4.6 Article

The acidic pH-induced structural changes in apo-CP43 by spectral methodologies and molecular dynamics simulations

Journal

JOURNAL OF MOLECULAR STRUCTURE
Volume 1152, Issue -, Pages 177-188

Publisher

ELSEVIER SCIENCE BV
DOI: 10.1016/j.molstruc.2017.09.082

Keywords

Apo-CP43; Acidic denaturation; Fluorescence spectrum; MD simulation

Funding

  1. National Basic Research 973 Program [2015CB150102, 2009CB118502]
  2. National Natural Sciences Foundation of China [30870181]

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CP43 is closely associated with the photosystem II and exists the plant thylakoid membranes. The acidic pH-induced structural changes had been investigated by fluorescence spectrum, ANS spectrum, RLS spectrum, energy transfer experiment, acrylamide fluorescence quenching assay and MD simulation. The fluorescence spectrum indicated that the structural changes in acidic pH-induced process were a four-state model, which was nature state (N), partial unfolding state (PU), refolding state (R), and molten-globule state (M), respectively. Analysis of ANS spectrum illustrated that inner hydrophobic core exposed partially to surface below pH 2.0 and inferred also that the molten-globule state existed. The RLS spectrum showed the aggregation of apo-CP43 around the pi (pH 4.5-4.0). The alterations of apo-CP43 secondary structure with different acidic treatments were confirmed by FTIR spectrum. The energy transfer experiment and quenching research demonstrated structural change at pH 4.0 was loosest. The RMSF suggested two terminals played an important function in acidic denaturation process. The distance of two terminals shown slight difference in acidic pH-induced process during the unfolding process, both N-terminal and C-terminal occupied the dominant role. However, the N-terminal accounted for the main part in the refolding process. All kinds of SASA values corresponded to spectral results. The tertiary and secondary structure by MD simulation indicated that the part transmembrane alpha-helix was destroyed at low pH. (c) 2017 Elsevier B.V. All rights reserved.

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