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Woodward, T. J.

Publications and source records attributed to Woodward, T. J..

4 recordsLinked to original sources

Morphine causes distinct changes in the lipidome throughout the brain and body after acute or chronic administration: implications for novel endogenous lipid signaling systems involved in opioid reward and withdrawal

A growing body of evidence demonstrates that signaling pathways of endogenous lipids (endolipids) modulate the reinforcing properties of opioids including reward and withdrawal. Many of these studies are focused on the endocannabinoid (eCB) system, and its primary eCB ligands, Anandamide (AEA) and 2-arachidonoylglycerol (2-AG). The central hypothesis is that modulation of the eCB system through eCB receptors and enzymes may improve therapeutic outcomes for opioid use disorder (OUD). However, outcomes in preclinical and clinical studies using the low efficacy, CB1/CB2 orthosteric agonist, THC, found limited to no effectiveness, suggesting that targeting this aspect of CB1/CB2 is not a useful therapeutic tool for OUD. Previous studies finding that genetic deletion or pharmacological inhibition of endolipid-regulating enzymes (including eCBs) can alter behavioral sensitivity to opioids provide insight into an alternative approach. If opioid use dysregulates a wide range of endolipid biosynthesis and metabolism, then a clearer understanding of these changes, especially in signaling ligands, will provide a novel avenue to both understand the underlying physiological changes with opioid use as well as providing novel targets for therapeutic interventions. In this study, we tested the hypothesis that if morphine dysregulates multiple endolipid signaling systems in the brain and body, and this dysregulation evolves over time, then these differential effects will be measurable by changes in endolipid levels. Using an Acute (30 minutes post injection 20mg/kg) and a Chronic paradigm (5 days, twice daily, 20mg to 100mg/kg escalating dose) we measured 100 targeted endolipids in 8 brain regions, plasma, liver, and feces in male mice. In the Acute condition, we found that the most screened endolipids were changed in the striatum (42%), while the fewest were changed in the thalamus (19%) and 38% in the plasma. In the Chronic condition, 79% of plasma endolipids were changed. The highest level of change in the CNS was in the cortex (39%). Levels of AEA and 2-AG were largely unchanged; however, levels of the N-acyl GABAs, N-acyl valines, N-acyl taurines, and specific bile acids (e.g. DCA, TCA) showed the most dynamic changes by treatment group. These results provide information on novel endolipid signaling pathways that may contribute to the unwanted side effects of opioids, such as dependence and withdrawal, and provide novel avenues for the development of therapeutic strategies.

neuroscience↗

Mice lacking the endocannabinoid-synthesizing enzyme NAPE-PLD exhibit sex-dependent dysregulations in responsiveness to oxycodone and a natural reward

The endogenous opioid and endogenous cannabinoid (endocannabinoid) systems are highly interconnected in the context of drug reward. Bioactive lipids known as N-acylethanolamines (NAEs), and, specifically, anandamide (AEA), influence several unwanted side effects of opioids, including dependence and tolerance. AEA undergoes degradation by the enzyme fatty-acid amide hydrolase (FAAH), whereas the biosynthesis of AEA in vivo is catalyzed by the enzyme N-acyl phosphatidylethanolamine phospholipase-D (NAPE-PLD). AEA and FAAH are implicated in opioid reward, but the impact of genetic deletion of NAPE-PLD on responsiveness to opioids remains unknown. Here we explored the role of NAPE-PLD in behavioral sensitivity to the opioid analgesic oxycodone. We evaluated NAPE-PLD knockout (KO) and wild type (WT) mice of both sexes in preclinical assays that assess either opioid-induced psychomotor responses or voluntary oral consumption of oxycodone. In our studies, genetic deletion of NAPE-PLD produced a shift in sexually dimorphic responses to oxycodone. Psychomotor response to oxycodone was reduced in female NAPE-PLD KO mice but not in males. Female NAPE-PLD KO mice consumed more oral oxycodone that female WT mice, while no genotypic differences in consumption were observed in males. Oxycodone consumption also increased the number of striatal {Delta}FosB positive cells in female WT mice, but not in male WT mice or NAPE-PLD KO mice of either sex. Additionally, NAPE-PLD KO mice of both sexes consumed more sucrose than WT mice. Together, these findings suggest that NAPE-PLD may regulate responses to opioids in a sexually dimorphic manner as the impact of genetic deletion of NAPE-PLD was greater in females than males.

neuroscience↗

Psilocybin as a Treatment for Repetitive Mild Head Injury: Evidence from Neuroradiology and Molecular Biology

Repetitive mild head injuries incurred while playing organized sports, during car accidents and falls, or in active military service are a major health problem. These head injuries induce cognitive, motor, and behavioral deficits that can last for months and even years with an increased risk of dementia, Parkinsons disease, and chronic traumatic encephalopathy. There is no approved medical treatment for these types of head injuries. To this end, we tested the healing effects of the psychedelic psilocybin, as it is known to reduce neuroinflammation and enhance neuroplasticity. Using a model of mild repetitive head injury in adult female rats, we provide unprecedented data that psilocybin can reduce vasogenic edema, restore normal vascular reactivity and functional connectivity, reduce phosphorylated tau buildup, enhance levels of brain-derived neurotrophic factor and its receptor TrkB, and modulate lipid signaling molecules.

neuroscience↗

Genetic deletion of NAPE-PLD induces context-dependent dysregulation of anxiety-like behaviors, stress responsiveness, and HPA-axis functionality in mice

The endocannabinoid (eCB) system regulates stress responsiveness and hypothalamic-pituitary-adrenal (HPA) axis activity. The enzyme N-acyl phosphatidylethanolamine phospholipase-D (NAPE-PLD) is primarily responsible for the synthesis of the endocannabinoid signaling molecule anandamide (AEA) and other structurally related lipid signaling molecules known as N-acylethanolamines (NAEs). However, little is known about how activity of this enzyme affects behavior. As AEA plays a regulatory role in stress adaptation, we hypothesized that reducing synthesis of AEA and other NAEs would dysregulate stress reactivity. To test this hypothesis, we evaluated wild type (WT) and NAPE-PLD knockout (KO) mice in behavioral assays that assess stress responsiveness and anxiety-like behavior. NAPE-PLD KO mice exhibited anxiety-like behaviors in the open field test and the light-dark box test after a period of single housing. NAPE-PLD KO mice exhibited a heightened freezing response to the testing environment that was further enhanced by exposure to 2,3,5-trimethyl-3-thiazoline (TMT) predator odor. NAPE-PLD KO mice exhibited an exaggerated freezing response at baseline but blunted response to TMT when compared to WT mice. NAPE-PLD KO mice also exhibited a context-dependent dysregulation of HPA axis in response to TMT in the paraventricular hypothalamic nucleus at a neuronal level, as measured by c-Fos immunohistochemstry. Male, but not female, NAPE-PLD knockout mice showed higher levels of circulating corticosterone relative to same-sex wildtype mice in response to TMT exposure, suggesting a sexually-dimorphic dysregulation of the HPA axis at the hormonal level. Together, these findings suggest the enzymatic activity of NAPE-PLD regulates emotional resilience and recovery from both acute and sustained stress. Significance StatementThe endocannabinoid anandamide (AEA) regulates stress responsiveness and activity of the hypothalamic-pituitary-adrenal (HPA) axis. Currently, little is known about how an enzyme (i.e. N-acylphosphatidylethanolamine phospholipase-D (NAPE-PLD)) involved in the synthesis of AEA affects behavior. We hypothesized that genetic deletion of NAPE-PLD would dysregulate responsiveness to stress at a behavioral and neuronal level. Our studies provide insight into potential vulnerabilities to stress and anxiety that may result from dysregulation of the enzyme NAPE-PLD in people.

neuroscience↗