4.2 Article

Characterization of Molten Globule PopB in Absence and Presence of Its Chaperone PcrH

Journal

PROTEIN JOURNAL
Volume 31, Issue 5, Pages 401-416

Publisher

SPRINGER
DOI: 10.1007/s10930-012-9416-7

Keywords

Type III secretion system; Circular dichroism; ANS binding; Molten globule; Fluorescence

Funding

  1. Department of Science and Technology, Government of India
  2. Indian Institute of Chemical Biology (IICB), a unit of Council of Scientific and Industrial Research

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The TTSS encoding translocator operon of Pseudomonas aeruginosa consists of a major translocator protein PopB, minor translocator protein PopD and their cognate chaperone PcrH. Far-UV CD spectra and secondary structure prediction servers predict an alpha-helical model for PopB, PcrH and PopB-PcrH complex. PopB itself forms a single species of higher order oligomer (15 mer) as seen from AUC, but in complex with PcrH, both monomeric (1:1) and oligomeric form exist. PopB has large solvent-exposed hydrophobic patches and exists as an unordered molten globule in its native state, but on forming complex with PcrH it gets transformed into an ordered molten globule. Tryptophan fluorescence spectrum indicates that PopB interacts with the first TPR region of dimeric PcrH to form a stable PopB-PcrH complex that has a partial rigid structure with a large hydrodynamic radius and few tertiary contacts. The pH-dependent studies of PopB, PcrH and complex by ANS fluorescence, urea induced unfolding and thermal denaturation experiments prove that PcrH not only provides structural support to the ordered molten globule PopB in complex but also undergoes conformational change to assist PopB to pass through the needle complex of TTSS and form pores in the host cell membrane. ITC experiments show a strong affinity (K-d similar to 0.37 mu M) of PopB for PcrH at pH 7.8, which reduces to similar to 0.68 mu M at pH 5.8. PcrH also loses its rigid tertiary structure at pH 5 and attains a molten globule conformation. This indicates that the decrease in pH releases PopB molecules and thus triggers the TTSS activation mechanism for the formation of a functional translocon.

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