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 PMID:33836595  

Kinetic analysis reveals that independent nucleation events determine the progression of polyglutamine aggregation in C. elegans.

Tessa Sinnige | Georg Meisl | Thomas C T Michaels | Michele Vendruscolo | Tuomas P J Knowles | Richard I Morimoto
Proceedings of the National Academy of Sciences of the United States of America | 2021

Protein aggregation is associated with a wide range of degenerative human diseases with devastating consequences, as exemplified by Alzheimer's, Parkinson's, and Huntington's diseases. In vitro kinetic studies have provided a mechanistic understanding of the aggregation process at the molecular level. However, it has so far remained largely unclear to what extent the biophysical principles of amyloid formation learned in vitro translate to the complex environment of living organisms. Here, we take advantage of the unique properties of a Caenorhabditis elegans model expressing a fluorescently tagged polyglutamine (polyQ) protein, which aggregates into discrete micrometer-sized inclusions that can be directly visualized in real time. We provide a quantitative analysis of protein aggregation in this system and show that the data are described by a molecular model where stochastic nucleation occurs independently in each cell, followed by rapid aggregate growth. Global fitting of the image-based aggregation kinetics reveals a nucleation rate corresponding to 0.01 h-1 per cell at 1 mM intracellular protein concentration, and shows that the intrinsic molecular stochasticity of nucleation accounts for a significant fraction of the observed animal-to-animal variation. Our results highlight how independent, stochastic nucleation events in individual cells control the overall progression of polyQ aggregation in a living animal. The key finding that the biophysical principles associated with protein aggregation in small volumes remain the governing factors, even in the complex environment of a living organism, will be critical for the interpretation of in vivo data from a wide range of protein aggregation diseases.

Pubmed ID: 33836595

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Associated grants

  • Agency: NIA NIH HHS, United States
    Id: RF1 AG057296
  • Agency: NIA NIH HHS, United States
    Id: R37 AG026647
  • Agency: NIA NIH HHS, United States
    Id: P01 AG049665
  • Agency: NIA NIH HHS, United States
    Id: R56 AG059579
  • Agency: NIA NIH HHS, United States
    Id: P01 AG054407

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Northwestern University Biological Imaging Core Facility (service resource)

RRID:SCR_017767

Shared use and training facility. Servies include Confocal Laser Scanning Microscopy, DIC (Differential Interference Contrast Microscopy), FCS (Fluorescence Correlation Spectroscopy), FLIP (Fluorescence-Loss-In-Photobleaching), FRAP (Fluorescence Recovery After Photobleaching),FRET (Fluorescence/ Forster Resonance Energy Transfer),Live-cell Imaging,Phase Contrast Microscopy,Widefield Fluorescence Microscopy,Image Processing and Analysis. Services include poster printing, and specimen preparation. Provides training for most instruments. Instruments include Leica DM6B Fluorescent Microscope (Hogan 5-112), Leica TCS SP8 Confocal Microscope (Hogan 5-128),Leica SP5 II Confocal Microscope (Hogan 5-114),Leica Spinning Disk Confocal Microscope (Hogan 5-113),DeltaVision Deconvolution Microscope (Hogan 5-111),Olympus IX83 Inverted Fluorescent Microscope (Silverman Hall 1-567),Olympus IX53 Inverted Color Microscope (Silverman Hall 1-567), LionHeart Automated Microscope BioTeck (Hogan 5-110).

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