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1.
J Extracell Vesicles ; 10(2): e12034, 2020 12.
Article in English | MEDLINE | ID: mdl-33318779

ABSTRACT

The misfolding and fibrillization of the protein, α-synuclein (αsyn), is associated with neurodegenerative disorders referred to as the synucleinopathies. Understanding the mechanisms of αsyn misfolding is an important area of interest given that αsyn misfolding contributes to disease pathogenesis. While many studies report the ability of synthetic lipid membranes to modulate αsyn folding, there is little data pertaining to the mechanism(s) of this interaction. αSyn has previously been shown to associate with small lipid vesicles released by cells called extracellular vesicles (EVs) and it is postulated these interactions may assist in the spreading of pathological forms of this protein. Together, this presents the need for robust characterisation studies on αsyn fibrillization using biologically-derived vesicles. In this study, we comprehensively characterised the ability of lipid-rich small extracellular vesicles (sEVs) to alter the misfolding of αsyn induced using the Protein Misfolding Cyclic Amplification (PMCA) assay. The biochemical and biophysical properties of misfolded αsyn were examined using a range of techniques including: Thioflavin T fluorescence, transmission electron microscopy, analytical centrifugation and western immunoblot coupled with protease resistance assays and soluble/insoluble fractionation. We show that sEVs cause an acceleration in αsyn fibrillization and provide comprehensive evidence that this results in an increase in the abundance of mature insoluble fibrillar species. In order to elucidate the relevance of the lipid membrane to this interaction, sEV lipid membranes were modified by treatment with methanol, or a combination of methanol and sarkosyl. These treatments altered the ultrastructure of the sEVs without changing the protein cargo. Critically, these modified sEVs had a reduced ability to influence αsyn fibrillization compared to untreated counterparts. This study reports the first comprehensive examination of αsyn:EV interactions and demonstrates that sEVs are powerful modulators of αsyn fibrillization, which is mediated by the sEV membrane. In doing so, this work provides strong evidence for a role of sEVs in contributing directly to αsyn misfolding in the synucleinopathy disorders.


Subject(s)
Cell Membrane/metabolism , Extracellular Vesicles/metabolism , Protein Folding , Protein Multimerization , alpha-Synuclein/metabolism , Cell Membrane/chemistry , Extracellular Vesicles/chemistry , Humans , Protein Conformation , alpha-Synuclein/chemistry
2.
Semin Cell Dev Biol ; 40: 89-96, 2015 Apr.
Article in English | MEDLINE | ID: mdl-25704308

ABSTRACT

Many cell types, including neurons, are known to release small membranous vesicles known as exosomes. In addition to their protein content these vesicles have recently been shown to contain messenger RNA (mRNA) and micro RNA (miRNA) species. Roles for these vesicles include cell-cell signalling, removal of unwanted proteins, and transfer of pathogens (including prion-like misfolded proteins) between cells, such as infectious prions. Prions are the infectious particles that are responsible for transmissible neurodegenerative diseases such as Creutzfeldt-Jakob disease (CJD) of humans or bovine spongiform encephalopathy (BSE) of cattle. Exosomes are also involved in processing the amyloid precursor protein (APP), which is associated with Alzheimer's disease (AD). As exosomes can be isolated from circulating fluids such as serum, urine, and cerebrospinal fluid (CSF), they provide a potential source of biomarkers for neurological conditions. Here, we review the roles these vesicles play in neurodegenerative disease and highlight their potential in diagnosing these disorders through analysis of their RNA content.


Subject(s)
Extracellular Vesicles/metabolism , Neurodegenerative Diseases/pathology , Protein Folding , Animals , Extracellular Vesicles/chemistry , Humans , MicroRNAs/analysis , Neurodegenerative Diseases/diagnosis , Neurodegenerative Diseases/drug therapy , Neurodegenerative Diseases/metabolism , Prions/metabolism
3.
Glycobiology ; 25(7): 745-55, 2015 Jul.
Article in English | MEDLINE | ID: mdl-25701659

ABSTRACT

Prion diseases are transmissible neurodegenerative disorders associated with the conversion of the cellular prion protein, PrP(C), to a misfolded isoform called PrP(Sc). Although PrP(Sc) is a necessary component of the infectious prion, additional factors, or cofactors, have been shown to contribute to the efficient formation of transmissible PrP(Sc). Glycosaminoglycans (GAGs) are attractive cofactor candidates as they can be found associated with PrP(Sc) deposits, have been shown to enhance PrP misfolding in vitro, are found in the same cellular compartments as PrP(C) and have been shown to be disease modifying in vivo. Here we investigated the effects of the sulfated GAGs, heparin and heparan sulfate (HS), on disease associated misfolding of full-length recombinant PrP. More specifically, the degree of sulfation of these molecules was investigated for its role in modulating the disease-associated characteristics of PrP. Both heparin and HS induced a ß-sheet conformation in recombinant PrP that was associated with the formation of aggregated species; however, the biochemical properties of the aggregates formed in the presence of heparin or HS varied in solubility and protease resistance. Furthermore, these properties could be modified by changes in GAG sulfation, indicating that subtle changes in the properties of prion disease cofactors could initiate disease associated misfolding.


Subject(s)
Glycosaminoglycans/metabolism , Prions/metabolism , Sulfates/metabolism , Microscopy, Electron, Transmission , Protein Structure, Secondary
4.
Proc Natl Acad Sci U S A ; 111(9): 3620-5, 2014 Mar 04.
Article in English | MEDLINE | ID: mdl-24550511

ABSTRACT

Amyotrophic lateral sclerosis (ALS) is predominantly sporadic, but associated with heritable genetic mutations in 5-10% of cases, including those in Cu/Zn superoxide dismutase (SOD1). We previously showed that misfolding of SOD1 can be transmitted to endogenous human wild-type SOD1 (HuWtSOD1) in an intracellular compartment. Using NSC-34 motor neuron-like cells, we now demonstrate that misfolded mutant and HuWtSOD1 can traverse between cells via two nonexclusive mechanisms: protein aggregates released from dying cells and taken up by macropinocytosis, and exosomes secreted from living cells. Furthermore, once HuWtSOD1 propagation has been established, misfolding of HuWtSOD1 can be efficiently and repeatedly propagated between HEK293 cell cultures via conditioned media over multiple passages, and to cultured mouse primary spinal cord cells transgenically expressing HuWtSOD1, but not to cells derived from nontransgenic littermates. Conditioned media transmission of HuWtSOD1 misfolding in HEK293 cells is blocked by HuWtSOD1 siRNA knockdown, consistent with human SOD1 being a substrate for conversion, and attenuated by ultracentrifugation or incubation with SOD1 misfolding-specific antibodies, indicating a relatively massive transmission particle which possesses antibody-accessible SOD1. Finally, misfolded and protease-sensitive HuWtSOD1 comprises up to 4% of total SOD1 in spinal cords of patients with sporadic ALS (SALS). Propagation of HuWtSOD1 misfolding, and its subsequent cell-to-cell transmission, is thus a candidate process for the molecular pathogenesis of SALS, which may provide novel treatment and biomarker targets for this devastating disease.


Subject(s)
Amyotrophic Lateral Sclerosis/physiopathology , Exosomes/metabolism , Protein Folding , Superoxide Dismutase/chemistry , Amyotrophic Lateral Sclerosis/metabolism , Animals , Cell Line , Electrophoresis, Polyacrylamide Gel , Humans , Mice , Microscopy, Electron , Pinocytosis/physiology , RNA Interference , RNA, Small Interfering/genetics , Superoxide Dismutase/metabolism
5.
J Biol Chem ; 289(2): 789-802, 2014 Jan 10.
Article in English | MEDLINE | ID: mdl-24280226

ABSTRACT

Conversion of prion protein (PrP(C)) into a pathological isoform (PrP(Sc)) during prion infection occurs in lipid rafts and is dependent on cholesterol. Here, we show that prion infection increases the abundance of cholesterol transporter, ATP-binding cassette transporter type A1 (ATP-binding cassette transporter type A1), but reduces cholesterol efflux from neuronal cells leading to the accumulation of cellular cholesterol. Increased abundance of ABCA1 in prion disease was confirmed in prion-infected mice. Mechanistically, conversion of PrP(C) to the pathological isoform led to PrP(Sc) accumulation in rafts, displacement of ABCA1 from rafts and the cell surface, and enhanced internalization of ABCA1. These effects were abolished with reversal of prion infection or by loading cells with cholesterol. Stimulation of ABCA1 expression with liver X receptor agonist or overexpression of heterologous ABCA1 reduced the conversion of prion protein into the pathological form upon infection. These findings demonstrate a reciprocal connection between prion infection and cellular cholesterol metabolism, which plays an important role in the pathogenesis of prion infection in neuronal cells.


Subject(s)
Cholesterol/metabolism , Neurons/metabolism , PrPSc Proteins/metabolism , Prion Diseases/metabolism , 3T3 Cells , ATP Binding Cassette Transporter 1/genetics , ATP Binding Cassette Transporter 1/metabolism , Animals , Blotting, Western , Brain/metabolism , Brain/pathology , Cell Line , Cell Line, Tumor , Endosomes/metabolism , Gene Expression/genetics , Humans , Hydrocarbons, Fluorinated/pharmacology , Membrane Microdomains/metabolism , Mice , Mice, Inbred BALB C , Microscopy, Confocal , Neurons/pathology , Prion Diseases/genetics , RNA Interference , Reverse Transcriptase Polymerase Chain Reaction , Sulfonamides/pharmacology
6.
Kidney Int ; 86(2): 433-44, 2014 Aug.
Article in English | MEDLINE | ID: mdl-24352158

ABSTRACT

Micro RNAs (miRNAs) have been shown to circulate in biological fluids and are enclosed in vesicles such as exosomes; they are present in urine and represent a noninvasive methodology to detect biomarkers for diagnostic testing. The low abundance of RNA in urine creates difficulties in its isolation, of which exosomal miRNA is a small fraction, making downstream RNA assays challenging. Here, we investigate methods to maximize exosomal isolation and RNA yield for next-generation deep sequencing. Upon characterizing exosomal proteins and total RNA content in urine, several commercially available kits were tested for their RNA extraction efficiency. We subsequently used the methods with the highest miRNA content to profile baseline miRNA expression using next-generation deep sequencing. Comparisons of miRNA profiles were also made with exosomes isolated by differential ultracentrifugation methodology and a commercially available column-based protocol. Overall, miRNAs were found to be significantly enriched and intact in urine-derived exosomes compared with cell-free urine. The presence of other noncoding RNAs such as small nuclear and small nucleolar RNA in the exosomes, in addition to coding sequences related to kidney and bladder conditions, was also detected. Our study extensively characterizes the RNA content of exosomes isolated from urine, providing the potential to identify miRNA biomarkers in human urine.


Subject(s)
Exosomes/chemistry , Exosomes/genetics , High-Throughput Nucleotide Sequencing/methods , MicroRNAs/genetics , MicroRNAs/urine , Adult , Biomarkers/urine , Blotting, Western , Exosomes/ultrastructure , Female , Gene Expression Profiling/methods , Genetic Markers , Humans , Male , Microscopy, Electron, Transmission , Ultracentrifugation , Urinalysis/methods , Young Adult
7.
J Virol ; 88(5): 2690-703, 2014 Mar.
Article in English | MEDLINE | ID: mdl-24352465

ABSTRACT

UNLABELLED: Prion diseases are a group of fatal and incurable neurodegenerative diseases affecting both humans and animals. The principal mechanism of these diseases involves the misfolding the host-encoded cellular prion protein, PrP(C), into the disease-associated isoform, PrP(Sc). Familial forms of human prion disease include those associated with the mutations G114V and A117V, which lie in the hydrophobic domain of PrP. Here we have studied the murine homologues (G113V and A116V) of these mutations using cell-based and animal models of prion infection. Under normal circumstances, the mutant forms of PrP(C) share similar processing, cellular localization, and physicochemical properties with wild-type mouse PrP (MoPrP). However, upon exposure of susceptible cell lines expressing these mutants to infectious prions, very low levels of protease-resistant aggregated PrP(Sc) are formed. Subsequent mouse bioassay revealed high levels of infectivity present in these cells. Thus, these mutations appear to limit the formation of aggregated PrP(Sc), giving rise to the accumulation of a relatively soluble, protease sensitive, prion species that is highly neurotoxic. Given that these mutations lie next to the glycine-rich region of PrP that can abrogate prion infection, these findings provide further support for small, protease-sensitive prion species having a significant role in the progression of prion disease and that the hydrophobic domain is an important determinant of PrP conversion. IMPORTANCE: Prion diseases are transmissible neurodegenerative diseases associated with an infectious agent called a prion. Prions are comprised of an abnormally folded form of the prion protein (PrP) that is normally resistant to enzymes called proteases. In humans, prion disease can occur in individuals who inherited mutations in the prion protein gene. Here we have studied the effects of two of these mutations and show that they influence the properties of the prions that can be formed. We show that the mutants make highly infectious prions that are more sensitive to protease treatment. This study highlights a certain region of the prion protein as being involved in this effect and demonstrates that prions are not always resistant to protease treatment.


Subject(s)
Mutation , Prions/genetics , Prions/metabolism , Protein Interaction Domains and Motifs , Amino Acid Sequence , Amino Acid Substitution , Animals , Brain/metabolism , Brain/pathology , Cell Line , Codon , Gene Expression , Humans , Hydrophobic and Hydrophilic Interactions , Mice , Molecular Sequence Data , Peptide Hydrolases/metabolism , PrPC Proteins/chemistry , PrPC Proteins/genetics , PrPC Proteins/metabolism , PrPSc Proteins/chemistry , PrPSc Proteins/genetics , PrPSc Proteins/metabolism , Prion Diseases/genetics , Prion Diseases/metabolism , Prion Diseases/pathology , Prions/chemistry , Proteolysis , Sequence Alignment
8.
Mol Cell Proteomics ; 12(8): 2148-59, 2013 Aug.
Article in English | MEDLINE | ID: mdl-23645497

ABSTRACT

Epithelial-mesenchymal transition (EMT) is a highly conserved morphogenic process defined by the loss of epithelial characteristics and the acquisition of a mesenchymal phenotype. EMT is associated with increased aggressiveness, invasiveness, and metastatic potential in carcinoma cells. To assess the contribution of extracellular vesicles following EMT, we conducted a proteomic analysis of exosomes released from Madin-Darby canine kidney (MDCK) cells, and MDCK cells transformed with oncogenic H-Ras (21D1 cells). Exosomes are 40-100 nm membranous vesicles originating from the inward budding of late endosomes and multivesicular bodies and are released from cells on fusion of multivesicular bodies with the plasma membrane. Exosomes from MDCK cells (MDCK-Exos) and 21D1 cells (21D1-Exos) were purified from cell culture media using density gradient centrifugation (OptiPrep™), and protein content identified by GeLC-MS/MS proteomic profiling. Both MDCK- and 21D1-Exos populations were morphologically similar by cryo-electron microscopy and contained stereotypical exosome marker proteins such as TSG101, Alix, and CD63. In this study we show that the expression levels of typical EMT hallmark proteins seen in whole cells correlate with those observed in MDCK- and 21D1-Exos, i.e. reduction of characteristic inhibitor of angiogenesis, thrombospondin-1, and epithelial markers E-cadherin, and EpCAM, with a concomitant up-regulation of mesenchymal makers such as vimentin. Further, we reveal that 21D1-Exos are enriched with several proteases (e.g. MMP-1, -14, -19, ADAM-10, and ADAMTS1), and integrins (e.g. ITGB1, ITGA3, and ITGA6) that have been recently implicated in regulating the tumor microenvironment to promote metastatic progression. A salient finding of this study was the unique presence of key transcriptional regulators (e.g. the master transcriptional regulator YBX1) and core splicing complex components (e.g. SF3B1, SF3B3, and SFRS1) in mesenchymal 21D1-Exos. Taken together, our findings reveal that exosomes from Ras-transformed MDCK cells are reprogrammed with factors which may be capable of inducing EMT in recipient cells.


Subject(s)
Epithelial-Mesenchymal Transition , Exosomes/metabolism , ras Proteins/metabolism , Animals , Annexins/metabolism , Cell Transformation, Neoplastic/metabolism , Dogs , Genes, ras , Integrins/metabolism , Madin Darby Canine Kidney Cells , Peptide Hydrolases/metabolism , Proteome , Tetraspanins/metabolism
9.
Cell ; 153(5): 1120-33, 2013 May 23.
Article in English | MEDLINE | ID: mdl-23683579

ABSTRACT

Cell-cell communication is an important mechanism for information exchange promoting cell survival for the control of features such as population density and differentiation. We determined that Plasmodium falciparum-infected red blood cells directly communicate between parasites within a population using exosome-like vesicles that are capable of delivering genes. Importantly, communication via exosome-like vesicles promotes differentiation to sexual forms at a rate that suggests that signaling is involved. Furthermore, we have identified a P. falciparum protein, PfPTP2, that plays a key role in efficient communication. This study reveals a previously unidentified pathway of P. falciparum biology critical for survival in the host and transmission to mosquitoes. This identifies a pathway for the development of agents to block parasite transmission from the human host to the mosquito.


Subject(s)
Cell Communication , Erythrocytes/pathology , Erythrocytes/parasitology , Malaria, Falciparum/pathology , Malaria, Falciparum/parasitology , Plasmodium falciparum/physiology , Actins/antagonists & inhibitors , Animals , Culicidae/parasitology , Drug Resistance , Exosomes/parasitology , Humans , Microtubules/drug effects , Plasmids/genetics , Plasmodium falciparum/growth & development , Signal Transduction , Trophozoites/physiology
10.
Nucleic Acids Res ; 40(21): 10937-49, 2012 Nov.
Article in English | MEDLINE | ID: mdl-22965126

ABSTRACT

Prion diseases are transmissible neurodegenerative disorders affecting both humans and animals. The cellular prion protein, PrP(C), and the abnormal infectious form, PrP(Sc), are found associated with exosomes, which are small 50-130 nm vesicles released from cells. Exosomes also contain microRNAs (miRNAs), a class of non-coding RNA, and have been utilized to identify miRNA signatures for diagnosis of disease. While some miRNAs are deregulated in prion-infected brain tissue, the role of miRNA in circulating exosomes released during prion disease is unknown. Here, we investigated the miRNA profile in exosomes released from prion-infected neuronal cells. We performed the first small RNA deep sequencing study of exosomes and demonstrated that neuronal exosomes contain a diverse range of RNA species including retroviral RNA repeat regions, messenger RNA fragments, transfer RNA fragments, non-coding RNA, small nuclear RNA, small nucleolar RNA, small cytoplasmic RNA, silencing RNA as well as known and novel candidate miRNA. Significantly, we show that exosomes released by prion-infected neuronal cells have increased let-7b, let-7i, miR-128a, miR-21, miR-222, miR-29b, miR-342-3p and miR-424 levels with decreased miR-146 a levels compared to non-infected exosomes. Overall, these results demonstrate that circulating exosomes released during prion infection have a distinct miRNA signature that can be utilized for diagnosis and understanding pathogenic mechanisms in prion disease.


Subject(s)
Exosomes/metabolism , MicroRNAs/metabolism , Neurons/metabolism , Prions/physiology , Animals , Cell Line , High-Throughput Nucleotide Sequencing , Hypothalamus/cytology , Mice , Mice, Inbred BALB C , MicroRNAs/chemistry , RNA, Small Untranslated/chemistry , RNA, Small Untranslated/metabolism , Sequence Analysis, RNA , Transcriptome
11.
FASEB J ; 26(10): 4160-73, 2012 Oct.
Article in English | MEDLINE | ID: mdl-22767229

ABSTRACT

Exosomes are small membrane-bound vesicles released from cells and found in vivo in most biological fluids. Functions reported for exosomes include cell-cell communication, roles in modulating immune responses, and roles in the transfer of pathogens such as prions. Here we investigated the molecular characteristics of the structure of exosomes that harbor prion infectivity to determine the native structure of exosomes and whether infected exosomes have a distinct structure. Cryo-electron tomography revealed the previously unidentified ultrastructural detail of exosomes with high resolution. Exosomes were found to be naturally spherical in shape and to have a diverse population that varies in size and internal structure, such as differences in the number of membrane structures. Exosomes isolated from prion-infected cells contained a significantly different population of exosomes with distinct structural features compared to control vesicles from mock-infected cells. Exosomes are highly structured vesicles that can modify their structure on altering their protein cargo. This finding provides further insight into the role that the exosomal protein cargo plays on influencing the structure of the vesicles as well as highlighting the diversity of exosomes and their relationship to biological processes.


Subject(s)
Exosomes/metabolism , Prions/metabolism , Animals , Cell Line , Cryoelectron Microscopy , Electron Microscope Tomography , Exosomes/ultrastructure , Mice , Microscopy, Electron, Transmission , Prions/ultrastructure , Protein Folding , Rabbits
12.
Front Physiol ; 3: 124, 2012.
Article in English | MEDLINE | ID: mdl-22563321

ABSTRACT

Exosomes are small membranous vesicles secreted by a number of cell types including neurons and can be isolated from conditioned cell media or bodily fluids such as urine and plasma. Exosome biogenesis involves the inward budding of endosomes to form multivesicular bodies (MVB). When fused with the plasma membrane, the MVB releases the vesicles into the extracellular environment as exosomes. Proposed functions of these vesicles include roles in cell-cell signaling, removal of unwanted proteins, and the transfer of pathogens between cells. One such pathogen which exploits this pathway is the prion, the infectious particle responsible for the transmissible neurodegenerative diseases such as Creutzfeldt-Jakob disease (CJD) of humans or bovine spongiform encephalopathy (BSE) of cattle. Similarly, exosomes are also involved in the processing of the amyloid precursor protein (APP) which is associated with Alzheimer's disease. Exosomes have been shown to contain full-length APP and several distinct proteolytically cleaved products of APP, including Aß. In addition, these fragments can be modulated using inhibitors of the proteases involved in APP cleavage. These observations provide further evidence for a novel pathway in which PrP and APP fragments are released from cells. Other proteins such as superoxide dismutase I and alpha-synuclein (involved in amyotrophic lateral sclerosis and Parkinson's disease, respectively) are also found associated with exosomes. This review will focus on the role of exosomes in neurodegenerative disorders and discuss the potential of these vesicles for the spread of neurotoxicity, therapeutics, and diagnostics for these diseases.

13.
J Biol Chem ; 285(26): 20213-23, 2010 Jun 25.
Article in English | MEDLINE | ID: mdl-20356832

ABSTRACT

Prion diseases are associated with the misfolding of the endogenously expressed prion protein (designated PrP(C)) into an abnormal isoform (PrP(Sc)) that has infectious properties. The hydrophobic domain of PrP(C) is highly conserved and contains a series of glycine residues that show perfect conservation among all species, strongly suggesting it has functional and evolutionary significance. These glycine residues appear to form repeats of the GXXXG protein-protein interaction motif (two glycines separated by any three residues); the retention of these residues is significant and presumably relates to the functionality of PrP(C). Mutagenesis studies demonstrate that minor alterations to this highly conserved region of PrP(C) drastically affect the ability of cells to uptake and replicate prion infection in both cell and animal bioassay. The localization and processing of mutant PrP(C) are not affected, although in vitro and in vivo studies demonstrate that this region is not essential for interaction with PrP(Sc), suggesting these residues provide conformational flexibility. These data suggest that this region of PrP(C) is critical in the misfolding process and could serve as a novel, species-independent target for prion disease therapeutics.


Subject(s)
Amino Acid Motifs , Glycine/genetics , PrPC Proteins/genetics , PrPSc Proteins/genetics , Amino Acid Sequence , Animals , Brain/metabolism , Brain/pathology , Cell Line , Glycine/metabolism , Hydrophobic and Hydrophilic Interactions , Membrane Microdomains/metabolism , Mice , Microscopy, Fluorescence , Molecular Sequence Data , Mutation , PrPC Proteins/chemistry , PrPC Proteins/metabolism , PrPSc Proteins/chemistry , PrPSc Proteins/metabolism , Protein Binding , Protein Folding , Sequence Homology, Amino Acid , Transfection
14.
Biochem Biophys Res Commun ; 380(3): 564-8, 2009 Mar 13.
Article in English | MEDLINE | ID: mdl-19285001

ABSTRACT

Prion diseases are associated with the misfolding of the host-encoded cellular prion protein (PrP(C)) into a disease associated form (PrP(Sc)). Recombinant PrP can be refolded into either an alpha-helical rich conformation (alpha-PrP) resembling PrP(C) or a beta-sheet rich, protease resistant form similar to PrP(Sc). Here, we generated tetracysteine tagged recombinant PrP, folded this into alpha- or beta-PrP and determined the levels of FlAsH fluorescence. Insertion of the tetracysteine tag at three different sites within the 91-111 epitope readily distinguished beta-PrP from alpha-PrP upon FlAsH labeling. Labelling of tetracysteine tagged PrP in the alpha-helical form showed minimal fluorescence, whereas labeling of tagged PrP in the beta-sheet form showed high fluorescence indicating that this region is exposed upon conversion. This highlights a region of PrP that can be implicated in the development of diagnostics and is a novel, protease free mechanism for distinguishing PrP(Sc) from PrP(C). This technique may also be applied to any protein that undergoes conformational change and/or misfolding such as those involved in other neurodegenerative disorders including Alzheimer's, Huntington's and Parkinson's diseases.


Subject(s)
Fluoresceins/chemistry , Neurodegenerative Diseases/diagnosis , Organometallic Compounds/chemistry , PrPC Proteins/chemistry , Prion Diseases/diagnosis , Alzheimer Disease/diagnosis , Animals , Cysteine/chemistry , Fluorescence , Huntington Disease/diagnosis , Luminescent Measurements , Mice , Parkinson Disease/diagnosis , Protein Folding , Protein Structure, Secondary , Recombinant Proteins/biosynthesis , Recombinant Proteins/chemistry
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