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Veränderung der Ranvier’schen Schnürringarchitektur bei Patienten mit diabetischer Neuropathie
(2021)
In der Krankheitsentstehung der diabetischen Neuropathie wird die paranodale Demyelinisierung als ein möglicher Pathomechanismus diskutiert, wobei Studien mit Gewebeproben von Patienten aufgrund der Invasivität limitiert sind. In der vorliegenden Studie wurden periphere Nervenfasern in Hautbiopsien von Patienten mit diabetischer Neuropathie und in Patienten mit Diabetes mellitus ohne Neuropathie untersucht. Ziel war es, nodale und paranodale Veränderungen, wie eine Dispersion der paranodalen Proteine Caspr und Neurofascin oder der nodalen Na-Kanäle, zu detektieren und die Proben auf verlängerte Ranvier`sche Schnürringe zu untersuchen.
Es wurde die Hypothese überprüft, dass paranodale Demyelinisierungen bei Patienten mit diabetischer Neuropathie in Hautbiopsien, als minimal-invasive Methode, nachweisbar sind. Hautproben von Patienten mit Diabetes mellitus ohne Neuropathie sollten zudem in einem frühen Krankheitsstadium untersucht werden.
Für die Untersuchung konnten 35 Patienten mit einer diabetischen Neuropathie, 17 Patienten mit Diabetes mellitus und 31 Kontrollen eingeschlossen werden. Immunfluoreszenzfärbungen mit Antikörpern gegen Caspr, Neurofascin und Natrium-Kanälen wurden zur Analyse der Ranvier`schen Schnürringarchitektur durchgeführt und ausgewertet.
Eine erhöhte Anzahl an verlängerten Schnürringen, als Zeichen einer segmentalen Demyelinisierung, konnte in den Patienten mit diabetischer Neuropathie aber auch in Patienten mit Diabetes mellitus nachgewiesen werden. Weiterhin waren vermehrt Veränderungen der paranodalen Proteine, wie eine Dispersion von Caspr und Neurofascin in den Proben des Fingers der Patienten mit diabetischer Neuropathie sowie eine Dispersion von Neurofascin im Unterschenkel in beiden Patientengruppen nachweisbar. Interessanterweise waren einzelne Veränderungen auch in den gesunden Kontrollen auffindbar.
Veränderungen der Schnürringarchitektur lassen sich mithilfe der Hautbiopsie nachweisen und quantifizieren. Nodale und paranodale Veränderungen weisen auf demyelinisierende Prozesse in Patienten mit diabetischer Neuropathie hin und finden sich auch bereits in einem frühen Krankheitsstadium.
Die Blut-Nerven-Schranke stellt eine Barriere zwischen den Axonen und dem Gewebe, das sie umgibt, dar. Durch verschiedene Mechanismen wird die intraneurale Homöostase aufrecht erhalten, welche für die Funktion der Axone essentiell ist. Auf der einen Seite stellt die Blut-Nerven-Schranke einen Schutzmechanismus für Nerven dar. Auf der anderen Seite erschwert sie die Applikationen von Pharmaka, z.B. Analgetika, sodass bis dato Lokalanästhetika die einzige Substanzklasse darstellen, welche zur gezielten örtlichen, analgetischen Therapie in der breiten Verwendung ist. Das Netzwerk der Tight junctions im Perineurium ist eine Schlüsselkomponente für die Funktion der Blut-Nerven-Schranke. Es konnte experimentell gezeigt werden, dass durch pharmakologische Interaktion mit den Tight Junctions eine Schrankenöffnung erzielt werden kann. Dieser Effekt wurde durch unsere Arbeitsgruppe nachgewiesen für das von der N-terminalen Schleife des Claudin-1 abgeleitete Peptid C1C2, hypertone Substanzen, wie HTS und den Gewebeplasminogenaktivator tPA. Durch Anwendung solcher Wirkstoffvermittler könnte das Axon für andere Substanzklassen erreichbar werden. Die Fragestellung dieser Arbeit war, ob sich durch die lokale Anwendung dieser Pharmaka am N. ischiadicus von Wistar Ratten toxische Effekte ergeben. Hierzu wurden immunhistochemische Färbungen mit einem Anti-CD68- Antikörper zur Darstellung von endoneuralen Makrophagen als Zeichen einer lokalen Entzündungsreaktion verwendet. Weiterhin wurden die Nerven mit Hilfe histomorphometrischer Analysen auf morphologische Veränderungen hin untersucht. Keine der untersuchten Substanzen bewirkte eine Zunahme von endoneuralen Makrophagen im Vergleich zur scheinbehandelten Kontrollgruppe. Die Positivkontrolle eines N. ischiadicus nach chronischer Konstriktionsläsion (CCI) zeigte hingegen eine massive Vermehrung endoneuraler Makrophagen. Bei der morphometrischen Analyse zeigte sich nur bei der mit tPA behandelten Gruppe eine Abnahme der g-Ratio, welche das Verhältnis von Myelinschicht zu Faserdurchmesser wiederspiegelt. Die anderen Teilaspekte der Untersuchung blieben unauffällig. Aus dieser Arbeit kann geschlossen werden, dass sich mit den verwendeten Untersuchungsmethoden für keine der untersuchten Substanzen eine lokal toxische Wirkung nachweisen lässt. Um die Aussagekraft bezüglich der Anwendungssicherheit weiter zu erhöhen, wären im weiteren Verlauf Versuchsreihen mit Blick auf mögliche Langzeitwirkungen und etwaige systemtoxische Wirkungen von besonderer Bedeutung
Polyneuropathien sind eine ätiologisch heterogene Erkrankung des peripheren Nervensystems. In bis zu 30% der Fälle ist eine Zuordnung zu einem bestimmten PNP Subtyp auch nach aufwändiger und zum Teil invasiver Diagnostik nicht möglich. Bislang fehlt ein diagnostischer Biomarker bei PNP, der z.B. bei der Unterscheidung zwischen einzelnen diagnostischen Subgruppen oder entzündlichen und nicht-entzündlichen Erkrankungsformen helfen könnte. In einer prospektiven Studie mit insgesamt 97 Patienten mit Neuropathien verschiedenster Ätiologie und 17 gesunden Kontrollpersonen erstellten wir Genexpressionsprofile von inflammatorischen Markern und Markern der Regeneration peripherer Nerven in Haut- und N. suralis-Biopsaten. Es wurden Inflammationsmarker (TAC1, CRMP2, AIF1, IL-6) und Marker, die in die Regeneration peripherer Nerven involviert sind (SCD, Netrin-1, DCC, UNC5H2, NEO1, Netrin-G1, Netrin-G2), mittels qRT-PCR untersucht. Alle Patienten erhielten eine N. suralis-Biopsie und/oder eine Hautbiopsie von Ober- beziehungsweise Unterschenkel. Weder in den Haut- noch in den N. suralis-Biopsaten konnten Unterschiede in der Genexpression dieser Marker zwischen einzelnen diagnostischen Subgruppen gefunden werden. Der Inflammationsmarker AIF1 war jedoch in Patienten-Hautproben sowohl proximal als auch distal höher exprimiert als bei gesunden Kontrollpersonen (p < 0,05 bzw. p < 0,01). Zudem fand sich in den Hautproben von PNP-Patienten eine deutlich reduzierte Genexpression von Regenerationsmarkern aus der Netrin-Familie verglichen mit den Hautproben gesunder Probanden (Netrin-1, DCC, UNC5H2, NEO1 sowie Netrin-G1 und G2; p < 0,05 bis p < 0,001). Ferner wies Netrin-1 in distalen Hautproben bei Patienten mit einer entzündlichen PNP eine niedrigere Genexpression auf, als bei Patienten mit einer nicht-entzündlichen Erkrankungsform (p < 0,05). Die Genexpression von NEO1 in distalen Hautproben war bei schmerzloser PNP und gesunden Kontrollpersonen höher als bei schmerzhafter PNP (p < 0,05). Sowohl eine Erhöhung bestimmter Inflammationsmarker als auch eine Verminderung von Regenerationsmarkern peripherer Nerven können bei der Pathophysiologie von Polyneuropathien involviert sein. Insbesondere Mitglieder der Netrin-Familie scheinen eine komplexe Rolle für das Axonwachstum, jedoch auch für entzündliche Prozesse zu spielen.
Polyneuropathien (PNP) können zu einer Reorganisation der nodalen und paranodalen Membranproteine mit in der Folge fehlerhafter Axon-Schwann-Zell-Interaktionen führen. Im Rahmen der Basisdiagnostik einer Polyneuropathie haben sich Hautbiopsien als weniger invasive Ergänzung zur Suralisbiopsie mit einem geringen Nebenwirkungsrisiko entwickelt. Die Morphologie dermaler Nervenfasern lässt sich mittels Immunohistochemie in der Haut gezielt untersuchen. In der vorliegenden Studie wurde die Hypothese überprüft, ob pathologisch auffällige Ranvier-Schnürringe Hinweise auf Unterschiede bei PNP-Subgruppen und Schädigungsmuster liefern. Daneben wurden die Hypothesen überprüft, ob Entzündungszellen an myelinisierten Nervenfasern kolokalisiert nachweisbar sind und ob Hautbiopsien einen zusätzlichen Nutzen zur PNP-Basisdiagnostik liefern. Von 92 Patienten wurden Hautbiopsien von Finger, Ober-und Unterschenkel wurden entnommen, daraus gewonnene myelinisierte Nervenfasern der Haut wurden mittels immunohistochemischer Antikörper-Doppelfärbungen analysiert. Neuropathische Schädigungsformen vom axonalen und demyelinisierenden Typ zeigten keine signifikante Korrelation mit dem Auftreten von verlängerten Ranvier-Schnürringen und der Dispersion charakteristischer paranodaler und nodaler Membranproteine (Neurofascin, Caspr, Pan-Natrium-Kanäle). Kolokalisierte Entzündungszellen an myelinisierten Nervenfasern bei entzündlichen PNP ließen sich nicht nachweisen. PNP-Subgruppen zeigten keine signifikanten Unterschiede in Hinblick auf eine pathologische nodale oder paranodale Organisation. Der Zusatznutzen von Hautbiopsien in der PNP-Basisdiagnostik kann in Bezug auf die vorliegende Arbeit nur eingeschränkt bestätigt werden. Da Fingerbiopsien im Vergleich zu Proben aus Ober- und Unterschenkel eine signifikant höhere Dichte myelinisierter Nervenbündel pro Fläche Dermis aufweisen, wäre es durchaus denkbar, zukünftig primär Fingerbiopsien zu entnehmen um diese auf etwaige pathologische Veränderungen infolge neuropathischer Erkrankungen zu untersuchen. Anamnese, Basisdiagnostik und klinischer Befund erbringen nach wie vor den wichtigsten Beitrag zur PNP-Diagnostik.
Fabry disease (FD) is an X-linked lysosomal storage disorder with intracellular accumulation of globotriaosylceramide (Gb3) due to α-galactosidase A deficiency. We studied α-galactosidase A knockout mice (GLA KO) as a model for sensory disturbance and pain in FD.
Pain associated behavior of young (3 months) and old (≥18 months) GLA KO mice and wildtype (WT) littermates in an inflammatory and a neuropathic pain model was investigated. Furthermore, affective and cognitive behavior was assessed in the naïve state and in an inflammatory pain model. Gene and protein expression of pain associated ion channels and Gb3 accumulation in dorsal root ganglion (DRG) neurons was determined. We also performed patch clamp analysis on cultivated DRG neurons and human embryonic kidney 293 (HEK) cells expressing voltage-gated-sodium channel 1.7 (Nav1.7) as an in vitro model of FD. Intracellular Gb3 deposits were modulated using shRNA silencing of α-galactosidase A.
After intraplantar injection of complete Freund`s adjuvant (CFA) and chronic constriction injury (CCI) of the right sciatic nerve, old GLA KO mice did not develop heat and mechanical hypersensitivity in contrast to young GLA KO and old WT mice. Additionally, we found no relevant differences between genotypes and age-groups in affective and cognitive behavior in the naïve state and after CFA injection. Gene and protein expression analysis provided no explanation for the observed sensory impairment. However, cultured DRG neurons of old GLA KO mice revealed a marked decrease of sodium and Ih-currents compared to young GLA KO and old WT mice. DRG neurons of old GLA KO mice displayed substantial intracellular accumulation of Gb3 compared to young GLA KO and old WT mice. Similar to cultured neurons, sodium currents were also decreased in HEK cells treated with shRNA and consecutively increased intracellular Gb3 deposits compared to the control condition, but could be rescued by treatment with agalsidase-alpha.
Our study unveils that, similar to patients with FD, GLA KO mice display age-dependent sensory deficits. However, contrary to patients, GLA KO mice are also protected from hypersensitivity induced by inflammation and nerve lesion due to Gb3-dependent and reversible reduction of neuronal sodium- and Ih-currents. Our data provide evidence for direct Gb3-dependent ion channel impairment in sensory DRG neurons as a potential contributor to sensory dysfunction and pain in FD.
The role of miR-21 in the pathophysiology of neuropathic pain using the model of B7-H1 knockout mice
(2017)
The impact of microRNA (miRNA) as key players in the regulation of immune and neuronal gene expression and their role as master switches in the pathophysiology of neuropathic pain is increasingly recognized. miR-21 is a promising candidate that could be linked to the immune and the nociceptive system. To further investigate the pathophysiological role of miR-21 in neuropathic pain, we assesed mice deficient of B7 homolog 1 (B7-H1 ko), a protein with suppressive effect on inflammatory responses.
B7-H1 ko mice and wildtype littermates (WT) of three different age-groups, young (8 weeks), middle-aged (6 months), and old (12 months) received a spared nerve injury (SNI). Thermal withdrawal latencies and mechanical withdrawal thresholds were determined. Further, we investigated anxiety-, depression-like and cognitive behavior. Quantitative real time PCR was used to determine miR-21 relative expression in peripheral nerves, dorsal root ganglia and white blood cells (WBC) at distinct time points after SNI.
Naïve B7-H1 ko mice showed mechanical hyposensitivity with increasing age. Young and middle-aged B7-H1 ko mice displayed lower mechanical withdrawal thresholds compared to WT mice. From day three after SNI both genotypes developed mechanical and heat hypersensitivity, without intergroup differences. As supported by the results of three behavioral tests, no relevant differences were found for anxiety-like behavior after SNI in B7-H1 ko and WT mice. Also, there was no indication of depression-like behavior after SNI or any effect of SNI on cognition in both genotypes. The injured nerves of B7-H1 ko and WT mice showed higher miR-21 expression and invasion of macrophages and T cells 7 days after SNI without intergroup differences. Perineurial miR-21 inhibitor injection reversed SNI-induced mechanical and heat hypersensitivity in old B7-H1 ko and WT mice.
This study reveals that reduced mechanical thresholds and heat withdrawal latencies are associated with miR-21 induction in the tibial and common peroneal nerve after SNI, which can be reversed by perineurial injection of a miR-21 inhibitor. Contrary to expectations, miR-21 expression levels were not higher in B7-H1 ko compared to WT mice. Thus, the B7-H1 ko mouse may be of minor importance for the study of miR-21 related pain. However, these results spot the contribution of miR-21 in the pathophysiology of neuropathic pain and emphasize the crucial role of miRNA in the regulation of neuronal and immune circuits that contribute to neuropathic pain.
Peripheral neuropathies can severely affect patients. Causes for the disease are diverse but can be classified into two main groups, acquired and hereditary. Examples for these two types are chronic inflammatory demyelinating polyradiculoneuropathy (CIDP) and Charcot-Marie-Tooth disease type 1A (CMT1A). CIDP has an estimated prevalence of about 1-9:100 000. In this pathogenetically hetereo- geneous patient group about 5-10% show auto-antibodies against the node of Ranvier and present with distinct symptoms. Treatment with rituximab - a monoclonal antibody that deletes CD20 + B cells - has been shown to be effective in a majority of auto-antibody as- sociated CIDP cases. This suggests that B cells and the produced auto-antibodies might be pathogenic. Previous studies delivered evidence that auto-antibodies alone can induce nerve damage. In this study, the aim was to investigate the pathomechanism of auto-antibodies in vivo and their exact origin: For the analysis of the pathogenicity of auto-antibodies, passive transfer experiments on Lewis rats were performed with whole IgG from a patient with anti-contactin-1 (CNTN1) IgG4 auto-antibodies. IgG was infused through an intrathe- cal catheter targeting the thoracic/lumbar region of the spine over a long-term, 3-week period. In a previous study of our group, the IgG from the same patient has been re- ported to have mild pathogenic effects when applied intraneurally into the sciatic nerve of Lewis rats. In this study however, binding of auto-antibodies to nerve roots could not be detected. Neither evaluation of electrophysiological properties after the injection period nor motor and sensory skills tested throughout the injection period showed differences when compared to animals infused with control IgG. This suggests that in the chronic intrathecal protocol anti-CNTN1 auto-antibodies did not have a pathogenic effect. In peripheral blood, four B cell subsets capable to produce antibodies were previously described: memory B cells, plasmablasts (PBs), B1 cells and CD20 + CD38 hi cells. For the identification of the B cell subsets that produce auto-antibodies, purification and sort protocols as well as an enzyme-linked immuno spot (ELISpot) assay for IgG and IgM were established successfully. Since unstimulated B cell subsets produced very small amounts of IgG and IgM, peripheral blood mononuclear cells (PBMCs) were stimulated with IL-2 and R848 for 72 h prior to sorting. While the memory B cell frequency decreased after stimulation, the frequency of CD20 + CD38 hi cells increased and the overall number of antibody-secreting cells was increased. When stimulating patient PBMCs for 10 days though, detection of anti-neurofascin-155 (NF155) auto-antibodies in supernatants by enzyme-linked immunosorbent assay (ELISA) was possible in two out of three patient samples. Even though cell sorting was feasible after 10 days of stimulation, detection of auto-antibodies could not be accomplished using antigen-specific ELISpot. Although the implementation of the cell sorting and purification protocol was successful, further adjustments of the antigen-specific ELISpot need to be performed. However, we could show that after 10 days of stimulation auto-antibody detection is possible by ELISA which helps to pre-screen if patient PBMC contain auto-reactive B cells. CMT1A has an estimated prevalence of 1:5000 and is caused by a duplication of the peripheral myelin protein 22 kDa (PMP22) gene. Patients suffer from distal weakness and muscle wasting leading even to wheelchair-dependency in some cases. Although different treatment options for CMT1A have been tested in previous clinical trials, none of them have been successful. In this study, the aim was to identify objective and reproducible outcome measures that assess the actual nerve damage in a large cohort of CMT1A patients by analyzing a series of parameters. Glabrous skin samples were collected from 48 CMT1A, 7 CIDP and 16 small fiber neuropathy patients and 45 healthy controls. 40-µm cryosections from the lateral part of the index finger were double-labeled using immunoflu- orescence to investigate cutaneous innervation. The disease severity which was assessed using the Charcot-Marie-Tooth Neuropathy Score version 2 (CMTNSv2) and ranged between mild to severe (3-27) correlated with age in CMT1A patients. Furthermore, the intraepidermal nerve fiber density (IENFD) was reduced in CMT1A patients in comparison to controls and correlated negatively with the disease severity. In controls however, the IENFD correlated inversely with age. Meissner corpuscle density tended to be reduced and correlated inversely with age in CMT1A patients. This was not observed in healthy controls though. Compared to controls, Merkel cell density was also reduced in CMT1A, while the fraction of denervated Merkel cell was increased and correlated with age. Further differences were revealed concerning the node of Ranvier. Paranodes were shortened and the fraction of long nodes was decreased in CMT1A patients compared to controls. These data suggest that the IENFD, the Meissner corpuscle and Merkel cell densities are possible candidates for outcome measures as they are associated with disease severity or age of patients. However, a reliable statement about the suitability as a marker for disease progression can not be made in this study since only six CMT1A patients agreed to give a follow-up biopsy two years later.
Fabry disease (FD), an X-linked lysosomal storage disorder, is caused by variants in the gene α-galactosidase A (GLA). As a consequence, the encoded homonymous enzyme GLA is not produced in sufficient amount or does not function properly. Subsequently, globotriaosylceradmide (Gb3), the target substrate of GLA, starts accumulating in several cell types, especially neurons and endothelial cells. FD patients suffer from multiorgan symptoms including cardiomyopathy, nephropathy, stroke, and acral burning pain. It is suggested that the impact of pathological Gb3 accumulation, inflammatory and hypoxic processes, and vasculopathy are contributing to the specific FD pain phenotype. Thus, we investigated the role of inflammation, hypoxia, and vasculopathy on molecular level in dorsal root ganglia (DRG) of the GLA knockout (KO) mouse model. Further, we investigated pain-like characteristics of GLA KO mice at baseline (BS), after capsaicin administration, and after repeated enzyme replacement therapy (ERT) administration for a period of 1.5 years. Acquired data showed disturbances in immune response markers represented by downregulated inflammation-associated genes and lower numbers of CD206+ macrophages in DRG of GLA KO mice. Hypoxic mechanisms were active in DRG of GLA KO mice reflected by increased gene expression of hypoxia- and DNA damage-associated targets, higher numbers of hypoxia-inducible factor 1α-positive (HIF1α+) and carbonic anhydrase 9-positive (CA9+) neurons in DRG of GLA KO mice, and DRG neuronal HIF1α cytosolic-nuclear translocation in GLA KO mice. Vascularization in DRG of GLA KO mice was reduced including lower numbers of blood vessel branches and reduced total blood vessel length. Pain-like behavior of the GLA KO mouse model revealed no mechanical hypersensitivity at BS but age-dependent heat hyposensitivity, which developed also age-matched wild type (WT) mice. Capsaicin administration under isoflurane anesthesia did not elicit the development of nocifensive behavior in GLA KO mice after mechanical or heat stimulation. Repeated ERT administration did not show a clear effect in GLA KO mice in terms of restored heat hyposensitivity to BS paw withdrawal latencies. In summary, we demonstrated the impact of disturbed immune response markers, active hypoxic mechanisms, and reduced vascularization on molecular FD pathophysiology.
Systemic and local mechanisms of small fiber pathology in female patients with fibromyalgia syndrome
(2023)
Fibromyalgia syndrome (FMS) is a largely heterogeneous chronic pain syndrome of unclear pathophysiology, which lacks objective diagnostics and specific treatment. An immune-related shift towards a pro-inflammatory profile is discussed at a systemic level. Small fiber pathology (SFP) and local participation of non-neuronal skin cells like keratinocytes in cutaneous nociception are potential peripheral contributors. Small RNAs, particularly microRNAs (miRs) and newly described tRNA fragments (tRFs) act as posttranscriptional key regulators of gene expression and may modulate systemic and peripheral cell pathways. On cellular level, the exact mechanisms of keratinocyte-intraepidermal nerve fiber (IENF) interaction in the skin are insufficiently understood.
Via small RNA sequencing and quantitative real-time PCR, we investigated miR and tRF signatures in whole blood cells and skin biopsy-derived keratinocytes of female FMS patients versus healthy controls. We applied gene target prediction analysis to uncover underlying cellular pathways affected by dysregulated small RNAs. Altered FMS small RNAs from blood were compared with their expression in disease controls, i.e. Parkinson`s patients and patients with major depression and chronic pain. Association of SFP with small RNAs was investigated via correlation with clinical parameter. To explore keratinocyte-nerve fiber interactions with high relevance for SFP and cutaneous nociception, we adapted a super-resolution array tomography (srAT) approach and expansion microscopy (ExM) for human skin samples. Further, we created a fully human 2D co-culture model of primary keratinocytes and induced pluripotent stem cell derived sensory neurons.
Blood miR deregulation indicated systemic modulation of immune processes exerted by CholinomiRs and by miRs targeting the FoxO signaling pathway. Short sized tRFs were associated with mRNA metabolism and splicing. This supports the hypothesis of an inflammatory/autoimmunity component in FMS. Expression of blood small RNAs in FMS were discriminative against disease controls, highlighting their potential as objective biomarker. Blood small RNAs were predominantly upregulated and correlations between miR and clinical parameter reflected rather pain in general than SFP.
In FMS keratinocytes, a downregulation of miRs and tRFs was evident. Pathways for adenosine monophosphate-activated protein kinase (AMPK), adherens junction, and focal adhesion were predicted to be affected by miRs, while tRFs may influence proliferation, migration, and cell growth. Similar to blood miRs, altered miRs in keratinocytes correlated mostly with widespread pain and pain severity parameter. TRFs were partially associated with more severe IENF loss. Small RNAs in FMS keratinocytes may modulate pathways that define how keratinocytes interact with each other and with IENF.
These interactions include nerve fiber ensheathment, a conserved epithelial mechanism, which we visualize in human epidermis and a fully human co-culture model. Additionally, we revealed plaques of connexin 43, a pore forming protein involved in intercellular communication, at keratinocyte- nerve fiber contact sites. Objective quantification of these morphological findings in FMS and other diseases with SFP may inherit diagnostic value similar to IENF density.
We provide evidence for distinct miR and tRF signatures in FMS with implications for systemic immune regulation and local cell-cell interaction pathways. In the periphery we explored novel keratinocyte-nerve fiber interactions relevant for SFP and cutaneous nociception.
The Stiff-person syndrome (SPS) is a rare autoimmune disease that is characterized by symptoms including stiffness in axial and limb muscles as well as painful spasms. Different variants of SPS are known ranging from moderate forms like the stiff-limb syndrome to the most severe form progressive encephalomyelitis with rigidity and myoclonus (PERM). SPS is elicited by autoantibodies that target different pre- or postsynaptic proteins. The focus of the present work is on autoantibodies against the glycine receptor (GlyR). At start of the present thesis, as main characteristic of the GlyR autoantibody pathology, receptor cross-linking followed by enhanced receptor internalization and degradation via the lysosomal pathway was described. If binding of autoantibodies modulates GlyR function and therefore contributes to the GlyR autoantibody pathology has not yet been investigated. Moreover, not all patients respond well to plasmapheresis or other treatments used in the clinic. Relapses with even higher autoantibody titers regularly occur.
In the present work, further insights into the disease pathology of GlyRα autoantibodies were achieved. We identified a common GlyRα1 autoantibody epitope located in the far N-terminus including amino acids A1-G34 which at least represent a part of the autoantibody epitope. This part of the receptor is easily accessible for autoantibodies due to its location at the outermost surface of the GlyRα1 extracellular domain. It was further investigated if the glycosylation status of the GlyR interferes with autoantibody binding. Using a GlyRα1 de-glycosylation mutant exhibited that patient autoantibodies are able to detect the de-glycosylated GlyRα1 variant as well. The direct modulation of the GlyR analyzed by electrophysiological recordings demonstrated functional alterations of the GlyR upon autoantibody binding. Whole cell patch clamp recordings revealed that autoantibodies decreased the glycine potency, shown by increased EC50 values. Furthermore, an influence on the desensitization behavior of the receptor was shown. The GlyR autoantibodies, however, had no impact on the binding affinity of glycine. These issues can be explained by the localization of the GlyR autoantibody epitope. The determined epitope has been exhibited to influence GlyR desensitization upon binding of allosteric modulators and differs from the orthosteric binding site for glycine, which is localized much deeper in the structure at the interface between two adjacent subunits. To neutralize GlyR autoantibodies, two different methods have been carried out. Transfected HEK293 cells expressing GlyRα1 and ELISA plates coated with the GlyRα1 extracellular domain were used to efficiently neutralize the autoantibodies. Finally, the successful passive transfer of GlyRα1 autoantibodies into zebrafish larvae and mice was shown. The autoantibodies detected their target in spinal cord and brain regions rich in GlyRs of zebrafish and mice. A passive transfer of human GlyRα autoantibodies to zebrafish larvae generated an impaired escape behavior in the animals compatible with the abnormal startle response in SPS or PERM patients.