CYBERMED LIFE - ORGANIC  & NATURAL LIVING

Neuroprotective Agents

  • Ketogenic Metabolism Inhibits Histone Deacetylase (HDAC) and Reduces Oxidative Stress After Spinal Cord Injury in Rats.

    Abstract Title:

    Ketogenic Metabolism Inhibits Histone Deacetylase (HDAC) and Reduces Oxidative Stress After Spinal Cord Injury in Rats.

    Abstract Source:

    Neuroscience. 2017 Dec 16 ;366:36-43. Epub 2017 Oct 9. PMID: 29024787

    Abstract Author(s):

    Xiaomeng Wang, Xiaoliang Wu, Qi Liu, Ganggang Kong, Jian Zhou, Jie Jiang, Xiuhua Wu, Zhiping Huang, Wanhan Su, Qingan Zhu

    Article Affiliation:

    Xiaomeng Wang

    Abstract:

    The aim of this study is to investigate the effect of ketogenic metabolism, induced by different diet interventions, on histone acetylation and its potential antioxidant capacity to injured spinal cord tissue in rats. 72 male Sprague-Dawley rats were randomly divided into 4 groups, fed with ketogenic diet (KD), every other day fasting (EODF), every other day ketogenic diet (EODKD) and standard diet (SD) respectively for 2 weeks.β-Hydroxybutyrate (βOHB) concentration was measured both in serum and cerebrospinal fluid (CSF). C5 spinal cord tissue was harvested before, at 3 h and 24 h after injury for analysis of HDAC activity, histone acetylation and oxidative makers. All three dietary interventions resulted in a significant increase of βOHB level in both serum and CSF, and inhibited HDAC activity by 31-43% in spinal cord. Moreover, the expressions of acetylated histone AcH3K9 and AcH3K14 were significantly increased. Anti-oxidative stress genes Foxo3a and Mt2 and related proteins, such as mitochondrial superoxide dismutase (SOD), FOXO3a, catalase were increased in dietary intervention groups. After SCI, high ketogenic metabolism demonstrated significant reduction of the expression of lipid peroxidation factors malondialdehyde (MDA), and this might contribute to the reported neuroprotection of the spinal cord from oxidative damage possibly mediated by increasing SOD. The result of this study suggested that by inhibiting HDAC activity and modifying related gene transcription, ketogenic metabolism, induced by KD, EODF or EODKD, might reduce oxidative damage in the spinal cord tissue after acute injury.

  • Lig-8, a highly bioactive lignophenol derivative from bamboo lignin, exhibits multifaceted neuroprotective activity. 📎

    Abstract Title:

    Lig-8, a highly bioactive lignophenol derivative from bamboo lignin, exhibits multifaceted neuroprotective activity.

    Abstract Source:

    CNS Drug Rev. 2007 Fall;13(3):296-307. PMID: 17894646

    Abstract Author(s):

    Yasushi Ito, Yukihiro Akao, Masamitsu Shimazawa, Norio Seki, Yoshinori Nozawa, Hideaki Hara

    Abstract:

    Lignin is a durable aromatic network polymer that is second only to cellulose in natural abundance. Lig-8, a lignophenol derivative from bamboo lignin, is a highly potent neuroprotectant. It protects human neuroblastoma cells (SH-SY5Y) from hydrogen peroxide (H2O2)-induced apoptosis by preventing caspase-3 activation via either caspase-8 or caspase-9. It exerts this antiapoptotic effect by protecting mitochondrial membrane permeability from damage by H2O2 or the peripheral benzodiazepine receptor ligand PK11195. Lig-8 has been also shown to scavenge the reactive oxygen or nitrogen species in vitro. Furthermore, lig-8 suppresses apoptosis induced by oxygen-glucose deprivation, tunicamycin (endoplasmic reticulum [ER]-stress inducer), or proteasome inhibitor in pheochromocytoma cells. In addition, in vivo, lig-8 reduced intravitreal N-methyl-D-aspartate-induced retinal damage (decreases in retinal ganglion cells and inner plexiform layer thickness) in mice. Lig-8 prevents neuronal damage partly by inhibiting excessive endoplasmic reticulum stress. In this article, we review the protective effects of lig-8 against apoptosis induced by various stimuli. Apoptosis is an active, energy-dependent process through which living cells initiate their own death. It can be induced by a variety of physiological and pharmacological stimuli. Apoptotic cell death is associated with neurodegenerative disorders such as Alzheimer, Parkinson, or Huntington disease as well as glaucoma. We believe that the elucidation of the mechanism of antiapoptotic action of lig-8 may help in finding new approaches to the treatment of neurodegenerative disorders.

  • Long-Term Voluntary Physical Exercise Exerts Neuroprotective Effects and Motor Disturbance Alleviation in a Rat Model of Parkinson's Disease. 📎

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    Abstract Title:

    Long-Term Voluntary Physical Exercise Exerts Neuroprotective Effects and Motor Disturbance Alleviation in a Rat Model of Parkinson's Disease.

    Abstract Source:

    Behav Neurol. 2019 ;2019:4829572. Epub 2019 Dec 5. PMID: 31885725

    Abstract Author(s):

    Wan-Ling Tsai, Hsin-Yung Chen, Ying-Zu Huang, Yuan-Hao Chen, Chi-Wei Kuo, Kai-Yun Chen, Tsung-Hsun Hsieh

    Article Affiliation:

    Wan-Ling Tsai

    Abstract:

    Background:Parkinson's disease (PD) is the second most prevalent neurodegenerative disorder affecting 7-10 million individuals. The pathologic hallmark of PD is nigrostriatal dopaminergic neuron loss, leading to several motor and nonmotor disturbances, such as akinesia, gait disturbance, depression, and anxiety. Recent animal studies have demonstrated that physical exercise improves behavioral and neuropathological deficits in PD. However, the exact underlying mechanism underlying this effect remains unclear. In this study, we investigated whether long-term exercise has neuroprotective effects on dopaminergic nigrostriatal neurons and whether it further alleviates impairment of the gait pattern, locomotor activity, akinesia, and anxiety-like behavior in PD rats.

    Methods:A hemiparkinsonian rat model, generated by unilateral injection of 6-hydroxydopamine (6-OHDA) into the medial forebrain bundle, was applied to evaluate neuroprotective effects and motor behaviors. Comprehensive spatiotemporal gait analysis, open-field locomotor activity, akinesia, apomorphine-induced rotational analysis, and dopaminergic neuron degeneration level were assessed every week and up to 8 weeks after daily voluntary running wheel exercise.

    Results:Compared with the sham-treated group, we found that 10 weeks of voluntary exercise (i.e., 2-week exercise before PD lesion and 8-week exercise post-PD lesion) significantly reduced 6-OHDA-induced motor deficits in the gait pattern, akinesia, and rotational behavior in the exercise group. Immunohistochemically, a tyrosine hydroxylase-positive neuron in the substantia nigra was significantly preserved in the exercise group.

    Conclusions:Our results demonstrated that long-term exercise training is effective for neuroprotection and further attenuates motor declines induced by 6-OHDA in an experimental model of PD. Our data further highlighted potential therapeutic effects of long-term physical exercise relevant to clinical effects for further potential application on human PD subjects.

  • Longitudinal Relationships between Caloric Expenditure and Gray Matter in the Cardiovascular Health Study📎

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    Abstract Title:

    Longitudinal Relationships between Caloric Expenditure and Gray Matter in the Cardiovascular Health Study.

    Abstract Source:

    J Alzheimers Dis. 2016 Mar 11. Epub 2016 Mar 11. PMID: 26967227

    Abstract Author(s):

    Cyrus A Raji, David A Merrill, Harris Eyre, Sravya Mallam, Nare Torosyan, Kirk I Erickson, Oscar L Lopez, James T Becker, Owen T Carmichael, H Michael Gach, Paul M Thompson, W T Longstreth, Lewis H Kuller

    Article Affiliation:

    Cyrus A Raji

    Abstract:

    BACKGROUND:Physical activity (PA) can be neuroprotective and reduce the risk for Alzheimer's disease (AD). In assessing physical activity, caloric expenditure is a proxy marker reflecting the sum total of multiple physical activity types conducted by an individual.

    OBJECTIVE:To assess caloric expenditure, as a proxy marker of PA, as a predictive measure of gray matter (GM) volumes in the normal and cognitively impaired elderly persons.

    METHODS:All subjects in this study were recruited from the Institutional Review Board approved Cardiovascular Health Study (CHS), a multisite population-based longitudinal study in persons aged 65 and older. We analyzed a sub-sample of CHS participants 876 subjects (mean age 78.3, 57.5% F, 42.5% M) who had i) energy output assessed as kilocalories (kcal) per week using the standardized Minnesota Leisure-Time Activities questionnaire, ii) cognitive assessments for clinical classification of normal cognition, mild cognitive impairment (MCI), and AD, and iii) volumetric MR imaging of the brain. Voxel-based morphometry modeled the relationship between kcal/week and GM volumes while accounting for standard covariates including head size, age, sex, white matter hyperintensity lesions, MCI or AD status, and site. Multiple comparisons were controlled using a False Discovery Rate of 5 percent.

    RESULTS:Higher energy output, from a variety of physical activity types, was associated with larger GM volumes in frontal, temporal, and parietal lobes, as well as hippocampus, thalamus, and basal ganglia. High levels of caloric expenditure moderated neurodegeneration-associated volume loss in the precuneus, posterior cingulate, and cerebellar vermis.

    CONCLUSION:Increasing energy output from a variety of physical activities is related to larger gray matter volumes in the elderly, regardless of cognitive status.

  • Low-level laser therapy for beta amyloid toxicity in rat hippocampus. 📎

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    Abstract Title:

    Low-level laser therapy for beta amyloid toxicity in rat hippocampus.

    Abstract Source:

    Neurobiol Aging. 2017 Jan ;49:165-182. Epub 2016 Oct 11. PMID: 27815990

    Abstract Author(s):

    Yujiao Lu, Ruimin Wang, Yan Dong, Donovan Tucker, Ningjun Zhao, Md Ejaz Ahmed, Ling Zhu, Timon Cheng-Yi Liu, Robert M Cohen, Quanguang Zhang

    Article Affiliation:

    Yujiao Lu

    Abstract:

    Beta amyloid (Aβ) is well accepted to play a central role in the pathogenesis of Alzheimer's disease (AD). The present work evaluated the therapeutic effects of low-level laser irradiation (LLI) on Aβ-induced neurotoxicity in rat hippocampus. Aβ 1-42 was injected bilaterally to the hippocampus CA1 region of adult male rats, and 2-minute daily LLI treatment was applied transcranially after Aβ injection for 5 consecutive days. LLI treatment suppressed Aβ-induced hippocampal neurodegeneration and long-term spatial and recognition memory impairments. Molecular studies revealed that LLI treatment: (1) restored mitochondrial dynamics, by altering fission and fusion protein levels thereby suppressing Aβ-induced extensive fragmentation; (2) suppressed Aβ-induced collapse of mitochondrial membrane potential; (3) reduced oxidized mitochondrial DNA and excessive mitophagy; (4) facilitated mitochondrial homeostasis via modulation of the Bcl-2-associated X protein/B-cell lymphoma 2 ratio and of mitochondrial antioxidant expression; (5) promoted cytochrome c oxidase activity and adenosine triphosphate synthesis; (6) suppressed Aβ-induced glucose-6-phosphate dehydrogenase and nicotinamide adenine dinucleotide phosphate oxidase activity; (7) enhanced the total antioxidant capacity of hippocampal CA1 neurons, whereas reduced the oxidative damage; and (8) suppressed Aβ-induced reactive gliosis, inflammation, and tau hyperphosphorylation. Although development of AD treatments has focused on reducingcerebral Aβ levels, by the time the clinical diagnosis of AD or mild cognitive impairment is made, the brain is likely to have already been exposed to years of elevated Aβ levels with dire consequences for multiple cellular pathways. By alleviating a broad spectrum of Aβ-induced pathology that includes mitochondrial dysfunction, oxidative stress, neuroinflammation, neuronal apoptosis, and tau pathology, LLI could represent a new promising therapeutic strategy for AD.

  • Lycium barbarum polysaccharide attenuates the cytotoxicity of mutant huntingtin and increases the activity of AKT.

    Abstract Title:

    Lycium barbarum polysaccharide attenuates the cytotoxicity of mutant huntingtin and increases the activity of AKT.

    Abstract Source:

    Int J Dev Neurosci. 2016 Aug ;52:66-74. Epub 2016 May 16. PMID: 27196502

    Abstract Author(s):

    Fang Fang, Ting Peng, Shiming Yang, Weixi Wang, Yinong Zhang, He Li

    Article Affiliation:

    Fang Fang

    Abstract:

    Huntington's disease (HD) is an inherited neurodegenerative disease that is caused by the abnormal expansion of CAG repeats in the gene encoding huntingtin (Htt). Reduced AKT phosphorylation and inhibited AKT activity have been shown to be involved in mutant Htt (mHtt)-induced cell death. Lycium barbarum polysaccharide (LBP), the main bioactive component of Lycium barbarum, reportedly has neuroprotective roles in neural injuries, including neurodegenerative diseases. Here, we report that treatment with LBP can increased the viability of HEK293 cells that stably expressed mHtt containing 160 glutamine repeats and significantly improved motor behavior and life span in HD-transgenic mice. Furthermore, we found that in LBP-treated HEK293 cells expressing mHtt, mHtt levels were reduced and the phosphorylation of AKT at Ser473 (p-AKT-Ser473) was significantly increased. We also found that treatment with LBP increased p-AKT-Ser473 and decreased mHtt in the cortex, hippocampus and striatum in HD-transgenic mice. The level of phosphorylation of p-GSK3β-Ser9 remained unchanged in both cultured cells and HD-transgenic mice. Our findings suggest that LBP alleviates the cytotoxicity of mHtt by activating AKT and reducing mHtt levels, indicating that LBP may be potentially useful for treating HD.

  • Medial temporal lobe cortical changes in response to exercise interventions in people with early psychosis: A randomized controlled trial.

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    Abstract Title:

    Medial temporal lobe cortical changes in response to exercise interventions in people with early psychosis: A randomized controlled trial.

    Abstract Source:

    Schizophr Res. 2020 May 30. Epub 2020 May 30. PMID: 32487465

    Abstract Author(s):

    Melissa L Woodward, Jingxia Lin, Kristina M Gicas, Wayne Su, Christy L M Hui, William G Honer, Eric Y H Chen, Donna J Lang

    Article Affiliation:

    Melissa L Woodward

    Abstract:

    OBJECTIVE:Individuals with early psychosis may have prefrontal-limbic cortical deficits, which are associated with symptom severity and cognitive impairment. This study investigated the impact of an exercise intervention on fronto-temporal cortical plasticity in female participants with early psychosis.

    METHODS:In a cohort of 51 female participants with early psychosis from Hong Kong, we investigated the effects of a 12-week, moderate intensity aerobic or Hatha yoga exercise trial (yoga (N = 21), aerobic (N = 18) or waitlist group (N = 12)) on cortical grey matter. Clinical assessments and structural MRI were completed pre- and post- a 12-week exercise intervention.

    RESULTS:Increases in cortical volume and thickness were observed in the medial temporal cortical regions, primarily in fusiform cortical thickness (F(2, 48) = 4.221, p = 0.020, η = 0.150) and volume (F(2, 48) = 3.521, p = 0.037, η = 0.128) for participants with early psychosis in the aerobic arm, but not in the yoga and waitlist arms. Increased fusiform cortical thickness (ß = 0.402, p = 0.003) was associated with increased hippocampal volume for all psychosis participants. For the aerobic group only, increases in theentorhinal and fusiform temporal gyri were associated with reduced symptom severity.

    CONCLUSIONS:These findings suggest exercise-induced neuroplasticity in medial temporal cortical regions occurs with aerobic exercise. These changes may be associated with improvements in psychosis symptom severity. People with early psychosis may benefit from exercise interventions, particularly aerobic exercise, as an adjunct treatment to address clinical, physical health, and neuroanatomic concerns. NIH National Library of Medicine ClinicalTrials.gov Registration #: NCT01207219undefined

  • Mediterranean diet and 3-year Alzheimer brain biomarker changes in middle-aged adults.

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    Abstract Title:

    Mediterranean diet and 3-year Alzheimer brain biomarker changes in middle-aged adults.

    Abstract Source:

    Neurology. 2018 May 15 ;90(20):e1789-e1798. Epub 2018 Apr 13. PMID: 29653991

    Abstract Author(s):

    Valentina Berti, Michelle Walters, Joanna Sterling, Crystal G Quinn, Michelle Logue, Randolph Andrews, Dawn C Matthews, Ricardo S Osorio, Alberto Pupi, Shankar Vallabhajosula, Richard S Isaacson, Mony J de Leon, Lisa Mosconi

    Article Affiliation:

    Valentina Berti

    Abstract:

    OBJECTIVE:To examine in a 3-year brain imaging study the effects of higher vs lower adherence to a Mediterranean-style diet (MeDi) on Alzheimer disease (AD) biomarker changes (brainβ-amyloid load viaC-Pittsburgh compound B [PiB] PET and neurodegeneration viaF-fluorodeoxyglucose [FDG] PET and structural MRI) in midlife.

    METHODS:Seventy 30- to 60-year-old cognitively normal participants with clinical, neuropsychological, and dietary examinations and imaging biomarkers at least 2 years apart were examined. These included 34 participants with higher (MeDi+) and 36 with lower (MeDi-) MeDi adherence. Statistical parametric mapping and volumes of interest were used to compare AD biomarkers between groups at cross section and longitudinally.

    RESULTS:MeDi groups were comparable for clinical and neuropsychological measures. At baseline, compared to the MeDi+ group, the MeDi- group showed reduced FDG-PET glucose metabolism (CMRglc) and higher PiB-PET deposition in AD-affected regions (<0.001). Longitudinally, the MeDi--group showed CMRglc declines and PiB increases in these regions, which were greater than those in the MeDi+ group (<0.001). No effects were observed on MRI. Higher MeDi adherence was estimated to provide 1.5 to 3.5 years of protection against AD.

    CONCLUSION:Lower MeDi adherence was associated with progressive AD biomarker abnormalities in middle-aged adults. These data support further investigation of dietary interventions for protection against brain aging and AD.

  • Melatonin and cannabinoids: mitochondrial-targeted molecules that may reduce inflammaging in neurodegenerative diseases.

    Abstract Title:

    Melatonin and cannabinoids: mitochondrial-targeted molecules that may reduce inflammaging in neurodegenerative diseases.

    Abstract Source:

    Histol Histopathol. 2020 Mar 10:18212. Epub 2020 Mar 10. PMID: 32154907

    Abstract Author(s):

    Sebastián García, Virna Margarita Martín Giménez, Feres José Mocayar Marón, Russel J Reiter, Walter Manucha

    Article Affiliation:

    Sebastián García

    Abstract:

    Generally, the development and progression of neurodegenerative diseases are associated with advancing age, so they are usually diagnosed in late adulthood. A primary mechanism underlying the onset of neurodegenerative diseases is neuroinflammation. Based on this background, the concept of"neuroinflammaging"has emerged. In this deregulated neuroinflammatory process, a variety of immune cells participate, especially glial cells, proinflammatory cytokines, receptors, and subcellular organelles including mitochondria, which are mainly responsible for maintaining redox balance at the cellular level. Senescence and autophagic processes also play a crucial role in the neuroinflammatory disease associated with aging. Of particular interest, melatonin, cannabinoids, and the receptors of both molecules which are closely related, exert beneficial effects on the neuroinflammatory processes that precede the onset of neurodegenerative pathologies such as Parkinson's and Alzheimer's diseases. Some of these neuroprotective effects are fundamentally related to its anti-inflammatory and antioxidative actions at the mitochondrial level due to the strategic functions of this organelle. The aim of this review is to summarize the most recent advances in the study of neuroinflammation and neurodegeneration associated with age and to consider the use of new mitochondrial therapeutic targets related to the endocannabinoid system and the pineal gland.

  • Melatonin inhibits cytosolic mitochondrial-DNA induced neuroinflammatory signaling in accelerated aging and neurodegeneration. 📎

    Abstract Title:

    Melatonin inhibits cytosolic mitochondrial-DNA induced neuroinflammatory signaling in accelerated aging and neurodegeneration.

    Abstract Source:

    J Clin Invest. 2020 Mar 17. Epub 2020 Mar 17. PMID: 32182222

    Abstract Author(s):

    Abhishek Jauhari, Sergei V Baranov, Yalikun Suofu, Jinho Kim, Tanisha Singh, Svitlana Yablonska, Fang Li, Xiaomin Wang, Patrick Oberly, M Beth Minnigh, Samuel M Poloyac, Diane L Carlisle, Robert M Friedlander

    Article Affiliation:

    Abhishek Jauhari

    Abstract:

    Chronic inflammation is a pathologic feature of neurodegeneration and aging; however, the mechanism regulating this process is not understood. Melatonin, an endogenous free radical scavenger synthesized by neuronal mitochondria, decreases with aging and neurodegeneration. We proposed that insufficient melatonin levels impair mitochondrial homeostasis resulting in mitochondrial DNA (mtDNA) release, activation of cytosolic DNA mediated inflammatory response in neurons. We found increased mitochondrial oxidative stress and decreased mitochondrial membrane potential with higher mitochondrial DNA (mtDNA) release in brain and primary cerebro-cortical neurons of melatonin deficient aralkylamine N-acetyltransferase (AANAT) knockout mice. Cytosolic mtDNA activated the cGAS/STING/IRF3 pathway, stimulating inflammatory cytokine generation. We found that Huntington's disease mice increased mtDNA release, cGAS activation, and inflammation, all inhibited by exogenous melatonin. Thus, we demonstrated that cytosolic mtDNA activated the inflammatory response in aging and neurodegeneration, a process modulated by melatonin. Furthermore, our data suggest that AANAT knockout mice are a model of accelerated aging.

  • Melatonin: A review of its potential functions and effects on neurological diseases.

    Abstract Title:

    Melatonin: A review of its potential functions and effects on neurological diseases.

    Abstract Source:

    Rev Neurol (Paris). 2019 Nov 9. Epub 2019 Nov 9. PMID: 31718830

    Abstract Author(s):

    M Gunata, H Parlakpinar, H A Acet

    Article Affiliation:

    M Gunata

    Abstract:

    BACKGROUND:The aging process is not univocal, both body and brain age. Neurological disorders are a major cause of disability and death worldwide. According to the Global Burden of Disease Study 2015, neurological diseases are the second most common cause of death and 16.8% of total deaths are caused by neurological diseases worldwide. Neurological disease deaths have risen 36% worldwide in 25 years. Melatonin is a neuroregulator hormone that has free radical scavenger, strong antioxidant, anti-inflammatory, and immunosuppressive actions. These major properties of melatonin can play an important role in the pathophysiological mechanisms of neurological diseases. In addition, melatonin is necessary for circadian rhythm. Studies have shown that melatonin levels are low in people with neurological diseases. Both preventive and therapeutic effects of melatonin are known for many diseases, including neurological diseases (e.g., Alzheimer's disease, Parkinson's disease, multiple sclerosis, amyotrophic lateral sclerosis, Huntington's disease, epilepsy, headache, etc.). Based on all these reasons, clinical trials of melatonin were performed and successful results were declared.

    CONCLUSIONS:In this review, biological and chemical knowledge of melatonin, its experimental effects, and the clinical impact on patients with neurological disorders were described. According to all of the beneficial results obtained from experimental and clinical trials, melatonin may have a prophylactic and therapeutic effect on neurological diseases. Strong collaboration between neurologists and health service policy makers is needed to encourage use of melatonin in the patients suffering from neurological diseases. Melatonin may be the solution we have been looking for.

  • Melatonin:- A potential antioxidant therapeutic agent for mitochondrial dysfunctions and related disorders.

    Abstract Title:

    Melatonin:- A potential antioxidant therapeutic agent for mitochondrial dysfunctions and related disorders.

    Abstract Source:

    Rejuvenation Res. 2015 Jun 18. Epub 2015 Jun 18. PMID: 26087000

    Abstract Author(s):

    Showkat Ahmad Ganie, Tanveer Dar, Aashiq Bhat, Khalid Dar, Suhail Anees, Akbar Masood, Mohammad Afzal Zargar

    Article Affiliation:

    Showkat Ahmad Ganie

    Abstract:

    Mitochondria play a central role in the cell physiology. Besides their classic function of energy metabolism, mitochondria are involved in multiple cell functions including energy distribution through the cell, energy/heat modulation, regulation of reactive oxygen species (ROS), calcium homeostasis and apoptosis control. Simultaneously mitochondria are the main producer and target of ROS and with the result, multiple mitochondrial diseases are related to ROS induced mitochondrial injuries. Increased free radical generation, enhanced mitochondrial inducible nitric oxide (NO) synthase activity, enhanced NO production, decreased respiratory complex activity, impaired electron transport system, and opening of mitochondrial permeability transition pore all have been suggested as factors responsible for impaired mitochondrial function. Among these, neurodegenerative diseases such as Alzheimer´s disease (AD), Parkinson´s disease (PD), amyotrophic lateral sclerosis (ALS), Huntington´s disease (HD) and aging are caused by ROS-induced mitochondrial dysfunctions. Melatonin, the major hormone of the pineal gland, also acts as an antioxidant and as a regulator of mitochondrial bioenergeticfunction. Melatonin is selectively taken up by mitochondrial membranes, a function not shared by other antioxidants, and thus has emerged as a major potential therapeutic tool for treating neurodegenerative disorders. Multiple in vitro and in vivo experiments have shown the protective role of melatonin for preventing oxidative stress induced mitochondrial dysfunction seen in experimental models of PD, AD, and HD. Keeping these functions into consideration, this article was framed to review the protective role of melatonin with mechanistic insights against mitochondrial diseases, and may suggest the new avenues for safe and effective treatment modalities against these devastating neurodegenerative diseases. Future insights have also been discussed.

  • Memory loss in old rats is associated with brain mitochondrial decay and RNA/DNA oxidation: partial reversal by feeding acetyl-L-carnitine and/or R-alpha -lipoic acid. 📎

    Abstract Title:

    Memory loss in old rats is associated with brain mitochondrial decay and RNA/DNA oxidation: partial reversal by feeding acetyl-L-carnitine and/or R-alpha -lipoic acid.

    Abstract Source:

    Proc Natl Acad Sci U S A.2002 Feb 19;99(4):2356-61. PMID: 11854529

    Abstract Author(s):

    Jiankang Liu, Elizabeth Head, Afshin M Gharib, Wenjun Yuan, Russell T Ingersoll, Tory M Hagen, Carl W Cotman, Bruce N Ames

    Abstract:

     Accumulation of oxidative damage to mitochondria, protein, and nucleic acid in the brain may lead to neuronal and cognitive dysfunction. The effects on cognitive function, brain mitochondrial structure, and biomarkers of oxidative damage were studied after feeding old rats two mitochondrial metabolites, acetyl-l-carnitine (ALCAR) [0.5% or 0.2% (wt/vol) in drinking water], and/or R-alpha-lipoic acid (LA) [0.2% or 0.1% (wt/wt) in diet]. Spatial memory was assessed by using the Morris water maze; temporal memory was tested by using the peak procedure (a time-discrimination procedure). Dietary supplementation with ALCAR and/or LA improved memory, the combination being the most effective for two different tests of spatial memory (P < 0.05; P < 0.01) and for temporal memory (P < 0.05). Immunohistochemical analysis showed that oxidative damage to nucleic acids (8-hydroxyguanosine and 8-hydroxy-2'-deoxyguanosine) increased with age in the hippocampus, a region important for memory. Oxidative damage to nucleic acids occurred predominantly in RNA. Dietary administration of ALCAR and/or LA significantly reduced the extent of oxidized RNA, the combination being the most effective. Electron microscopic studies in the hippocampus showed that ALCAR and/or LA reversed age-associated mitochondrial structural decay. These results suggest that feeding ALCAR and LA to old rats improves performance on memory tasks by lowering oxidative damage and improving mitochondrial function.

  • Meta-analysis on randomized controlled trials for scalp acupuncture treatment of stroke: A systematic review. 📎

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    Abstract Title:

    Meta-analysis on randomized controlled trials for scalp acupuncture treatment of stroke: A systematic review.

    Abstract Source:

    J Tradit Chin Med. 2018 Aug ;38(4):465-479. PMID: 32186072

    Abstract Author(s):

    You Young-Nim, Park Gwang-Cheon, Cho Myung-Rae, Song Min-Yeong, Na Chang-Su, Han Jae-Young, Kim Jae-Hong

    Article Affiliation:

    You Young-Nim

    Abstract:

    OBJECTIVE:To conduct a systematic review to assess the clinical effectiveness of scalp acupuncture (SA) for stroke.

    METHODS:Literature searches were performed in 7 databases up to 16 August 2014, and all the randomized controlled trials (RCTs) in which SA therapy was administered to stroke patients were selected. Methodological quality was assessed using the Jadad score, the Cochrane risk of bias assessment, and the Standards for Reporting Interventions in Clinical Trials of Acupuncture.

    RESULTS:Of a total of 2086 papers, 21 RCTs were selected. Meta-analysis revealed significant differences in the total efficacy rates of the SA group and the body acupuncture (BA) group vs the medication group (P<0.002, P<0.000 001, respectively), the SA plus BA group vs the BA group (P<0.001); in the motor function of the SA plus BA group vs the BA group (P = 0.077); and in the nerve function of the SA group vs the SA plus BA group (P<0.0001).

    CONCLUSION:The results of our systematic review showed that SA therapy may exhibit effects in treatment efficacy and in the recovery of motor and nervous functions in patients with acute to chronic stroke. However, because of the lack of methodological quality, the thoroughly planned clinical studies are still required.

  • Mindfulness and meditation: treating cognitive impairment and reducing stress in dementia.

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    Abstract Title:

    Mindfulness and meditation: treating cognitive impairment and reducing stress in dementia.

    Abstract Source:

    Rev Neurosci. 2018 Feb 21. Epub 2018 Feb 21. PMID: 29466242

    Abstract Author(s):

    Jesse Russell-Williams, Wafa Jaroudi, Tania Perich, Siobhan Hoscheidt, Mohamad El Haj, Ahmed A Moustafa

    Article Affiliation:

    Jesse Russell-Williams

    Abstract:

    This study investigates the relationship between mindfulness, meditation, cognition and stress in people with Alzheimer's disease (AD), dementia, mild cognitive impairment and subjective cognitive decline. Accordingly, we explore how the use of meditation as a behavioural intervention can reduce stress and enhance cognition, which in turn ameliorates some dementia symptoms. A narrative review of the literature was conducted with any studies using meditation as an intervention for dementia or dementia-related memory conditions meeting inclusion criteria. Studies where moving meditation was the main intervention were excluded due to the possible confounding of exercise. Ten papers were identified and reviewed. There was a broad use of measures across all studies, with cognitive assessment, quality of life and perceived stress being the most common. Three studies used functional magnetic resonance imaging to measure functional changes to brain regions during meditation. The interventions fell into the following three categories: mindfulness, most commonly mindfulness-based stress reduction (six studies); Kirtan Kriya meditation (three studies); and mindfulness-based Alzheimer's stimulation (one study). Three of these studies were randomised controlled trials. All studies reported significant findings or trends towards significance in a broad range of measures, including a reduction of cognitive decline, reduction in perceived stress, increase in quality of life, as well as increases in functional connectivity, percent volume brain change and cerebral blood flow in areas of the cortex. Limitations and directions for future studies on meditation-based treatment for AD and stress management are suggested.

  • Mn-SOD Upregulation by Electroacupuncture Attenuates Ischemic Oxidative Damage via CB1R-Mediated STAT3 Phosphorylation.

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    Abstract Title:

    Mn-SOD Upregulation by Electroacupuncture Attenuates Ischemic Oxidative Damage via CB1R-Mediated STAT3 Phosphorylation.

    Abstract Source:

    Mol Neurobiol. 2014 Nov 29. Epub 2014 Nov 29. PMID: 25432886

    Abstract Author(s):

    Sisi Sun, Xiyao Chen, Yang Gao, Zhaoyu Liu, Qian Zhai, Lize Xiong, Min Cai, Qiang Wang

    Article Affiliation:

    Sisi Sun

    Abstract:

    Electroacupuncture (EA) pretreatment elicits the neuroprotective effect against cerebral ischemic injury through cannabinoid receptor type 1 receptor (CB1R). In current study, we aimed to investigate whether the signal transducer and activator of transcription 3 (STAT3) and manganese superoxide dismutase (Mn-SOD) were involved in the antioxidant effect of EA pretreatment through CB1R. At 2 h after EA pretreatment, focal cerebral ischemic injury was induced by transient middle cerebral artery occlusion for 60 min in C57BL/6 mice. The expression of Mn-SOD in the penumbra was assessed by Western blot and immunoflourescent staining at 2 h after reperfusion. In the presence or absenceof Mn-SOD small interfering RNA (siRNA), the neurological deficit score, the infarct volume, the terminal deoxynucleotidyl transferase-mediated dUDP-biotin nick end labeling (TUNEL) staining, and oxidative stress were evaluated. Furthermore, the Mn-SOD protein expression and phosphorylation of STAT3at Y705 were also determined in the presence and absence of CB1R antagonists (AM251, SR141716) and CB1R agonists (arachidonyl-2-chloroethylamide (ACEA), WIN 55,212-2). EA pretreatment upregulated the Mn-SOD protein expression and Mn-SOD-positive neuronal cells at 2 h after reperfusion. EA pretreatment also attenuated oxidative stress, inhibited cellular apoptosis, and induced neuroprotection against ischemic damage, whereas these beneficial effects of EA pretreatment were reversed by knockdown of Mn-SOD. Mn-SOD upregulation and STAT3 phosphorylation by EA pretreatment were abolished by two CB1R antagonists, while pretreatment with two CB1R agonists increased the expression of Mn-SOD and phosphorylation level of STAT3. Mn-SOD upregulation by EA attenuates ischemic oxidative damage through CB1R-mediated STAT3 phosphorylation in stroke mice, which may represent one new mechanism of EA pretreatment-induced neuroprotection against cerebral ischemia.

  • Moderate exercise ameliorates dysregulated hippocampal glycometabolism and memory function in a rat model of type 2 diabetes.

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    Abstract Title:

    Moderate exercise ameliorates dysregulated hippocampal glycometabolism and memory function in a rat model of type 2 diabetes.

    Abstract Source:

    Diabetologia. 2016 Dec 8. Epub 2016 Dec 8. PMID: 27928614

    Abstract Author(s):

    Takeru Shima, Takashi Matsui, Subrina Jesmin, Masahiro Okamoto, Mariko Soya, Koshiro Inoue, Yu-Fan Liu, Ignacio Torres-Aleman, Bruce S McEwen, Hideaki Soya

    Article Affiliation:

    Takeru Shima

    Abstract:

    AIMS/HYPOTHESIS:Type 2 diabetes is likely to be an independent risk factor for hippocampal-based memory dysfunction, although this complication has yet to be investigated in detail. As dysregulated glycometabolism in peripheral tissues is a key symptom of type 2 diabetes, it is hypothesised that diabetes-mediated memory dysfunction is also caused by hippocampal glycometabolic dysfunction. If so, such dysfunction should also be ameliorated with moderate exercise by normalising hippocampal glycometabolism, since 4 weeks of moderate exercise enhances memory function and local hippocampal glycogen levels in normal animals.

    METHODS:The hippocampal glycometabolism in OLETF rats (model of human type 2 diabetes) was assessed and, subsequently, the effects of exercise on memory function and hippocampal glycometabolism were investigated.

    RESULTS:OLETF rats, which have memory dysfunction, exhibited higher levels of glycogen in the hippocampus than did control rats, and breakdown of hippocampal glycogen with a single bout of exercise remained unimpaired. However, OLETF rats expressed lower levels of hippocampal monocarboxylate transporter 2 (MCT2, a transporter for lactate to neurons). Four weeks of moderate exercise improved spatial memory accompanied by further increase in hippocampal glycogen levels and restoration of MCT2 expression independent of neurotrophic factor and clinical symptoms in OLETF rats.

    CONCLUSIONS/INTERPRETATION:Our findings are the first to describe detailed profiles of glycometabolism in the type 2 diabetic hippocampus and to show that 4 weeks of moderate exercise improves memory dysfunction in type 2 diabetes via amelioration of dysregulated hippocampal glycometabolism. Dysregulated hippocampal lactate-transport-related glycometabolism is a possible aetiology of type-2-diabetes-mediated memory dysfunction.

  • Moderate exercise delays the motor performance decline in a transgenic model of ALS📎

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    Abstract Title:

    Moderate exercise delays the motor performance decline in a transgenic model of ALS.

    Abstract Source:

    Brain Res. 2010 Feb 8;1313:192-201. Epub 2009 Dec 5. PMID: 19968977

    Abstract Author(s):

    Isabel Carreras, Sinan Yuruker, Nurgul Aytan, Lokman Hossain, Ji-Kyung Choi, Bruce G Jenkins, Neil W Kowall, Alpaslan Dedeoglu

    Article Affiliation:

    Department of Biochemistry, Boston University School of Medicine, Boston, MA, USA.

    Abstract:

    The relationship between exercise and amyotrophic lateral sclerosis (ALS), a neurodegenerative disorder characterized by motor neuron loss, rapidly progressive weakness and early death has been controversial. We studied the effect of a high (HEX) and moderate-level exercise (MEX) on body weight, motor performance and motor neuron counts in the ventral horn of spinal cords in a transgenic mouse model of ALS (G93A-SOD1) that overexpresses a mutated form of the human SOD1 gene that is a cause of familial ALS. These transgenic mice show several similarities to the human disease, including rapid progressive motor weakness from 100 days of age and premature death at around 135 days of age. Mice were exposed to high or mid-level exercise of left sedentary (SED). At 70, 95 and 120 days of age, spinal cords were processed following euthanasia. Motor neurons larger than 15 mum in diameter were counted with a design-based stereological protocol using an optical fractionator probe in the ventral horn of different regions of the cord and compared to wild-type littermates. Moderate exercise delayed the onset of motor deficit by over a week. High exercise slightly but significantly hastened the onset of motor performance deficits. Motor neuron density in the lumbar cord was significantly higher in MEX group compared to SED at 95 days of age. These results show the beneficial effects of moderate exercise on the preservation of motor performance that correlates with higher motor neuron density in the ventral horn of the lumbar spinal cord in G93A mice.

  • Modulatory effects of acupuncture on brain networks in mild cognitive impairment patients.

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    Abstract Title:

    Modulatory effects of acupuncture on brain networks in mild cognitive impairment patients.

    Abstract Source:

    Neural Regen Res. 2017 Feb ;12(2):250-258. PMID: 28400807

    Abstract Author(s):

    Ting-Ting Tan, Dan Wang, Ju-Ke Huang, Xiao-Mei Zhou, Xu Yuan, Jiu-Ping Liang, Liang Yin, Hong-Liang Xie, Xin-Yan Jia, Jiao Shi, Fang Wang, Hao-Bo Yang, Shang-Jie Chen

    Article Affiliation:

    Ting-Ting Tan

    Abstract:

    Functional magnetic resonance imaging has been widely used to investigate the effects of acupuncture on neural activity. However, most functional magnetic resonance imaging studies have focused on acute changes in brain activation induced by acupuncture. Thus, the time course of the therapeutic effects of acupuncture remains unclear. In this study, 32 patients with amnestic mild cognitive impairment were randomly divided into two groups, where they received either Tiaoshen Yizhi acupuncture or sham acupoint acupuncture. The needles were either twirled at Tiaoshen Yizhi acupoints, including Sishencong (EX-HN1), Yintang (EX-HN3), Neiguan (PC6), Taixi (KI3), Fenglong (ST40), and Taichong (LR3), or at related sham acupoints at a depth of approximately 15 mm, an angle of± 60°, and a rate of approximately 120 times per minute. Acupuncture was conducted for 4 consecutive weeks, five times per week, on weekdays. Resting-state functional magnetic resonance imaging indicated that connections between cognition-related regions such as the insula, dorsolateral prefrontalcortex, hippocampus, thalamus, inferior parietal lobule, and anterior cingulate cortex increased after acupuncture at Tiaoshen Yizhi acupoints. The insula, dorsolateral prefrontal cortex, and hippocampus acted as central brain hubs. Patients in the Tiaoshen Yizhi group exhibited improved cognitiveperformance after acupuncture. In the sham acupoint acupuncture group, connections between brain regions were dispersed, and we found no differences in cognitive function following the treatment. These results indicate that acupuncture at Tiaoshen Yizhi acupoints can regulate brain networks by increasing connectivity between cognition-related regions, thereby improving cognitive function in patients with mild cognitive impairment.

  • Modulatory effects of acupuncture on brain networks in mild cognitive impairment patients📎

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    Abstract Title:

    Modulatory effects of acupuncture on brain networks in mild cognitive impairment patients.

    Abstract Source:

    Neural Regen Res. 2017 Feb ;12(2):250-258. PMID: 28400807

    Abstract Author(s):

    Ting-Ting Tan, Dan Wang, Ju-Ke Huang, Xiao-Mei Zhou, Xu Yuan, Jiu-Ping Liang, Liang Yin, Hong-Liang Xie, Xin-Yan Jia, Jiao Shi, Fang Wang, Hao-Bo Yang, Shang-Jie Chen

    Article Affiliation:

    Ting-Ting Tan

    Abstract:

    Functional magnetic resonance imaging has been widely used to investigate the effects of acupuncture on neural activity. However, most functional magnetic resonance imaging studies have focused on acute changes in brain activation induced by acupuncture. Thus, the time course of the therapeutic effects of acupuncture remains unclear. In this study, 32 patients with amnestic mild cognitive impairment were randomly divided into two groups, where they received either Tiaoshen Yizhi acupuncture or sham acupoint acupuncture. The needles were either twirled at Tiaoshen Yizhi acupoints, including Sishencong (EX-HN1), Yintang (EX-HN3), Neiguan (PC6), Taixi (KI3), Fenglong (ST40), and Taichong (LR3), or at related sham acupoints at a depth of approximately 15 mm, an angle of± 60°, and a rate of approximately 120 times per minute. Acupuncture was conducted for 4 consecutive weeks, five times per week, on weekdays. Resting-state functional magnetic resonance imaging indicated that connections between cognition-related regions such as the insula, dorsolateral prefrontalcortex, hippocampus, thalamus, inferior parietal lobule, and anterior cingulate cortex increased after acupuncture at Tiaoshen Yizhi acupoints. The insula, dorsolateral prefrontal cortex, and hippocampus acted as central brain hubs. Patients in the Tiaoshen Yizhi group exhibited improved cognitiveperformance after acupuncture. In the sham acupoint acupuncture group, connections between brain regions were dispersed, and we found no differences in cognitive function following the treatment. These results indicate that acupuncture at Tiaoshen Yizhi acupoints can regulate brain networks by increasing connectivity between cognition-related regions, thereby improving cognitive function in patients with mild cognitive impairment.