Literature DB >> 27505032

Chaperonin-Based Biolayer Interferometry To Assess the Kinetic Stability of Metastable, Aggregation-Prone Proteins.

Wendy A Lea1, Pierce T O'Neil1, Alexandra J Machen1, Subhashchandra Naik1, Tapan Chaudhri2, Wesley McGinn-Straub3, Alexander Tischer4, Matthew T Auton4, Joshua R Burns5, Michael R Baldwin5, Karen R Khar6, John Karanicolas6, Mark T Fisher1.   

Abstract

Stabilizing the folded state of metastable and/or aggregation-prone proteins through exogenous ligand binding is an appealing strategy for decreasing disease pathologies caused by protein folding defects or deleterious kinetic transitions. Current methods of examining binding of a ligand to these marginally stable native states are limited because protein aggregation typically interferes with analysis. Here, we describe a rapid method for assessing the kinetic stability of folded proteins and monitoring the effects of ligand stabilization for both intrinsically stable proteins (monomers, oligomers, and multidomain proteins) and metastable proteins (e.g., low Tm) that uses a new GroEL chaperonin-based biolayer interferometry (BLI) denaturant pulse platform. A kinetically controlled denaturation isotherm is generated by exposing a target protein, immobilized on a BLI biosensor, to increasing denaturant concentrations (urea or GuHCl) in a pulsatile manner to induce partial or complete unfolding of the attached protein population. Following the rapid removal of the denaturant, the extent of hydrophobic unfolded/partially folded species that remains is detected by an increased level of GroEL binding. Because this kinetic denaturant pulse is brief, the amplitude of binding of GroEL to the immobilized protein depends on the duration of the exposure to the denaturant, the concentration of the denaturant, wash times, and the underlying protein unfolding-refolding kinetics; fixing all other parameters and plotting the GroEL binding amplitude versus denaturant pulse concentration result in a kinetically controlled denaturation isotherm. When folding osmolytes or stabilizing ligands are added to the immobilized target proteins before and during the denaturant pulse, the diminished population of unfolded/partially folded protein manifests as a decreased level of GroEL binding and/or a marked shift in these kinetically controlled denaturation profiles to higher denaturant concentrations. This particular platform approach can be used to identify small molecules and/or solution conditions that can stabilize or destabilize thermally stable proteins, multidomain proteins, oligomeric proteins, and, most importantly, aggregation-prone metastable proteins.

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Year:  2016        PMID: 27505032      PMCID: PMC5524994          DOI: 10.1021/acs.biochem.6b00293

Source DB:  PubMed          Journal:  Biochemistry        ISSN: 0006-2960            Impact factor:   3.162


  83 in total

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5.  Differences in thermal stability between reduced and oxidized cytochrome b562 from Escherichia coli.

Authors:  M T Fisher
Journal:  Biochemistry       Date:  1991-10-15       Impact factor: 3.162

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8.  Amyotrophic lateral sclerosis and structural defects in Cu,Zn superoxide dismutase.

Authors:  H X Deng; A Hentati; J A Tainer; Z Iqbal; A Cayabyab; W Y Hung; E D Getzoff; P Hu; B Herzfeldt; R P Roos
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2.  Constructing Kinetically Controlled Denaturation Isotherms of Folded Proteins Using Denaturant-Pulse Chaperonin Binding.

Authors:  Pierce T O'Neil; Alexandra J Machen; Jackie A Thompson; Wei Wang; Quyen Q Hoang; Michael R Baldwin; Karen R Khar; John Karanicolas; Mark T Fisher
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3.  The Chaperonin GroEL: A Versatile Tool for Applied Biotechnology Platforms.

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