Crossref journal-article
Wiley
Proteins: Structure, Function, and Bioinformatics (311)
Abstract

AbstractThe origin of the barrier for proton transport through the aquaporin channel is a problem of general interest. It is becoming increasingly clear that this barrier is not attributable to the orientation of the water molecules across the channel but rather to the electrostatic penalty for moving the proton charge to the center of the channel. However, the reason for the high electrostatic barrier is still rather controversial. It has been argued by some workers that the barrier is due to the so‐called NPA motif and/or to the helix macrodipole or to other specific elements. However, our works indicated that the main reason for the high barrier is the loss of the generalized solvation upon moving the proton charge from the bulk to the center of the channel and that this does not reflect a specific repulsive electrostatic interaction but the absence of sufficient electrostatic stabilization. At this stage it seems that the elucidation and clarification of the origin of the electrostatic barrier can serve as an instructive test case for electrostatic models. Thus, we reexamine the free‐energy surface for proton transport in aquaporins using the microscopic free‐energy perturbation/umbrella sampling (FEP/US) and the empirical valence bond/umbrella sampling (EVB/US) methods as well as the semimacroscopic protein dipole Langevin dipole model in its linear response approximation version (the PDLD/S‐LRA). These extensive studies help to clarify the nature of the barrier and to establish the “reduced solvation effect” as the primary source of this barrier. That is, it is found that the barrier is associated with the loss of the generalized solvation energy (which includes of course all electrostatic effects) upon moving the proton charge from the bulk solvent to the center of the channel. It is also demonstrated that the residues in the NPA region and the helix dipole cannot be considered as the main reasons for the electrostatic barrier. Furthermore, our microscopic and semimacroscopic studies clarify the problems with incomplete alternative calculations, illustrating that the effects of various electrostatic elements are drastically overestimated by macroscopic calculations that use a low dielectric constant and do not consider the protein reorganization. Similarly, it is pointed out that microscopic potential of mean force calculations that do not evaluate the electrostatic barrier relative to the bulk water cannot be used to establish the origin of the electrostatic barrier. The relationship between the present study and calculations of pKas in protein interiors is clarified, pointing out that approaches that are applied to study the aquaporin barrier should be validated by pKas calculations. Such calculations also help to clarify the crucial role of solvation energies in establishing the barrier in aquaporins. Proteins 2006. © 2006 Wiley‐Liss, Inc.

Bibliography

Kato, M., Pisliakov, A. V., & Warshel, A. (2006). The barrier for proton transport in aquaporins as a challenge for electrostatic models: The role of protein relaxation in mutational calculations. Proteins: Structure, Function, and Bioinformatics, 64(4), 829–844. Portico.

Authors 3
  1. Mitsunori Kato (first)
  2. Andrei V. Pisliakov (additional)
  3. Arieh Warshel (additional)
References 80 Referenced 118
  1. 10.1016/S0014-5793(03)01083-4
  2. 10.1038/35036519
  3. 10.1038/414872a
  4. 10.1021/cen-v082n004.p042
  5. 10.1126/science.1062459
  6. 10.1016/j.jmb.2003.08.003
  7. 10.1152/physrev.00028.2002
  8. 10.1016/S0006-3495(03)74711-0
  9. 10.1126/science.1067778
  10. 10.1016/j.sbi.2005.02.003
  11. 10.1016/j.jmb.2004.08.036
  12. 10.1016/j.febslet.2004.06.020
  13. 10.1016/S0006-3495(03)74786-9
  14. 10.1529/biophysj.104.043315
  15. 10.1016/0009-2614(95)00905-J
  16. 10.1002/anie.196400011
  17. {'key': 'e_1_2_7_18_2', 'series-title': 'The chemical physics of solvation', 'author': 'Zundel G', 'year': '1986'} / The chemical physics of solvation by Zundel G (1986)
  18. 10.1002/prot.20038
  19. 10.1002/(SICI)1097-0134(19990901)36:4<484::AID-PROT13>3.0.CO;2-R
  20. 10.1111/j.1751-1097.1979.tb07148.x
  21. 10.1073/pnas.86.15.5820
  22. 10.1111/j.1751-1097.1979.tb07149.x
  23. 10.1529/biophysj.104.043257
  24. 10.1021/bi00374a006
  25. 10.1093/protein/5.3.215
  26. 10.1002/(SICI)1097-0134(20000601)39:4<393::AID-PROT120>3.0.CO;2-H
  27. 10.1063/1.1740409
  28. {'key': 'e_1_2_7_29_2', 'series-title': 'Modern theoretical chemistry', 'first-page': '169', 'author': 'Valleau JP', 'year': '1977'} / Modern theoretical chemistry by Valleau JP (1977)
  29. 10.1021/j100209a016
  30. 10.1021/j100475a014
  31. 10.1021/jp963412w
  32. 10.1021/ja00224a011
  33. 10.1016/S0006-3495(89)82662-1
  34. 10.1063/1.459255
  35. 10.1007/978-3-642-96701-6
  36. 10.1017/S0033583500005333
  37. 10.1021/ja00237a013
  38. 10.1063/1.454929
  39. 10.1021/jp953640a
  40. 10.1021/ja00392a033
  41. {'key': 'e_1_2_7_42_2', 'volume-title': 'Computer modeling of chemical reactions in enzymes and solutions', 'author': 'Warshel A', 'year': '1991'} / Computer modeling of chemical reactions in enzymes and solutions by Warshel A (1991)
  42. 10.1021/cr00023a010
  43. 10.1146/annurev.biophys.32.110601.141807
  44. 10.1021/jp9818131
  45. 10.1016/S0009-2614(97)01365-1
  46. 10.1021/jp0465783
  47. 10.1021/jp053208l
  48. 10.1002/jcc.540140205
  49. 10.1002/prot.1106
  50. {'key': 'e_1_2_7_51_2', 'volume-title': 'Computer simulation of liquids', 'author': 'Allen MP', 'year': '1987'} / Computer simulation of liquids by Allen MP (1987)
  51. 10.1016/S0006-3495(97)78851-9
  52. 10.1073/pnas.81.15.4785
  53. 10.1021/bi012131y
  54. 10.1016/S0006-3495(98)77885-3
  55. ChuZT VillaJ StrajblM SchutzCN ShurkiA WarshelA.MOLARIS version beta9.05.2004.
  56. 10.1063/1.462997
  57. 10.1126/science.290.5491.481
  58. 10.1038/273443a0
  59. {'key': 'e_1_2_7_60_2', 'first-page': '1', 'article-title': 'The α‐helix as an electric macro‐dipole', 'volume': '9', 'author': 'Wada A', 'year': '1976', 'journal-title': 'Adv Biophys'} / Adv Biophys / The α‐helix as an electric macro‐dipole by Wada A (1976)
  60. {'key': 'e_1_2_7_61_2', 'first-page': '205', 'article-title': 'Free‐energy perturbation calculations of charge interactions with the helix dipole', 'volume': '29', 'author': 'Daggett VD', 'year': '1989', 'journal-title': 'Chem Scripta'} / Chem Scripta / Free‐energy perturbation calculations of charge interactions with the helix dipole by Daggett VD (1989)
  61. 10.1002/prot.340030104
  62. 10.1016/0301-4622(79)85010-3
  63. 10.1126/science.285.5424.100
  64. 10.1021/bi001567v
  65. 10.1073/pnas.88.5.2026
  66. 10.1038/335740a0
  67. 10.1038/329561a0
  68. 10.1166/jctn.2006.3003 / J Comp Theo Nano / Membranes assembled from narrow carbon nanotubes block proton transport and can form effective nano filtration devices by Burykin A (2006)
  69. 10.1021/bi00514a028
  70. 10.1016/S0006-3495(02)75670-1
  71. 10.1002/prot.20486
  72. {'key': 'e_1_2_7_73_2', 'article-title': 'Using a charging coordinate in studies of ionization induced partial unfolding', 'author': 'Kato M', 'journal-title': 'J Phys Chem B'} / J Phys Chem B / Using a charging coordinate in studies of ionization induced partial unfolding by Kato M
  73. 10.1016/S0301-4622(96)02238-7
  74. 10.1021/bi00067a024
  75. 10.1002/9783527619498.ch7
  76. 10.1016/j.neuron.2005.08.022
  77. 10.1021/ja972723x
  78. 10.1016/S0065-3233(03)66007-9
  79. 10.1073/pnas.75.11.5250
  80. 10.1038/334270a0
Dates
Type When
Created 19 years, 2 months ago (June 15, 2006, 4:02 p.m.)
Deposited 1 year, 10 months ago (Oct. 16, 2023, 3 a.m.)
Indexed 11 months, 2 weeks ago (Sept. 13, 2024, 1:55 a.m.)
Issued 19 years, 2 months ago (June 15, 2006)
Published 19 years, 2 months ago (June 15, 2006)
Published Online 19 years, 2 months ago (June 15, 2006)
Published Print 19 years ago (Sept. 1, 2006)
Funders 0

None

@article{Kato_2006, title={The barrier for proton transport in aquaporins as a challenge for electrostatic models: The role of protein relaxation in mutational calculations}, volume={64}, ISSN={1097-0134}, url={http://dx.doi.org/10.1002/prot.21012}, DOI={10.1002/prot.21012}, number={4}, journal={Proteins: Structure, Function, and Bioinformatics}, publisher={Wiley}, author={Kato, Mitsunori and Pisliakov, Andrei V. and Warshel, Arieh}, year={2006}, month=jun, pages={829–844} }