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Conformational Changes in Two Inter-Helical Loops of Mhp1 Membrane Transporter

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  • Hyun Deok Song
  • Fangqiang Zhu

Abstract

Mhp1 is a bacterial secondary transporter with high-resolution crystal structures available for both the outward- and inward-facing conformations. Through molecular dynamics simulations of the ligand-free Mhp1 as well as analysis of its crystal structures, here we show that two inter-helical loops, respectively located at the extra- and intracellular ends of the “hash motif” in the protein, play important roles in the conformational transition. In the outward- and inward-facing states of the protein, the loops adopt different secondary structures, either wrapped to the end of an alpha-helix, or unwrapped to extended conformations. In equilibrium simulations of 100 ns with Mhp1 in explicit lipids and water, the loop conformations remain largely stable. In targeted molecular dynamics simulations with the protein structure driven from one state to the other, the loops exhibit resistance and only undergo abrupt changes when other parts of the protein already approach the target conformation. Free energy calculations on the isolated loops further confirm that the wrapping/unwrapping transitions are associated with substantial energetic barriers, and consist of multiple sequential steps involving the rotation of certain backbone torsion angles. Furthermore, in simulations with the loops driven from one state to the other, a large part of the protein follows the loops to the target conformation. Taken together, our simulations suggest that changes of the loop secondary structures would be among the slow degrees of freedom in the conformational transition of the entire protein. Incorporation of detailed loop structures into the reaction coordinate, therefore, should improve the convergence and relevance of the resulting conformational free energy.

Suggested Citation

  • Hyun Deok Song & Fangqiang Zhu, 2015. "Conformational Changes in Two Inter-Helical Loops of Mhp1 Membrane Transporter," PLOS ONE, Public Library of Science, vol. 10(7), pages 1-19, July.
  • Handle: RePEc:plo:pone00:0133388
    DOI: 10.1371/journal.pone.0133388
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    References listed on IDEAS

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    1. Harini Krishnamurthy & Eric Gouaux, 2012. "X-ray structures of LeuT in substrate-free outward-open and apo inward-open states," Nature, Nature, vol. 481(7382), pages 469-474, January.
    2. Yongfang Zhao & Daniel Terry & Lei Shi & Harel Weinstein & Scott C. Blanchard & Jonathan A. Javitch, 2010. "Single-molecule dynamics of gating in a neurotransmitter transporter homologue," Nature, Nature, vol. 465(7295), pages 188-193, May.
    3. Camilo Perez & Caroline Koshy & Özkan Yildiz & Christine Ziegler, 2012. "Alternating-access mechanism in conformationally asymmetric trimers of the betaine transporter BetP," Nature, Nature, vol. 490(7418), pages 126-130, October.
    4. Atsuko Yamashita & Satinder K. Singh & Toshimitsu Kawate & Yan Jin & Eric Gouaux, 2005. "Crystal structure of a bacterial homologue of Na+/Cl--dependent neurotransmitter transporters," Nature, Nature, vol. 437(7056), pages 215-223, September.
    5. Akira Watanabe & Seungho Choe & Vincent Chaptal & John M. Rosenberg & Ernest M. Wright & Michael Grabe & Jeff Abramson, 2010. "The mechanism of sodium and substrate release from the binding pocket of vSGLT," Nature, Nature, vol. 468(7326), pages 988-991, December.
    6. Harini Krishnamurthy & Chayne L. Piscitelli & Eric Gouaux, 2009. "Unlocking the molecular secrets of sodium-coupled transporters," Nature, Nature, vol. 459(7245), pages 347-355, May.
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