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Ulf Olsson. Portrait.

Ulf Olsson

Professor

Ulf Olsson. Portrait.

On the micelle formation of DNAJB6b

Author

  • Andreas Carlsson
  • Ulf Olsson
  • Sara Linse

Summary, in English

The human chaperone DNAJB6b increases the solubility of proteins involved in protein aggregation diseases and suppresses the nucleation of amyloid structures. Due to such favourable properties, DNAJB6b has gained increasing attention over the past decade. The understanding of how DNAJB6b operates on a molecular level may aid the design of inhibitors against amyloid formation. In this work, fundamental aspects of DNAJB6b self-assembly have been examined, providing a basis for future experimental designs and conclusions. The results imply the formation of large chaperone clusters in a concentration-dependent manner. Microfluidic diffusional sizing (MDS) was used to evaluate how DNAJB6b average hydrodynamic radius varies with concentration. We found that, in 20 mM sodium phosphate buffer, 0.2 mM EDTA, at pH 8.0 and room temperature, DNAJB6b displays a micellar behaviour, with a critical micelle concentration (CMC) of around 120 nM. The average hydrodynamic radius appears to be concentration independent between ∼10 μM and 100 μM, with a mean radius of about 12 nm. The CMC found by MDS is supported by native agarose gel electrophoresis and the size distribution appears bimodal in the DNAJB6b concentration range ∼100 nM to 4 μM.

Department/s

  • LU Profile Area: Light and Materials
  • LTH Profile Area: Nanoscience and Semiconductor Technology
  • Biochemistry and Structural Biology
  • NanoLund: Centre for Nanoscience
  • Physical Chemistry
  • LU Profile Area: Proactive Ageing
  • MultiPark: Multidisciplinary research on neurodegenerative diseases

Publishing year

2023

Language

English

Publication/Series

QRB Discovery

Volume

4

Document type

Article

Publisher

Cambridge University Press

Topic

  • Physical Chemistry (including Surface- and Colloid Chemistry)

Keywords

  • affinity
  • aggregation
  • chaperone action
  • oligomers
  • self-association
  • SDG 3 - Good Health and Well-being

Status

Published

Project

  • Chaperone action - a thermodynamic view

ISBN/ISSN/Other

  • ISSN: 2633-2892