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Introduction:
Fabry disease (FD) is a lysosomal storage disorder resulting in progressive nervous system, kidney and heart disease. Enzyme replacement therapy (ERT) may halt or attenuate disease progression. Since administration is burdensome and expensive, appropriate use is mandatory. We aimed to define European consensus recommendations for the initiation and cessation of ERT in patients with FD.
Methods:
A Delphi procedure was conducted with an online survey (n = 28) and a meeting (n = 15). Patient organization representatives were present at the meeting to give their views. Recommendations were accepted with ≥75% agreement and no disagreement.
Results:
For classically affected males, consensus was achieved that ERT is recommended as soon as there are early clinical signs of kidney, heart or brain involvement, but may be considered in patients of ≥16 years in the absence of clinical signs or symptoms of organ involvement. Classically affected females and males with non-classical FD should be treated as soon as there are early clinical signs of kidney, heart or brain involvement, while treatment may be considered in females with non-classical FD with early clinical signs that are considered to be due to FD. Consensus was achieved that treatment should not be withheld from patients with severe renal insufficiency (GFR < 45 ml/min/1.73 m\(^{2}\)) and from those on dialysis or with cognitive decline, but carefully considered on an individual basis. Stopping ERT may be considered in patients with end stage FD or other co-morbidities, leading to a life expectancy of <1 year. In those with cognitive decline of any cause, or lack of response for 1 year when the sole indication for ERT is neuropathic pain, stopping ERT may be considered. Also, in patients with end stage renal disease, without an option for renal transplantation, in combination with advanced heart failure (NYHA class IV), cessation of ERT should be considered. ERT in patients who are non-compliant or fail to attend regularly at visits should be stopped.
Conclusion:
The recommendations can be used as a benchmark for initiation and cessation of ERT, although final decisions should be made on an individual basis. Future collaborative efforts are needed for optimization of these recommendations.
Lymphocytes express potassium channels that regulate physiological cell functions, such as activation, proliferation and migration. Expression levels of K\(_{2P}\)5.1(TASK2; KCNK5) channels belonging to the family of two-pore domain potassium channels have previously been correlated to the activity of autoreactive T lymphocytes in patients with multiple sclerosis and rheumatoid arthritis. In humans, K\(_{2P}\)5.1 channels are upregulated upon T cell stimulation and influence T cell effector functions. However, a further clinical translation of targeting K\(_{2P}\)5.1 is currently hampered by a lack of highly selective inhibitors, making it necessary to evaluate the impact of KCNK5 in established preclinical animal disease models. We here demonstrate that K\(_{2P}\)5.1 knockout (K\(_{2P}\)5.1\(^{-/-}\) mice display no significant alterations concerning T cell cytokine production, proliferation rates, surface marker molecules or signaling pathways. In an experimental model of autoimmune neuroinflammation, K\(_{2P}\)5.1\(^{-/-}\) mice show a comparable disease course to wild-type animals and no major changes in the peripheral immune system or CNS compartment. A compensatory upregulation of the potassium channels K\(_{2P}\)3.1 and K\(_{V}\)1.3 seems to counterbalance the deletion of K\(_{2P}\)5.1. As an alternative model mimicking autoimmune neuroinflammation, experimental autoimmune encephalomyelitis in the common marmoset has been proposed, especially for testing the efficacy of new potential drugs. Initial experiments show that K\(_{2P}\)5.1 is functionally expressed on marmoset T lymphocytes, opening up the possibility for assessing future K\(_{2P}\)5.1-targeting drugs.
Background:
Deep brain stimulation (DBS) is the chronic electrical stimulation of selected target sites in the brain through stereotactically implanted electrodes. More than 150 000 patients around the world have been treated to date with DBS for medically intractable conditions. The indications for DBS include movement disorders, epilepsy, and some types of mental illness.
Methods:
This review is based on relevant publications retrieved by a selective search in PubMed and the Cochrane Library, and on the current guidelines of the German Neurological Society (Deutsche Gesellschaft fur Neurologie, DGN).
Results: DBS is usually performed to treat neurological diseases, most often movement disorders and, in particular, Parkinson's disease. Multiple randomized controlled trials (RCTs) have shown that DBS improves tremor, dyskinesia, and quality of life in patients with Parkinson's disease by 25% to 50%, depending on the rating scales used. DBS for tremor usually involves stimulation in the cerebello-thalamo-cortical regulatory loop. In an RCT of DBS for the treatment of primary generalized dystonia, the patients who underwent DBS experienced a 39.3% improvement of dystonia, compared to only 4.9% in the control group. Two multicenter trials of DBS for depression were terminated early because of a lack of efficacy.
Conclusion:
DBS is an established treatment for various neurological and psychiatric diseases. It has been incorporated in the DGN guidelines and is now considered a standard treatment for advanced Parkinson's disease. The safety and efficacy of DBS can be expected to improve with the application of new technical developments in electrode geometry and new imaging techniques. Controlled trials would be helpful so that DBS could be extended to further indications, particularly psychiatric ones.
Multifocal motor neuropathy is an immune mediated disease presenting with multifocal muscle weakness and conduction block. IgM auto-antibodies against the ganglioside GM1 are detectable in about 50% of the patients. Auto-antibodies against the paranodal proteins contactin-1 and neurofascin-155 and the nodal protein neurofascin-186 have been detected in subgroups of patients with chronic inflammatory demyelinating polyneuropathy. Recently, auto-antibodies against neurofascin-186 and gliomedin were described in more than 60% of patients with multifocal motor neuropathy. In the current study, we aimed to validate this finding, using a combination of different assays for auto-antibody detection. In addition we intended to detect further auto-antibodies against paranodal proteins, specifically contactin-1 and neurofascin-155 in multifocal motor neuropathy patients’ sera. We analyzed sera of 33 patients with well-characterized multifocal motor neuropathy for IgM or IgG anti-contactin-1, anti-neurofascin-155 or -186 antibodies using enzyme-linked immunosorbent assay, binding assays with transfected human embryonic kidney 293 cells and murine teased fibers. We did not detect any IgM or IgG auto-antibodies against contactin-1, neurofascin-155 or -186 in any of our multifocal motor neuropathy patients. We conclude that auto-antibodies against contactin-1, neurofascin-155 and -186 do not play a relevant role in the pathogenesis in this cohort with multifocal motor neuropathy.
Die hier vorliegende Forschungsarbeit überprüfte eine mögliche Beteiligung des peripheren Nervensystems bei M. Parkinson und den atypischen Parkinson-Syndromen. 31 Patienten mit einem idiopathischen Parkinson-Syndrom (IPD-Patienten) und neun Patienten mit einem atypischen Parkinson-Syndrom (APD-Patienten) sowie 35 altersentsprechende Kontrollprobanden wurden zwischen 2011 und 2012 für diese Studie rekrutiert. Neben der Eigenanamnese und der neurologischen Untersuchung erhielten die Patienten eine Suralisneurographie zur Überprüfung der large fibers und eine Quantitative sensorische Testung (QST) zur Detektion einer möglichen Small-fiber-Dysfunktion. Die Vitamin-Bestimmung diente der Untersuchung möglicher Zusammenhänge zwischen der Levodopa-Therapie, eventuell daraus resultierenden Vitamin-Mangelzuständen und einer reduzierten intraepidermalen Nervenfaser-Dichte (IENF-Dichte) beim M. Parkinson. Für die histologische Auswertung der IENF-Dichte und der dermalen, myelinisierten Nervenfaserbündel (PGP 9.5- / MBP- Doppelfärbung) sowie für die immunohistochemische Untersuchung der Nervenfasersubtypen (anti-alpha-CGRP- und anti-Substanz P-Antikörper) wurden bei jedem Probanden vier Hautbiopsien von den Extremitäten und dem Körperstamm entnommen.
Sieben IPD-Patienten und ein Proband mit einem atypischen Parkinson-Syndrom wiesen ein vermindertes sensorisches Nervenaktionspotenzial (SNAP) in der Suralisneurographie auf. Dagegen war eine pathologisch reduzierte Nervenleitgeschwindigkeit nur bei einem IPD-Patienten nachweisbar. Auffällig war zudem eine negative Korrelation zwischen der Erkrankungsdauer und dem SNAP (Korrelationskoeffizient -0,367, p<0,03). In der Auswertung der Hautbiopsien konnte eine statistisch signifikante Reduktion der myelinisierten Bündel am Unterschenkel der IPD-Patienten festgestellt werden.
Bei zehn von 30 IPD-Patienten, jedoch bei keinem der Probanden mit einem atypischen Parkinson-Syndrom, konnte eine verminderte IENF-Dichte nachgewiesen werden. In der statistischen Überprüfung wurde außerdem am Unterschenkel ein signifikanter Unterschied zwischen den IPD-Patienten und der Kontrollkohorte sowie eine negative Korrelation zwischen der Krankheitsdauer und der IENF-Dichte (Korrelationskoeffizient -0,320, p<0,05) festgestellt. Die QST konnte dagegen keinen statistisch signifikanten Unterschied zwischen den einzelnen Kohorten aufzeigen.
Im Kontrast dazu fand sich eine längenunabhängige Reduktion der CGRP-positiven und der Substanz P-positiven IENF-Dichte bei den Patienten mit einem idiopathischen Parkinson-Syndrom. Bemerkenswert war zudem eine signifikante Verminderung der Substanz P-positiven intraepidermalen Nervenfasern am Oberschenkel und Rücken bei den APD-Patienten. Eine statistisch signifikante Abweichung der CGRP- und Substanz P-positiven Bündel konnte dagegen nicht festgestellt werden.
In der laborchemischen Untersuchung war ein Zusammenhang zwischen den bestimmten Vitamin-Spiegeln und der kumulativen Levodopa-Dosis sowie zwischen den Vitaminen und der IENF-Dichte lediglich bei dem Vitamin B6 nachweisbar.
Zusammengefasst erscheint eine Beteiligung des peripheren Nervensystems beim idiopathischen Parkinson als wahrscheinlich, wohingegen bei den atypischen Parkinson-Syndromen vor allem von einer zentralen Genese ausgegangen werden kann. Basierend auf den Ergebnissen der Suralisneurographie und der Bestimmung der myelinisierten Bündel erscheint eine krankheitsbedingte Large-fiber-Beeinträchtigung beim M.Parkinson möglich. Die nachgewiesene längenabhängige Small-fiber-Reduktion bei IPD-Patienten wird vermutlich durch eine axonale Transportstörung verursacht. Einen krankheitsbedingten Erklärungsansatz für die längenunabhängige Reduktion der CGRP-positiven und der Substanz P-positiven IENF-Dichte bei IPD-Patienten liefert der Nachweis von neurotoxischem α-Synuclein in den sensiblen Spinatganglien mit einem daraus resultierenden Untergang von sensorischen Nervenfasern. Aufgrund der geringen Anzahl an Parkinson-Patienten mit sensiblen Symptomen und dem fehlenden Nachweis eines statistisch signifikanten Unterschiedes in der QST liegt der Verdacht nahe, dass die ermittelte intraepidermale Nervenfaserreduktion der IPD-Patienten nicht stark genug ausgeprägt ist, um eine signifikante Abweichung der QST-Ergebnisse zu verursachen. Weiterhin konnte kein Zusammenhang zwischen der kumulativen Levodopa-Menge, den Vitaminen B12, Methylmalonsäure sowie Homocystein und dem Auftreten einer Nervenfaserverminderung nachgewiesen werden, was gegen eine iatrogene Beteiligung des peripheren Nervensystems als Nebenwirkung der Levodopa-Therapie spricht. Das idiopathische Parkinson-Syndrom geht mit einer Reduktion der kleinen Nervenfasern einher, welche vermutlich auf die Grunderkrankung selbst zurückzuführen ist. Die Untersuchung der Haut erscheint somit vielversprechend für die Erforschung der Pathogenese und für die Differentialdiagnostik des M. Parkinson.
This review outlines the most frequently used rodent stroke models and discusses their strengths and shortcomings. Mimicking all aspects of human stroke in one animal model is not feasible because ischemic stroke in humans is a heterogeneous disorder with a complex pathophysiology. The transient or permanent middle cerebral artery occlusion (MCAo) model is one of the models that most closely simulate human ischemic stroke. Furthermore, this model is characterized by reliable and well-reproducible infarcts. Therefore, the MCAo model has been involved in the majority of studies that address pathophysiological processes or neuroprotective agents. Another model uses thromboembolic clots and thus is more convenient for investigating thrombolytic agents and pathophysiological processes after thrombolysis. However, for many reasons, preclinical stroke research has a low translational success rate. One factor might be the choice of stroke model. Whereas the therapeutic responsiveness of permanent focal stroke in humans declines significantly within 3 hours after stroke onset, the therapeutic window in animal models with prompt reperfusion is up to 12 hours, resulting in a much longer action time of the investigated agent. Another major problem of animal stroke models is that studies are mostly conducted in young animals without any comorbidity. These models differ from human stroke, which particularly affects elderly people who have various cerebrovascular risk factors. Choosing the most appropriate stroke model and optimizing the study design of preclinical trials might increase the translational potential of animal stroke models.
Cortex-basal ganglia circuits participate in motor timing and temporal perception, and are important for the dynamic configuration of sensorimotor networks in response to exogenous demands. In Parkinson's disease (PD) patients, rhythmic auditory stimulation (RAS) induces motor performance benefits. Hitherto, little is known concerning contributions of the basal ganglia to sensory facilitation and cortical responses to RAS in PD. Therefore, we conducted an EEG study in 12 PD patients before and after surgery for subthalamic nucleus deep brain stimulation (STN-DBS) and in 12 age-matched controls. Here we investigated the effects of levodopa and STN-DBS on resting-state EEG and on the cortical-response profile to slow and fast RAS in a passive-listening paradigm focusing on beta-band oscillations, which are important for auditory–motor coupling. The beta-modulation profile to RAS in healthy participants was characterized by local peaks preceding and following auditory stimuli. In PD patients RAS failed to induce pre-stimulus beta increases. The absence of pre-stimulus beta-band modulation may contribute to impaired rhythm perception in PD. Moreover, post-stimulus beta-band responses were highly abnormal during fast RAS in PD patients. Treatment with levodopa and STN-DBS reinstated a post-stimulus beta-modulation profile similar to controls, while STN-DBS reduced beta-band power in the resting-state. The treatment-sensitivity of beta oscillations suggests that STN-DBS may specifically improve timekeeping functions of cortical beta oscillations during fast auditory pacing.
Rationale
While brain serotonin (5-HT) function is implicated in gene-by-environment interaction (GxE) impacting the vulnerability-resilience continuum in neuropsychiatric disorders, it remains elusive how the interplay of altered 5-HT synthesis and environmental stressors is linked to failure in emotion regulation.
Objective
Here, we investigated the effect of constitutively impaired 5-HT synthesis on behavioral and neuroendocrine responses to unpredictable chronic mild stress (CMS) using a mouse model of brain 5-HT deficiency resulting from targeted inactivation of the tryptophan hydroxylase-2 (Tph2) gene.
Results
Locomotor activity and anxiety- and depression-like behavior as well as conditioned fear responses were differentially affected by Tph2 genotype, sex, and CMS. Tph2 null mutants (Tph2\(^{−/−}\)) displayed increased general metabolism, marginally reduced anxiety- and depression-like behavior but strikingly increased conditioned fear responses. Behavioral modifications were associated with sex-specific hypothalamic-pituitary-adrenocortical (HPA) system alterations as indicated by plasma corticosterone and fecal corticosterone metabolite concentrations. Tph2\(^{−/−}\) males displayed increased impulsivity and high aggressiveness. Tph2\(^{−/−}\) females displayed greater emotional reactivity to aversive conditions as reflected by changes in behaviors at baseline including increased freezing and decreased locomotion in novel environments. However, both Tph2\(^{−/−}\) male and female mice were resilient to CMS-induced hyperlocomotion, while CMS intensified conditioned fear responses in a GxE-dependent manner.
Conclusions
Our results indicate that 5-HT mediates behavioral responses to environmental adversity by facilitating the encoding of stress effects leading to increased vulnerability for negative emotionality.
Dimethyl fumarate (DMF) is approved for disease-modifying treatment of patients with relapsing-remitting multiple sclerosis. Animal experiments suggested that part of its therapeutic effect is due to a reduction of T-cell infiltration of the central nervous system (CNS) by uncertain mechanisms. Here we evaluated whether DMF and its primary metabolite monomethyl fumarate (MMF) modulate pro-inflammatory intracellular signaling and T-cell adhesiveness of nonimmortalized single donor human brain microvascular endothelial cells at low passages. Neither DMF nor MMF at concentrations of 10 or 50 \(\mu\)M blocked the IL-1\(\beta\)-induced nuclear translocation of NF-\(\kappa\)B/p65, whereas the higher concentration of DMF inhibited the nuclear entry of p65 in human umbilical vein endothelium cultured in parallel. DMF and MMF also did not alter the IL-1\(\beta\)-stimulated activation of p38 MAPK in brain endothelium. Furthermore, neither DMF nor MMF reduced the basal or IL-1\(\beta\)-inducible expression of ICAM-1. In accordance, both fumaric acid esters did not reduce the adhesion of activated Jurkat T cells to brain endothelium under basal or inflammatory conditions. Therefore, brain endothelial cells probably do not directly mediate a potential blocking effect of fumaric acid esters on the inflammatory infiltration of the CNS by T cells.