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Neuroprotective Agents

  • Monosodium glutamate and treadmill exercise: Anxiety-like behavior and spreading depression features in young adult rats.

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    Abstract Title:

    Monosodium glutamate and treadmill exercise: Anxiety-like behavior and spreading depression features in young adult rats.

    Abstract Source:

    Nutr Neurosci. 2017 Nov 10:1-9. Epub 2017 Nov 10. PMID: 29125056

    Abstract Author(s):

    Suênia Marcele Vitor-de-Lima, Larissa de Brito Medeiros, Regina de Deus Lira Benevides, Catarina Nicácio Dos Santos, Nahara Oliveira Lima da Silva, Rubem Carlos Araújo Guedes

    Article Affiliation:

    Suênia Marcele Vitor-de-Lima

    Abstract:

    OBJECTIVES:The route of administration is an important factor in determining the action of some drugs. We previously demonstrated that subcutaneous monosodium glutamate (MSG) accelerated cortical spreading depression (CSD) in the rat and that treadmill exercise attenuated this effect. This study evaluated whether other routes of administration exert the same action by testing orogastric (gavage) and topical cortical MSG administration in treadmill-exercised and sedentary rats. Additionally, in the orogastric treatment we tested anxiety-like behavior.

    METHODS:Exercised and sedentary rats received per gavage water or MSG (1 or 2 g/kg) daily from postnatal (P) day 7 to 27. Behavioral tests (open field and elevated plus-maze) occurred at P53 ± 3. At P56 ± 3, we analyzed CSD parameters (velocity, amplitude, and duration of the negative potential change). Other three groups of rats received an MSG solution (25, 50 or 75 mg/ml) topically to the intact dura mater during CSD recording.

    RESULTS:MSG-gavage increased anxiety-like behavior and the CSD velocities compared with water-treated controls (P < 0.05). Exercise decelerated CSD. In contrast to gavage, which accelerated CSD, topical MSG dose-dependently and reversibly impaired CSD propagation, reduced CSD amplitude and increased CSD duration (P < 0.05).

    CONCLUSIONS:The exercise-dependent attenuation of the effects of MSG confirms our previous results in rats treated subcutaneously with MSG. CSD results suggest two distinct mechanisms for gavage and topical MSG administration. Additionally, data suggest that exercise can help protect the developing and adult brain against the deleterious actions of MSG.

  • Neferine attenuates the protein level and toxicity of mutant huntingtin in PC-12 cells via induction of autophagy. 📎

    Abstract Title:

    Neferine attenuates the protein level and toxicity of mutant huntingtin in PC-12 cells via induction of autophagy.

    Abstract Source:

    Molecules. 2015 ;20(3):3496-514. Epub 2015 Feb 18. PMID: 25699594

    Abstract Author(s):

    Vincent Kam Wai Wong, An Guo Wu, Jing Rong Wang, Liang Liu, Betty Yuen-Kwan Law

    Article Affiliation:

    Vincent Kam Wai Wong

    Abstract:

    Mutant huntingtin aggregation is highly associated with the pathogenesis of Huntington's disease, an adult-onset autosomal dominant disorder, which leads to a loss of motor control and decline in cognitive function. Recent literature has revealed the protective role of autophagy in neurodegenerative diseases through degradation of mutant toxic proteins, including huntingtin or a-synuclein. Through the GFP-LC3 autophagy detection platform, we have identified  neferine,  isolated  from  the  lotus  seed  embryo  of Nelumbo nucifera, which is able to induce autophagy through an AMPK-mTOR-dependent pathway. Furthermore, by overexpressing huntingtin with 74 CAG repeats (EGFP-HTT 74) in PC-12 cells, neferine reduces both the protein level and toxicity of mutant huntingtin through an autophagy-related gene 7 (Atg7)-dependent mechanism. With the variety of novel active compounds present in medicinal herbs, our current study suggests the possible protective mechanism of an autophagy inducer isolated from Chinese herbal medicine, whichis crucial for its further development into a potential therapeutic agent for neurodegenerative disorders in the future.

  • Neurological aspects of medical use of cannabidiol.

    Abstract Title:

    Neurological aspects of medical use of cannabidiol.

    Abstract Source:

    CNS Neurol Disord Drug Targets. 2017 Apr 13. Epub 2017 Apr 13. PMID: 28412918

    Abstract Author(s):

    Carmen Mannucci, Michele Navarra, Fabrizio Calapai, Elvira Ventura Spagnolo, Francesco Paolo Busardò, Roberto Da Cas, Francesca Menniti Ippolito, Gioacchino Calapai

    Article Affiliation:

    Carmen Mannucci

    Abstract:

    BACKGROUND:Cannabidiol (CBD) is among the major secondary metabolites of Cannabis devoid of the delta-9-tetra-hydrocannabinol psychoactive effects. It is a resorcinol-based compound with a broad spectrum of potential therapeutic properties, including neuroprotective effects in numerous pathological conditions. CBD neuroprotection is due to its antioxidant and antiinflammatory activi-ties and the modulation of a large number of brain biological targets (receptors, channels) involved in the development and maintenance of neurodegenerative diseases.

    OBJECTIVE:Aim of the present review was to describe the state of art about the pre-clinical research, the potential use and, when existing, the clinical evidence related to CBD in the neurological field.

    METHOD:Collection of all the pre-clinical and clinical findings carried out investigating the effects of CBD alone, not in combination with other substances, in the neurological arena with the exclu-sion of studies on neuropsychiatric disorders.

    RESULTS:Laboratory and clinical studies on the potential role of CBD in Parkinson's disease (PD), Alzheimer's disease (AD), multiple sclerosis (MS), Huntington's disease (HD), amyotrophic lateral sclerosis ALS), cerebral ischemia, were examined.

    CONCLUSIONS:Pre-clinical evidence largely shows that CBD can produce beneficial effects in AD, PD and MS patients, but its employment for these disorders needs further confirmation from well designed clinical studies. CBD pre-clinical demonstration of antiepileptic activity is supported by recent clinical studies in human epileptic subjects resistant to standard antiepileptic drugs showing its potential use in children and young adults affected by refractory epilepsy. Evidence for use of CBD in PD is still not supported by sufficient data whereas only a few studies including a small number of patients are available.

  • Neuroprotection by vitamin C against ethanol -induced neuroinflammation associated neurodegeneration in developing rat brain.

    Abstract Title:

    Neuroprotection by vitamin C against ethanol -induced neuroinflammation associated neurodegeneration in developing rat brain.

    Abstract Source:

    CNS Neurol Disord Drug Targets. 2015 Nov 10. Epub 2015 Nov 10. PMID: 26831257

    Abstract Author(s):

    Ashfaq Ahmad, Shahid Ali Shah, Myeong Ok Kim

    Article Affiliation:

    Ashfaq Ahmad

    Abstract:

    Ethanol induces oxidative stress and its exposure during early developmental age causes neuronal cell death which leads to several neurological disorders. We previously reported that vitamin C can protect against ethanol-induced apoptotic cell death in developing rat brain. Here, we extended our study to know the therapeutic efficacy of vitamin C against ethanol-induced oxidative stress, neuroinflammation mediated neurodegeneration in postnatal day 7 (PND7) rats. A single episode of ethanol (5g/kg) subcutaneous administration to PND7 rats significantly induced the production of reactive oxygen species (ROS), activation of both microglia and astrocytes followed by the induction of different apoptotic markers. On the other hand due to its free radical scavenging properties vitamin C treatment significantly reduced ROS production, suppressed both activated microglia and astrocytes and reversed other changes including elevated level of Bax/Bcl-2 ratio, cytochrome c and different caspases such as caspase-9 and caspase-3 induced by ethanol in developing rat brain. Moreover, vitamin C treatment also reduced ethanol-induced activation of PARP-1 and neurodegeneration as evident from Flouro-Jade-B and Nissl stainined neuronal cell death in PND7 rat brain. These findings suggest that vitamin C mitigated ethanol-induced oxidative stress, neuroinflammation and apoptotic neuronal loss and may be beneficial against ethanol abusing in brain development.

  • Neuroprotective activity of tetramethylpyrazine against 3-nitropropionic acid induced Huntington's disease-like symptoms in rats.

    Abstract Title:

    Neuroprotective activity of tetramethylpyrazine against 3-nitropropionic acid induced Huntington's disease-like symptoms in rats.

    Abstract Source:

    Biomed Pharmacother. 2018 Sep ;105:1254-1268. Epub 2018 Jun 22. PMID: 30021362

    Abstract Author(s):

    Ravi Chandra Sekhara Reddy Danduga, Subba Reddy Dondapati, Phani Kumar Kola, Lilly Grace, Rahil Vandana Bisky Tadigiri, Vijaya Kishore Kanakaraju

    Article Affiliation:

    Ravi Chandra Sekhara Reddy Danduga

    Abstract:

    Huntington's disease (HD) is an autosomal neurodegenerative disease characterized by chorea, dystonia, motor ataxia, cognitive decline and psychiatric disorders with gradual loss of nerve cells and has no existing cure for the disease. In the present study, a mitochondrial toxin, 3-nitropropionic acid (3-NP) is used to induce HD like symptoms in rats. Tetramethylpyrazine is one of the active ingredients of Chuan Xiong which was reported to have neurotrophic and neuroprotective activities. The present study was designed to evaluate the role of TMP on 3-NP induced behavioral, biochemical, neurochemical, and histological alterations in the different regions of the brain. Animals were pretreated with normal saline/TMP for 7 days. From 8th day, the treatment groups were co-administered with 3-NP (10 mg/kg, i.p) and continued to the 21st day of the treatment protocol. At the end of the study, we found that the TMP improved all the behavioral performances of 3-NP induced neurotoxic rats, significantly. Further, oxidative stress parameters (lipid peroxidation, reduced glutathione, catalase, andsuperoxide dismutase), succinate dehydrogenase enzyme, and neurochemical (GABA and glutamate) estimations were done in the brain homogenate. In our study, the treatment with TMP ameliorated the 3-NP induced alterations, in the biochemical and neurochemical parameter in the brain homogenate, dose-dependently. The protective role of TMP further confirmed by measuring the lesion area with the 2,3,5-triphenyltetrazolium chloride staining of the brain slices and histopathological alteration in the hippocampus (CA1 and CA3) and striatal regions of the brain. Hence, the present findings suggest thatthe protective role of TMP against 3-NP induced behavioral, biochemical, neurochemical, and histological alterations in rats.

  • Neuroprotective Agents

  • Neuroprotective and anti-inflammatory activities of ketogenic diet on MPTP-induced neurotoxicity.

    Abstract Title:

    Neuroprotective and anti-inflammatory activities of ketogenic diet on MPTP-induced neurotoxicity.

    Abstract Source:

    J Mol Neurosci. 2010 Oct ;42(2):145-53. Epub 2010 Mar 24. PMID: 20333481

    Abstract Author(s):

    Xinxin Yang, Baohua Cheng

    Article Affiliation:

    Xinxin Yang

    Abstract:

    Ketogenic diet (KD) is a high-fat, low-protein and low-carbohydrate diet. It is reported that KD can provide the neuroprotection for the neurodegenerative diseases such as Alzheimer's disease, Parkinson's disease (PD) and amyotrophic lateral sclerosis. The main clinical symptom of PD is motor dysfunction derived from the loss of dopaminergic neurons in the substantia nigra (SN) and dopamine content in the striatum subsequently. It is well known that treatments with 1-methyl-4-phenyl-1,2,3,6-tetrahydropyridine (MPTP) in mice produce motor dysfunction, biochemical, and neurochemical changes remarkably similar to idiopathic PD patients. In this study, we investigated the neuroprotective and anti-inflammatory effects of KD in MPTP-treated mice. The data showed that pretreatment with KD alleviated the motor dysfunction induced by MPTP. The decrease of Nissl-staining and tyrosine hydroxylase (TH)-positive neurons induced by MPTP was inhibited in the SN. The change of dopamine was very similar to dopaminergic neurons in the SN. KD inhibited the activation of microglia induced by MPTP in the SN. The levels of proinflammatory cytokines (interleukin-1 beta, interleukin-6, and tumor necrosis factor-alpha) in the SN were also decreased and induced by MPTP. So, we concluded that KD was neuroprotective and anti-inflammatory against MPTP-neurotoxicity.

  • Neuroprotective effect of curcumin is mainly mediated by blockade of microglial cell activation.

    Abstract Title:

    Neuroprotective effect of curcumin is mainly mediated by blockade of microglial cell activation.

    Abstract Source:

    Pharmazie. 2007 Dec;62(12):937-42. PMID: 18214347

    Abstract Author(s):

    Hae Sung Lee, Ki Kyung Jung, Jae Youl Cho, Man Hee Rhee, Sungyoul Hong, Moosik Kwon, Seung Hee Kim, Seog Youn Kang

    Abstract:

    Curcumin, the major yellow pigment in turmeric (Curcuma longa), is a well-documented naturally-occurring anti-oxidant with numerous pharmacological activities such as anti-inflammatory, anti-carcinogenic and anti-bacterial effects. In this study, curcumin's neuroprotective effect was carefully examined using a coculture system, based on reports that curcumin-containing plants are neuroprotective. Coculturing neuronal cells and activated microglial cells enhanced dopamine-induced neuronal cell death from 30% up to 50%. However, curcumin did not protect dopamine-directed neuronal cell death and sodium nitroprosside (SNP)-induced NO generation, but only blocked activated microglial cell-mediated neuronal cell damage under inflammatory conditions. Indeed, curcumin blocked the production of pro-inflammatory and cytotoxic mediators such as NO, TNF-alpha, IL-1alpha, and IL-6 produced from Abeta(25-35)/IFN-gamma- and LPS-stimulated microglia, in a dose-dependent manner. Therefore, our results suggest that curcumin-mediated neuroprotective effects may be mostly due to its anti-inflammatory effects.

  • Neuroprotective Effect of Human Placenta-derived Cell Treatment of Stroke in Rats. 📎

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    Abstract Title:

    Neuroprotective Effect of Human Placenta-derived Cell Treatment of Stroke in Rats.

    Abstract Source:

    Cell Transplant. 2012 Mar 28. Epub 2012 Mar 28. PMID: 22469567

    Abstract Author(s):

    Jieli Chen, Amjad Shehadah, Ajai Pal, Alex Zacharek, Xu Cui, Yishen Cui, Cynthia Roberts, Mei Lu, Andrew Zeitlin, Robert Hariri, Michael Chopp

    Abstract:

    Background: Human placenta-derived adherent (PDA001) cells are mesenchymal-like stem cells isolated from postpartum human placenta. In this study, we tested whether intravenously-infused PDA001 improves neurological functional recovery after stroke in rats. In addition, potential mechanisms underlying the PDA001-induced neuroprotective effect were investigated.Methods: Young adult male rats (2-3 months) were subjected to 2h of middle cerebral artery occlusion (MCAo) and treated with PDA001 (4x10⁶) or vehicle controls (Dextran vehicle or phosphate buffer saline (PBS)) via intravenous (IV) administration initiated at 4h after MCAo. A battery of functional tests and measurements of lesion volume and apoptotic cells were performed. Immunostaining and ELISA assays for vascular endothelial growth factor (VEGF) and hepatocyte growth factor (HGF) and brain-derived neurotrophic factor (BDNF) were performed in the ischemic brain to test the potential mechanisms underlying the neuroprotective effects of PDA001 cell treatment of stroke.Results: PDA001 cell treatment at 4h post stroke significantly improved functional outcome, and as well as significantly decreased lesion volume, TUNEL and cleaved-Caspase-3 positive cell number in the ischemic brain, compared to MCAo-vehicle and MCAo-PBS control. Treatment of stroke with PDA001 cells also significantly increased HGF and VEGF expression inthe ischemic border zone (IBZ) compared to controls. Using ELISA assays, treatment of stroke with PDA001 cells significantly increased VEGF, HGF and BDNF levels in the ischemic brain compared to controls.Conclusion: When administered intravenously at 4h after MCAo, PDA001 cells promoted neuroprotective effects. These effects induced by PDA001 cell treatment may be related to the increase of VEGF, HGF and BDNF expression and a decrease of apoptosis. PDA001 cells may provide a viable cell source to treat stroke.

  • Neuroprotective effect of hyperbaric oxygen therapy in a juvenile rat model of repetitive mild traumatic brain injury. 📎

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    Abstract Title:

    Neuroprotective effect of hyperbaric oxygen therapy in a juvenile rat model of repetitive mild traumatic brain injury.

    Abstract Source:

    Med Gas Res. 2016 Oct-Dec;6(4):187-193. Epub 2016 Dec 30. PMID: 28217290

    Abstract Author(s):

    Lei Huang, Andre Obenaus, Mary Hamer, John H Zhang

    Article Affiliation:

    Lei Huang

    Abstract:

    Repetitive mild traumatic brain injury (rmTBI) is an important medical concern for adolescent athletes that can lead to long-term disabilities. Multiple mild injuries may exacerbate tissue damage resulting in cumulative brain injury and poor functional recovery. In the present study, we investigated the increased brain vulnerability to rmTBI and the effect of hyperbaric oxygen treatment using a juvenile rat model of rmTBI. Two episodes of mild cortical controlled impact (3 days apart) were induced in juvenile rats. Hyperbaric oxygen (HBO) was applied 1 hour/day× 3 days at 2 atmosphere absolute consecutively, starting at 1 day after initial mild traumatic brain injury (mTBI). Neuropathology was assessed by multi-modal magnetic resonance imaging (MRI) and tissue immunohistochemistry. After repetitive mTBI, there were increases in T2-weighted imaging-defined cortical lesions and susceptibility weighted imaging-defined cortical microhemorrhages, correlated with brain tissue gliosis at the site of impact. HBO treatment significantly decreased the MRI-identified abnormalities and tissue histopathology. Our findings suggest that HBO treatment improves thecumulative tissue damage in juvenile brain following rmTBI. Such therapy regimens could be considered in adolescent athletes at the risk of repeated concussions exposures.

  • Neuroprotective Effects of Endurance Exercise against High Fat Diet-Induced Hippocampal Neuroinflammation.

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    Abstract Title:

    Neuroprotective Effects of Endurance Exercise against High Fat Diet-Induced Hippocampal Neuroinflammation.

    Abstract Source:

    J Neuroendocrinol. 2016 Mar 16. Epub 2016 Mar 16. PMID: 26991447

    Abstract Author(s):

    Eun-Bum Kang, Jung-Hoon Koo, Yong-Chul Jang, Chun-Ho Yang, Youngil Lee, Ludmilar M Cosio-Lima, Joon-Yong Cho

    Article Affiliation:

    Eun-Bum Kang

    Abstract:

    Obesity contributes to systemic inflammation, associated with various pathogenesis of neurodegenerative diseases. Growing evidence has demonstrated that endurance exercise (EE) mitigate obesity-induced brain inflammation. However, exercise-mediated anti-inflammatory mechanisms remain largely unknown. We investigated how treadmill exercise (TE) reverses obesity-induced brain inflammation, mainly focusing on toll-like receptor-4 (TLR-4)-dependent neuroinflammation in the obese rat brain following 20 weeks of high fat diet (HFD). TE in HFD-fed rats resulted in a significant lowering in HOMA-IR, AUC for glucose and abdominal visceral fat and improved working memory ability in a passive avoidance task relative to sedentary in HFD-fed rats with the exception of body weight. More importantly, TE revoked the increase in HFD-induced proinflammatory cytokines (TNFα and IL-1β) and COX-2, which parallels with reduction in TLR-4 and its downstream proteins, MyD88 and TRAF6 and phosphorylation of TAK-1, IkBα and NF-κB. Moreover, TE reduced an indicator of microglia activation, IBA-1 as well as decreased GFAP, an indicator of gliosis formed by activated astrocytes in the cerebral cortex and the hippocampal dentate gyrus (DG), compared to HFD-fed sedentary rats. Finally, EE upregulated the expression of anti-apoptotic protein, Bcl-2 and suppressed the expression of pro-apoptotic protein, Bax in the hippocampus compared to HFD-fed sedentary rats. Taken together, these data suggest that TE may exert neuroprotective effects by mitigating the production of proinflammatory cytokines by inhibiting the TLR4 signaling pathways. This study suggest that the unique combination of TE's beneficial effects on the restoration of blood profile and anti-inflammatory and anti-apoptotic effects on cognitive function should inspire further investigation of its therapeutic potential for metabolic disorder and neurodegenerative diseases. This article is protected by copyright. All rights reserved.

  • Neuroprotective Effects of Exercise on the Morphology of Somatic Motoneurons Following the Death of Neighboring Motoneurons.

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    Abstract Title:

    Neuroprotective Effects of Exercise on the Morphology of Somatic Motoneurons Following the Death of Neighboring Motoneurons.

    Abstract Source:

    Neurorehabil Neural Repair. 2019 Jul 9:1545968319860485. Epub 2019 Jul 9. PMID: 31286830

    Abstract Author(s):

    Cory Chew, Dale R Sengelaub

    Article Affiliation:

    Cory Chew

    Abstract:

    . Motoneuron loss is a severe medical problem that can result in loss of motor control and eventually death. We have previously demonstrated that partial motoneuron loss can result in dendritic atrophy and functional deficits in nearby surviving motoneurons, and that treatment with androgens can be neuroprotective against this dendritic atrophy. Exercise has also been shown to be protective following a variety of neural injury models and, in some cases, is dependent on androgen action.. In this study, we explored whether exercise shows the same neuroprotective effect on induced dendritic atrophy as that seen with androgen treatment.. Motoneurons innervating the vastus medialis muscles of adult male rats were selectively killed by intramuscular injection of cholera toxin-conjugated saporin. Following saporin injections, some animals were allowed free access to a running wheel attached to their home cages. Four weeks later, motoneurons innervating the ipsilateral vastus lateralis muscle were labeled with cholera toxin-conjugated horseradish peroxidase, and dendritic arbors were reconstructed in 3 dimensions.. Dendritic arbor lengths of animals allowed to exercise were significantly longer than those not allowed to exercise.. These findings indicate that exercise following neural injury exerts a protective effect on motoneuron dendrites comparable to that seen with exogenous androgen treatment.

  • Neuroprotective effects of near-infrared light in an in vivo model of mitochondrial optic neuropathy. 📎

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    Abstract Title:

    Neuroprotective effects of near-infrared light in an in vivo model of mitochondrial optic neuropathy.

    Abstract Source:

    J Neurosci. 2008 Dec 10;28(50):13511-21. PMID: 19074024

    Abstract Author(s):

    Julio C Rojas, Jung Lee, Joseph M John, F Gonzalez-Lima

    Abstract:

    Near-infrared light (NIL) promotes a wide range of biological effects including enhancement of energy production, gene expression and prevention of cell death. This is the first report of the in vivo neuroprotective effects of NIL against optic neuropathy induced by mitochondrial complex I inhibition. Subjects were pigmented rats that received single bilateral intravitreal doses of rotenone, a mitochondrial complex I inhibitor, or rotenone plus one of three different doses of NIL. Treatment effects were evaluated at behavioral, structural and neurochemical levels. Rotenone induced a decrease in visual function, as determined by changes in the dark-adapted illuminance sensitivity threshold, escape latency and rate of successful trials in a two-choice visual task, compared with vehicle-treated controls. Behavioral impairment correlated with a decrease in retinal and visual pathway metabolic activity, retinal nerve fiber layer thickness and ganglion cell layer cell density. These changes were prevented by NIL treatments in a dose-dependent manner. Whole-brain cytochrome oxidase and superoxide dismutase activities were also increased in NIL-treated subjects in a dose-dependent manner, suggesting an in vivo transcranial effect of NIL. In whole-brain membrane isolates, NIL prevented the rotenone-induced decrease in cell respiration. The results show that NIL treatment can effectively prevent the neurotoxic effects of rotenone and that it might be used in the treatment of neurodegenerative disorders associated with mitochondrial dysfunction.

  • Neuroprotective effects of phytocannabinoid-based medicines in experimental models of Huntington's disease.

    Abstract Title:

    Neuroprotective effects of phytocannabinoid-based medicines in experimental models of Huntington's disease.

    Abstract Source:

    J Neurosci Res. 2011 Sep ;89(9):1509-18. Epub 2011 Jun 14. PMID: 21674569

    Abstract Author(s):

    Onintza Sagredo, M Ruth Pazos, Valentina Satta, José A Ramos, Roger G Pertwee, Javier Fernández-Ruiz

    Article Affiliation:

    Onintza Sagredo

    Abstract:

    We studied whether combinations of botanical extracts enriched in eitherΔ(9)-tetrahydrocannabinol (Δ(9)-THC) or cannabidiol (CBD), which are the main constituents of the cannabis-based medicine Sativex, provide neuroprotection in rat models of Huntington's disease (HD). We used rats intoxicated with 3-nitropropionate (3NP) that were given combinations of Δ(9)-THC- and CBD-enriched botanical extracts. The issue was also studied in malonate-lesioned rats. The administration of Δ(9)-THC- and CBD-enriched botanical extracts combined in a ratio of 1:1 as in Sativex attenuated 3NP-induced GABA deficiency, loss of Nissl-stained neurons, down-regulation of CB(1) receptor and IGF-1 expression, and up-regulation of calpain expression, whereas it completely reversed the reduction in superoxide dismutase-1 expression. Similar responses were generally found with other combinations of Δ(9)-THC- and CBD-enriched botanical extracts, suggesting that these effects are probably related to the antioxidant and CB(1) and CB(2) receptor-independent properties of both phytocannabinoids. In fact, selective antagonists for both receptor types, i.e., SR141716 and AM630, respectively, were unable to prevent the positive effects on calpain expression caused in 3NP-intoxicatedrats by the 1:1 combination of Δ(9)-THC and CBD. Finally, this combination also reversed the up-regulation of proinflammatory markers such as inducible nitric oxide synthase observed in malonate-lesioned rats. In conclusion, this study provides preclinical evidence in support of a beneficial effect of the cannabis-based medicine Sativex as a neuroprotective agent capable of delaying disease progression in HD, a disorder that is currently poorly managed in the clinic, prompting an urgent need for clinical trials with agents showing positive results in preclinical studies.

  • Neuroprotective exendin-4 enhances hypothermia therapy in a model of hypoxic-ischaemic encephalopathy. 📎

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    Abstract Title:

    Neuroprotective exendin-4 enhances hypothermia therapy in a model of hypoxic-ischaemic encephalopathy.

    Abstract Source:

    Brain. 2018 10 1 ;141(10):2925-2942. PMID: 30165597

    Abstract Author(s):

    Eridan Rocha-Ferreira, Laura Poupon, Aura Zelco, Anna-Lena Leverin, Syam Nair, Andrea Jonsdotter, Ylva Carlsson, Claire Thornton, Henrik Hagberg, Ahad A Rahim

    Article Affiliation:

    Eridan Rocha-Ferreira

    Abstract:

    Hypoxic-ischaemic encephalopathy remains a global health burden. Despite medical advances and treatment with therapeutic hypothermia, over 50% of cooled infants are not protected and still develop lifelong neurodisabilities, including cerebral palsy. Furthermore, hypothermia is not used in preterm cases or low resource settings. Alternatives or adjunct therapies are urgently needed. Exendin-4 is a drug used to treat type 2 diabetes mellitus that has also demonstrated neuroprotective properties, and is currently being tested in clinical trials for Alzheimer's and Parkinson's diseases. Therefore, we hypothesized a neuroprotective effect for exendin-4 in neonatal neurodisorders, particularly in the treatment of neonatal hypoxic-ischaemic encephalopathy. Initially, we confirmed that the glucagon like peptide 1 receptor (GLP1R) was expressed in the human neonatal brain and in murine neurons at postnatal Day 7 (human equivalent late preterm) and postnatal Day 10 (term). Using a well characterized mouse model of neonatal hypoxic-ischaemic brain injury, we investigated the potential neuroprotective effect of exendin-4 in both postnatal Day 7 and 10 mice. An optimal exendin-4 treatment dosing regimen was identified, where four high doses (0.5µg/g) starting at 0 h, then at 12 h, 24 h and 36 h after postnatal Day 7 hypoxic-ischaemic insult resulted in significant brain neuroprotection. Furthermore, neuroprotection was sustained even when treatment using exendin-4 was delayed by 2 h post hypoxic-ischaemic brain injury. This protective effect was observed in various histopathological markers: tissue infarction, cell death, astrogliosis, microglial and endothelial activation. Blood glucose levels were not altered by high dose exendin-4 administration when compared to controls. Exendin-4 administration did not result in adverse organ histopathology (haematoxylin and eosin) or inflammation (CD68). Despite initial reduced weight gain, animals restored weight gain following end of treatment. Overall high dose exendin-4 administration was well tolerated. To mimic the clinical scenario, postnatal Day 10 mice underwent exendin-4 and therapeutic hypothermia treatment, either alone or in combination, and brain tissue loss was assessed after 1 week. Exendin-4 treatment resulted in significant neuroprotection alone, and enhanced the cerebroprotective effect of therapeutic hypothermia. In summary, the safety and tolerance of high doseexendin-4 administrations, combined with its neuroprotective effect alone or in conjunction with clinically relevant hypothermia make the repurposing of exendin-4 for the treatment of neonatal hypoxic-ischaemic encephalopathy particularly promising.

  • Neuroprotective potential and chemical profile of alternatively cultivated Ganoderma lucidum basidiocarps.

    Abstract Title:

    Neuroprotective potential and chemical profile of alternatively cultivated Ganoderma lucidum basidiocarps.

    Abstract Source:

    Chem Biodivers. 2018 Apr 6. Epub 2018 Apr 6. PMID: 29624845

    Abstract Author(s):

    Jasmina Lj Ćilerdžić, Ivana V Sofrenić, Vele V Tešević, Ilija D Brčeski, Sonja N Duletić-Laušević, Jelena B Vukojević, Mirjana M Stajić

    Article Affiliation:

    Jasmina Lj Ćilerdžić

    Abstract:

    Various neurodegenerative diseases are the main challenges to the modern medicine and there is a great need for novel, natural, neuroprotective agents. Ganoderma lucidum is a well-known medicinal mushroom which health benefits have been confirmed by numerous studies. As demand for its basidiocarps is increased and traditional cultivation on hardwoods is not environmentally-friendly and economically-justified, finding of alternative substrates is necessary. The aim of the study was to assess the effect of alternative cultivation substrates on the chemical profile of G. lucidum basidiocarps and their capacity to inhibit acetylcholinesterase and tyrosinase, which higher activity is directly associated with neurodegenerative processes. Extracts of basidiocarps cultivated on alternative substrates, especially on clear wheat straw, showed significantly higher inhibition capacities than extracts of commercially-grown ones. These extracts were considerably different chemically from commercial basidiocarps extracts and even nine new compounds were isolated from them. Our results suggest that cultivation substrate greatly affect the chemical profile and neuroprotective capacity of obtained basidiocarps and wheat straw is a promising cultivation substrate. This article is protected by copyright. All rights reserved.

  • Neuroprotective properties of cannabigerol in Huntington's disease: studies in R6/2 mice and 3-nitropropionate-lesioned mice. 📎

    Abstract Title:

    Neuroprotective properties of cannabigerol in Huntington's disease: studies in R6/2 mice and 3-nitropropionate-lesioned mice.

    Abstract Source:

    Neurotherapeutics. 2015 Jan ;12(1):185-99. PMID: 25252936

    Abstract Author(s):

    Sara Valdeolivas, Carmen Navarrete, Irene Cantarero, María L Bellido, Eduardo Muñoz, Onintza Sagredo

    Article Affiliation:

    Sara Valdeolivas

    Abstract:

    Different plant-derived and synthetic cannabinoids have shown to be neuroprotective in experimental models of Huntington's disease (HD) through cannabinoid receptor-dependent and/or independent mechanisms. Herein, we studied the effects of cannabigerol (CBG), a nonpsychotropic phytocannabinoid, in 2 different in vivo models of HD. CBG was extremely active as neuroprotectant in mice intoxicated with 3-nitropropionate (3NP), improving motor deficits and preserving striatal neurons against 3NP toxicity. In addition, CBG attenuated the reactive microgliosis and the upregulation of proinflammatory markers induced by 3NP, and improved the levels of antioxidant defenses that were also significantly reduced by 3NP. We also investigated the neuroprotective properties of CBG in R6/2 mice. Treatment with this phytocannabinoid produced a much lower, but significant, recovery in the deteriorated rotarod performance typical of R6/2 mice. Using HD array analysis, we were able to identify a series of genes linked to this disease (e.g., symplekin, Sin3a, Rcor1, histone deacetylase 2, huntingtin-associated protein 1,δ subunit of the gamma-aminobutyric acid-A receptor (GABA-A), and hippocalcin), whose expression was altered in R6/2 mice but partially normalized by CBG treatment. We also observed a modest improvement in the gene expression for brain-derived neurotrophic factor (BDNF), insulin-like growth factor-1 (IGF-1), and peroxisome proliferator-activated receptor-γ (PPARγ), which is altered in these mice, as well as a small, but significant, reduction in the aggregation of mutant huntingtin in the striatal parenchyma in CBG-treated animals. In conclusion, our results open new research avenues for the use of CBG, alone or in combination with other phytocannabinoids or therapies, for the treatment of neurodegenerative diseases such as HD.

  • Neuroprotective signaling and the aging brain: take away my food and let me run.

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    Abstract Title:

    Neuroprotective signaling and the aging brain: take away my food and let me run.

    Abstract Source:

    Brain Res. 2000 Dec 15;886(1-2):47-53. PMID: 11119686

    Abstract Author(s):

    M P Mattson

    Article Affiliation:

    Laboratory of Neurosciences, National Institute on Aging Gerontology Research Center, 5600 Nathan Shock Drive, 21224-6825, Baltimore, MD, USA. This email address is being protected from spambots. You need JavaScript enabled to view it.

    Abstract:

    It is remarkable that neurons are able to survive and function for a century or more in many persons that age successfully. A better understanding of the molecular signaling mechanisms that permit such cell survival and synaptic plasticity may therefore lead to the development of new preventative and therapeutic strategies for age-related neurodegenerative disorders. We all know that overeating and lack of exercise are risk factors for many different age-related diseases including cardiovascular disease, diabetes and cancers. Our recent studies have shown that dietary restriction (reduced calorie intake) can increase the resistance of neurons in the brain to dysfunction and death in experimental models of Alzheimer's disease, Parkinson's disease, Huntington's disease and stroke. The mechanism underlying the beneficial effects of dietary restriction involves stimulation of the expression of 'stress proteins' and neurotrophic factors. The neurotrophic factors induced by dietary restriction may protect neurons by inducing the production of proteins that suppress oxyradical production, stabilize cellular calcium homeostasis and inhibit apoptotic biochemical cascades. Interestingly, dietary restriction also increases numbers of newly-generated neural cells in the adult brain suggesting that this dietary manipulation can increase the brain's capacity for plasticity and self-repair. Work in other laboratories suggests that physical and intellectual activity can similarly increase neurotrophic factor production and neurogenesis. Collectively, the available data suggest the that dietary restriction, and physical and mental activity, may reduce both the incidence and severity of neurodegenerative disorders in humans. A better understanding of the cellular and molecular mechanisms underlying these effects of diet and behavior on the brain is also leading to novel therapeutic agents that mimick the beneficial effects of dietary restriction and exercise.

  • Neurorescue activity, APP regulation and amyloid-beta peptide reduction by novel multi-functional brain permeable iron- chelating- antioxidants, M-30 and green tea polyphenol, EGCG.

    Abstract Title:

    Neurorescue activity, APP regulation and amyloid-beta peptide reduction by novel multi-functional brain permeable iron- chelating- antioxidants, M-30 and green tea polyphenol, EGCG.

    Abstract Source:

    Curr Alzheimer Res. 2007 Sep ;4(4):403-11. PMID: 17908043

    Abstract Author(s):

    Yael Avramovich-Tirosh, Lydia Reznichenko, Tamar Mit, Hailin Zheng, Mati Fridkin, Orly Weinreb, Silvia Mandel, Moussa B H Youdim

    Article Affiliation:

    Yael Avramovich-Tirosh

    Abstract:

    Accumulation of iron at sites where neurons degenerate in Parkinson's disease (PD) and Alzheimer's disease (AD) is thought to have a major role in oxidative stress induced process of neurodegeneration. The novel non-toxic lipophilic brain- permeable iron chelators, VK-28 (5- [4- (2- hydroxyethyl) piperazine-1-ylmethyl]- quinoline- 8- ol) and its multi-functional derivative, M-30 (5-[N-methyl-N-propargylaminomethyl]-8-hydroxyquinoline), as well as the main polyphenol constituent of green tea (-)-epigallocatechin-3-gallate (EGCG), which possesses iron metal chelating, radical scavenging and neuroprotective properties, offer potential therapeutic benefits for these diseases. M-30 and EGCG decreased apoptosis of human SH-SY5Y neuroblastoma cells in a neurorescue, serum deprivation model, via multiple protection mechanisms including: reduction of the pro-apoptotic proteins, Bad and Bax, reduction of apoptosis-associated Ser139 phosphorylated H2A.X and inhibition of the cleavage and activation of caspase-3. M-30 and EGCG also promoted morphological changes, resulting in axonal growth-associated protein-43 (GAP-43) implicating neuronal differentiation. Both compounds significantly reduced the levels of cellular holo-amyloid precursor protein (APP) in SH-SY5Y cells. The ability of theses novel iron chelators and EGCG to regulate APP are in line with the presence of an iron-responsive element (IRE) in the 5'-untranslated region (5'UTR) of APP. Also, EGCG reduced the levels of toxic amyloid-beta peptides in CHO cells over-expressing the APP"Swedish"mutation. The diverse molecular mechanisms and cell signaling pathways participating in the neuroprotective/neurorescue and APP regulation/processing actions of M-30 and EGCG, make these multifunctional compounds potential neuroprotective drugs for the treatment of neurodegenerative diseases, such as PD, AD, Huntington's disease and amyotrophic lateral sclerosis.

  • Nonpsychoactive cannabidiol prevents prion accumulation and protects neurons against prion toxicity📎

    Abstract Title:

    Nonpsychoactive cannabidiol prevents prion accumulation and protects neurons against prion toxicity.

    Abstract Source:

    J Neurosci. 2007 Sep 5 ;27(36):9537-44. PMID: 17804615

    Abstract Author(s):

    Sevda Dirikoc, Suzette A Priola, Mathieu Marella, Nicole Zsürger, Joëlle Chabry

    Article Affiliation:

    Sevda Dirikoc

    Abstract:

    Prion diseases are transmissible neurodegenerative disorders characterized by the accumulation in the CNS of the protease-resistant prion protein (PrPres), a structurally misfolded isoform of its physiological counterpart PrPsen. Both neuropathogenesis and prion infectivity are related to PrPres formation. Here, we report that the nonpsychoactive cannabis constituent cannabidiol (CBD) inhibited PrPres accumulation in both mouse and sheep scrapie-infected cells, whereas other structurally related cannabinoid analogs were either weak inhibitors or noninhibitory. Moreover, after intraperitoneal infection with murine scrapie, peripheral injection of CBD limited cerebral accumulation of PrPres and significantly increased the survival time of infected mice. Mechanistically, CBD did not appear to inhibit PrPres accumulation via direct interactions with PrP, destabilization of PrPres aggregates, or alteration of the expression level or subcellular localization of PrPsen. However, CBD did inhibit the neurotoxic effects of PrPres and affected PrPres-induced microglial cell migration in a concentration-dependent manner. Our results suggest that CBD may protect neurons against the multiple molecular and cellular factors involved in the different steps of the neurodegenerative process, which takes place during prion infection. When combined with its ability to target the brain and its lack of toxic side effects, CBD may represent a promising new anti-prion drug.