinoid-endovanilloid system- Modulation of neuropathic-pain-related behaviour by the spinal endocannabinoid-endovanilloid system</a></li>
	<li>Dynamic Changes in the endocannabinoid system in models of chronic pain. <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Dynamic-changes-in-the-endocannabinoid-system-with-chronic-pain.pdf">Dynamic changes in the endocannabinoid system with chronic pain</a></li>
	<li>Targeting the Endocannabinoid System- Pertwee. <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Pertwee_Targeting-the-endocannabinoid-system.pdf">Pertwee_Targeting-the-endocannabinoid-system</a></li>
	<li>Cannabinoids, Mitochondrial regulators and Brain Ageing. <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinoids-and-Brain-Ageing.pdf">Cannabinoids and Brain Ageing</a></li>
	<li>Anti-Tumor Activity of the Novel Hexahydrocannabinol Analog LYR-8<a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Anti-Tumor_Hexahydrocannabinol_LYR-8.pdf">Anti-Tumor_Hexahydrocannabinol_LYR-8</a></li>
	<li>Mitochondria Role in Cancer micro-environments: <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cancer_Mito_Connection.pdf">Cancer_Mito_Connection</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Receptor_dependent_cannabinoid_signaling_in_Cancer.pdf">Receptor_dependent_cannabinoid_signaling_in_Cancer</a></li>
	<li>Uncoupling of the endocannabinoid signalling complex in a mouse model of fragile X syndrome</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/therapeutic_potential1.pdf">therapeutic_potential</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Epilispsy.pdf">Epil</a>epsy</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/IJN-30940-peg-nanolized-ultrasmall-selenium-nanoparticles-overcome-dru_072012.pdf">PEG-nanolized-ultrasmall-selenium-Mito_Cancer</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/HIV_and_Cannabinoids.pdf">HIV_and_Cannabinoids</a>- Evidence of CB2 regulating CCR5 and CXCR4</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Mito_Aging_Muscles.pdf">Mito_Aging_Muscles</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/FMRI_THC_paper.pdf">FMRI_THC_paper</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/MitoCan.pdf">MitoCan</a>- Drugs which target Mitochondrial function for cancer</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Guzman-Cannabinoid_cancer_US20040039048.pdf">Guzman-Cannabinoid_cancer_US20040039048</a>Manuel Guzman Patent Application on CBD and Brain Cancer</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBD_Cancer_MCT_10-1100_Shrivastava.F1-2.pdf">CBD_Cancer_MCT_10-1100_Shrivastava.F1-2</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinoids-and-Oral-Cancer.pdf">Cannabinoids and Oral Cancer- </a>Cannabinoids and reducing Oral Cancer</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinoids-a-new-hope-for-breast-cancer.pdf">Cannabinoids-a new hope for breast cancer  - Manuel Guzman 2012</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinoid-labeling.pdf">Cannabinoid-labeling- Labeling Cannabinoids</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Gateway_paper.pdf">Gateway_paper</a>- Alcohol is a larger gateway than cannabis</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/CBD-Targets-Mitochondria.pdf">CBD Targets Mitochondria</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Sci-Transl-Med-2012-Cooper-141ra90.pdf">Sci Transl Med-2012-Cooper-141ra90</a>- iPSC from Parkinsons patients used to measure mito disfunction</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/KJM_Exome.pdf">KJM_Exome</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Colon_cancer-Mito.pdf">Colon_cancer-Mito</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Colon_Cancer_Mito-Glycolysis.pdf">Colon_Cancer_Mito-Glycolysis</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Mitochondria_Ox-Stress_Neurology.pdf">Mitochondria_Ox-Stress_Neurology</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Clearing-the-smoke-18TONEUJ.pdf">Clearing the smoke</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Circ_tumor_DNA-Sci-Transl-Med-2012-Forshew-136ra68.pdf">Circ_tumor_DNA-Sci Transl Med-2012-Forshew-136ra68</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/WGS-is-it-here-yet-Science-2012-Brunham-1112-3.pdf">WGS-is it here yet-Science-2012-Brunham-1112-3</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Mitochondrial-Priming-Science-2011-Chonghaile-1129-33.pdf">Mitochondrial Priming for chemotherapy</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Protracted-Abstinence-and-Gene-Expression.pdf">Gene Expression Changes with Abstinence from EtOH, Cannabinoids, Morphine and Nicotine</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/annrheumdis-2011-200314_ds1.pdf">Ajumelic Acid for Schleroderma</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabinergic_Pain_Medicine__A_Concise_Clinical.997821.pdf">Cannabinergic_Pain_Medicine</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Ware-et-al-2003-12620613.pdf">Cannabis use for chronic non-cancer pain: results of a prospective survey</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Genome-Res.-2011-Parkinson-gr.124016.111.pdf">Next Gen libraries from Picograms of DNA</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Chemical-constituents-of-cannabis.pdf">Chemical constituents of cannabis</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/plntphys00694-0015.pdf">Secreting Glandular Trichomes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/marijuanaextractions.pdf">marijuana DNA extractions</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Terpenes_in_Ecoli_Keasling1.pdf">Terpenes_in_Ecoli_Keasling</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/j.femsle.2004.11.050.pdf">Terpene Synthesis in Yeast</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Artemisin_nature04640.pdf">Artemisin Cloning nature04640</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Fitoshi_Taura.pdf">Fitoshi_Taura- Transgenic expression of THCA Synthase</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Taura_Morimoto_Tabacco_THC.pdf">Gene Controlling Marijuana's</a> <a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Taura_Morimoto_Tabacco_THC.pdf">Psychoactivity </a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Marijuan_vs_Alcohol_driving_dp6112.pdf">Marijuan_vs_Alcohol_driving_dp6112</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabis_Genome_Uncloaked.pdf">Cannabis_Genome_Uncloaked</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Inhertience-of-chemical-III.pdf">The Inhertience of Chemical Phenotype III</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Inheritence-of-chemical-II.pdf">The Inheritence of chemical Phenotype II</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/The-inheritence-of-Chemical.pdf">The inheritence of Chemical Phenotype I</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Crystalization-of-THC.pdf">Crystalization of THC</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cyto-toxic_cannbinoids-J.-Biol.-Chem.-2007-Morimoto-jbc.M700133200.pdf">Cyto-toxic_cannbinoids-J. Biol. Chem.-2007-Morimoto-jbc.M700133200</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/US6630507.pdf">US6630507</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Abscisic-Acid-and-Gibberillins.pdf">Abscisic Acid and Gibberillins</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Progress-in-lipid-research.pdf">Progress in lipid research</a>  Mechoulams recent work.</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/J.-Exp.-Bot.-2009-Marks-3715-26.pdf">J. Exp. Bot.-2009-Marks-3715-26-Cannabis EST sequencing</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/J.-Biol.-Chem.-2011-Anavi-Goffer-jbc.M111.296020.pdf">J. Biol. Chem.-2011-Anavi-Goffer-jbc.M111.296020</a> Moldulation of L-alpha- Lysophosphatidylinositol / GPR55 Map Kinase signalling by Cannabinoids</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/russo-ob.pdf">russo-ob</a> Cannabis Treatments in Obsetrics and Gynecology</li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/39368683-CBD-as-a-Treatment-for-Breast-Cancer.pdf">CBD-as-a-Treatment-for-Breast-Cancer</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/52920609-Effects-of-ABA-on-Primary-Terpenoids-and-THC-in-Cannabis-Sativa-at-Flowering-Stage.pdf">Effects-of-ABA-on-Primary-Terpenoids-and-THC-in-Cannabis-Sativa-at-Flowering-Stage</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Mol-Biol-Evol-2009-Goremykin-99-110.pdf">Mitochondrial Horizontal Gene Transfer in Grape</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/966.full_.pdf">Chemotaxic analysis of cannabinoid variation in Cannabis- Hillig</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Ware-et-al-2003-126206131.pdf">Cannabis Use for Chronic non-cancer pain</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/nihms141953.pdf">Intermittent Marijuan Use is Associated with Improved Retention in Naltrexone Treatment for Optiate-Dependence</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/J.-Exp.-Bot.-2008-Russo-4171-82.pdf">Phytochemical and genetic analyses of ancient cannabis from central asia</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/art3-volatile-aroma-components-of-sauvignon-blanc.pdf">art3 volatile aroma components of sauvignon blanc</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/J.-Biol.-Chem.-1982-Gambliel-2335-42.pdf">Biosynthesis of alpha Pinene from Sage</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Maimone_Oct_05_terpene.pdf">Maimone_Oct_05_terpene</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Biosynthesis_of_Cannabinoids_j.1432-1327.2001.02030.x.pdf">Biosynthesis_of_Cannabinoids_j.1432-1327.2001.02030.x</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/The-Response-of-Terpenoids-to-Exogenous-Gibberellic-Acid-in-Cannabis-Sativa-L-at-Vegetative-Stage-2010.pdf">The-Response-of-Terpenoids-to-Exogenous-Gibberellic-Acid-in-Cannabis-Sativa-L-at-Vegetative-Stage-2010</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabis_Sativa_Purple_Kush.pdf">Cannabis_Sativa_Purple_Kush</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Evolution-of-terpene-synthases.pdf">Evolution of terpene synthases</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Monoterpene-and-sesquiterpene-synthases-and-the-origin-of-terpene-skeletal.pdf">Monoterpene and sesquiterpene synthases and the origin of terpene skeletal</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Taming-THC-phytocannabinoid-terpene-entourage-effects.pdf">Taming THC-phytocannabinoid-terpene entourage effects</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Sex_Chromosome_dioecious_plants.pdf">Sex_Chromosome_dioecious_plants</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/J-Pharmacol-Exp-Ther-2011-Ramesh-jpet.111.181370.pdf">J Pharmacol Exp Ther-2011-Ramesh-Opiate_dependence and Cannabis</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/mPIF_MobDNA.pdf">mPIF_MobDNA</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Limonene_Synthase-Plant-Physiol.-1999-Turner-879-86.pdf">Limonene_Synthase-Plant Physiol.-1999-Turner-879-86</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Limonene-Synthase-PNAS-2007-Hyatt-5360-5.pdf">Limonene Synthase-PNAS-2007-Hyatt-5360-5</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/52920857-Propagation-Through-Alginate-Encapsulation-of-Axillary-Buds-of-Cannabis-Sativa.pdf">52920857-Propagation-Through-Alginate-Encapsulation-of-Axillary-Buds-of-Cannabis-Sativa</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/cannabis_volatiles.pdf">cannabis_volatiles</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Genetics_Predicts_Chemotypes.pdf">Genetics_Predicts_Chemotypes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Genome-bnased-approaches-to-the-authentication-of-medicinal-plants.pdf">Genome bnased approaches to the authentication of medicinal plants</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Differentiation-of-strains-with-THC-SNAPshot.pdf">Differentiation of strains with THC SNAPshot</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/DNA-polymorphisms-in-THCA-gene.pdf">DNA polymorphisms in THCA gene</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Advancing-Genetic-theory-and-application-of-Metabolic-QTLS-in-Cannabis.pdf">Advancing Genetic theory and application of Metabolic QTLS in Cannabis</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabis_sex_markers.pdf">Cannabis_sex_markers</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/cannabis-terpenes.pdf">cannabis terpenes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabis-Chemistry-Shulgin.pdf">Cannabis Chemistry Shulgin</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Terpenes_In_Cannabis.pdf">Terpenes_In_Cannabis</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Hops_Glandular_trichomes.pdf">Hops_Glandular_trichomes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Monoterpenes_Glandual_trichomes.pdf">Monoterpenes_Glandual_trichomes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Terpenes_in_Grapes.pdf">Terpenes_in_Grapes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Terpene_Synthase.pdf">Terpene_Synthase</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Ethylene-Induction_plntphys00628-0216.pdf">Ethylene-Induction_plntphys00628-0216</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Photosynthesis-and-Cannabinoid-Content.pdf">Photosynthesis-and-Cannabinoid-Content</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Cannabis_Haplotypes.pdf">Cannabis_Haplotypes</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Synthetic-Seeds.pdf">Synthetic Seeds</a></li>
	<li><a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/12/Genome_Size_2007_Anale_GBM_VIII_f2_l07.pdf">Genome_Size_2007_Anale_GBM_VIII_f2_l07</a></li>
	<li>MEDICINAL</li>
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		<title>States with Medical Cannabis Laws have lower traffic fatalities</title>
		<link>http://www.medicinalgenomics.com/states-with-medical-cannabis-laws-have-lower-traffic-fatalities/</link>
		<comments>http://www.medicinalgenomics.com/states-with-medical-cannabis-laws-have-lower-traffic-fatalities/#comments</comments>
		<pubDate>Tue, 29 Nov 2011 21:34:15 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
				<category><![CDATA[Resources]]></category>

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		<a href="http://www.medicinalgenomics.com/states-with-medical-cannabis-laws-have-lower-traffic-fatalities/" title="Marijuana_vs_Alcohol_driving"><img title="Marijuana_vs_Alcohol_driving" src="http://www.medicinalgenomics.com/wp-content/uploads/2011/11/IZA_cannabis_Alcohol_study-e1322602403926.jpg" alt="States with Medical Cannabis Laws have lower traffic fatalities" width="150" height="102" /></a>
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		<br/>
		&#160; Marijuana_vs_Alcohol_driving]]></description>
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		<a href="http://www.medicinalgenomics.com/states-with-medical-cannabis-laws-have-lower-traffic-fatalities/" title="Marijuana_vs_Alcohol_driving"><img title="Marijuana_vs_Alcohol_driving" src="http://www.medicinalgenomics.com/wp-content/uploads/2011/11/IZA_cannabis_Alcohol_study-e1322602403926.jpg" alt="States with Medical Cannabis Laws have lower traffic fatalities" width="150" height="102" /></a>
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		<br/>
		

&nbsp;

<a href="http://www.medicinalgenomics.com/wp-content/uploads/2011/11/Marijuan_vs_Alcohol_driving_dp6112.pdf">Marijuana_vs_Alcohol_driving</a>]]></content:encoded>
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		<title>Purple Kush Sequenced compared to MGCs Chemdawg; AAE3 showing signs of interest</title>
		<link>http://www.medicinalgenomics.com/purple-kush-sequenced-compared-to-mgcs-chemdawg-aae3-showing-signs-of-interest/</link>
		<comments>http://www.medicinalgenomics.com/purple-kush-sequenced-compared-to-mgcs-chemdawg-aae3-showing-signs-of-interest/#comments</comments>
		<pubDate>Mon, 31 Oct 2011 13:42:01 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
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		]]></description>
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		<a href="http://www.medicinalgenomics.com/purple-kush-sequenced-compared-to-mgcs-chemdawg-aae3-showing-signs-of-interest/" title="Toronot_Pathway"><img title="Toronot_Pathway" src="http://www.medicinalgenomics.com/wp-content/uploads/2011/10/Toronot_Pathway.jpg" alt="Purple Kush Sequenced compared to MGCs Chemdawg; AAE3 showing signs of interest" width="139" height="150" /></a>
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		<title>GPR55 again shows cannabinoid activity</title>
		<link>http://www.medicinalgenomics.com/pathways-of-interest/</link>
		<comments>http://www.medicinalgenomics.com/pathways-of-interest/#comments</comments>
		<pubDate>Mon, 31 Oct 2011 13:29:17 +0000</pubDate>
		<dc:creator>genomeman</dc:creator>
				<category><![CDATA[Cannabinoid Sciences]]></category>

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		<br/>
		GPR55 again shows cannabinoid activity Medicinal Genomics …]]></description>
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		<a href="http://www.medicinalgenomics.com/pathways-of-interest/" title="AlphaScreen-J. Biol. Chem.-2011-Anavi-Goffer-jbc.M111.296020"><img title="AlphaScreen-J. Biol. Chem.-2011-Anavi-Goffer-jbc.M111.296020" src="http://www.medicinalgenomics.com/wp-content/uploads/2011/10/GPR55.jpg" alt="GPR55 again shows cannabinoid activity" width="150" height="64" /></a>
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		<br/>
		<span class="Apple-style-span" style="font-size: 20px; font-weight: bold;">GPR55 again shows <strong>cannabinoid</strong> activity Medicinal Genomics <strong>…</strong></span>
<h2></h2>
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