Investigation of quaternary structure of aggregating 3-ketosteroid dehydrogenase from Sterolibacterium denitrificans: In the pursuit of consensus of various biophysical techniques.

Adsorption kinetics Atomic force microscopy of proteins Isoelectric point Protein aggregation Quaternary structure Size excursion chromatography

Journal

Biochimica et biophysica acta. General subjects
ISSN: 1872-8006
Titre abrégé: Biochim Biophys Acta Gen Subj
Pays: Netherlands
ID NLM: 101731726

Informations de publication

Date de publication:
06 2019
Historique:
received: 29 10 2018
revised: 15 02 2019
accepted: 10 03 2019
pubmed: 17 3 2019
medline: 23 1 2020
entrez: 17 3 2019
Statut: ppublish

Résumé

In this work we analyzed the quaternary structure of FAD-dependent 3-ketosteroid dehydrogenase (AcmB) from Sterolibacterium denitrificans, the protein that in solution forms massive aggregates (>600 kDa). Using size-excursion chromatography (SEC), dynamic light scattering (DLS), native-PAGE and atomic force microscopy (AFM) we studied the nature of enzyme aggregation. Partial protein de-aggregation was facilitated by the presence of non-ionic detergent such as Tween 20 or by a high degree of protein dilution but not by addition of a reducing agent or an increase of ionic strength. De-aggregating influence of Tween 20 had no impact on either enzyme's specific activity or FAD reconstitution to recombinant AcmB. The joint experimental (DLS, isoelectric focusing) and theoretical investigations demonstrated gradual shift of enzyme's isoelectric point upon aggregation from 8.6 for a monomeric form to even 5.0. The AFM imaging on mica or highly oriented pyrolytic graphite (HOPG) surface enabled observation of individual protein monomers deposited from a highly diluted solution (0.2 μg/ml). Such approach revealed that native AcmB can indeed be monomeric. AFM imaging supported by theoretical random sequential adsorption (RSA) kinetics allowed estimation of distribution enzyme forms in the bulk solution: 5%, monomer, 11.4% dimer and 12% trimer. Finally, based on results of AFM as well as analysis of the surface of AcmB homology models we have observed that aggregation is most probably initiated by hydrophobic forces and then assisted by electrostatic attraction between negatively charged aggregates and positively charged monomers.

Identifiants

pubmed: 30876874
pii: S0304-4165(19)30059-5
doi: 10.1016/j.bbagen.2019.03.009
pii:
doi:

Substances chimiques

Bacterial Proteins 0
Polysorbates 0
Protein Aggregates 0
Oxidoreductases EC 1.-

Types de publication

Journal Article Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Pagination

1027-1039

Informations de copyright

Copyright © 2019 Elsevier B.V. All rights reserved.

Auteurs

Kamila Sofińska (K)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Agnieszka M Wojtkiewicz (AM)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland. Electronic address: a.wojtkiewicz@cyfronet.pl.

Patrycja Wójcik (P)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Olga Zastawny (O)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Maciej Guzik (M)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Agnieszka Winiarska (A)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Piotr Waligórski (P)

The Franciszek Górski Institute of Plant Physiology, Polish Academy of Sciences, Niezapominajek 8, PL30239 Krakow, Poland.

Michał Cieśla (M)

Marian Smoluchowski Institute of Physics, Jagiellonian University, Lojasiewicza 11, 30-348 Krakow, Poland.

Jakub Barbasz (J)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Maciej Szaleniec (M)

Jerzy Haber Institute of Catalysis and Surface Chemistry, Polish Academy of Sciences, Niezapominajek 8, PL30239, Krakow, Poland.

Articles similaires

Photosynthesis Ribulose-Bisphosphate Carboxylase Carbon Dioxide Molecular Dynamics Simulation Cyanobacteria

Two codependent routes lead to high-level MRSA.

Abimbola Feyisara Adedeji-Olulana, Katarzyna Wacnik, Lucia Lafage et al.
1.00
Methicillin-Resistant Staphylococcus aureus Penicillin-Binding Proteins Peptidoglycan Bacterial Proteins Anti-Bacterial Agents
Mycobacterium tuberculosis Animals Guinea Pigs Bacterial Proteins Toxin-Antitoxin Systems

Helicobacter pylori biofilm interference by N-acyl homoserine lactonases: in vitro and in silico approaches.

Vinoj Gopalakrishnan, Vaijayanthi Saravanan, Maria Infant Majula Shifani Mahendran et al.
1.00
Biofilms Helicobacter pylori Bacterial Proteins Carboxylic Ester Hydrolases Molecular Docking Simulation

Classifications MeSH