4.8 Article

Direct Observation of Heterogeneous Amyloid Fibril Growth Kinetics via Two-Color Super-Resolution Microscopy

期刊

NANO LETTERS
卷 14, 期 1, 页码 339-345

出版社

AMER CHEMICAL SOC
DOI: 10.1021/nl4041093

关键词

Two-color super-resolution microscopy; aggregation kinetics; amyloid fibril self-assembly; alpha-synuclein; fibril polymorphism

资金

  1. Medical Research Council U.K. [MR/K015850/1, MR/K02292X/1]
  2. Alzheimer Research U.K. [ARUK-EG2012A-1]
  3. U.K. EPSRC [EP/H018301/1]
  4. Wellcome Trust [089703/Z/09/Z]
  5. Swiss National Science Foundation
  6. Cambridge Wellcome Trust
  7. Magdalene College, Cambridge
  8. Leverhulme Trust
  9. EPSRC [EP/H018301/1] Funding Source: UKRI
  10. MRC [MC_G1000734, MR/K02292X/1, MR/K015850/1] Funding Source: UKRI
  11. Alzheimers Research UK [ARUK-PG2013-14, ARUK-EG2012A-1] Funding Source: researchfish
  12. Engineering and Physical Sciences Research Council [EP/H018301/1] Funding Source: researchfish
  13. Medical Research Council [MR/K02292X/1, MR/K015850/1, MC_G1000734] Funding Source: researchfish

向作者/读者索取更多资源

The self-assembly of normally soluble proteins into fibrillar amyloid structures is associated with a range of neuro-degenerative disorders, such as Parkinson's and Alzheimer's diseases. In the present study, we show that specific events in the kinetics of the complex, multistep aggregation process of one such protein, alpha-synuclein, whose aggregation is a characteristic hallmark of Parkinson's disease, can be followed at the molecular level using optical super-resolution microscopy. We have explored in particular the elongation of preformed alpha-synuclein fibrils; using two-color single-molecule localization microscopy we are able to provide conclusive evidence that the elongation proceeds from both ends of the fibril seeds. Furthermore, the technique reveals a large heterogeneity in the growth rates of individual fibrils; some fibrils exhibit no detectable growth, whereas others extend to more than ten times their original length within hours. These large variations in the growth kinetics can be attributed to fibril structural polymorphism. Our technique offers new capabilities in the study of amyloid growth dynamics at. the molecular level and is readily translated to the study of the self-assembly of other nanostructures.

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