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1.
Viruses ; 16(5)2024 05 16.
Article in English | MEDLINE | ID: mdl-38793671

ABSTRACT

The key postulate of the prion paradigm is that some proteins can take on unconventional conformations and pass these conformations to newly synthesized protein molecules with the same primary structure [...].


Subject(s)
Prions , Prions/metabolism , Prions/chemistry , Animals , Humans , Saccharomyces cerevisiae/metabolism , Saccharomyces cerevisiae/genetics , Prion Diseases/metabolism , Protein Conformation , Mammals/metabolism
2.
Cells ; 13(10)2024 May 14.
Article in English | MEDLINE | ID: mdl-38786054

ABSTRACT

Prion diseases are rare and neurodegenerative diseases that are characterized by the misfolding and infectious spread of the prion protein in the brain, causing progressive and irreversible neuronal loss and associated clinical and behavioral manifestations in humans and animals, ultimately leading to death. The brain has a complex network of neurons and glial cells whose crosstalk is critical for function and homeostasis. Although it is established that prion infection of neurons is necessary for clinical disease to occur, debate remains in the field as to the role played by glial cells, namely astrocytes and microglia, and whether these cells are beneficial to the host or further accelerate disease. Here, we review the current literature assessing the complex morphologies of astrocytes and microglia, and the crosstalk between these two cell types, in the prion-infected brain.


Subject(s)
Neuroglia , Prion Diseases , Humans , Prion Diseases/pathology , Prion Diseases/metabolism , Animals , Neuroglia/pathology , Neuroglia/metabolism , Astrocytes/pathology , Astrocytes/metabolism , Brain/pathology , Brain/metabolism , Neurobiology , Microglia/pathology , Microglia/metabolism , Neurons/metabolism , Neurons/pathology , Neuropathology , Prions/metabolism
3.
Prion ; 18(1): 89-93, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38734978

ABSTRACT

Although the development of aggregation assays has noticeably improved the accuracy of the clinical diagnosis of prion diseases, research on biomarkers remains vital. The major challenges to overcome are non-invasive sampling and the exploration of new biomarkers that may predict the onset or reflect disease progression. This will become extremely important in the near future, when new therapeutics are clinically evaluated and eventually become available for treatment. This article aims to provide an overview of the achievements of biomarker research in human prion diseases, addresses unmet needs in the field, and points out future perspectives.


Subject(s)
Biomarkers , Prion Diseases , Humans , Biomarkers/metabolism , Biomarkers/analysis , Prion Diseases/diagnosis , Prion Diseases/metabolism , Animals
4.
J Transl Med ; 22(1): 503, 2024 May 27.
Article in English | MEDLINE | ID: mdl-38802941

ABSTRACT

BACKGROUND: Prion diseases are transmissible and fatal neurodegenerative diseases characterized by accumulation of misfolded prion protein isoform (PrPSc), astrocytosis, microgliosis, spongiosis, and neurodegeneration. Elevated levels of cell membrane associated PrPSc protein and inflammatory cytokines hint towards the activation of death receptor (DR) pathway/s in prion diseases. Activation of DRs regulate, either cell survival or apoptosis, autophagy and necroptosis based on the adaptors they interact. Very little is known about the DR pathways activation in prion disease. DR3 and DR5 that are expressed in normal mouse brain were never studied in prion disease, so also their ligands and any DR adaptors. This research gap is notable and investigated in the present study. METHODS: C57BL/6J mice were infected with Rocky Mountain Laboratory scrapie mouse prion strain. The progression of prion disease was examined by observing morphological and behavioural abnormalities. The levels of PrP isoforms and GFAP were measured as the marker of PrPSc accumulation and astrocytosis respectively using antibody-based techniques that detect proteins on blot and brain section. The levels of DRs, their glycosylation and ectodomain shedding, and associated factors warrant their examination at protein level, hence western blot analysis was employed in this study. RESULTS: Prion-infected mice developed motor deficits and neuropathology like PrPSc accumulation and astrocytosis similar to other prion diseases. Results from this research show higher expression of all DR ligands, TNFR1, Fas and p75NTR but decreased levels DR3 and DR5. The levels of DR adaptor proteins like TRADD and TRAF2 (primarily regulate pro-survival pathways) are reduced. FADD, which primarily regulate cell death, its level remains unchanged. RIPK1, which regulate pro-survival, apoptosis and necroptosis, its expression and proteolysis (inhibits necroptosis but activates apoptosis) are increased. CONCLUSIONS: The findings from the present study provide evidence towards the involvement of DR3, DR5, DR6, TL1A, TRAIL, TRADD, TRAF2, FADD and RIPK1 for the first time in prion diseases. The knowledge obtained from this research discuss the possible impacts of these 16 differentially expressed DR factors on our understanding towards the multifaceted neuropathology of prion diseases and towards future explorations into potential targeted therapeutic interventions for prion disease specific neuropathology.


Subject(s)
Disease Models, Animal , Mice, Inbred C57BL , Prion Diseases , Animals , Prion Diseases/metabolism , Prion Diseases/pathology , Receptors, Death Domain/metabolism , Signal Transduction , Brain/metabolism , Brain/pathology , Mice , PrPSc Proteins/metabolism , Glial Fibrillary Acidic Protein/metabolism
5.
Prion ; 18(1): 40-53, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38627365

ABSTRACT

Prion disease is an infectious and fatal neurodegenerative disease. Western blotting (WB)-based identification of proteinase K (PK)-resistant prion protein (PrPres) is considered a definitive diagnosis of prion diseases. In this study, we aimed to detect PrPres using formalin-fixed paraffin-embedded (FFPE) specimens from cases of sporadic Creutzfeldt-Jakob disease (sCJD), Gerstmann-Sträussler-Scheinker disease (GSS), glycosylphosphatidylinositol-anchorless prion disease (GPIALP), and V180I CJD. FFPE samples were prepared after formic acid treatment to inactivate infectivity. After deparaffinization, PK digestion was performed, and the protein was extracted. In sCJD, a pronounced PrPres signal was observed, with antibodies specific for type 1 and type 2 PrPres exhibited a strong or weak signals depending on the case. Histological examination of serial sections revealed that the histological changes were compatible with the biochemical characteristics. In GSS and GPIALP, prion protein core-specific antibodies presented as PrPres bands at 8-9 kDa and smear bands, respectively. However, an antibody specific for the C-terminus presented as smears in GSS, with no PrPres detected in GPIALP. It was difficult to detect PrPres in V180I CJD. Collectively, our findings demonstrate the possibility of detecting PrPres in FFPE and classifying the prion disease types. This approach facilitates histopathological and biochemical evaluation in the same sample and is safe owing to the inactivation of infectivity. Therefore, it may be valuable for the diagnosis and research of prion diseases.


Subject(s)
Creutzfeldt-Jakob Syndrome , Gerstmann-Straussler-Scheinker Disease , Neurodegenerative Diseases , Prion Diseases , Prions , Humans , Prion Proteins , PrPSc Proteins/metabolism , Paraffin Embedding , Prion Diseases/diagnosis , Prion Diseases/metabolism , Creutzfeldt-Jakob Syndrome/pathology , Prions/metabolism , Gerstmann-Straussler-Scheinker Disease/metabolism , Endopeptidase K , Antibodies , Formaldehyde
6.
PLoS Pathog ; 20(4): e1012087, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38557815

ABSTRACT

Prion diseases uniquely manifest in three distinct forms: inherited, sporadic, and infectious. Wild-type prions are responsible for the sporadic and infectious versions, while mutant prions cause inherited variants like fatal familial insomnia (FFI) and familial Creutzfeldt-Jakob disease (fCJD). Although some drugs can prolong prion incubation times up to four-fold in rodent models of infectious prion diseases, no effective treatments for FFI and fCJD have been found. In this study, we evaluated the efficacy of various anti-prion drugs on newly-developed knock-in mouse models for FFI and fCJD. These models express bank vole prion protein (PrP) with the pathogenic D178N and E200K mutations. We applied various drug regimens known to be highly effective against wild-type prions in vivo as well as a brain-penetrant compound that inhibits mutant PrPSc propagation in vitro. None of the regimens tested (Anle138b, IND24, Anle138b + IND24, cellulose ether, and PSCMA) significantly extended disease-free survival or prevented mutant PrPSc accumulation in either knock-in mouse model, despite their ability to induce strain adaptation of mutant prions. Our results show that anti-prion drugs originally developed to treat infectious prion diseases do not necessarily work for inherited prion diseases, and that the recombinant sPMCA is not a reliable platform for identifying compounds that target mutant prions. This work underscores the need to develop therapies and validate screening assays specifically for mutant prions, as well as anti-prion strategies that are not strain-dependent.


Subject(s)
Creutzfeldt-Jakob Syndrome , Prion Diseases , Prions , Animals , Mice , Prions/metabolism , Prion Diseases/drug therapy , Prion Diseases/genetics , Prion Diseases/metabolism , Creutzfeldt-Jakob Syndrome/drug therapy , Creutzfeldt-Jakob Syndrome/genetics , Creutzfeldt-Jakob Syndrome/metabolism , Prion Proteins/genetics , Prion Proteins/metabolism , Brain/pathology , Arvicolinae/metabolism
7.
Prion ; 18(1): 68-71, 2024 Dec.
Article in English | MEDLINE | ID: mdl-38651736

ABSTRACT

The history of human prion diseases began with the original description, by Hans Gerhard Creutzfeldt and by Alfons Maria Jakob, of patients with a severe brain disease that included speech abnormalities, confusion, and myoclonus, in a disease that was then named Creutzfeldt Jakob disease (CJD). Later, in Papua New Guinea, a disease characterized by trembling was identified, and given the name "Kuru". Neuropathological examination of the brains from CJD and Kuru patients, and of brains of sheep with scrapie disease revealed significant similarities and suggested a possible common mode of infection that, at the time, was thought to derive from an unknown virus that caused slow infections. John Stanley Griffith hypothesized that the agent causing these diseases was "probably a protein without nucleic acid" and, in 1982, Stanley Prusiner reported the identification of a proteinaceous infectious particle (coining the term prion) that was resistant to inactivation methods that were at the time standard for nucleic acids, and identified PrP as the major protein component of the infectious agent in scrapie and in Creutzfeldt-Jakob disease, classifying this also as a prion disease. Interestingly, the prion concept had been previously expanded to yeast proteins capable of replicating their conformation, seeding their own aggregation and transmitting phenotypic information. The prion concept has been more recently expanded to refer to misfolded proteins that are capable of converting a normal form of a protein into an abnormal form. The quest to understand and treat prion diseases has united a specific research community around the topic, and regular meetings (Prion Meetings) have taken place over the years to enable discussions, train junior researchers, and inspire research in the field.


Subject(s)
Prion Diseases , Prions , Humans , Prion Diseases/pathology , Prion Diseases/metabolism , Animals , Prions/metabolism , Creutzfeldt-Jakob Syndrome/pathology , Creutzfeldt-Jakob Syndrome/metabolism , Kuru/pathology
8.
Redox Biol ; 72: 103133, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38565068

ABSTRACT

Prion diseases, also known as Transmissible Spongiform Encephalopathies (TSEs), are protein-based neurodegenerative disorders (NDs) affecting humans and animals. They are characterized by the conformational conversion of the normal cellular prion protein, PrPC, into the pathogenic isoform, PrPSc. Prion diseases are invariably fatal and despite ongoing research, no effective prophylactic or therapeutic avenues are currently available. Anthocyanins (ACNs) are unique flavonoid compounds and interest in their use as potential neuroprotective and/or therapeutic agents against NDs, has increased significantly in recent years. Therefore, we investigated the potential anti-oxidant and anti-prion effects of Oenin and Myrtillin, two of the most common anthocyanins, using the most accepted in the field overexpressing PrPScin vitro model and a cell free protein aggregation model. Our results, indicate both anthocyanins as strong anti-oxidant compounds, upregulating the expression of genes involved in the anti-oxidant response, and reducing the levels of Reactive Oxygen Species (ROS), produced due to pathogenic prion infection, through the activation of the Keap1-Nrf2 pathway. Importantly, they showcased remarkable anti-prion potential, as they not only caused the clearance of pathogenic PrPSc aggregates, but also completely inhibited the formation of PrPSc fibrils in the Cerebrospinal Fluid (CSF) of patients with Creutzfeldt-Jakob disease (CJD). Therefore, Oenin and Myrtillin possess pleiotropic effects, suggesting their potential use as promising preventive and/or therapeutic agents in prion diseases and possibly in the spectrum of neurodegenerative proteinopathies.


Subject(s)
Anthocyanins , NF-E2-Related Factor 2 , Reactive Oxygen Species , Anthocyanins/pharmacology , Anthocyanins/chemistry , Humans , Reactive Oxygen Species/metabolism , NF-E2-Related Factor 2/metabolism , Antioxidants/pharmacology , Prion Diseases/drug therapy , Prion Diseases/metabolism , Prion Diseases/pathology , Kelch-Like ECH-Associated Protein 1/metabolism , Animals , PrPSc Proteins/metabolism , Signal Transduction/drug effects
9.
ACS Chem Neurosci ; 15(7): 1533-1547, 2024 Apr 03.
Article in English | MEDLINE | ID: mdl-38507813

ABSTRACT

Neuroinflammation plays a crucial role in the development of neurodegenerative protein misfolding disorders. This category of progressive diseases includes, but is not limited to, Alzheimer's disease, Parkinson's disease, and prion diseases. Shared pathogenesis involves the accumulation of misfolded proteins, chronic neuroinflammation, and synaptic dysfunction, ultimately leading to irreversible neuronal loss, measurable cognitive deficits, and death. Presently, there are few to no effective treatments to halt the advancement of neurodegenerative diseases. We hypothesized that directly targeting neuroinflammation by downregulating the transcription factor, NF-κB, and the inflammasome protein, NLRP3, would be neuroprotective. To achieve this, we used a cocktail of RNA targeting therapeutics (SB_NI_112) shown to be brain-penetrant, nontoxic, and effective inhibitors of both NF-κB and NLRP3. We utilized a mouse-adapted prion strain as a model for neurodegenerative diseases to assess the aggregation of misfolded proteins, glial inflammation, neuronal loss, cognitive deficits, and lifespan. Prion-diseased mice were treated either intraperitoneally or intranasally with SB_NI_112. Behavioral and cognitive deficits were significantly protected by this combination of NF-κB and NLRP3 downregulators. Treatment reduced glial inflammation, protected against neuronal loss, prevented spongiotic change, rescued cognitive deficits, and significantly lengthened the lifespan of prion-diseased mice. We have identified a nontoxic, systemic pharmacologic that downregulates NF-κB and NLRP3, prevents neuronal death, and slows the progression of neurodegenerative diseases. Though mouse models do not always predict human patient success and the study was limited due to sample size and number of dosing methods utilized, these findings serve as a proof of principle for continued translation of the therapeutic SB_NI_112 for prion disease and other neurodegenerative diseases. Based on the success in a murine prion model, we will continue testing SB_NI_112 in a variety of neurodegenerative disease models, including Alzheimer's disease and Parkinson's disease.


Subject(s)
Alzheimer Disease , Neurodegenerative Diseases , Parkinson Disease , Prion Diseases , Prions , Proteostasis Deficiencies , Humans , Mice , Animals , Neurodegenerative Diseases/metabolism , NLR Family, Pyrin Domain-Containing 3 Protein/metabolism , NF-kappa B/metabolism , Alzheimer Disease/metabolism , Neuroinflammatory Diseases , Down-Regulation , Parkinson Disease/metabolism , Neurons/metabolism , Prion Diseases/drug therapy , Prion Diseases/metabolism , Prions/metabolism , Inflammation/metabolism , Proteostasis Deficiencies/drug therapy , Proteostasis Deficiencies/metabolism
11.
BMC Neurol ; 24(1): 92, 2024 Mar 11.
Article in English | MEDLINE | ID: mdl-38468258

ABSTRACT

BACKGROUND: Human prion diseases (HPDs) are fatal neurodegenerative disorders characterized by abnormal prion proteins (PrPSc). However, the detection of prion seeding activity in patients with high sensitivity remains challenging. Even though real-time quaking-induced conversion (RT-QuIC) assay is suitable for detecting prion seeding activity in a variety of specimens, it shows lower accuracy when whole blood, blood plasma, and blood-contaminated tissue samples are used. In this study, we developed a novel technology for the in vitro amplification of abnormal prion proteins in HPD to the end of enabling their detection with high sensitivity known as the enhanced quaking-induced conversion (eQuIC) assay. METHODS: Three antibodies were used to develop the novel eQUIC method. Thereafter, SD50 seed activity was analyzed using brain tissue samples from patients with prion disease using the conventional RT-QUIC assay and the novel eQUIC assay. In addition, blood samples from six patients with solitary prion disease were analyzed using the novel eQuIC assay. RESULTS: The eQuIC assay, involving the use of three types of human monoclonal antibodies, showed approximately 1000-fold higher sensitivity than the original RT-QuIC assay. However, when this assay was used to analyze blood samples from six patients with sporadic human prion disease, no prion activity was detected. CONCLUSION: The detection of prion seeding activity in blood samples from patients with sporadic prion disease remains challenging. Thus, the development of alternative methods other than RT-QuIC and eQuIC will be necessary for future research.


Subject(s)
Creutzfeldt-Jakob Syndrome , Prion Diseases , Prions , Humans , Prions/metabolism , Prion Proteins , Prion Diseases/diagnosis , Prion Diseases/metabolism , Brain/metabolism , Plasma/metabolism , Creutzfeldt-Jakob Syndrome/diagnosis
12.
Nat Commun ; 15(1): 2112, 2024 Mar 08.
Article in English | MEDLINE | ID: mdl-38459071

ABSTRACT

Prion diseases are a group of rapidly progressing neurodegenerative disorders caused by the misfolding of the endogenous prion protein (PrPC) into a pathogenic form (PrPSc). This process, despite being the central event underlying these disorders, remains largely unknown at a molecular level, precluding the prediction of new potential outbreaks or interspecies transmission incidents. In this work, we present a method to generate bona fide recombinant prions de novo, allowing a comprehensive analysis of protein misfolding across a wide range of prion proteins from mammalian species. We study more than 380 different prion proteins from mammals and classify them according to their spontaneous misfolding propensity and their conformational variability. This study aims to address fundamental questions in the prion research field such as defining infectivity determinants, interspecies transmission barriers or the structural influence of specific amino acids and provide invaluable information for future diagnosis and therapy applications.


Subject(s)
Prion Diseases , Prions , Animals , Prions/metabolism , Prion Proteins/genetics , Prion Diseases/genetics , Prion Diseases/metabolism , Mammals/metabolism , Protein Folding
13.
BMJ Case Rep ; 17(2)2024 Feb 22.
Article in English | MEDLINE | ID: mdl-38388201

ABSTRACT

Variably protease-sensitive prionopathy (VPSPr) is a recently characterised rare subtype of sporadic prion disease, mainly affecting individuals with valine homozygosity at codon 129 in the prion protein gene, with only seven methionine homozygote cases reported to date. This case presents clinical, neuropathological and biochemical features of the eighth VPSPr case worldwide with methionine homozygosity at codon 129 and compares the features with the formerly presented cases.The patient, a woman in her 70s, presented with cognitive decline, impaired balance and frequent falls. Medical history and clinical presentation were suggestive of a rapidly progressive dementia disorder. MRI showed bilateral thalamic hyperintensity. Cerebrospinal fluid real-time quaking-induced conversion was negative, and the electroencephalogram was unremarkable. The diagnosis was established through post-mortem pathological examinations. VPSPr should be suspected in rapidly progressive dementia lacking typical features or paraclinical results of protein misfolding diseases.


Subject(s)
Creutzfeldt-Jakob Syndrome , Dementia , Prion Diseases , Prions , Female , Humans , Prions/genetics , Prions/metabolism , Prion Proteins/genetics , Prion Proteins/metabolism , Methionine/genetics , Methionine/metabolism , Homozygote , Brain/pathology , Prion Diseases/genetics , Prion Diseases/metabolism , Prion Diseases/pathology , Dementia/genetics , Racemethionine/metabolism , Codon/genetics , Codon/metabolism , Peptide Hydrolases/genetics , Peptide Hydrolases/metabolism , Creutzfeldt-Jakob Syndrome/pathology
14.
Nat Rev Dis Primers ; 10(1): 14, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38424082

ABSTRACT

Prion diseases share common clinical and pathological characteristics such as spongiform neuronal degeneration and deposition of an abnormal form of a host-derived protein, termed prion protein. The characteristic features of prion diseases are long incubation times, short clinical courses, extreme resistance of the transmissible agent to degradation and lack of nucleic acid involvement. Sporadic and genetic forms of prion diseases occur worldwide, of which genetic forms are associated with mutations in PRNP. Human to human transmission of these diseases has occurred due to iatrogenic exposure, and zoonotic forms of prion diseases are linked to bovine disease. Significant progress has been made in the diagnosis of these disorders. Clinical tools for diagnosis comprise brain imaging and cerebrospinal fluid tests. Aggregation assays for detection of the abnormally folded prion protein have a clear potential to diagnose the disease in peripherally accessible biofluids. After decades of therapeutic nihilism, new treatment strategies and clinical trials are on the horizon. Although prion diseases are relatively rare disorders, understanding their pathogenesis and mechanisms of prion protein misfolding has significantly enhanced the field in research of neurodegenerative diseases.


Subject(s)
Creutzfeldt-Jakob Syndrome , Prion Diseases , Animals , Cattle , Humans , Creutzfeldt-Jakob Syndrome/diagnosis , Creutzfeldt-Jakob Syndrome/genetics , Creutzfeldt-Jakob Syndrome/pathology , Prion Proteins/metabolism , Prion Diseases/diagnosis , Prion Diseases/genetics , Prion Diseases/metabolism , Brain/pathology
15.
Mol Imaging Biol ; 26(2): 195-212, 2024 Apr.
Article in English | MEDLINE | ID: mdl-38302686

ABSTRACT

Prion diseases are rare, rapidly progressive, and fatal incurable degenerative brain disorders caused by the misfolding of a normal protein called PrPC into an abnormal protein called PrPSc. Their highly variable clinical presentation mimics various degenerative and non-degenerative brain disorders, making diagnosis a significant challenge for neurologists. Currently, definitive diagnosis relies on post-mortem examination of nervous tissue to detect the pathogenic prion protein. The current diagnostic criteria are limited. While structural magnetic resonance imaging (MRI) remains the gold standard imaging modality for Creutzfeldt-Jakob disease (CJD) diagnosis, positron emission tomography (PET) using 18fluorine-fluorodeoxyglucose (18F-FDG) and other radiotracers have demonstrated promising potential in the diagnostic assessment of prion disease. In this context, a comprehensive and updated review exclusively focused on PET imaging in prion diseases is still lacking. We review the current value of PET imaging with 18F-FDG and non-FDG tracers in the diagnostic management of prion diseases. From the collected data, 18F-FDG PET mainly reveals cortical and subcortical hypometabolic areas in prion disease, although fails to identify typical pattern or laterality abnormalities to differentiate between genetic and sporadic prion diseases. Although the rarity of prion diseases limits the establishment of a definitive hypometabolism pattern, this review reveals some more prevalent 18F-FDG patterns associated with each disease subtype. Interestingly, in both sporadic and genetic prion diseases, the hippocampus does not show significant glucose metabolism alterations, appearing as a useful sign in the differential diagnosis with other neurodegenerative disease. In genetic prion disease forms, PET abnormality precedes clinical manifestation. Discordant diagnostic value for amyloid tracers among different prion disease subtypes was observed, needing further investigation. PET has emerged as a potential valuable tool in the diagnostic armamentarium for CJD. Its ability to visualize functional and metabolic brain changes provides complementary information to structural MRI, aiding in the early detection and confirmation of CJD.


Subject(s)
Creutzfeldt-Jakob Syndrome , Neurodegenerative Diseases , Prion Diseases , Humans , Fluorodeoxyglucose F18/metabolism , Radiopharmaceuticals/metabolism , Positron-Emission Tomography/methods , Prion Diseases/metabolism , Prion Diseases/pathology , Creutzfeldt-Jakob Syndrome/diagnosis , Creutzfeldt-Jakob Syndrome/metabolism , Creutzfeldt-Jakob Syndrome/pathology , Brain/metabolism
16.
ACS Chem Neurosci ; 15(5): 898-908, 2024 Mar 06.
Article in English | MEDLINE | ID: mdl-38407017

ABSTRACT

Protein misfolding has been extensively studied in the context of neurodegenerative disorders and systemic amyloidoses. Due to misfolding and aggregation of proteins being highly heterogeneous and generating a variety of structures, a growing body of evidence illustrates numerous ways how the aggregates contribute to progression of diseases such as Alzheimer's disease, Parkinson's disease, and prion disorders. Different misfolded species of the same protein, commonly referred to as strains, appear to play a significant role in shaping the disease clinical phenotype and clinical progression. The distinct toxicity profiles of various misfolded proteins underscore their importance. Current diagnostics struggle to differentiate among these strains early in the disease course. This review explores the potential of spectral fluorescence approaches to illuminate the complexities of protein misfolding pathology and discusses the applications of advanced spectral methods in the detection and characterization of protein misfolding disorders. By examining spectrally variable probes, current data analysis approaches, and important considerations for the use of these techniques, this review aims to provide an overview of the progress made in this field and highlights directions for future research.


Subject(s)
Amyloidosis , Neurodegenerative Diseases , Prion Diseases , Proteostasis Deficiencies , Humans , Fluorescence , Proteostasis Deficiencies/metabolism , Amyloidosis/metabolism , Prion Diseases/metabolism , Neurodegenerative Diseases/metabolism , Protein Folding
17.
J Phys Chem Lett ; 15(8): 2117-2122, 2024 Feb 29.
Article in English | MEDLINE | ID: mdl-38363235

ABSTRACT

The misfolding of the α-helical cellular prion protein into a self-propagating ß-rich aggregated form is a key pathogenic event in fatal and transmissible neurodegenerative diseases collectively known as prion diseases. Herein, we utilize the interfacial properties of liquid crystals (LCs) to monitor the lipid-membrane-induced conformational switching of prion protein (PrP) into ß-rich amyloid fibrils. The lipid-induced conformational switching resulting in aggregation occurs at the nanomolar protein concentration and is primarily mediated by electrostatic interactions between PrP and lipid headgroups. Our LC-based methodology offers a potent and sensitive tool to detect and delineate molecular mechanisms of PrP misfolding mediated by lipid-protein interactions at the aqueous interface under physiological conditions.


Subject(s)
Liquid Crystals , Prion Diseases , Prions , Humans , Prion Proteins/chemistry , Prions/chemistry , Prions/metabolism , Prion Diseases/metabolism , Prion Diseases/pathology , Amyloid beta-Peptides , Amyloid/chemistry , Lipids , Protein Folding
18.
ACS Chem Neurosci ; 15(1): 134-146, 2024 Jan 03.
Article in English | MEDLINE | ID: mdl-38095594

ABSTRACT

Alternative α- and ß-cleavage events in the cellular prion protein (PrPC) central region generate fragments with distinct biochemical features that affect prion disease pathogenesis, but the assignment of precise cleavage positions has proven challenging. Exploiting mouse transgenic models expressing wild-type (WT) PrPC and an octarepeat region mutant allele (S3) with increased ß-fragmentation, cleavage sites were defined using LC-MS/MS in conjunction with N-terminal enzymatic labeling and chemical in-gel acetylation. Our studies profile the net proteolytic repertoire of the adult brain, as deduced from defining hundreds of proteolytic events in other proteins, and position individual cleavage events in PrPC α- and ß-target areas imputed from earlier, lower resolution methods; these latter analyses established site heterogeneity, with six cleavage sites positioned in the ß-cleavage region of WT PrPC and nine positions for S3 PrPC. Regarding α-cleavage, aside from reported N-termini at His110 and Val111, we identified a total of five shorter fragments in the brain of both mice lines. We infer that aminopeptidase activity in the brain could contribute to the ragged N-termini observed around PrPC's α- and ß-cleavage sites, with this work providing a point of departure for further in vivo studies of brain proteases.


Subject(s)
PrPC Proteins , Prion Diseases , Prions , Mice , Animals , Prion Proteins/genetics , Chromatography, Liquid , PrPC Proteins/genetics , Tandem Mass Spectrometry , Prions/metabolism , Prion Diseases/metabolism
19.
J Neurol ; 271(1): 446-456, 2024 Jan.
Article in English | MEDLINE | ID: mdl-37755461

ABSTRACT

OBJECTIVE: The underlying pathology of autoimmune encephalitis is not well characterized due to the limited opportunities to study tissue specimens. Autopsy specimens available at prion surveillance centers from patients with suspected Creutzfeldt-Jakob disease offer a unique opportunity to study the pathology of autoimmune encephalitis. Our objective was to describe pathological findings of autoimmune encephalitis specimens submitted to the U.S. National Prion Disease Pathology Surveillance Center. METHODS: Pathology reports were obtained from the National Prion Center. Specimens negative for prion disease were screened for inflammatory pathology and those suggestive of autoimmune encephalitis were analyzed. Cases identified on autopsy were compared to institutional cases with fatal seronegative autoimmune encephalitis and available brain biopsy. RESULTS: Between 1998 and 2022, 7934 specimens were evaluated of which 2998 (38%) were negative for prion protein. Querying the database for alternative diagnoses of encephalitis/encephalopathy yielded 43 cases that were screened by an experienced neuropathologist yielding 14 (0.5%) cases consistent with autoimmune encephalitis. Most specimens showed diffuse inflammation involving the limbic system (86%), basal ganglia (86%), cortex (71%), diencephalon (71%), and in some cases the brainstem (43%) and cerebellum (43%). Lymphocytic inflammatory infiltrate was predominantly perivascular with parenchymal extension in 64%. Microglial activation/nodules were seen in 64% of cases. Neuronal loss was present only in 50%. Pathological findings were identical to biopsy specimens from our institutional cohort. DISCUSSION: Seronegative AE may have consistent pathology with diffuse or multifocal perivascular inflammation and microglial activation. Half the patients do not have neuronal loss suggesting a potential for neurological recovery. These findings are preliminary and require further confirmation.


Subject(s)
Autoimmune Diseases of the Nervous System , Creutzfeldt-Jakob Syndrome , Encephalitis , Nervous System Diseases , Prion Diseases , Prions , Humans , Brain/pathology , Creutzfeldt-Jakob Syndrome/diagnosis , Creutzfeldt-Jakob Syndrome/pathology , Encephalitis/pathology , Prions/metabolism , Nervous System Diseases/pathology , Autoimmune Diseases of the Nervous System/pathology , Autopsy , Inflammation/metabolism , Prion Diseases/metabolism , Prion Diseases/pathology
20.
Brain ; 147(1): 240-254, 2024 01 04.
Article in English | MEDLINE | ID: mdl-37669322

ABSTRACT

A common pathological denominator of various neurodegenerative diseases is the accumulation of protein aggregates. Neurotoxic effects are caused by a loss of the physiological activity of the aggregating protein and/or a gain of toxic function of the misfolded protein conformers. In transmissible spongiform encephalopathies or prion diseases, neurodegeneration is caused by aberrantly folded isoforms of the prion protein (PrP). However, it is poorly understood how pathogenic PrP conformers interfere with neuronal viability. Employing in vitro approaches, cell culture, animal models and patients' brain samples, we show that misfolded PrP can induce aggregation and inactivation of TAR DNA-binding protein-43 (TDP-43). Purified PrP aggregates interact with TDP-43 in vitro and in cells and induce the conversion of soluble TDP-43 into non-dynamic protein assemblies. Similarly, mislocalized PrP conformers in the cytosol bind to and sequester TDP-43 in cytosolic aggregates. As a consequence, TDP-43-dependent splicing activity in the nucleus is significantly decreased, leading to altered protein expression in cells with cytosolic PrP aggregates. Finally, we present evidence for cytosolic TDP-43 aggregates in neurons of transgenic flies expressing mammalian PrP and Creutzfeldt-Jakob disease patients. Our study identified a novel mechanism of how aberrant PrP conformers impair physiological pathways by cross-seeding.


Subject(s)
Creutzfeldt-Jakob Syndrome , Prion Diseases , Prions , Animals , Humans , DNA-Binding Proteins , Mammals/metabolism , Prion Diseases/metabolism , Prion Proteins , Prions/metabolism
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