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1.
Int. j. morphol ; 41(5): 1527-1536, oct. 2023. ilus
Article in English | LILACS | ID: biblio-1521022

ABSTRACT

SUMMARY: The 12C6+ heavy ion beam irradiation can cause bystander effects. The inflammatory cytokines, endocrine hormones and apoptotic proteins may be involved in 12C6+ irradiation-induced bystander effects. This study characterized the protective effects and mechanisms of Huangqi decoction (HQD) against 12C6+ radiation induced bystander effects. Wistar rats were randomly divided into control, 12C6+ heavy ion irradiation model, and high-dose/medium-dose/low-dose HQD groups. HE staining assessed the pathological changes of brain and kidney. Peripheral blood chemical indicators as well as inflammatory factors and endocrine hormones were detected. Apoptosis was measured with TUNEL. Proliferating cell nuclear antigen (PCNA) expression was determined with real-time PCR and Western blot.Irradiation induced pathological damage to the brain and kidney tissues. After irradiation, the numbers of white blood cells (WBC) and monocyte, and the expression of interleukin (IL)-2, corticotropin-releasing hormone (CRH) and PCNA decreased. The damage was accompanied by increased expression of IL-1β, IL-6, corticosterone (CORT) and adrenocorticotropic hormone (ACTH) as well as increased neuronal apoptosis. These effects were indicative of radiation-induced bystander effects. Administration of HQD attenuated the pathological damage to brain and kidney tissues, and increased the numbers of WBC, neutrophils, lymphocyte and monocytes, as well as the expression of IL-2, CRH and PCNA. It also decreased the expression of IL-1β, IL-6, CORT and ACTH as well as neuronal apoptosis. HQD exhibits protective effects against 12C6+ radiation-induced bystander effects. The underlying mechanism may involve the promotion of the production of peripheral blood cells, inhibition of inflammatory factors and apoptosis, and regulation of endocrine hormones.


La irradiación con haz de iones pesados 12C6+ puede provocar efectos secundarios. Las citoquinas inflamatorias, las hormonas endocrinas y las proteínas apoptóticas pueden estar involucradas en los efectos secundarios inducidos por la irradiación 12C6+. Este estudio caracterizó los efectos y mecanismos protectores de la decocción de Huangqi (HQD) contra los efectos externos inducidos por la radiación 12C6+. Las ratas Wistar se dividieron aleatoriamente en grupos control, modelo de irradiación de iones pesados 12C6+ y grupos de dosis alta/media/baja de HQD. La tinción con HE evaluó los cambios patológicos del cerebro y el riñón. Se detectaron indicadores químicos de sangre periférica, así como factores inflamatorios y hormonas endocrinas. La apoptosis se midió con TUNEL. La expresión del antígeno nuclear de células en proliferación (PCNA) se determinó mediante PCR en tiempo real y transferencia Western blot. La irradiación indujo daños patológicos en los tejidos cerebrales y renales. Después de la irradiación, disminuyó el número de glóbulos blancos (WBC) y monocitos, y la expresión de interleucina (IL)-2, hormona liberadora de corticotropina (CRH) y PCNA. El daño estuvo acompañado por una mayor expresión de IL-1β, IL-6, corticosterona (CORT) y hormona adrenocorticotrópica (ACTH), así como un aumento de la apoptosis neuronal. Estas alteraciones fueron indicativas de efectos inducidos por la radiación. La administración de HQD atenuó el daño patológico a los tejidos cerebrales y renales, y aumentó el número de leucocitos y monocitos, así como la expresión de IL-2, CRH y PCNA. También disminuyó la expresión de IL-1β, IL-6, CORT y ACTH, así como la apoptosis neuronal. HQD exhibe mecanismos protectores contra los efectos externos inducidos por la radiación 12C6+. El mecanismo subyacente puede implicar la promoción de la producción de células sanguíneas periféricas, la inhibición de factores inflamatorios y la apoptosis y la regulación de hormonas endocrinas.


Subject(s)
Animals , Female , Rats , Drugs, Chinese Herbal , Protective Agents/administration & dosage , Heavy Ions/adverse effects , Scutellaria baicalensis/chemistry , Brain/drug effects , Brain/radiation effects , Corticotropin-Releasing Hormone , Enzyme-Linked Immunosorbent Assay , Rats, Wistar , Apoptosis/drug effects , Apoptosis/radiation effects , Adrenocorticotropic Hormone , Proliferating Cell Nuclear Antigen , Endocrine System/drug effects , Endocrine System/radiation effects , Immunologic Factors/antagonists & inhibitors , Kidney/drug effects , Kidney/radiation effects
2.
J Neurosci ; 43(13): 2338-2348, 2023 03 29.
Article in English | MEDLINE | ID: mdl-36849414

ABSTRACT

Photoaffinity ligands are best known as tools used to identify the specific binding sites of drugs to their molecular targets. However, photoaffinity ligands have the potential to further define critical neuroanatomic targets of drug action. In the brains of WT male mice, we demonstrate the feasibility of using photoaffinity ligands in vivo to prolong anesthesia via targeted yet spatially restricted photoadduction of azi-m-propofol (aziPm), a photoreactive analog of the general anesthetic propofol. Systemic administration of aziPm with bilateral near-ultraviolet photoadduction in the rostral pons, at the border of the parabrachial nucleus and locus coeruleus, produced a 20-fold increase in the duration of sedative and hypnotic effects compared with control mice without UV illumination. Photoadduction that missed the parabrachial-coerulean complex also failed to extend the sedative or hypnotic actions of aziPm and was indistinguishable from nonadducted controls. Paralleling the prolonged behavioral and EEG consequences of on target in vivo photoadduction, we conducted electrophysiologic recordings in rostral pontine brain slices. Using neurons within the locus coeruleus to further highlight the cellular consequences of irreversible aziPm binding, we demonstrate transient slowing of spontaneous action potentials with a brief bath application of aziPm that becomes irreversible on photoadduction. Together, these findings suggest that photochemistry-based strategies are a viable new approach for probing CNS physiology and pathophysiology.SIGNIFICANCE STATEMENT Photoaffinity ligands are drugs capable of light-induced irreversible binding, which have unexploited potential to identify the neuroanatomic sites of drug action. We systemically administer a centrally acting anesthetic photoaffinity ligand in mice, conduct localized photoillumination within the brain to covalently adduct the drug at its in vivo sites of action, and successfully enrich irreversible drug binding within a restricted 250 µm radius. When photoadduction encompassed the pontine parabrachial-coerulean complex, anesthetic sedation and hypnosis was prolonged 20-fold, thus illustrating the power of in vivo photochemistry to help unravel neuronal mechanisms of drug action.


Subject(s)
Anesthetics, Intravenous , Brain , Hypnosis , Hypnotics and Sedatives , Ligands , Photoaffinity Labels , Propofol , Animals , Male , Mice , Adrenergic Neurons/drug effects , Anesthesia, Intravenous , Brain/cytology , Brain/drug effects , Brain/metabolism , Brain/radiation effects , Electrocorticography , Electroencephalography , Hypnosis/methods , Hypnotics and Sedatives/administration & dosage , Hypnotics and Sedatives/chemistry , Hypnotics and Sedatives/pharmacology , Hypnotics and Sedatives/radiation effects , Locus Coeruleus/cytology , Locus Coeruleus/drug effects , Locus Coeruleus/metabolism , Locus Coeruleus/radiation effects , Mice, Inbred C57BL , Parabrachial Nucleus/drug effects , Parabrachial Nucleus/metabolism , Parabrachial Nucleus/radiation effects , Photoaffinity Labels/chemistry , Photoaffinity Labels/radiation effects , Propofol/administration & dosage , Propofol/analogs & derivatives , Propofol/pharmacology , Propofol/radiation effects , Time Factors , Ultraviolet Rays , Anesthetics, Intravenous/administration & dosage , Anesthetics, Intravenous/chemistry , Anesthetics, Intravenous/pharmacology , Anesthetics, Intravenous/radiation effects
3.
J Photochem Photobiol B ; 239: 112643, 2023 Feb.
Article in English | MEDLINE | ID: mdl-36610350

ABSTRACT

Low-level laser therapy, or photobiomodulation, utilizes red or near-infrared light for the treatment of pathological conditions due to the presence of intracellular photoacceptors, such as mitochondrial cytochrome c oxidase, that serve as intermediates for the therapeutic effects. We present an in-detail analysis of the effect of low-intensity LED red light irradiation on the respiratory chain of brain mitochondria. We tested whether low-level laser therapy at 650 nm could alleviate the brain mitochondrial dysfunction in the model of acute hypobaric hypoxia in mice. The irradiation of the mitochondrial fraction of the left cerebral cortex with low-intensity LED red light rescued Complex I-supported respiration during oxidative phosphorylation, normalized the initial polarization of the inner mitochondrial membrane, but has not shown any significant effect on the activity of Complex IV. In comparison, the postponed effect (in 24 h) of the similar transcranial irradiation following hypoxic exposure led to a less pronounced improvement of the mitochondrial functional state, but normalized respiration related to ATP production and membrane polarization. In contrast, the similar irradiation of the mitochondria isolated from control healthy animals exerted an inhibitory effect on CI-supported respiration. The obtained results provide significant insight that can be beneficial for the development of non-invasive phototherapy.


Subject(s)
Brain , Hypoxia , Low-Level Light Therapy , Mitochondria , Animals , Mice , Brain/metabolism , Brain/radiation effects , Electron Transport Complex IV/metabolism , Hypoxia/complications , Hypoxia/metabolism , Hypoxia/radiotherapy , Infrared Rays/therapeutic use , Mitochondria/metabolism , Mitochondria/radiation effects , Pressure/adverse effects , Cell Respiration/radiation effects
4.
Bioelectromagnetics ; 43(1): 14-24, 2022 Jan.
Article in English | MEDLINE | ID: mdl-34719046

ABSTRACT

Biological effects in the microwave band of the radiofrequency (RF) spectrum are thermally mediated. For acute high-power microwave exposures, these effects will depend on transient time-temperature histories within the tissue. In this article, we summarize the transient temperature response of rats exposed to RF energy emanating from an open-ended rectangular waveguide. These exposures produced specific absorption rates of approximately 36 and 203 W/kg in the whole body and brain, respectively. We then use the experimentally measured thermal data to infer the baseline perfusion rate in the brain and modify a custom thermal modeling tool based upon these findings. Finally, we compare multi-physics simulations of rat brain temperature against empirical measurements in both live and euthanized subjects and find close agreement between model and experimentation. This research revealed that baseline brain perfusion rates in rat subjects could be larger than previously assumed in the RF thermal modeling literature, and plays a significant role in the transient thermal response to high-power microwave exposures. © 2021 Bioelectromagnetics Society.


Subject(s)
Body Temperature , Brain/radiation effects , Radio Waves , Animals , Microwaves/adverse effects , Radio Waves/adverse effects , Rats , Temperature
5.
Cells ; 10(12)2021 12 02.
Article in English | MEDLINE | ID: mdl-34943904

ABSTRACT

BACKGROUND: Boron neutron capture therapy (BNCT) is a nuclear reaction-based tumor cell-selective particle irradiation method. High-dose methotrexate and whole-brain radiation therapy (WBRT) are the recommended treatments for primary central nervous system lymphoma (PCNSL). This tumor responds well to initial treatment but relapses even after successful treatment, and the prognosis is poor as there is no safe and effective treatment for relapse. In this study, we aimed to conduct basic research to explore the possibility of using BNCT as a treatment for PCNSL. METHODS: The boron concentration in human lymphoma cells was measured. Subsequently, neutron irradiation experiments on lymphoma cells were conducted. A mouse central nervous system (CNS) lymphoma model was created to evaluate the biodistribution of boron after the administration of borono-phenylalanine as a capture agent. In the neutron irradiation study of a mouse PCNSL model, the therapeutic effect of BNCT on PCNSL was evaluated in terms of survival. RESULTS: The boron uptake capability of human lymphoma cells was sufficiently high both in vitro and in vivo. In the neutron irradiation study, the BNCT group showed a higher cell killing effect and prolonged survival compared with the control group. CONCLUSIONS: A new therapeutic approach for PCNSL is urgently required, and BNCT may be a promising treatment for PCNSL. The results of this study, including those of neutron irradiation, suggest success in the conduct of future clinical trials to explore the possibility of BNCT as a new treatment option for PCNSL.


Subject(s)
Boron Neutron Capture Therapy , Brain/radiation effects , Central Nervous System Neoplasms/radiotherapy , Lymphoma/radiotherapy , Animals , Apoptosis/radiation effects , Boron/chemistry , Boron/isolation & purification , Boron/pharmacology , Brain/pathology , Cell Line, Tumor , Cell Survival/drug effects , Central Nervous System Neoplasms/drug therapy , Central Nervous System Neoplasms/pathology , Cranial Irradiation , Disease Models, Animal , Humans , Lymphoma/drug therapy , Lymphoma/pathology , Methotrexate/pharmacology , Mice , Phenylalanine/chemistry , Phenylalanine/isolation & purification , Phenylalanine/pharmacology , Tissue Distribution/drug effects
6.
Sci Rep ; 11(1): 18917, 2021 09 23.
Article in English | MEDLINE | ID: mdl-34556692

ABSTRACT

Our recent study demonstrated that prefrontal transcranial photobiomodulation (tPBM) with 1064-nm laser enables significant changes in EEG rhythms, but these changes might result from the laser-induced heat rather than tPBM. This study hypothesized that tPBM-induced and heat-induced alterations in EEG power topography were significantly distinct. We performed two sets of measurements from two separate groups of healthy humans under tPBM (n = 46) and thermal stimulation (thermo_stim; n = 11) conditions. Each group participated in the study twice under true and respective sham stimulation with concurrent recordings of 64-channel EEG before, during, and after 8-min tPBM at 1064 nm or thermo_stim with temperature of 33-41 °C, respectively. After data preprocessing, EEG power spectral densities (PSD) per channel per subject were quantified and normalized by respective baseline PSD to remove the power-law effect. At the group level for each group, percent changes of EEG powers per channel were statistically compared between (1) tPBM vs light-stimulation sham, (2) thermo_stim vs heat-stimulation sham, and (3) tPBM vs thermo_stim after sham exclusion at five frequency bands using the non-parametric permutation tests. By performing the false discovery rate correction for multi-channel comparisons, we showed by EEG power change topographies that (1) tPBM significantly increased EEG alpha and beta powers, (2) the thermal stimulation created opposite effects on EEG power topographic patterns, and (3) tPBM and thermal stimulations induced significantly different topographies of changes in EEG alpha and beta power. Overall, this study provided evidence to support our hypothesis, showing that the laser-induced heat on the human forehead is not a mechanistic source causing increases in EEG power during and after tPBM.


Subject(s)
Alpha Rhythm/radiation effects , Beta Rhythm/radiation effects , Brain/radiation effects , Hot Temperature , Low-Level Light Therapy/methods , Adolescent , Adult , Alpha Rhythm/physiology , Beta Rhythm/physiology , Brain/physiology , Cross-Over Studies , Female , Humans , Male , Young Adult
7.
J Alzheimers Dis ; 83(4): 1513-1519, 2021.
Article in English | MEDLINE | ID: mdl-34420956

ABSTRACT

BACKGROUND: Photobiomodulation (PBM) affects local blood flow regulation through nitric oxide generation, and various studies have reported on its effect on improving cognitive function in neurodegenerative diseases. However, the effect of PBM in the areas of the vertebral arteries (VA) and internal carotid arteries (ICA), which are the major blood-supplying arteries to the brain, has not been previously investigated. OBJECTIVE: We aimed to determine whether irradiating PBM in the areas of the VA and ICA, which are the major blood-supplying arteries to the brain, improved regional cerebral blood flow (rCBF) and cognitive function. METHODS: Fourteen patients with mild cognitive impairments were treated with PBM. Cognitive assessment and single-photon emission computed tomography were implemented at the baseline and at the end of PBM. RESULTS: Regarding rCBF, statistically significant trends were found in the medial prefrontal cortex, lateral prefrontal cortex, anterior cingulate cortex, and occipital lateral cortex. Based on the cognitive assessments, statistically significant trends were found in overall cognitive function, memory, and frontal/executive function. CONCLUSION: We confirmed the possibility that PBM treatment in the VA and ICA areas could positively affect cognitive function by increasing rCBF. A study with a larger sample size is needed to validate the potential of PBM.


Subject(s)
Brain/radiation effects , Cerebrovascular Circulation/radiation effects , Cognition/radiation effects , Cognitive Dysfunction/therapy , Low-Level Light Therapy , Aged , Carotid Artery, Internal/radiation effects , Executive Function/radiation effects , Female , Humans , Male , Memory/radiation effects , Middle Aged , Neuropsychological Tests , Pilot Projects , Regional Blood Flow , Tomography, Emission-Computed, Single-Photon
9.
Int J Mol Sci ; 22(9)2021 May 06.
Article in English | MEDLINE | ID: mdl-34066560

ABSTRACT

In recent decades, researchers around the world have been studying intensively how micro-organisms that are present inside living organisms could affect the main processes of life, namely health and pathological conditions of mind or body. They discovered a relationship between the whole microbial colonization and the initiation and development of different medical disorders. Besides already known probiotics, novel products such as postbiotics and paraprobiotics have been developed in recent years to create new non-viable micro-organisms or bacterial-free extracts, which can provide benefits to the host with additional bioactivity to probiotics, but without the risk of side effects. The best alternatives in the use of probiotics and postbiotics to maintain the health of the intestinal microbiota and to prevent the attachment of pathogens to children and adults are highlighted and discussed as controversies and challenges. Updated knowledge of the molecular and cellular mechanisms involved in the balance between microbiota and immune system for the introspection on the gut-lung-brain axis could reveal the latest benefits and perspectives of applied photobiomics for health. Multiple interconditioning between photobiomodulation (PBM), probiotics, and the human microbiota, their effects on the human body, and their implications for the management of viral infectious diseases is essential. Coupled complex PBM and probiotic interventions can control the microbiome, improve the activity of the immune system, and save the lives of people with immune imbalances. There is an urgent need to seek and develop innovative treatments to successfully interact with the microbiota and the human immune system in the coronavirus crisis. In the near future, photobiomics and metabolomics should be applied innovatively in the SARS-CoV-2 crisis (to study and design new therapies for COVID-19 immediately), to discover how bacteria can help us through adequate energy biostimulation to combat this pandemic, so that we can find the key to the hidden code of communication between RNA viruses, bacteria, and our body.


Subject(s)
COVID-19/immunology , COVID-19/microbiology , Gastrointestinal Microbiome/immunology , Low-Level Light Therapy/methods , Probiotics/therapeutic use , SARS-CoV-2/immunology , Brain/immunology , Brain/radiation effects , COVID-19/radiotherapy , COVID-19/therapy , Cytokine Release Syndrome/microbiology , Cytokine Release Syndrome/radiotherapy , Gastrointestinal Microbiome/radiation effects , Humans , Lung/immunology , Lung/radiation effects , Metabolomics , Phototherapy/methods , SARS-CoV-2/radiation effects
10.
J Alzheimers Dis ; 83(4): 1481-1498, 2021.
Article in English | MEDLINE | ID: mdl-34092636

ABSTRACT

BACKGROUND: Transcranial photobiomodulation (tPBM) has recently emerged as a potential cognitive enhancement technique and clinical treatment for various neuropsychiatric and neurodegenerative disorders by delivering invisible near-infrared light to the scalp and increasing energy metabolism in the brain. OBJECTIVE: We assessed whether transcranial photobiomodulation with near-infrared light modulates cerebral electrical activity through electroencephalogram (EEG) and cerebral blood flow (CBF). METHODS: We conducted a single-blind, sham-controlled pilot study to test the effect of continuous (c-tPBM), pulse (p-tPBM), and sham (s-tPBM) transcranial photobiomodulation on EEG oscillations and CBF using diffuse correlation spectroscopy (DCS) in a sample of ten healthy subjects [6F/4 M; mean age 28.6±12.9 years]. c-tPBM near-infrared radiation (NIR) (830 nm; 54.8 mW/cm2; 65.8 J/cm2; 2.3 kJ) and p-tPBM (830 nm; 10 Hz; 54.8 mW/cm2; 33%; 21.7 J/cm2; 0.8 kJ) were delivered concurrently to the frontal areas by four LED clusters. EEG and DCS recordings were performed weekly before, during, and after each tPBM session. RESULTS: c-tPBM significantly boosted gamma (t = 3.02, df = 7, p < 0.02) and beta (t = 2.91, df = 7, p < 0.03) EEG spectral powers in eyes-open recordings and gamma power (t = 3.61, df = 6, p < 0.015) in eyes-closed recordings, with a widespread increase over frontal-central scalp regions. There was no significant effect of tPBM on CBF compared to sham. CONCLUSION: Our data suggest a dose-dependent effect of tPBM with NIR on cerebral gamma and beta neuronal activity. Altogether, our findings support the neuromodulatory effect of transcranial NIR.


Subject(s)
Brain/radiation effects , Cerebrovascular Circulation , Electroencephalography/radiation effects , Healthy Volunteers , Adult , Alzheimer Disease/therapy , Female , Humans , Male , Neuropsychological Tests , Pilot Projects , Single-Blind Method , Spectrum Analysis
11.
J Radiat Res ; 62(5): 804-811, 2021 Sep 13.
Article in English | MEDLINE | ID: mdl-33982114

ABSTRACT

Radiation exposure has multiple effects on the brain, behavior and cognitive functions. It has been reported that high-dose (>20 Gy) radiation-induced behavior and cognitive aberration partly associated with severe tissue destruction. Low-dose (<3 Gy) exposure can occur in radiological disasters and cerebral endovascular treatment. However, only a few reports analyzed behavior and cognitive functions after low-dose irradiation. This study was undertaken to assess the relationship between brain neurochemistry and behavioral disruption in irradiated mice. The irradiated mice (0.5 Gy, 1 Gy and 3 Gy) were tested for alteration in their normal behavior over 10 days. A serotonin (5-HT), Dopamine, gamma-Aminobutyric acid (GABA) and cortisol analysis was carried out in blood, hippocampus, amygdala and whole brain tissue. There was a significant decline in the exploratory activity of mice exposed to 3 Gy and 1 Gy radiation in an open field test. We observed a significant short-term memory loss in 3 Gy and 1 Gy irradiated mice in Y-Maze. Mice exposed to 1 Gy and 3 Gy radiation exhibited increased anxiety in an elevated plus maze (EPM). The increased anxiety and memory loss patterns were also seen in 0.5 Gy irradiated mice, but the results were not statistically significant. In this study we observed that neurotransmitters are significantly altered after irradiation, but the neuronal cells in the hippocampus were not significantly affected. This study suggests that the low-dose radiation-induced cognitive impairment may be associated with the neurochemical in low-dose irradiation and unlike the high-dose scenario might not be directly related to the morphological changes in the brain.


Subject(s)
Behavior, Animal/radiation effects , Brain/radiation effects , Animals , Brain Chemistry/radiation effects , Cognition/radiation effects , Dopamine/analysis , Dopamine/blood , Dose-Response Relationship, Radiation , Hippocampus/chemistry , Hippocampus/radiation effects , Hydrocortisone/analysis , Hydrocortisone/blood , Male , Maze Learning/radiation effects , Memory, Short-Term/radiation effects , Mice , Mice, Inbred C57BL , Open Field Test/radiation effects , Random Allocation , Serotonin/analysis , Serotonin/blood , Spatial Behavior/radiation effects , gamma-Aminobutyric Acid/analysis , gamma-Aminobutyric Acid/blood
12.
J Alzheimers Dis ; 83(4): 1399-1413, 2021.
Article in English | MEDLINE | ID: mdl-33843683

ABSTRACT

In recent times, photobiomodulation has been shown to be beneficial in animal models of Parkinson's disease, improving locomotive behavior and being neuroprotective. Early observations in people with Parkinson's disease have been positive also, with improvements in the non-motor symptoms of the disease being evident most consistently. Although the precise mechanisms behind these improvements are not clear, two have been proposed: direct stimulation, where light reaches and acts directly on the distressed neurons, and remote stimulation, where light influences cells and/or molecules that provide systemic protection, thereby acting indirectly on distressed neurons. In relation to Parkinson's disease, given that the major zone of pathology lies deep in the brain and that light from an extracranial or external photobiomodulation device would not reach these vulnerable regions, stimulating the distressed neurons directly would require intracranial delivery of light using a device implanted close to the vulnerable regions. For indirect systemic stimulation, photobiomodulation could be applied to either the head and scalp, using a transcranial helmet, or to a more remote body part (e.g., abdomen, leg). In this review, we discuss the evidence for both the direct and indirect neuroprotective effects of photobiomodulation in Parkinson's disease and propose that both types of treatment modality, when working together using both intracranial and extracranial devices, provide the best therapeutic option.


Subject(s)
Brain/radiation effects , Low-Level Light Therapy , Neuroprotective Agents/radiation effects , Parkinson Disease/therapy , Dopaminergic Neurons/radiation effects , Humans , Mitochondria
13.
Ultrasound Med Biol ; 47(4): 998-1013, 2021 04.
Article in English | MEDLINE | ID: mdl-33455808

ABSTRACT

Ultrasound can modulate activity in the central nervous system, including the induction of motor responses in rodents. Recent studies investigating ultrasound-induced motor movements have described mostly bilateral limb responses, but quantitative evaluations have failed to reveal lateralization or differences in response characteristics between separate limbs or how specific brain targets dictate distinct limb responses. This study uses high-resolution focused ultrasound (FUS) to elicit motor responses in anesthetized mice in vivo and four-limb electromyography (EMG) to evaluate the latency, duration and power of paired motor responses (n = 1768). The results indicate that FUS generates target-specific differences in electromyographic characteristics and that brain targets separated by as little as 1 mm can modulate the responses in individual limbs differentially. Exploiting these differences may provide a tool for quantifying the susceptibility of underlying neural volumes to FUS, understanding the functioning of the targeted neuroanatomy and aiding in mechanistic studies of this non-invasive neuromodulation technique.


Subject(s)
Brain/radiation effects , Movement/radiation effects , Ultrasonic Waves , Acoustic Stimulation , Animals , Electromyography , Forelimb/physiology , Hindlimb/physiology , Mice , Mice, Inbred C57BL , Muscle, Skeletal/physiology , Reaction Time
14.
Bioelectromagnetics ; 42(2): 159-172, 2021 Feb.
Article in English | MEDLINE | ID: mdl-33440456

ABSTRACT

The debate on the biological effects of radiofrequency radiation (RFR) still continues due to differences in the design of studies (frequency, power density, specific absorption rate [SAR], exposure duration, cell, tissue, or animal type). The current study aimed to investigate the effects of 2,600 MHz RFR and melatonin on brain tissue biochemistry and histology of male rats. Thirty-six rats were divided into six groups randomly: cage-control, sham, RFR, melatonin, sham melatonin, and RFR melatonin. In RFR groups, animals were exposed to 2,600 MHz RFR for 30 days (30 min/day, 5 days/week) and the melatonin group animals were subcutaneously injected with melatonin (7 days/week, 10 mg/kg/day) for 30 days. SAR in brain gray matter was calculated as 0.44 and 0.295 W/kg for 1 and 10 g averaging, respectively. RFR exposure decreased the GSH, GSH-Px, and SOD levels and increased the MPO, MDA, and NOx levels (P < 0.005) significantly. RFR exposure also led to an increase in structural deformation and apoptosis in the brain tissue. This study revealed that exogenous high-dose melatonin could reduce these adverse effects of RFR. Limiting RFR exposure as much as possible is recommended, and taking daily melatonin supplements may be beneficial. Bioelectromagnetics. © 2021 Bioelectromagnetics Society.


Subject(s)
Brain/drug effects , Brain/radiation effects , Melatonin/pharmacology , Neuroprotective Agents/pharmacology , Radio Waves/adverse effects , Animals , Brain/metabolism , Male , Oxidative Stress/drug effects , Oxidative Stress/radiation effects , Rats , Rats, Wistar
15.
Sci Rep ; 11(1): 621, 2021 01 12.
Article in English | MEDLINE | ID: mdl-33436686

ABSTRACT

Late Onset Alzheimer's Disease is the most common cause of dementia, characterized by extracellular deposition of plaques primarily of amyloid-ß (Aß) peptide and tangles primarily of hyperphosphorylated tau protein. We present data to suggest a noninvasive strategy to decrease potentially toxic Aß levels, using repeated electromagnetic field stimulation (REMFS) in primary human brain (PHB) cultures. We examined effects of REMFS on Aß levels (Aß40 and Aß42, that are 40 or 42 amino acid residues in length, respectively) in PHB cultures at different frequencies, powers, and specific absorption rates (SAR). PHB cultures at day in vitro 7 (DIV7) treated with 64 MHz, and 1 hour daily for 14 days (DIV 21) had significantly reduced levels of secreted Aß40 (p = 001) and Aß42 (p = 0.029) peptides, compared to untreated cultures. PHB cultures (DIV7) treated at 64 MHz, for 1 or 2 hour during 14 days also produced significantly lower Aß levels. PHB cultures (DIV28) treated with 64 MHz 1 hour/day during 4 or 8 days produced a similar significant reduction in Aß40 levels. 0.4 W/kg was the minimum SAR required to produce a biological effect. Exposure did not result in cellular toxicity nor significant changes in secreted Aß precursor protein-α (sAPPα) levels, suggesting the decrease in Aß did not likely result from redirection toward the α-secretase pathway. EMF frequency and power used in our work is utilized in human magnetic resonance imaging (MRI, thus suggesting REMFS can be further developed in clinical settings to modulate Aß deposition.


Subject(s)
Amyloid beta-Peptides/metabolism , Amyloid beta-Protein Precursor/metabolism , Brain/metabolism , Electromagnetic Fields , Fetus/metabolism , Gene Expression Regulation/radiation effects , Amyloid beta-Protein Precursor/genetics , Brain/radiation effects , Fetus/radiation effects , Humans , Magnetic Field Therapy , Prohibitins
16.
Molecules ; 25(23)2020 Dec 03.
Article in English | MEDLINE | ID: mdl-33287417

ABSTRACT

Patients receiving brain radiotherapy may suffer acute or chronic side effects. Ionizing radiation induces the production of intracellular reactive oxygen species and pro-inflammatory cytokines in the central nervous system, leading to brain damage. Complementary Chinese herbal medicine therapy may reduce radiotherapy-induced side effects. Flavonoids are a class of natural products which can be extracted from Chinese herbal medicine and have been shown to have neuroprotective and radioprotective properties. Flavonoids are effective antioxidants and can also inhibit regulatory enzymes or transcription factors important for controlling inflammatory mediators, affect oxidative stress through interaction with DNA and enhance genomic stability. In this paper, radiation-induced brain damage and the relevant molecular mechanism were summarized. The radio-neuro-protective effect of flavonoids, i.e., antioxidant, anti-inflammatory and maintaining genomic stability, were then reviewed. We concluded that flavonoids treatment may be a promising complementary therapy to prevent radiotherapy-induced brain pathophysiological changes and cognitive impairment.


Subject(s)
Brain/drug effects , Brain/radiation effects , Flavonoids/pharmacology , Flavonoids/therapeutic use , Radiation Injuries/drug therapy , Radiation-Protective Agents/pharmacology , Radiation-Protective Agents/therapeutic use , Animals , Drugs, Chinese Herbal/pharmacology , Drugs, Chinese Herbal/therapeutic use , Humans , Radiation, Ionizing
17.
Bioelectromagnetics ; 41(8): 611-616, 2020 Dec.
Article in English | MEDLINE | ID: mdl-33030760

ABSTRACT

The widespread use of mobile phones and Wi-Fi-based communication devices makes exposure to radiofrequency electromagnetic fields (RF-EMF) unavoidable. Previous experiments have revealed the tumor-promoting effects of non-ionizing RF-EMF in adult carcinogen-treated mice in utero. To extend these investigations, we tested whether these effects are due to the co-carcinogenicity of RF-EMF which would manifest as elevated DNA damage. Similar to previous experiments, pregnant mice were exposed to RF-EMF (Universal Mobile Telecommunication System [UMTS] standard, approximately 1,960 MHz) from day 7 post-conception (p.c.) at 0 (sham), 0.04, and 0.4 W/kg SAR. At day 14 p.c., the mice were injected with the carcinogen ethylnitrosourea (ENU, 40 mg/kg). At three time-points specifically 24, 36, and 72 h later, the pregnant females were sacrificed and the fetuses (n = 24-57) were removed. A dye (cy3) specific for adenyl adducts was used to detect DNA damage by fluorescence microscopy in the brain, liver, and lung of each fetus. Compared to control (0 W/kg SAR), exposure to RF-EMF had no effect on the formation of DNA adducts in the inspected tissues. We conclude that increased adenyl formation of DNA by RF-EMF exposure is not a valid explanation for the previously reported tumor-promoting effects of RF-RMF. Our findings may help to gain a deeper insight into the biological effects of RF-EMF exposure in the context of malignancy. © 2020 The Authors. Bioelectromagnetics published by Wiley Periodicals LLC on behalf of Bioelectromagnetics Society.


Subject(s)
DNA Damage , Electromagnetic Fields/adverse effects , Ethylnitrosourea/adverse effects , Fetus/metabolism , Fetus/radiation effects , Radio Waves/adverse effects , Animals , Brain/drug effects , Brain/metabolism , Brain/radiation effects , Dose-Response Relationship, Drug , Fetus/drug effects , Liver/drug effects , Liver/metabolism , Liver/radiation effects , Lung/drug effects , Lung/metabolism , Lung/radiation effects , Mice
19.
Front Neural Circuits ; 14: 55, 2020.
Article in English | MEDLINE | ID: mdl-32973462

ABSTRACT

Background: Monochromatic blue light (MBL), with a wavelength between 400-490 nm, can regulate non-image-forming (NIF) functions of light in the central nervous system. The suprachiasmatic nucleus (SCN) in the brain is involved in the arousal-promoting response to blue light in mice. Animal and human studies showed that the responsiveness of the brain to visual stimuli is partly preserved under general anesthesia. Therefore, this study aimed to investigate whether MBL promotes arousal from sevoflurane anesthesia via activation of the SCN in mice. Methods: The induction and emergence time of sevoflurane anesthesia under MBL (460 nm and 800 lux) exposure was measured. Cortical electroencephalograms (EEGs) were recorded and the burst-suppression ratio (BSR) was calculated under MBL during sevoflurane anesthesia. The EEGs and local field potential (LFP) recordings with or without locally electrolytic ablated bilateral SCN were used to further explore the role of SCN in the arousal-promoting effect of MBL under sevoflurane anesthesia. Immunofluorescent staining of c-Fos was conducted to reveal the possible downstream mechanism of SCN activation. Results: Unlike the lack of effect on the induction time, MBL shortened the emergence time and the EEG recordings showed cortical arousal during the recovery period. MBL resulted in a significant decrease in BSR and a marked increase in EEG power at all frequency bands except for the spindle band during 2.5% sevoflurane anesthesia. MBL exposure under sevoflurane anesthesia enhances the neuronal activity of the SCN. These responses to MBL were abolished in SCN lesioned (SCNx) mice. MBL evoked a high level of c-Fos expression in the prefrontal cortex (PFC) and lateral hypothalamus (LH) compared to polychromatic white light (PWL) under sevoflurane anesthesia, while it exerted no effect on c-Fos expression in the ventrolateral preoptic area (VLPO) and locus coeruleus (LC) c-Fos expression. Conclusions: MBL promotes behavioral and electroencephalographic arousal from sevoflurane anesthesia via the activation of the SCN and its associated downstream wake-related nuclei. The clinical implications of this study warrant further study.


Subject(s)
Anesthetics, Inhalation/pharmacology , Arousal/radiation effects , Hypothalamus/radiation effects , Light , Neurons/radiation effects , Prefrontal Cortex/radiation effects , Sevoflurane/pharmacology , Suprachiasmatic Nucleus/radiation effects , Anesthesia , Animals , Brain/drug effects , Brain/metabolism , Brain/radiation effects , Electroencephalography , Hypothalamus/drug effects , Hypothalamus/metabolism , Mice , Neurons/drug effects , Prefrontal Cortex/drug effects , Prefrontal Cortex/metabolism , Proto-Oncogene Proteins c-fos/drug effects , Proto-Oncogene Proteins c-fos/metabolism , Proto-Oncogene Proteins c-fos/radiation effects , Reflex, Righting/drug effects , Reflex, Righting/radiation effects , Suprachiasmatic Nucleus/cytology , Suprachiasmatic Nucleus/drug effects , Suprachiasmatic Nucleus/metabolism
20.
Int J Immunopathol Pharmacol ; 34: 2058738420954594, 2020.
Article in English | MEDLINE | ID: mdl-32902354

ABSTRACT

With multiple targets and low cytotoxicity, natural medicines can be used as potential neuroprotective agents. The increase in oxidative stress levels and inflammatory responses in the brain caused by radiation affects cognitive function and neuronal structure, and ultimately leads to abnormal changes in neurogenesis, differentiation, and apoptosis. Astragaloside Ⅳ (AS-Ⅳ), one of the main active constituents of astragalus, is known for its antioxidant, antihypertensive, antidiabetic, anti-infarction, anti-inflammatory, anti-apoptotic and wound healing, angiogenesis, and other protective effects. In this study, the mechanism of AS-IV against radiation-induced apoptosis of brain cells in vitro and in vivo was explored by radiation modeling, which provided a theoretical basis for the development of anti-radiation Chinese herbal active molecules and brain health products. In order to study the protective mechanism of AS-IV on radiation-induced brain cell apoptosis in mice, the paper constructed a radiation-induced brain cell apoptosis model, using TUNEL staining, flow cytometry, Western blotting to analyze AS-IV resistance mechanism to radiation-induced brain cell apoptosis. The results of TUNEL staining and flow cytometry showed that the apoptosis rate of radiation group was significantly increased. The results of Western blotting indicated that the expression levels of p-JNK, p-p38, p53, Caspase-9 and Caspase-3 protein, and the ratio of Bax to Bcl-2 in radiation group were significantly increased. There was no significant difference in the expression levels of JNK and p38. After AS-IV treatment, the apoptosis was reduced and the expression of apoptosis related proteins was changed. These data suggested that AS-IV can effectively reduce radiation-induced apoptosis of brain cells, and its mechanism may be related to the phosphorylation regulation of JNK-p38.


Subject(s)
Apoptosis/drug effects , Brain/drug effects , Neurons/drug effects , Neuroprotective Agents/pharmacology , Radiation-Protective Agents/pharmacology , Saponins/pharmacology , Triterpenes/pharmacology , Animals , Apoptosis/radiation effects , Apoptosis Regulatory Proteins/metabolism , Brain/metabolism , Brain/pathology , Brain/radiation effects , JNK Mitogen-Activated Protein Kinases/metabolism , Male , Mice , Neurons/metabolism , Neurons/pathology , Neurons/radiation effects , PC12 Cells , Phosphorylation , Rats , Signal Transduction , Tumor Suppressor Protein p53/metabolism , p38 Mitogen-Activated Protein Kinases/metabolism
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