001     57132
005     20200402210345.0
024 7 _ |2 pmid
|a pmid:16624250
024 7 _ |2 DOI
|a 10.1016/j.bbabio.2006.02.015
024 7 _ |2 WOS
|a WOS:000241481300005
037 _ _ |a PreJuSER-57132
041 _ _ |a eng
082 _ _ |a 570
084 _ _ |2 WoS
|a Biochemistry & Molecular Biology
084 _ _ |2 WoS
|a Biophysics
100 1 _ |a Mulkidjanian, A. Y.
|b 0
|0 P:(DE-HGF)0
245 _ _ |a Protons @ interfaces: implications for biological energy conversion
260 _ _ |a Amsterdam
|b Elsevier
|c 2006
300 _ _ |a 913 - 930
336 7 _ |a Journal Article
|0 PUB:(DE-HGF)16
|2 PUB:(DE-HGF)
336 7 _ |a Output Types/Journal article
|2 DataCite
336 7 _ |a Journal Article
|0 0
|2 EndNote
336 7 _ |a ARTICLE
|2 BibTeX
336 7 _ |a JOURNAL_ARTICLE
|2 ORCID
336 7 _ |a article
|2 DRIVER
440 _ 0 |a BBA - Bioenergetics
|x 0005-2728
|0 19422
|y 8
|v 1757
500 _ _ |a Record converted from VDB: 12.11.2012
520 _ _ |a The review focuses on the anisotropy of proton transfer at the surface of biological membranes. We consider (i) the data from "pulsed" experiments, where light-triggered enzymes capture or eject protons at the membrane surface, (ii) the electrostatic properties of water at charged interfaces, and (iii) the specific structural attributes of proton-translocating enzymes. The pulsed experiments revealed that proton exchange between the membrane surface and the bulk aqueous phase takes as much as about 1 ms, but could be accelerated by added mobile pH-buffers. Since the accelerating capacity of the latter decreased with the increase in their electric charge, it was concluded that the membrane surface is separated from the bulk aqueous phase by a barrier of electrostatic nature. The barrier could arise owing to the water polarization at the negatively charged membrane surface. The barrier height depends linearly on the charge of penetrating ions; for protons, it has been estimated as about 0.12 eV. While the proton exchange between the surface and the bulk aqueous phase is retarded by the interfacial barrier, the proton diffusion along the membrane, between neighboring enzymes, takes only microseconds. The proton spreading over the membrane is facilitated by the hydrogen-bonded networks at the surface. The membrane-buried layers of these networks can eventually serve as a storage/buffer for protons (proton sponges). As the proton equilibration between the surface and the bulk aqueous phase is slower than the lateral proton diffusion between the "sources" and "sinks", the proton activity at the membrane surface, as sensed by the energy transducing enzymes at steady state, might deviate from that measured in the adjoining water phase. This trait should increase the driving force for ATP synthesis, especially in the case of alkaliphilic bacteria.
536 _ _ |a Funktion und Dysfunktion des Nervensystems
|c P33
|2 G:(DE-HGF)
|0 G:(DE-Juel1)FUEK409
|x 0
588 _ _ |a Dataset connected to Web of Science, Pubmed
650 _ 2 |2 MeSH
|a Biological Transport
650 _ 2 |2 MeSH
|a Cations: chemistry
650 _ 2 |2 MeSH
|a Electron Transport Complex IV: chemistry
650 _ 2 |2 MeSH
|a Energy Metabolism
650 _ 2 |2 MeSH
|a Kinetics
650 _ 2 |2 MeSH
|a Membranes: physiology
650 _ 2 |2 MeSH
|a Models, Biological
650 _ 2 |2 MeSH
|a Models, Molecular
650 _ 2 |2 MeSH
|a Protein Conformation
650 _ 2 |2 MeSH
|a Protons
650 _ 2 |2 MeSH
|a Water: chemistry
650 _ 7 |0 0
|2 NLM Chemicals
|a Cations
650 _ 7 |0 0
|2 NLM Chemicals
|a Protons
650 _ 7 |0 7732-18-5
|2 NLM Chemicals
|a Water
650 _ 7 |0 EC 1.9.3.1
|2 NLM Chemicals
|a Electron Transport Complex IV
650 _ 7 |a J
|2 WoSType
653 2 0 |2 Author
|a Grotthus mechanism
653 2 0 |2 Author
|a ATP synthesis
653 2 0 |2 Author
|a proton transfer
653 2 0 |2 Author
|a membrane potential
653 2 0 |2 Author
|a chemiosmotic coupling
653 2 0 |2 Author
|a alkaliphilic bacteria
653 2 0 |2 Author
|a surface potential
653 2 0 |2 Author
|a nonlocal electrostatics
700 1 _ |a Heberle, J.
|b 1
|u FZJ
|0 P:(DE-Juel1)VDB572
700 1 _ |a Cherepanov, D. A.
|b 2
|0 P:(DE-HGF)0
773 _ _ |a 10.1016/j.bbabio.2006.02.015
|g Vol. 1757, p. 913 - 930
|p 913 - 930
|q 1757<913 - 930
|0 PERI:(DE-600)2209370-9
|t Biochimica et biophysica acta / Bioenergetics
|v 1757
|y 2006
|x 0005-2728
856 7 _ |u http://dx.doi.org/10.1016/j.bbabio.2006.02.015
909 C O |o oai:juser.fz-juelich.de:57132
|p VDB
913 1 _ |k P33
|v Funktion und Dysfunktion des Nervensystems
|l Funktion und Dysfunktion des Nervensystems
|b Gesundheit
|0 G:(DE-Juel1)FUEK409
|x 0
914 1 _ |a Nachtrag
|y 2006
915 _ _ |0 StatID:(DE-HGF)0010
|a JCR/ISI refereed
920 1 _ |k IBI-2
|l Biologische Strukturforschung
|d 31.12.2006
|g IBI
|0 I:(DE-Juel1)VDB58
|x 1
970 _ _ |a VDB:(DE-Juel1)89877
980 _ _ |a VDB
980 _ _ |a ConvertedRecord
980 _ _ |a journal
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980 _ _ |a UNRESTRICTED
980 _ _ |a I:(DE-Juel1)ICS-6-20110106
981 _ _ |a I:(DE-Juel1)IBI-7-20200312
981 _ _ |a I:(DE-Juel1)ISB-2-20090406
981 _ _ |a I:(DE-Juel1)ICS-6-20110106


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