Delta9-tetrahydrocannabinol (THC) is best known as a psychotropic agent. Yet, this agent also produces multiple non- psychotropic effects; in particular reducing immunologic competence. These effects raise the possibility that cannabinoids regulate inflammations occurring within the CNS. The work proposed here addresses the role of cannabinoids in the regulation of microglial cell activation. Microglial cells are immune cells that reside in the CNS and become activated in diseases such as multiple sclerosis and HIV encephalopathy. Activated microglial cells release toxins and cytokines that lead to remodeling of affected tissue. By analogy with peripheral macrophages, we hypothesize that the engagement of cannabinoid receptors on microglial cells tempers their activation process. This hypothesis is supported by the observation that cannabinoids inhibit CNS inflammation associated with experimental allergic encephalomyelitis, an animal model of multiple sclerosis. In addition, several small clinical studies indicate that patients with multiple sclerosis experience relief from symptoms with marijuana use. We propose to identify and characterize the cannabinoid signaling system in microglial cells.
The specific aims are: 1: What types of cannabinoid receptors do resting or activated microglial cells express? 2: How are endocannabinoids generated by microglial cells? 3: Do microglial cells inactivated endocannabinoids? Understanding how cannabinoids interact with microglial cells is of particular interest because patients with multiple sclerosis and HIV encephalopathy often use these drugs for medicinal purposes, and because recent evidence implicates cannabinoid signaling pathways in the symptomatology of these diseases. Finally, because cannabinoids are immunoactive, characterization of the cannabinoid signaling system in microglial cells might lead to new pharmaceutical targets that could specifically temper inflammation of the CNS.

Agency
National Institute of Health (NIH)
Institute
National Institute on Drug Abuse (NIDA)
Type
Research Project (R01)
Project #
5R01DA014486-04
Application #
6759383
Study Section
AIDS and Related Research 8 (AARR)
Program Officer
Colvis, Christine
Project Start
2001-07-01
Project End
2006-04-30
Budget Start
2004-05-01
Budget End
2005-04-30
Support Year
4
Fiscal Year
2004
Total Cost
$223,853
Indirect Cost
Name
University of Washington
Department
Pharmacology
Type
Schools of Medicine
DUNS #
605799469
City
Seattle
State
WA
Country
United States
Zip Code
98195
Grant, Kimberly S; Petroff, Rebekah; Isoherranen, Nina et al. (2018) Cannabis use during pregnancy: Pharmacokinetics and effects on child development. Pharmacol Ther 182:133-151
Di Marzo, Vincenzo; Stella, Nephi; Zimmer, Andreas (2015) Endocannabinoid signalling and the deteriorating brain. Nat Rev Neurosci 16:30-42
Fung, Susan; Cherry, Allison E; Xu, Cong et al. (2015) Alkylindole-sensitive receptors modulate microglial cell migration and proliferation. Glia 63:1797-808
Häggström, Jenny; Cipriano, Mariateresa; Forshell, Linus Plym et al. (2014) Potential upstream regulators of cannabinoid receptor 1 signaling in prostate cancer: a Bayesian network analysis of data from a tissue microarray. Prostate 74:1107-17
Cherry, A E; Stella, N (2014) G protein-coupled receptors as oncogenic signals in glioma: emerging therapeutic avenues. Neuroscience 278:222-36
Sexton, Michelle; Cudaback, Eiron; Abdullah, Rehab A et al. (2014) Cannabis use by individuals with multiple sclerosis: effects on specific immune parameters. Inflammopharmacology 22:295-303
Stella, Nephi (2013) Chronic THC intake modifies fundamental cerebellar functions. J Clin Invest 123:3208-10
Sexton, Michelle; Silvestroni, Aurelio; Möller, Thomas et al. (2013) Differential migratory properties of monocytes isolated from human subjects naïve and non-naïve to Cannabis. Inflammopharmacology 21:253-9
Kwan, Wanda; Träger, Ulrike; Davalos, Dimitrios et al. (2012) Mutant huntingtin impairs immune cell migration in Huntington disease. J Clin Invest 122:4737-47
Stella, Nephi (2012) Neuroscience. Inflammation to rebuild a brain. Science 338:1303-4

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