Literature DB >> 1906346

Alternatively folded states of an immunoglobulin.

J Buchner1, M Renner, H Lilie, H J Hinz, R Jaenicke, T Kiefhabel, R Rudolph.   

Abstract

Well-defined, non-native protein structures of low stability have been increasingly observed as intermediates in protein folding or as equilibrium structures populated under specific solvent conditions. These intermediate structures, frequently referred to as molten globule states, are characterized by the presence of secondary structure, a lack of significant tertiary contacts, increased hydrophobicity and partial specific volume as compared to native structures, and low cooperativity in thermal unfolding. The present study demonstrates that under acidic conditions (pH less than 3) the antibody MAK33 can assume a folded stable conformation. This A-state is characterized by a high degree of secondary structure, increased hydrophobicity, a native-like maximum wavelength of fluorescence emission, and a tendency toward slow aggregation. A prominent feature of this low-pH conformation is the stability against denaturant and thermal unfolding that is manifested in highly cooperative reversible phase transitions indicative of the existence of well-defined tertiary contacts. These thermodynamic results are corroborated by the kinetics of folding from the completely unfolded chain to the alternatively folded state at pH 2. The given data suggest that MAK33 at pH 2 adopts a cooperative structure that differs from the native immunoglobulin fold at pH 7. This alternatively folded state exhibits certain characteristics of the molten globule but differs distinctly from it by its extraordinary structural stability that is characteristic for native protein structures.

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Year:  1991        PMID: 1906346     DOI: 10.1021/bi00242a016

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


  22 in total

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5.  Discovery and characterization of a peptide motif that specifically recognizes a non-native conformation of human IgG induced by acidic pH conditions.

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6.  Tracing primordial protein evolution through structurally guided stepwise segment elongation.

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7.  Advanced analyses of kinetic stabilities of iggs modified by mutations and glycosylation.

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8.  Acid stability of the kinetically stable alkaline serine protease possessing polyproline II fold.

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9.  Protein aggregation and mitigation strategy in low pH viral inactivation for monoclonal antibody purification.

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10.  Using empirical phase diagrams to understand the role of intramolecular dynamics in immunoglobulin G stability.

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