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Biology subjects

Forster, F.

Publications and source records attributed to Forster, F..

4 recordsLinked to original sources

Fibril Paint to detect Amyloids and determine Fibril Length

Tau aggregation into amyloid fibrils is linked to the development of neurodegenerative diseases, including Alzheimers Disease. The molecular processes underlying aggregation in disease are poorly understood. Here, we introduce FibrilPaint1 as a tool to measure the size of Tau amyloid fibrils in fluids, from early aggregation stages to mature fibrils. FibrilPaint1 is a 22mer peptide with many exciting properties, which makes it a tool for diagnostics and an attractive start point for developing a class of effective fibril targeting degraders: (i) FibrilPaint1 binds fibrils with nanomolar affinity; (ii) it does also bind to oligomeric precursors, down to a size of only 4 layers; (iii) it does not bind to monomers (KD > 100 {micro}M); (iv) it is fluorescently labelled, which allows monitoring and localising interactions. (v) FibrilPaint1 recognises various Tau fibrils, including patient derived fibrils from Alzheimer, Corticobasal degeneration and Frontotemporal dementia; (vi) FibrilPaint1 is selective for the amyloid state and does not have background binding to amorphous aggregates, blood serum or cell lysate. In combination with Flow Induced Dispersion Analysis (FIDA), a microfluidics technology, we determined the molecular size of amyloid fibrils with sub-microliter sample volumes. This set-up acts as a molecular ruler at layer resolution - we determined Tau fibril length from 4 to 1100 layers in solution. This is an interesting parameter that can be used for diagnostic applications and biochemical research in dementia.

biochemistry↗

Sucrose-mediated translational stalling involves a conserved ribosomal pocket

Within eukaryotes, 20-50% of the mRNAs contain short open reading frames (uORFs) located upstream of the main ORF. A significant fraction of these uORFs encode conserved peptides (CPuORFs) that regulate translation in response to specific metabolites. A well-studied example includes uORF2 of the plant growth inhibiting transcription factor bZIP11. Elevated intracellular sucrose levels lead to ribosome stalling at the stop codon of uORF2, thus reducing bZIP11 protein synthesis. Similar examples can be found in bacteria and animals, e.g. on the bacterial TnaC and human CDH1-NPN* ORFs that both induce stalling at the stop codon when in the presence of tryptophan and the drug-like molecule PF846, respectively. In this study, we affinity-purified in vitro translated sucrose-stalled wheat ribosomes translating bZIP11-uORF2 and determined the ribosomes structures using cryo-electron microscopy. This revealed density inside a pocket in the ribosomal exit tunnel of the plant Triticum aestivum, that colocalizes with the binding locations of tryptophan and PF846 in E. coli and humans, respectively. We suggest this density corresponds to sucrose. Tryptophan and PF846 mode-of-action was previously proposed to inhibit release factor binding or function. Mutation of the uORF2 stop codon shows that its presence is crucial for sucrose-induced stalling, suggesting that the stalling only manifests during termination and not elongation. Moreover, the structural similarities with tryptophan-induced stalled ribosomes near the peptidyl transferase center indicates that an analogous mechanism of inhibition of release factor function is likely. Our findings suggest a conserved mechanistic framework across different organisms, wherein specific molecules interact with the nascent peptide and ribosome to modulate protein synthesis.

molecular biology↗

Structure and replication cycle of a virus infecting climate-modulating alga Emiliania huxleyi

The globally distributed marine alga Emiliania huxleyi produces reflective calcite disks (coccoliths) that increase the albedo of ocean water and thus reduce the heat absorption in the ocean, which cools the Earths climate. The population density of E. huxleyi is restricted by nucleocytoplasmic large DNA viruses, including E. huxleyi virus 201 (EhV-201). Despite the impact of E. huxleyi viruses on the climate, there is limited information about their structure and replication. Here we show that the dsDNA genome inside the EhV-201 virion is protected by an inner membrane, capsid, and outer membrane decorated with numerous transmembrane proteins. The virions are prone to deformation, and parts of their capsids deviate from the icosahedral arrangement. EhV-201 virions infect E. huxleyi by using their fivefold vertex to bind to a host cell and fuse the viruss inner membrane with the plasma membrane. Whereas the replication of EhV-201 probably occurs in the nucleus, virions assemble in the cytoplasm at the surface of endoplasmic reticulum-derived membrane segments. Genome packaging initiates synchronously with the capsid assembly and completes through an aperture in the forming capsid. Upon the completion of genome packaging, the capsids change conformation, which enables them to acquire an outer membrane by budding into intracellular vesicles. EhV-201 infection induces a loss of surface protective layers from E. huxleyi cells, which allows the continuous release of virions by exocytosis. Our results provide insight into how EhVs bypass the surface protective layers of E. huxleyi and exploit the organelles of an infected cell for progeny assembly.

molecular biology↗

Redox regulation of PTPN22 affects the severity of T cell dependent autoimmune inflammation

Chronic autoimmune diseases are associated with mutations in PTPN22, a modifier of T cell receptor signaling. As with all protein tyrosine phosphatases the activity of PTPN22 is redox regulated, but if or how such regulation can modulate inflammatory pathways in vivo is not known. To determine this, we created a mouse with a cysteine-to-serine mutation at position 129 in PTPN22 (C129S), a residue proposed to alter the redox regulatory properties of PTPN22 by forming a disulfide with the catalytic C227 residue. The C129S mutant mouse showed a stronger T cell-dependent inflammatory response and development of T cell dependent autoimmune arthritis due to enhanced TCR signaling and activation of T cells, an effect neutralized by a mutation in Ncf1, a component of the NOX2 complex. Activity assays with purified proteins suggest that the functional results can be explained by an increased sensitivity to oxidation of the C129S mutated PTPN22 protein. We also observed that the disulfide of native PTPN22 can be directly reduced by the thioredoxin system, while the C129S mutant lacking this disulfide was less amenable to reductive reactivation. In conclusion, we show that PTPN22 functionally interacts with Ncf1 and is regulated by oxidation via the non-catalytic C129 residue and oxidation-prone PTPN22 leads to increased severity in the development of T cell-dependent autoimmunity. Significance statementA hitherto unstudied aspect of PTPN22 biology is its regulation by cell redox states. Here we created a mouse model where PTPN22 was mutated to respond differentially to redox levels in vivo and found that PTPN22 function is regulated by reactive oxygen species and that redox regulation of PTPN22 impacts T-cell-dependent autoimmune inflammation.

immunology↗