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Die Axone im peripheren Nerven unterliegen während elektrischer Erregung kontinuierlichen dynamischen Änderungen ihrer Membraneigenschaften. Auf ein Aktionspotential folgt zunächst die absolute und die relative Refraktärperiode, dann eine Periode der Übererregbarkeit („superexcitability“) und schliesslich die Zeit der späten Untererregbarkeit („delayed subexcitability“). Stimuliert man unmyelinisierte Nervenfasern über einen längeren Zeitraum, so kommt es zu einer kontinuierlichen Erhöhung der Reizschwelle und damit einhergehend zu einer Zunahme der Latenz (=“activity dependent slowing“). Dabei bestehen Unterschiede zwischen den einzelnen funktionellen Faserklassen. In dieser Arbeit konnte erstmals bei Ableitung von C-Fasern in C57BL/6 Mäusen in vitro gezeigt werden, dass hitzeunempfindliche CM- und CMC-Fasern während elektrischer Stimulation eine geringere Latenzzunahme erfuhren als hitzesensible CMH- und CMHC-Fasern, auch in der Fasererholung bestanden Unterschiede zwischen beiden Gruppen. Dass in diesem Porozess Ih–Kanäle die Latenzzunahme v.a. bei den hitzeunempfindlichen Fasern limitieren, konnte in Experimenten mit den Ih-Kanal-Blockern CsCl (5mM) und ZD 7288 (1-50µM) gezeigt werden. In Ableitungen von C-Fasern in Mäusen mit Inaktivierung des Gens von Nav1.8 kam es vor allem bei den hitzeempfindlichen Fasern häufiger zu Leitungsblocks, die Latenzänderungen waren geringer als bei den Wildtyp-Tieren. Ströme durch diesen Kanal scheinen einerseits für die Leitungssicherheit der Fasern eine Rolle zu spielen, andererseits scheinen sie auch über einen erhöhten Natriumeinstrom während des Aktionspotentials und damit einer stärkeren Aktivierung der Na+/K+-ATPase die Dauer der Refraktärperiode zu beeinflussen. Beide Mechanismen beeinflussen somit die Reizschwelle und damit die Erregbarkeit einer Faser. Sowohl die Kinetik von Ih als auch die von Nav1.8 wird durch Entzündungsmediatoren beeinflusst, damit werden sie zu interessanten Kandidaten bei der Sensibilisierung von Fasern im Rahmen von inflammatorischen und neuropathischen Schmerzen.
Der Vergleich der Verfahren Karotisstenting und Karotis-TEA an der Universitätsklinik Würzburg zeigt, dass bei richtiger Indikationsstellung sowie ausreichender Erfahrung der Neuroradiologen, CAS eine ernstzunehmende Alternative zu CEA darstellt. Besonderes Augenmerk lag dabei auf periprozeduale Komplikationen sowie Langzeitergebnisse bezüglich Tod,Insult und Restenose.
The differentiation of human induced pluripotent stem cells (hiPSCs) into specific cell types for disease modeling and restorative therapies is a key research agenda and offers the possibility to obtain patient-specific cells of interest for a wide range of diseases. Basal forebrain cholinergic neurons (BFCNs) play a particular role in the pathophysiology of Alzheimer’s dementia and isolated dystonias. In this work, various directed differentiation protocols based on monolayer neural induction were tested for their effectiveness in promoting a ventral telencephalic phenotype and generating BFCN. Ventralizing factors [i.e., purmorphamine and Sonic hedgehog (SHH)] were applied at different time points, time intervals, and concentrations. In addition, caudal identity was prevented by the use of a small molecule XAV-939 that inhibits the Wnt-pathway. After patterning, gene expression profiles were analyzed by quantitative PCR (qPCR). Rostro-ventral patterning is most effective when initiated simultaneously with neural induction. The most promising combination of patterning factors was 0.5 μM of purmorphamine and 1 μM of XAV-939, which induces the highest expression of transcription factors specific for the medial ganglionic eminence, the source of GABAergic inter- and cholinergic neurons in the telencephalon. Upon maturation of cells, the immune phenotype, as well as electrophysiological properties were investigated showing the presence of marker proteins specific for BFCN (choline acetyltransferase, ISL1, p75, and NKX2.1) and GABAergic neurons. Moreover, a considerable fraction of measured cells displayed mature electrophysiological properties. Synaptic boutons containing the vesicular acetylcholine transporter (VACHT) could be observed in the vicinity of the cells. This work will help to generate basal forebrain interneurons from hiPSCs, providing a promising platform for modeling neurological diseases, such as Alzheimer’s disease or Dystonia.
Now that mechanical thrombectomy has substantially improved outcomes after large-vessel occlusion stroke in up to every second patient, futile reperfusion wherein successful recanalization is not followed by a favorable outcome is moving into focus. Unfortunately, blood-based biomarkers, which identify critical stages of hemodynamically compromised yet reperfused tissue, are lacking. We recently reported that hypoxia induces the expression of endoglin, a TGF-β co-receptor, in human brain endothelium in vitro. Subsequent reoxygenation resulted in shedding. Our cell model suggests that soluble endoglin compromises the brain endothelial barrier function. To evaluate soluble endoglin as a potential biomarker of reperfusion (-injury) we analyzed its concentration in 148 blood samples of patients with acute stroke due to large-vessel occlusion. In line with our in vitro data, systemic soluble endoglin concentrations were significantly higher in patients with successful recanalization, whereas hypoxia alone did not induce local endoglin shedding, as analyzed by intra-arterial samples from hypoxic vasculature. In patients with reperfusion, higher concentrations of soluble endoglin additionally indicated larger infarct volumes at admission. In summary, we give translational evidence that the sequence of hypoxia and subsequent reoxygenation triggers the release of vasoactive soluble endoglin in large-vessel occlusion stroke and can serve as a biomarker for severe ischemia with ensuing recanalization/reperfusion.
Background If detected in time, delayed cerebral vasospasm after aneurysmal subarachnoid hemorrhage (SAH) may be treated by balloon angioplasty or chemical vasospasmolysis in order to enhance cerebral blood flow (CBF) and protect the brain from ischemic damage. This study was conceived to compare the diagnostic accuracy of detailed neurological examination, Transcranial Doppler Sonography (TCD), and Perfusion-CT (PCT) to detect angiographic vasospasm. Methods The sensitivity, specificity, positive and negative predictive values of delayed ischemic neurological deterioration (DIND), pathological findings on PCT- maps, and accelerations of the mean flow velocity (MVF) were calculated. Results The accuracy of DIND to predict angiographic vasospasm was 0.88. An acceleration of MFV in TCD (>140 cm/s) had an accuracy of 0.64, positive PCT-findings of 0.69 with a higher sensitivity, and negative predictive value than TCD. Interpretation Neurological assessment at close intervals is the most sensitive and specific parameter for cerebral vasospasm. PCT has a higher accuracy, sensitivity and negative predictive value than TCD. If detailed neurological evaluation is possible, it should be the leading parameter in the management and treatment decisions. If patients are not amenable to detailed neurological examination, PCT at regular intervals is a helpful tool to diagnose secondary vasospasm after aneurysmal SAH.
The clinical and preclinical research of ischemic strokes (IS) is becoming increasingly comprehensive, especially with the emerging evidence of complex thrombotic and inflammatory interactions. Within these, the blood brain barrier (BBB) plays an important role in regulating the cellular interactions at the vascular interface and is therefore the object of many IS-related questions. Consequently, valid, economic and responsible methods to define BBB integrity are necessary. Therefore, we compared the three ex-vivo setups albumin Western blot (WB), IgG WB and albumin intensity measurement (AIM) with regard to validity as well as temporal and economic efficacy. While the informative value of the three methods correlated significantly, the efficacy of the IgG WB dominated.
Ureaplasma species (spp.) are considered commensals of the adult genitourinary tract, but have been associated with chorioamnionitis, preterm birth, and invasive infections in neonates, including meningitis. Data on mechanisms involved in Ureaplasma-driven neuroinflammation are scarce. The present study addressed brain inflammatory responses in preterm lambs exposed to Ureaplasma parvum (UP) in utero. 7 days after intra-amniotic injection of UP (n = 10) or saline (n = 11), lambs were surgically delivered at gestational day 128–129. Expression of inflammatory markers was assessed in different brain regions using qRT-PCR and in cerebrospinal fluid (CSF) by multiplex immunoassay. CSF was analyzed for UP presence using ureB-based real-time PCR, and MRI scans documented cerebral white matter area and cortical folding. Cerebral tissue levels of atypical chemokine receptor (ACKR) 3, caspases 1-like, 2, 7, and C–X–C chemokine receptor (CXCR) 4 mRNA, as well as CSF interleukin-8 protein concentrations were significantly increased in UP-exposed lambs. UP presence in CSF was confirmed in one animal. Cortical folding and white matter area did not differ among groups. The present study confirms a role of caspases and the transmembrane receptors ACKR3 and CXCR4 in Ureaplasma-driven neuroinflammation. Enhanced caspase 1-like, 2, and 7 expression may reflect cell death. Increased ACKR3 and CXCR4 expression has been associated with inflammatory central nervous system (CNS) diseases and impaired blood–brain barrier function. According to these data and previous in vitro findings from our group, we speculate that Ureaplasma-induced caspase and receptor responses affect CNS barrier properties and thus facilitate neuroinflammation.
Ureaplasma species are common colonizers of the adult genitourinary tract and often considered as low-virulence commensals. Intraamniotic Ureaplasma infections, however, facilitate chorioamnionitis and preterm birth, and cases of Ureaplasma-induced neonatal sepsis, pneumonia, and meningitis raise a growing awareness of their clinical relevance. In vitro studies are scarce but demonstrate distinct Ureaplasma-driven impacts on immune mechanisms. The current study addressed cytokine and chemokine responses upon exposure of native or lipopolysaccharide (LPS) co-stimulated human brain microvascular endothelial cells (HBMEC) to Ureaplasma urealyticum or U. parvum, using qRT-PCR, RNA sequencing, multi-analyte immunoassay, and flow cytometry. Ureaplasma exposure in native HBMEC reduced monocyte chemoattractant protein (MCP)-3 mRNA expression (p < 0.01, vs. broth). In co-stimulated HBMEC, Ureaplasma spp. attenuated LPS-evoked mRNA responses for C-X-C chemokine ligand 5, MCP-1, and MCP-3 (p < 0.05, vs. LPS) and mitigated LPS-driven interleukin (IL)-1α protein secretion, as well as IL-8 mRNA and protein responses (p < 0.05). Furthermore, Ureaplasma isolates increased C-X-C chemokine receptor 4 mRNA levels in native and LPS co-stimulated HBMEC (p < 0.05). The presented results may imply immunomodulatory capacities of Ureaplasma spp. which may ultimately promote chronic colonization and long-term neuroinflammation.
Mikrogliazellen fungieren als Makrophagen im ZNS, wo sie verschiedene Abwehrfunktionen gegen Mikroorganismen übernehmen, Zellreste beseitigen und eine wichtige Rolle bei Autoimmunerkrankungen des ZNS spielen. Mikrogliazellen exprimieren unter anderem eine NO-Synthase, die durch Zytokine induzierbar ist. Da NO für Neurone und Oligodendrozyten toxisch sein kann, waren wir daran interessiert, Substanzen zu identifizieren, die eine hemmende Wirkung auf die zytokin-induzierbare NO-Synthase in Makrophagen und Mikrogliazellen haben. Unter den getesteten Zytokinen, Wachstumsfaktoren, Neuropeptiden, Chemokinen und Tyrosinkinase-Hemmern war lediglich der Tyrosinkinaseinhibitor Methyl-2,5-Dihydroxycinnamat als NO-Synthase-Hemmstoff erfolgreich. Da die NO-Produktion eine Rolle in der Pathogenese der Experimentellen Autoimmunen Enzephalomyelitis (EAE) und der Experimentellen Autoimmunen Neuritis (EAN) spielt, war auch die Möglichkeit eines therapeutischen Einsatzes des NO-Synthase-Inhibitors von Interesse. Dieser scheint jedoch im Falle von Methyl-2,5-Dihydroxycinnamat aufgrund seiner Toxizität in höherer Konzentration und des daraus resultierenden engen Therapeutischen Dosisfensters sehr eingeschränkt.