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The amyotrophic lateral sclerosis (ALS) neurodegenerative disorder has been associated with multiple genetic lesions, including mutations in the gene for fused in sarcoma (FUS), a nuclear-localized RNA/DNA-binding protein. Neuronal expression of the pathological form of FUS proteins in Caenorhabditis elegans results in mislocalization and aggregation of FUS in the cytoplasm, and leads to impairment of motility. However, the mechanisms by which the mutant FUS disrupts neuronal health and function remain unclear. Here we investigated the impact of ALS-associated FUS on motor neuron health using correlative light and electron microscopy, electron tomography, and electrophysiology. We show that ectopic expression of wild-type or ALS-associated human FUS impairs synaptic vesicle docking at neuromuscular junctions. ALS-associated FUS led to the emergence of a population of large, electron-dense, and filament-filled endosomes. Electrophysiological recording revealed reduced transmission from motor neurons to muscles. Together, these results suggest a pathological effect of ALS-causing FUS at synaptic structure and function organization.
Ultrastructural analysis of wild-type and RIM1α knockout active zones in a large cortical synapse
(2022)
Rab3A-interacting molecule (RIM) is crucial for fast Ca\(^{2+}\)-triggered synaptic vesicle (SV) release in presynaptic active zones (AZs). We investigated hippocampal giant mossy fiber bouton (MFB) AZ architecture in 3D using electron tomography of rapid cryo-immobilized acute brain slices in RIM1α\(^{−/−}\) and wild-type mice. In RIM1α\(^{−/−}\), AZs are larger with increased synaptic cleft widths and a 3-fold reduced number of tightly docked SVs (0–2 nm). The distance of tightly docked SVs to the AZ center is increased from 110 to 195 nm, and the width of their electron-dense material between outer SV membrane and AZ membrane is reduced. Furthermore, the SV pool in RIM1α\(^{−/−}\) is more heterogeneous. Thus, RIM1α, besides its role in tight SV docking, is crucial for synaptic architecture and vesicle pool organization in MFBs.
In Nervensystemen bedürfen Informationsweitergabe und Gedächtnisformation eines präzisen Zusammenspiels von Synapsen in Zeit und Raum. Synaptische Transmission basiert strukturell auf mesoskopischen cytosolischen Kompartimenten an der präsynaptischen Membran, sogenannten Aktiven Zonen (AZ). Ihre Cytomatrix, bestehend aus zentralen Gerüstproteinen wie Rab3 interacting molecule (RIM), ermöglicht eine schnelle Freisetzung synaptischer Vesikel. Die Defizienz der lokal häufigsten Isoform RIM1α resultiert an einer komplexen zentralen Säugersynapse, die des hippocampalen Moosfaserboutons (MFB) zu im Cornu ammonis (CA)3 befindlichen Pyramidalzellen, in einer dezimierten Langzeitplastizität. Auf Verhaltensebene zeigen diese Mäuse eine reduzierte Lernfähigkeit.
Die vorliegende Dissertation widmet sich grundlegend der bisher unbekannten dreidimensionalen (3D) AZ-Ultrastruktur des MFB in akuten Hippocampusschnitten der adulten Wildtyp- und RIM1α-Knock-Out-Maus (RIM1α\(^{-/-}\)). In einer methodischen Entwicklungsphase wurde ein neuartiges, anspruchsvolles Protokoll der nahezu artefaktfreien (near to native) Synapsenpräparation am MFB mittels Hochdruckgefrierung und Gefriersubstitution sowie der 3D-Modellierung mittels Elektronentomographie etabliert. In einer zweiten Experimentier- und Analysephase ermöglichte die hochwertige synaptische Gewebeerhaltung in beiden Genotypen eine standardisierte, auf Programmierskripten basierte Quantifizierung der AZ-Ultrastruktur bis auf die Ebene eines individuell gedockten synaptischen Vesikels.
Dieser Dissertation gelingt der Nachweis, dass eine Defizienz von RIM1α zu einer multidimensionalen ultrastrukturellen Veränderung der AZ und ihres Vesikelpools am MFB führt. Neben einer Reduktion, Dezentralisierung und strukturellen Veränderung (eng) gedockter Vesikel – der ultrastrukturellen Messgrößen von unmittelbar freisetzungsfähigen Vesikeln – verdichtet sich der distaler lokalisierte Vesikelpool auf zugleich größeren, heterogenen AZ-Flächen mit erweitertem synaptischem Spalt. Vorliegende Untersuchungen tragen zum Verständnisgewinn über eine zentrale Rolle von RIM1α für das Docking und die Organisation von Vesikeln der AZ im MFB bei. Darüber hinaus stellen die präzisen ultrastrukturellen Analysen eine morphologische Grundlage für weiterführende Studien mit Hilfe modernster Techniken dar, beispielsweise über die Auswirkungen der geänderten RIM1α\(^{-/-}\) AZ-Ultrastruktur auf die präsynaptische Plastizität sowie in Korrelation zum Gedächtnis und Lernen der Tiere.
Background
Autophagy participates in innate immunity by eliminating intracellular pathogens. Consequently, numerous microorganisms have developed strategies to impair the autophagic machinery in phagocytes. In the current study, interactions between Leishmania major (L. m.) and the autophagic machinery of bone marrow-derived macrophages (BMDM) were analyzed.
Methods
BMDM were generated from BALB/c mice, and the cells were infected with L. m. promastigotes. Transmission electron microscopy (TEM) and electron tomography were used to investigate the ultrastructure of BMDM and the intracellular parasites. Affymetrix® chip analyses were conducted to identify autophagy-related messenger RNAs (mRNAs) and microRNAs (miRNAs). The protein expression levels of autophagy related 5 (ATG5), BCL2/adenovirus E1B 19 kDa protein-interacting protein 3 (BNIP3), cathepsin E (CTSE), mechanistic target of rapamycin (MTOR), microtubule-associated proteins 1A/1B light chain 3B (LC3B), and ubiquitin (UB) were investigated through western blot analyses. BMDM were transfected with specific small interfering RNAs (siRNAs) against autophagy-related genes and with mimics or inhibitors of autophagy-associated miRNAs. The infection rates of BMDM were determined by light microscopy after a parasite-specific staining.
Results
The experiments demonstrated autophagy induction in BMDM after in vitro infection with L. m.. The results suggested a putative MTOR phosphorylation-dependent counteracting mechanism in the early infection phase and indicated that intracellular amastigotes were cleared by autophagy in BMDM in the late infection phase. Transcriptomic analyses and specific downregulation of protein expression with siRNAs suggested there is an association between the infection-specific over expression of BNIP3, as well as CTSE, and the autophagic activity of BMDM. Transfection with mimics of mmu-miR-101c and mmu-miR-129-5p, as well as with an inhibitor of mmu-miR-210-5p, demonstrated direct effects of the respective miRNAs on parasite clearance in L. m.-infected BMDM. Furthermore, Affymetrix® chip analyses revealed a complex autophagy-related RNA network consisting of differentially expressed mRNAs and miRNAs in BMDM, which indicates high glycolytic and inflammatory activity in the host macrophages.
Conclusions
Autophagy in L. m.-infected host macrophages is a highly regulated cellular process at both the RNA level and the protein level. Autophagy has the potential to clear parasites from the host. The results obtained from experiments with murine host macrophages could be translated in the future to develop innovative and therapeutic antileishmanial strategies for human patients.