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1.
Mol Neurobiol ; 2024 Aug 19.
Article in English | MEDLINE | ID: mdl-39160390

ABSTRACT

The microtubule cytoskeleton regulates microglial morphology, motility, and effector functions. The microtubule-severing enzyme, fidgetin-like 2 (FL2), negatively regulates cell motility and nerve regeneration, making it a promising therapeutic target for central nervous system injury. Microglia perform important functions in response to inflammation and injury, but how FL2 affects microglia is unclear. In this study, we investigated the role of FL2 in microglial morphology and injury responses in vitro. We first determined that the pro-inflammatory stimulus, lipopolysaccharide (LPS), induced a dose- and time-dependent reduction in FL2 expression associated with reduced microglial ramification. We then administered nanoparticle-encapuslated FL2 siRNA to knockdown FL2 and assess microglial functions compared to negative control siRNA and vehicle controls. Time-lapse live-cell microscopy showed that FL2 knockdown increased the velocity of microglial motility. After incubation with fluorescently labeled IgG-opsonized beads, FL2 knockdown increased phagocytosis. Microglia were exposed to low-dose LPS after nanoparticle treatment to model injury-induced cytokine secretion. FL2 knockdown enhanced LPS-induced cytokine secretion of IL-1α, IL-1ß, and TNFα. These results identify FL2 as a regulator of microglial morphology and suggest that FL2 can be targeted to increase or accelerate microglial injury responses.

2.
Mol Neurobiol ; 60(6): 3396-3412, 2023 Jun.
Article in English | MEDLINE | ID: mdl-36856961

ABSTRACT

Stretch-injured microglia display significantly altered morphology, function and inflammatory-associated gene expression when cultured on a synthetic fibronectin substrate. However, the mechanism by which stretch induces these changes is unknown. Integrins, such as α5ß1, mediate microglial attachment to fibronectin via the RGD binding peptide; following integrin ligation the integrin-associated signaling enzyme, focal adhesion kinase (FAK), autophosphorylates tyrosine residue 397 and mediates multiple downstream cellular processes. We therefore hypothesize that blocking the RGD binding/integrin pathway with a commercially available RGD peptide will mimic the stretch-induced morphological alterations and functional deficits in microglia. Further, we hypothesize that upregulation of stretch-inhibited downstream integrin signaling will reverse these effects. Using primary rat microglia, we tested the effects of RGD binding peptide and a FAK activator on cellular function and structure and response to stretch-injury. Similar to injured cells, RGD peptide administration significantly decreases media nitric oxide (NO) levels and iNOS expression and induced morphological alterations and migratory deficits. While stretch-injury and RGD peptide administration decreased phosphorylation of the tyrosine 397 residue on FAK, 20 nM of ZINC 40099027, an activator specific to the tyrosine 397 residue, rescued the stretch-induced decrease in FAK phosphorylation and ameliorated the injury-induced decrease in media NO levels, iNOS expression and inflammatory associated gene expression. Additionally, treatment alleviated morphological changes observed after stretch-injury and restored normal migratory behavior to control levels. Taken together, these data suggest that the integrin/FAK pathway partially mediates the stretch-injured phenotype in microglia, and may serve as a pathway to modulate microglial responses.


Subject(s)
Fibronectins , Integrins , Rats , Animals , Integrins/metabolism , Fibronectins/metabolism , Microglia/metabolism , Focal Adhesion Protein-Tyrosine Kinases/metabolism , Phosphorylation , Tyrosine/metabolism , Oligopeptides/pharmacology , Oligopeptides/metabolism , Peptides/metabolism
3.
PLoS One ; 18(3): e0281045, 2023.
Article in English | MEDLINE | ID: mdl-36897852

ABSTRACT

Reactive oxygen species (ROS) are a contributing factor to impaired function and pathology after spinal cord injury (SCI). The NADPH oxidase (NOX) enzyme is a key source of ROS; there are several NOX family members, including NOX2 and NOX4, that may play a role in ROS production after SCI. Previously, we showed that a temporary inhibition of NOX2 by intrathecal administration of gp91ds-tat immediately after injury improved recovery in a mouse SCI model. However, chronic inflammation was not affected by this single acute treatment, and other NOX family members were not assessed. Therefore, we aimed to explore the effect of genetic knockout (KO) of NOX2 or acute inhibition of NOX4 with GKT137831. A moderate SCI contusion injury was performed in 3 month old NOX2 KO and wild-type (WT) mice, who received no treatment or GKT137831/vehicle 30 minutes post-injury. Motor function was assessed using the Basso Mouse Scale (BMS), followed by evaluation of inflammation and oxidative stress markers. NOX2 KO mice, but not GKT137831 treated mice, demonstrated significantly improved BMS scores at 7, 14, and 28 days post injury (DPI) in comparison to WT mice. However, both NOX2 KO and GKT137831 significantly reduced ROS production and oxidative stress markers. Furthermore, a shift in microglial activation toward a more neuroprotective, anti-inflammatory state was observed in KO mice at 7 DPI and a reduction of microglial markers at 28 days. While acute alterations in inflammation were noted with GKT137831 administration, this was not sustained through 28 days. In vitro analysis also showed that while GKT137831 reduced ROS production by microglia, it did not translate to changes in pro-inflammatory marker expression within these cells. These data demonstrate that NOX2 and NOX4 play a role in post-injury ROS, but a single dose of NOX4 inhibitor fails to enhance long-term recovery.


Subject(s)
Rodentia , Spinal Cord Injuries , Mice , Animals , Reactive Oxygen Species/metabolism , NADPH Oxidase 2/metabolism , NADPH Oxidases/metabolism , Spinal Cord Injuries/pathology , Mice, Knockout , NADPH Oxidase 4/metabolism
4.
Cureus ; 15(2): e34679, 2023 Feb.
Article in English | MEDLINE | ID: mdl-36909033

ABSTRACT

INTRODUCTION:  In the United States (U.S.), African Americans and other minority groups have longer wait times for kidney transplantation than Caucasians. To date, many studies analyzing time spent on the waitlist for each race/ethnicity have been done. However, there are few to no studies examining waitlist time after the 2019 policy changes to the geographic distribution of donated kidneys. METHODS: Data collected from the National Organ Procurement and Transplantation Network database were used to analyze associations between race and time spent on the waitlist for a kidney transplant in the U.S. Additional sub-categorical data were analyzed to determine further associations and potential covariates, such as gender, age, citizenship, primary source of payment, region of transplant center, BMI, Kidney Donor Profile Index (KDPI), renal diagnosis, and presence/type of diabetes. Data were analyzed using odds ratios and validated by Bonferroni-Holm's corrected chi-square tests at confidence intervals of 95% to determine if there are statistically significant differences between transplant time spent on the waitlist and ethnicity, as well as age, diagnosis category, region of transplant center, and KDPI. RESULTS: Statistically significant increased odds of remaining on the transplant list at two years existed for all non-white races/ethnicities, except those identifying as multiracial. Asian American candidates had the greatest odds of remaining on the waitlist greater than two years in comparison to white candidates: 1.51 times that of a patient categorized as white (odds ratio [OR] 1.51, confidence interval [CI] 1.44-1.57). African American/Black, (OR 1.38, CI 1.34-1.43) Pacific Islander (OR 1.38, CI 1.17-1.63), Hispanic candidates (OR 1.37, CI 1.32-1.41), and American Indian or Native Alaskan candidates (OR 1.23, CI 1.12-1.46) also had increased odds of remaining on the transplant waitlist greater than two years compared to white candidates. DISCUSSION: In this study, ethnic disparities persisted as a barrier for non-white individuals receiving treatment for end-stage kidney disease, specifically in the context of time spent on the waitlist for a kidney transplant. Further research is needed regarding the causes of these disparities in time spent on the waitlist, such as cultural restrictions in organ donation, racial differences in parameters for organ match, and institutionalized racism in health care practitioners.

5.
Front Med (Lausanne) ; 9: 1034692, 2022.
Article in English | MEDLINE | ID: mdl-36405593

ABSTRACT

Inflammation is a primary component of the central nervous system injury response. Traumatic brain and spinal cord injury are characterized by a pronounced microglial response to damage, including alterations in microglial morphology and increased production of reactive oxygen species (ROS). The acute activity of microglia may be beneficial to recovery, but continued inflammation and ROS production is deleterious to the health and function of other cells. Microglial nicotinamide adenine dinucleotide phosphate (NADPH) oxidase (NOX), mitochondria, and changes in iron levels are three of the most common sources of ROS. All three play a significant role in post-traumatic brain and spinal cord injury ROS production and the resultant oxidative stress. This review will evaluate the current state of therapeutics used to target these avenues of microglia-mediated oxidative stress after injury and suggest avenues for future research.

6.
Neurosci Lett ; 771: 136416, 2022 02 06.
Article in English | MEDLINE | ID: mdl-34954116

ABSTRACT

The pathophysiology following spinal cord injury (SCI) progresses from its lesion epicenter resulting in cellular and systemic changes acutely, sub-acutely and chronically. The symptoms of the SCI depend upon the severity of the injury and its location in the spinal cord. However, there is lack of studies that have longitudinally assessed acute through chronic in vivo changes following SCI. In this combinatorial study we fill this gap by evaluating acute to chronic effects of moderate SCI in rats. We have used fluorodeoxyglucose (FDG) imaging with positron emission tomography (PET) as a marker to assess glucose metabolism, motor function, and immunohistochemistry to examine changes following moderate SCI. Our results demonstrate decreased FDG uptake at the injury site chronically at days 28 and 90 post injury compared to baseline. This alteration in glucose uptake was not restricted to the lesion site, showing depressed FDG uptake in non-injured areas (cervical spinal cord and cerebellum). The alteration in glucose uptake was correlated with reductions in neuronal cell viability and increases in glial cell activation at 90 days at the lesion site, as well as chronic impairments in motor function. These data demonstrate the chronic effects of SCI on glucose metabolism both within the lesion and distally within the spinal cord and brain.


Subject(s)
Glucose/metabolism , Spinal Cord Injuries/metabolism , Animals , Brain/diagnostic imaging , Brain/metabolism , Fluorodeoxyglucose F18/pharmacokinetics , Male , Positron-Emission Tomography , Rats , Rats, Sprague-Dawley , Spinal Cord/diagnostic imaging , Spinal Cord/metabolism , Spinal Cord Injuries/diagnostic imaging
7.
Nephrol Nurs J ; 48(6): 565-569, 2021.
Article in English | MEDLINE | ID: mdl-34935334

ABSTRACT

As we reflect back to the time before the pandemic, we can take a breath and identify all of the amazing obstacles that were overcome through teamwork. This article reflects the challenges that New York University Langone Hospital- Long Island encountered trying to overcome the clinical challenges of treating patients with COVID-19 while integrating research into a chaotic and ever-changing environment. Early on, it became evident that acute kidney failure was a major complication of this virus, and nephrology nurses played an integral role in managing this outcome. Science was the shining light that gave hope through the research, which was conducted as a team effort throughout the organization.


Subject(s)
COVID-19 , Humans , Pandemics , SARS-CoV-2
8.
Mol Neurobiol ; 58(7): 3545-3560, 2021 Jul.
Article in English | MEDLINE | ID: mdl-33763772

ABSTRACT

Mechanical stretch-injury is a prominent force involved in the etiology of traumatic brain injury (TBI). It is known to directly cause damage and dysfunction in neurons, astrocytes, and endothelial cells. However, the deleterious effects of stretch-injury on microglia, the brain's primary immunocompetent cell, are currently unknown. The Cell Injury Controller II (CICII), a validated cellular neurotrauma model, was used to induce a mechanical stretch-injury in primary rat microglia. Statistical analysis utilized Student's t test and one- and two-way ANOVAs with Tukey's and Sidak's multiple comparisons, respectively. Cells exposed to stretch-injury showed no signs of membrane permeability, necrosis, or apoptosis, as measured by media-derived lactate dehydrogenase (LDH) and cleaved-caspase 3 immunocytochemistry, respectively. Interestingly, injured cells displayed a functional deficit in nitric oxide production (NO), identified by media assay and immunocytochemistry, at 6, 12, 18, and 48 h post-injury. Furthermore, gene expression analysis revealed the expression of inflammatory cytokines IL-6 and IL-10, and enzyme arginase-1 was significantly downregulated at 12 h post-injury. Time course evaluation of migration, using a cell exclusion zone assay, showed stretch-injured cells display decreased migration into the exclusion zone at 48- and 72-h post-stretch. Lastly, coinciding with the functional immune deficits was a significant change in morphology, with process length decreasing and cell diameter increasing following an injury at 12 h. Taken together, the data demonstrate that stretch-injury produces significant alterations in microglial function, which may have a marked impact on their response to injury or their interaction with other cells.


Subject(s)
Microglia/metabolism , Microglia/pathology , Animals , Cell Movement/drug effects , Cell Movement/physiology , Cells, Cultured , Lipopolysaccharides/toxicity , Microglia/drug effects , Nitric Oxide/metabolism , Rats , Rats, Sprague-Dawley
9.
Behav Brain Res ; 405: 113210, 2021 05 07.
Article in English | MEDLINE | ID: mdl-33639268

ABSTRACT

Gait disruptions following traumatic brain injury (TBI) are noted in the clinical population. To date, thorough analysis of gait changes in animal models of TBI to allow for correlation of pathological alterations and utilization of this as a therapeutic outcome have been limited. We therefore assessed gait using the DigiGait analysis system as well as overall locomotion using the Beam Walk test in adult male Sprague-Dawley rats following a commonly used model of TBI, parietal lobe controlled cortical impact (CCI). Rats underwent DigiGait baseline analysis 24 h prior to injury, followed by a moderate CCI in the left parietal lobe. Performance on the DigiGait was then assessed at 1, 3, 7, and 14 days post-injury, followed by histological analysis of brain tissue. Beam walk analysis showed a transient but significant impairment acutely after injury. Despite observance of gait disturbance in the clinical population, TBI in the parietal lobe of rats resulted in limited alterations in hind or forelimb function. General hindlimb locomotion showed significant but transient impairment. Significant changes in gait were observed to last through the sub-acute period, including right hindpaw angle of rotation and left forelimb and right hindlimb swing phase duration. Slight changes that did not reach statistical significant but may reflect subtle impacts of TBI on gait were reflected in several other measures, such as stride duration, stance duration and stance width. These results demonstrate that moderate-severe injury to the parietal cortex and underlying structures including corpus callosum, hippocampus, thalamus and basal ganglia result in slight changes to gait that can be detected using the Digigait analysis system.


Subject(s)
Brain Injuries, Traumatic/complications , Gait Analysis , Gait Disorders, Neurologic/etiology , Gait Disorders, Neurologic/physiopathology , Parietal Lobe/injuries , Animals , Disease Models, Animal , Male , Rats , Rats, Sprague-Dawley
10.
Front Neurosci ; 14: 547175, 2020.
Article in English | MEDLINE | ID: mdl-33100956

ABSTRACT

Insulin is a hormone typically associated with pancreatic release and blood sugar regulation. The brain was long thought to be "insulin-independent," but research has shown that insulin receptors (IR) are expressed on neurons, microglia and astrocytes, among other cells. The effects of insulin on cells within the central nervous system are varied, and can include both metabolic and non-metabolic functions. Emerging data suggests that insulin can improve neuronal survival or recovery after trauma or during neurodegenerative diseases. Further, data suggests a strong anti-inflammatory component of insulin, which may also play a role in both neurotrauma and neurodegeneration. As a result, administration of exogenous insulin, either via systemic or intranasal routes, is an increasing area of focus in research in neurotrauma and neurodegenerative disorders. This review will explore the literature to date on the role of insulin in neurotrauma and neurodegeneration, with a focus on traumatic brain injury (TBI), spinal cord injury (SCI), Alzheimer's disease (AD) and Parkinson's disease (PD).

11.
J Neuroinflammation ; 16(1): 41, 2019 Feb 18.
Article in English | MEDLINE | ID: mdl-30777083

ABSTRACT

BACKGROUND: Excessive iron contributes to oxidative stress after central nervous system injury. NADPH oxidase (NOX) enzymes are upregulated in microglia after pro-inflammatory activation and contribute to oxidative stress. The relationship between iron, microglia, NOX, and oxidative stress is currently unclear. METHODS: We evaluated the effects of iron on lipopolysaccharide (LPS)-activated microglia and its secondary effect within neuronal co-cultures. Further, NOX2 and four specific inhibitors were tested to evaluate the relationship with the reactive oxygen species (ROS)-producing enzymes. RESULTS: An iron dose-dependent increase in ROS production among microglia treated with LPS was identified. Interestingly, despite this increase in ROS, inflammatory polarization alterations were not detected among the microglia after exposure to iron and LPS. Co-culture experimentation between primary neurons and exposed microglia (iron and LPS) significantly reduced neuronal cell number at 24 h, suggesting a profound neurotoxic effect despite the lack of a change in polarization phenotype. NOX2 and NOX4 inhibition significantly reduced ROS production among microglia exposed to iron and LPS and reduced neuronal damage and death in response to microglial co-culture. CONCLUSIONS: In conclusion, iron significantly increased ROS production and neurotoxicity without exacerbating LP-activated microglia phenotype in vitro, suggesting that iron contributes to microglia-related oxidative stress, and this may be a viable therapeutic target for injury or neurodegeneration. Further, this study highlights both NOX2 and NOX4 as potential therapeutic targets in the treatment of iron-induced microglia-related inflammation and neurotoxicity.


Subject(s)
Iron/pharmacology , Microglia/drug effects , NADPH Oxidases/metabolism , Oxidative Stress/drug effects , Reactive Oxygen Species/metabolism , Aminopyridines/pharmacology , Animals , Animals, Newborn , Caspase 3/metabolism , Cell Death/drug effects , Cell Proliferation/drug effects , Cells, Cultured , Cerebral Cortex/cytology , Coculture Techniques , Enzyme Inhibitors/pharmacology , Ferritins/genetics , Ferritins/metabolism , Iron/metabolism , Lipopolysaccharides/pharmacology , Microglia/physiology , Neurons/drug effects , Oxidative Stress/physiology , Pyrazoles/pharmacology , Pyrazolones , Pyridines/pharmacology , Pyridones , Rats , Rats, Sprague-Dawley , Sulfonamides/pharmacology
12.
Neurosci Lett ; 690: 23-28, 2019 01 18.
Article in English | MEDLINE | ID: mdl-30296507

ABSTRACT

Aging results in increased activation of inflammatory glial cells and decreased neuronal viability following spinal cord injury (SCI). Metabolism and transport of glucose is also decreased with age, although the influence of age on glucose transporter (GLUT) expression or glucose uptake in SCI is currently unknown. We therefore performed [18F]Fluorodeoxyglucose (FDG) PET imaging of young (3 month) and middle-aged (12 month) rats. Glucose uptake in middle-aged rats was decreased compared to young rats at baseline, followed by increased uptake 14 days post contusion SCI. qRT-PCR and protein analysis revealed an association between 14 day glucose uptake and 14 day post-injury inflammation. Further, gene expression analysis of neuron-specific GLUT3 and non-specific GLUT4 (present on glial cells) revealed an inverse relationship between GLUT3/4 gene expression and glucose uptake patterns. Protein expression revealed increased GLUT3 in 3 month rats only, consistent with age related decreases in glucose uptake, and increased GLUT4 in 12 month rats only, consistent with age related increases in inflammatory activity and glucose uptake. Inconsistencies between gene and protein suggest an influence of age-related impairment of translation and/or protein degradation. Overall, our findings show that age alters glucose uptake and GLUT3/4 expression profiles before and after SCI, which may be dependent on level of inflammatory response, and may suggest a therapeutic avenue in addressing glucose uptake in the aging population.


Subject(s)
Aging/metabolism , Glucose Transporter Type 3/biosynthesis , Glucose Transporter Type 4/biosynthesis , Glucose/metabolism , Spinal Cord Injuries/metabolism , Spinal Cord/metabolism , Animals , Fluorodeoxyglucose F18/metabolism , Functional Neuroimaging , Inflammation/metabolism , Male , Positron-Emission Tomography , Rats
13.
Neuroimage ; 188: 419-426, 2019 03.
Article in English | MEDLINE | ID: mdl-30576849

ABSTRACT

Traumatic Brain Injury (TBI) affects approximately 2.5 million people in the United States, of which 80% are considered to be mild (mTBI). Previous studies have shown that cerebral glucose uptake and metabolism are altered after brain trauma and functional metabolic deficits observed following mTBI are associated with changes in cognitive performance. Imaging of glucose uptake using [18F] Fluorodeoxyglucose (FDG) based Positron Emission Tomography (PET) with anesthesia during the uptake period demonstrated limited variability in results, but may have depressed uptake. Anesthesia has been found to interfere with blood glucose levels, and hence, FDG uptake. Conversely, forced cognitive testing during uptake may increase glucose demand in targeted regions, such as hippocampus, allowing for better differentiation of outcomes. Therefore, the objective of this study was to investigate the influence of a directed cognitive function task during the FDG uptake period on uptake measurements both in naïve rats and at 2 days after mild lateral fluid percussion (mLFP) TBI. Adult male Sprague Dawley rats underwent FDG uptake with either cognitive testing with the Novel Object Recognition (NOR) test or No Novel Object (NNO), followed by PET scans at baseline (prior to injury) and at 2days post mLFP. At baseline, FDG uptake in the right hippocampus was elevated in rats completing the NOR in comparison to the NNO (control group). Further, the NNO group rats demonstrated a greater fold change in the FDG uptake between baseline and post injury scans than the NOR group. Overall, these data suggest that cognitive activity during FDG uptake affects the regional uptake pattern in the brain, increasing uptake at baseline and suppressing the effects of injury.


Subject(s)
Brain Injuries, Traumatic/physiopathology , Functional Laterality/physiology , Hippocampus/physiopathology , Recognition, Psychology/physiology , Animals , Behavior, Animal/physiology , Brain Injuries, Traumatic/diagnostic imaging , Brain Injuries, Traumatic/metabolism , Fluorodeoxyglucose F18 , Hippocampus/diagnostic imaging , Hippocampus/metabolism , Humans , Male , Positron-Emission Tomography , Rats , Rats, Sprague-Dawley
14.
PLoS One ; 13(8): e0201878, 2018.
Article in English | MEDLINE | ID: mdl-30148836

ABSTRACT

Microglia are the macrophages of the central nervous system (CNS), which function to monitor and maintain homeostasis. Microglial activation occurs after CNS injury, infection or disease. Prolonged microglial activation is detrimental to the CNS as they produce nitric oxide (NO), reactive oxygen species (ROS) and pro-inflammatory cytokines, resulting in neuronal cell dysfunction and death. Microglial activation is implicated in the neurological deficits following traumatic brain injury (TBI) and Alzheimer's disease. Intranasal insulin administration is a promising treatment of Alzheimer's disease and TBI. However, the exact effect of insulin on microglia is currently unclear. The goal of this study was therefore to examine the effect of insulin administration on activated microglia. The microglial cell line BV2 were exposed to a pro-inflammatory stimulus, lipopolysaccharide (LPS), followed by insulin administration. Outcome measures were conducted at 24 hours after treatment. In vitro assays quantified NO and ROS production. Western blot, immunocytochemistry and phagocytosis assay further examined the effect of insulin on microglial activity. Insulin treatment significantly reduced NO, ROS and TNFα production and increased phagocytic activity. Insulin treatment also significantly reduced iNOS expression, but had no significant effect on any other M1 or M2 macrophage polarization marker examined. These data suggest that insulin has very specific effects to reduce pro-inflammatory or chemoattractant properties of microglia, and this may be one mechanism by which insulin has beneficial effects in CNS injury or neurodegenerative conditions.


Subject(s)
Inflammation/metabolism , Insulin/metabolism , Microglia/immunology , Animals , Cell Line , Insulin/administration & dosage , Lectins/metabolism , Lectins, C-Type/metabolism , Lipopolysaccharides , Mannose Receptor , Mannose-Binding Lectins/metabolism , Mice , Microglia/pathology , Nitric Oxide/metabolism , Phagocytosis/physiology , Proto-Oncogene Proteins c-akt/metabolism , Reactive Oxygen Species/metabolism , Receptors, Cell Surface/metabolism , Tumor Necrosis Factor-alpha/metabolism , beta-N-Acetylhexosaminidases/metabolism
15.
Spine J ; 18(12): 2195-2204, 2018 12.
Article in English | MEDLINE | ID: mdl-29709554

ABSTRACT

BACKGROUND CONTEXT: We aimed to fully understand the extent of limitations associated with symptomatic lumbar spinal stenosis (LSS) and the functional outcome of its treatment, including not only function during daily activities (eg, using the 6-minute walk test [6MWT]) but also the quality of function that should be objectively assessed. PURPOSE: This study was performed to test the hypothesis that the Oswestry Disability Index (ODI) score, the walking distance during the 6MWT (6-minute walking distance [6MWD]), and gait quality (spatiotemporal parameters and gait asymmetry) will improve postoperatively and achieve normal values; to determine if changes in gait parameters correlate with changes in Oswestry Disability Index (ODI) score; and to ascertain if patients' gait quality will diminish during the 6MWT, reflected by changes in gait parameters during the 6MWT. STUDY DESIGN/SETTING: This is a prospective observational study with intervention. PATIENT SAMPLE: The sample comprised patients with symptomatic LSS. OUTCOME MEASURES: The ODI score, gait quality (spatiotemporal and asymmetry), and walking performance (walking distance during the 6MWT) were the outcome measures. METHODS: Patients with symptomatic LSS were analyzed on the day before surgery and 10 weeks and 12 months postoperatively. Functional disability in daily life was assessed by the ODI. Spatiotemporal and kinematic gait parameters were recorded with an inertial sensor system during the 6MWT, and the 6MWD was determined. Gait asymmetry was defined as 100*|right-left|/(0.5*(|right+left|)). RESULTS: The ODI decreased by 17.9% and 23.9% and 6MWD increased by 21 m and 26 m from baseline to 10-week and 12-month follow-up, respectively. Gait quality did not change during the 6MWT at any assessment or between assessments. Compared with the control group, patients walked less during the 6MWT, and gait quality differed between patients and the control group at baseline and 10-week follow-up but not at 12-month follow-up. Change in gait quality explained 39% and 73% of variance in change in ODI from baseline to 10-week and to 12-month follow-up, respectively. CONCLUSIONS: Changes in gait quality explained a large portion of variance in changes in the ODI, indicating that patients with symptomatic LSS perceive their compromised gait quality as functional limitations. Gait data obtained by instrumented gait analysis contain information on gait quality that can be helpful for evaluating functional limitations in patients with LSS, the outcome of decompression surgery, and the development of patient-specific rehabilitation regimens.


Subject(s)
Decompression, Surgical/adverse effects , Gait , Lumbar Vertebrae/surgery , Spinal Stenosis/surgery , Aged , Biomechanical Phenomena , Female , Humans , Male , Middle Aged , Postoperative Complications/epidemiology
16.
Mil Med ; 183(suppl_1): 269-275, 2018 03 01.
Article in English | MEDLINE | ID: mdl-29635567

ABSTRACT

Threshold shock-impulse levels required to induce cellular injury and cumulative effects upon single and/or multiple exposures are not well characterized. Currently, there are few in vitro experimental models with blast pressure waves generated by using real explosives in the laboratory for investigating the effects of primary blast-induced traumatic brain injury. An in vitro indoor experimental platform is developed using real military explosive charges to accurately represent battlefield blast exposure and to probe the effects of primary explosive blast on dissociated neurons and tissue slices. Preliminary results indicate that physical insults altered membrane permeability, impacted cellular viability, created axonal beadings, and led to synaptic protein loss in hippocampal slice cultures. Injuries from blast under the conditions that were examined did not appear to cause immediate or sustained damage to the cells. Three consecutive primary blasts failed to disrupt the overall cellular integrity in the hippocampal slice cultures and produced a unique type of pathology comprised with distinct reduction in synaptic proteins before cellular deterioration set in. These observed changes might add to the challenges in regard to enhancing our understanding of the complex biochemical and molecular mechanisms caused by primary blast-induced injury.


Subject(s)
Explosions , Hippocampus/pathology , Neurons/pathology , Sound/adverse effects , Animals , Brain Injuries, Traumatic/pathology , Disease Models, Animal , Hippocampus/physiopathology , Neurons/cytology , PC12 Cells/pathology , Rats , Rats, Sprague-Dawley/abnormalities , Rats, Sprague-Dawley/injuries , Triazines/adverse effects
17.
J Neuroinflammation ; 14(1): 161, 2017 08 18.
Article in English | MEDLINE | ID: mdl-28821269

ABSTRACT

BACKGROUND: Spinal cord injury (SCI) among people over age 40 has been steadily increasing since the 1980s and is associated with worsened outcome than injuries in young people. Age-related increases in reactive oxygen species (ROS) are suggested to lead to chronic inflammation. The NADPH oxidase 2 (NOX2) enzyme is expressed by microglia and is a primary source of ROS. This study aimed to determine the effect of age on inflammation, oxidative damage, NOX2 gene expression, and functional performance with and without SCI in young adult (3 months) and middle-aged (12 months) male rats. METHODS: Young adult and middle-aged rats were assessed in two groups-naïve and moderate contusion SCI. Functional recovery was determined by weekly assessment with the Basso, Beattie, and Breshnahan general motor score (analyzed two-way ANOVA) and footprint analysis (analyzed by Chi-square analysis). Tissue was analyzed for markers of oxidative damage (8-OHdG, Oxyblot, and 3-NT), microglial-related inflammation (Iba1), NOX2 component (p47PHOX, p22PHOX, and gp91PHOX), and inflammatory (CD86, CD206, TNFα, and NFκB) gene expression (all analyzed by unpaired Student's t test). RESULTS: In both naïve and injured aged rats, compared to young rats, tissue analysis revealed significant increases in 8-OHdG and Iba1, as well as inflammatory and NOX2 component gene expression. Further, injured aged rats showed greater lesion volume rostral and caudal to the injury epicenter. Finally, injured aged rats showed significantly reduced Basso-Beattie-Bresnahan (BBB) scores and stride length after SCI. CONCLUSIONS: These results show that middle-aged rats demonstrate increased microglial activation, oxidative stress, and inflammatory gene expression, which may be related to elevated NOX2 expression, and contribute to worsened functional outcome following injury. These findings are essential to elucidating the mechanisms of age-related differences in response to SCI and developing age-appropriate therapeutics.


Subject(s)
Aging/metabolism , Disease Models, Animal , Microglia/metabolism , NADPH Oxidase 2/biosynthesis , Oxidative Stress/physiology , Spinal Cord Injuries/metabolism , Age Factors , Aging/genetics , Aging/pathology , Animals , Gene Expression , Inflammation/metabolism , Inflammation/pathology , Male , Microglia/pathology , Motor Skills/physiology , NADPH Oxidase 2/genetics , Rats , Rats, Sprague-Dawley , Recovery of Function/physiology , Rodentia , Spinal Cord Injuries/genetics , Spinal Cord Injuries/pathology
18.
J Cereb Blood Flow Metab ; 37(9): 3203-3218, 2017 Sep.
Article in English | MEDLINE | ID: mdl-28058996

ABSTRACT

Traumatic brain injury (TBI) results in learning and memory dysfunction. Cognitive deficits result from cellular and metabolic dysfunction after injury, including decreased cerebral glucose uptake and inflammation. This study assessed the ability of intranasal insulin to increase cerebral glucose uptake after injury, reduce lesion volume, improve memory and learning function and reduce inflammation. Adult male rats received a controlled cortical impact (CCI) injury followed by intranasal insulin or saline treatment daily for 14 days. PET imaging of [18F]-FDG uptake was performed at baseline and at 48 h and 10 days post-injury and MRI on days three and nine post injury. Motor function was tested with the beam walking test. Memory function was assessed with Morris water maze. Intranasal insulin after CCI significantly improved several outcomes compared to saline. Insulin-treated animals performed better on beam walk and demonstrated significantly improved memory. A significant increase in [18F]-FDG uptake was observed in the hippocampus. Intranasal insulin also resulted in a significant decrease in hippocampus lesion volume and significantly less microglial immunolabeling in the hippocampus. These data show that intranasal insulin improves memory, increases cerebral glucose uptake and decreases neuroinflammation and hippocampal lesion volume, and may therefore be a viable therapy for TBI.


Subject(s)
Brain Injuries, Traumatic/drug therapy , Glucose/metabolism , Hippocampus/drug effects , Insulin/therapeutic use , Microglia/drug effects , Administration, Intranasal , Animals , Blood Glucose/analysis , Brain Injuries, Traumatic/diagnostic imaging , Brain Injuries, Traumatic/metabolism , Brain Injuries, Traumatic/physiopathology , Fluorodeoxyglucose F18/metabolism , Hippocampus/diagnostic imaging , Hippocampus/metabolism , Insulin/administration & dosage , Magnetic Resonance Imaging , Male , Maze Learning/drug effects , Memory/drug effects , Microglia/metabolism , Motor Activity/drug effects , Positron Emission Tomography Computed Tomography , Rats , Rats, Sprague-Dawley
19.
J Neurotrauma ; 34(5): 1074-1085, 2017 03 01.
Article in English | MEDLINE | ID: mdl-27554593

ABSTRACT

Non-invasive measurements of brain metabolism using 18F-fluorodeoxyglucose (FDG) with positron emission tomography (PET) may provide important information about injury severity following traumatic brain injury (TBI). There is growing interest in the potential of combining functional PET imaging with anatomical and functional magnetic resonance imaging (MRI). This study aimed to investigate the effectiveness of combining clinically available FDG-PET with T2 and diffusion MR imaging, with a particular focus on inflammation and the influence of glial alterations after injury. Adult male Sprague Dawley rats underwent a moderate controlled cortical impact (CCI) injury followed by FDG-PET, MRI, and histological evaluation. FDG uptake showed significant alterations in the corpus callosum, hippocampus, and amygdala after TBI, demonstrating that a relatively "focal" CCI injury can result in global alterations. Analysis of MRI T2 intensity and apparent diffusion coefficient (ADC) also showed significant alterations in these regions to include cytotoxic and vasogenic edema. Histology showed increased glial activation in the corpus callosum and hippocampus that was associated with increased FDG uptake at sub-acute time-points. Glial activation was not detected in the amygdala but neuronal damage was evident, as the amygdala was the only region to show a reduction in both FDG uptake and ADC at sub-acute time-points. Overall, FDG-PET detected glial activation but was confounded by the presence of cell damage, whereas MRI consistently detected cell damage but was confounded by glial activation. These results demonstrate that FDG-PET and MRI can be used together to improve our understanding of the complex alterations in the brain after TBI.


Subject(s)
Brain Injuries, Traumatic , Magnetic Resonance Imaging/methods , Microglia/metabolism , Positron-Emission Tomography/methods , Amygdala/diagnostic imaging , Amygdala/metabolism , Amygdala/pathology , Animals , Brain Injuries, Traumatic/diagnostic imaging , Brain Injuries, Traumatic/metabolism , Brain Injuries, Traumatic/pathology , Corpus Callosum/diagnostic imaging , Corpus Callosum/metabolism , Corpus Callosum/pathology , Disease Models, Animal , Fluorodeoxyglucose F18/pharmacokinetics , Hippocampus/diagnostic imaging , Hippocampus/metabolism , Hippocampus/pathology , Male , Radiopharmaceuticals/pharmacokinetics , Rats , Rats, Sprague-Dawley
20.
Pain Med ; 18(5): 932-946, 2017 05 01.
Article in English | MEDLINE | ID: mdl-27497321

ABSTRACT

Objective: Neuropathic pain is common and debilitating with limited effective treatments. Macrophage/microglial activation along ascending somatosensory pathways following peripheral nerve injury facilitates neuropathic pain. However, polarization of macrophages/microglia in neuropathic pain is not well understood. Photobiomodulation treatment has been used to decrease neuropathic pain, has anti-inflammatory effects in spinal injury and wound healing models, and modulates microglial polarization in vitro. Our aim was to characterize macrophage/microglia response after peripheral nerve injury and modulate the response with photobiomodulation. Methods: Adult male Sprague-Dawley rats were randomly assigned to sham (N = 13), spared nerve injury (N = 13), or injury + photobiomodulation treatment groups (N = 7). Mechanical hypersensitivity was assessed with electronic von Frey. Photobiomodulation (980 nm) was applied to affected hind paw (output power 1 W, 20 s, 41cm above skin, power density 43.25 mW/cm 2 , dose 20 J), dorsal root ganglia (output power 4.5W, 19s, in skin contact, power density 43.25 mW/cm 2 , dose 85.5 J), and spinal cord regions (output power 1.5 W, 19s, in skin contact, power density 43.25 mW/cm 2 , dose 28.5 J) every other day from day 7-30 post-operatively. Immunohistochemistry characterized macrophage/microglial activation. Results: Injured groups demonstrated mechanical hypersensitivity 1-30 days post-operatively. Photobiomodulation-treated animals began to recover after two treatments; at day 26, mechanical sensitivity reached baseline. Peripheral nerve injury caused region-specific macrophages/microglia activation along spinothalamic and dorsal-column medial lemniscus pathways. A pro-inflammatory microglial marker was expressed in the spinal cord of injured rats compared to photobiomodulation-treated and sham group. Photobiomodulation-treated dorsal root ganglion macrophages expressed anti-inflammatory markers. Conclusion: Photobiomodulation effectively reduced mechanical hypersensitivity, potentially through modulating macrophage/microglial activation to an anti-inflammatory phenotype.


Subject(s)
Disease Models, Animal , Low-Level Light Therapy/methods , Macrophage Activation/immunology , Macrophages/immunology , Microglia/immunology , Neuralgia/immunology , Neuralgia/therapy , Animals , Male , Neuralgia/pathology , Organ Sparing Treatments , Pain Measurement , Peripheral Nerve Injuries/immunology , Peripheral Nerve Injuries/therapy , Rats , Rats, Sprague-Dawley , Treatment Outcome
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