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Reliable biomarkers that can be used for early diagnosis and tracking disease progression are the cornerstone of the development of disease-modifying treatments for Parkinson’s disease (PD). The German Society of Experimental and Clinical Neurotherapeutics (GESENT) has convened a Working Group to review the current status of proposed biomarkers of neurodegeneration according to the following criteria and to develop a consensus statement on biomarker candidates for evaluation of disease-modifying therapeutics in PD. The criteria proposed are that the biomarker should be linked to fundamental features of PD neuropathology and mechanisms underlying neurodegeneration in PD, should be correlated to disease progression assessed by clinical rating scales, should monitor the actual disease status, should be pre-clinically validated, and confirmed by at least two independent studies conducted by qualified investigators with the results published in peer-reviewed journals. To date, available data have not yet revealed one reliable biomarker to detect early neurodegeneration in PD and to detect and monitor effects of drug candidates on the disease process, but some promising biomarker candidates, such as antibodies against neuromelanin, pathological forms of α-synuclein, DJ-1, and patterns of gene expression, metabolomic and protein profiling exist. Almost all of the biomarker candidates were not investigated in relation to effects of treatment, validated in experimental models of PD and confirmed in independent studies.
Reliable biomarkers that can be used for early diagnosis and tracking disease progression are the cornerstone of the development of disease-modifying treatments for Parkinson’s disease (PD). The German Society of Experimental and Clinical Neurotherapeutics (GESENT) has convened a Working Group to review the current status of proposed biomarkers of neurodegeneration according to the following criteria and to develop a consensus statement on biomarker candidates for evaluation of disease-modifying therapeutics in PD. The criteria proposed are that the biomarker should be linked to fundamental features of PD neuropathology and mechanisms underlying neurodegeneration in PD, should be correlated to disease progression assessed by clinical rating scales, should monitor the actual disease status, should be pre-clinically validated, and confirmed by at least two independent studies conducted by qualified investigators with the results published in peer-reviewed journals. To date, available data have not yet revealed one reliable biomarker to detect early neurodegeneration in PD and to detect and monitor effects of drug candidates on the disease process, but some promising biomarker candidates, such as antibodies against neuromelanin, pathological forms of α-synuclein, DJ-1, and patterns of gene expression, metabolomic and protein profiling exist. Almost all of the biomarker candidates were not investigated in relation to effects of treatment, validated in experimental models of PD and confirmed in independent studies.
1. Zusammenfassung Lösliche humane TRAIL-Varianten (hTRAIL), die nur die “TNF homology domain” (THD) beinhalten, binden sowohl den TRAILR1 aus auch den TRAILR2, stimulieren jedoch nur den TRAILR1. Nach sekundärem Quervernetzen des Liganden wird dann aber auch der TRAILR2 effektiv aktiviert. Entsprechende murine TRAIL-Varianten (mTRAIL) dagegen zeigen nur eine schwache Rezeptorbindung und sind selbst nach sekundärem Quervernetzen nur wenig aktiv. Interessanterweise kann ein Fusionsprotein aus der THD von mTRAIL und der Trimerisierungsdomäne von Tenascin-C (TNC), das wie mTRAIL selbst auch als Trimer vorligt, effizient an TRAIL-Rezeptoren binden und nach sekundärem Quervernetzen den TRAILR2 gut stimulieren. Weiterhin kann eine mTRAIL-Variante, die neben der THD auch die Stammregion des Moleküls enthält, die die THD von der Transmembrandomäne trennt, nach sekundärem Quervernetzen Apoptose induzieren, jedoch nicht so effektiv wie das TNC-mTRAILFusionsprotein. Die spezifische Bioaktivität der humanen TRAIL-Varianten wird gleichfalls, wenn auch weniger stark, durch Fusion mit der Tenascin-C-Trimerisierungsdomäne gesteigert. Die Fixierung des N-Terminus der THD, die hier durch die TNCDomäne sonst jedoch durch die Stamm- oder Transmembrandomäne gewährleistet wird, könnte demnach für mTRAIL für eine gute Rezeptorbindung und effektive Apoptoseinduktion nötig sein. Dies deutet auf eine bisher nicht erkannte Rolle der Stammregion für die Aktivität dieser Liganden hin und bietet die Möglichkeit, rekombinante lösliche Liganden der TNF-Familie mit erhöhter Aktivität zu generieren. Die TRAIL-induzierte Apoptose kann für die Behandlung von Tumorzellen nützlich sein. Es wurde jedoch kürzlich gezeigt, dass TRAIL neben Apoptose auch proinflammatorische, d. h. potentiell tumorfördernde Signalwege, insbesondere in apoptoseresistenten Zellen induzieren kann. Im Folgenden sollte untersucht werden, inwiefern TRAIL solche Signalwege in Myelomzellen stimuliert. Oligomerisiertes TRAIL kann bei allen analysierten Zelllinien Caspasen aktivieren und Apoptose induzieren. Werden die Zelllinien mit dem pan-Caspaseinhibitor ZVAD behandelt, kann die Caspase- Aktivierung bei allen Zellen blockiert werden, die Apoptoseinduktion jedoch nur bei zwei Zelllinien. Im Gegensatz dazu schützt ZVAD drei andere Myelomzelllinien nur partiell vor der TRAIL-induzierten Apoptose. Dies zeigt, dass TRAIL in Myelomzellen auch caspaseunabhängigen Zelltod induzieren kann. TRAIL induziert in den Myelomzellen auch proinflammatorische Signalwege wie den NFкB-, den JNK-, den p38- und den p42/44-Signalweg. Die Stimulation des JNK- und des p38-Signalwegs erwies sich hierbei in zelltypspezifischer Weise caspaseabhängig, die Aktivierung des NFкB- und p42/44-Signalwegs immer als caspaseunabhängig. Zusammenfassend geht aus diesen Ergebnissen hervor, dass zur Behandlung des multiplen Myeloms, TRAIL in Kombination mit anti-inflammatorisch wirkenden Mitteln eingesetzt werden sollte, insbesondere um mögliche proinflammatorische Nebenwirkungen durch TRAIL zu minimieren.
Idiopathic Parkinson’s disease (PD) is characterized by a progredient degeneration of the brain, starting at deep subcortical areas such as the dorsal motor nucleus of the glossopharyngeal and vagal nerves (DM) (stage 1), followed by the coeruleus–subcoeruleus complex; (stage 2), the substantia nigra (SN) (stage 3), the anteromedial temporal mesocortex (MC) (stage 4), high-order sensory association areas and prefrontal fields (HC) (stage 5) and finally first-order sensory association areas, premotor areas, as well as primary sensory and motor field (FC) (stage 6). Autoimmunity might play a role in PD pathogenesis. Here we analyzed whether anti-brain autoantibodies differentially recognize different human brain areas and identified autoantigens that correlate with the above-described dissemination of PD pathology in the brain. Brain tissue was obtained from deceased individuals with no history of neurological or psychiatric disease and no neuropathological abnormalities. Tissue homogenates from different brain regions (DM, SN, MC, HC, FC) were subjected to SDS-PAGE and Western blot. Blots were incubated with plasma samples from 30 PD patients and 30 control subjects and stained with anti-IgG antibodies to detect anti-brain autoantibodies. Signals were quantified. Prominent autoantigens were identified by 2D-gel-coupled mass spectrometry sequencing. Anti-brain autoantibodies are frequent and occur both in healthy controls and individuals with PD. Glial fibrillary acidic protein (GFAP) was identified as a prominent autoantigen recognized in all plasma samples. GFAP immunoreactivity was highest in DM areas and lowest in FC areas with no significant differences in anti-GFAP autoantibody titers between healthy controls and individuals with PD. The anti-GFAP autoimmunoreactivity of different brain areas correlates with the dissemination of histopathological neurodegeneration in PD. We hypothesize that GFAP autoantibodies are physiological but might be involved as a cofactor in PD pathogenesis secondary to a leakage of the blood–brain barrier.
We conducted a genome-wide association study of essential tremor, a common movement disorder characterized mainly by a postural and kinetic tremor of the upper extremities. Twin and family history studies show a high heritability for essential tremor. The molecular genetic determinants of essential tremor are unknown. We included 2807 patients and 6441 controls of European descent in our two-stage genome-wide association study. The 59 most significantly disease-associated markers of the discovery stage were genotyped in the replication stage. After Bonferroni correction two markers, one (rs10937625) located in the serine/threonine kinase STK32B and one (rs17590046) in the transcriptional coactivator PPARGC1A were associated with essential tremor. Three markers (rs12764057, rs10822974, rs7903491) in the cell-adhesion molecule CTNNA3 were significant in the combined analysis of both stages. The expression of STK32B was increased in the cerebellar cortex of patients and expression quantitative trait loci database mining showed association between the protective minor allele of rs10937625 and reduced expression in cerebellar cortex. We found no expression differences related to disease status or marker genotype for the other two genes. Replication of two lead single nucleotide polymorphisms of previous small genome-wide association studies (rs3794087 in SLC1A2, rs9652490 in LINGO1) did not confirm the association with essential tremor.