Cargando…

Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts

The thylakoid membranes of vascular plants are differentiated into stacked granum and unstacked stroma regions. The formation of grana is triggered by the macrodomain formation of photosystem II and light-harvesting complex II (PSII-LHCII) and thus their lateral segregation from the photosystem I—li...

Descripción completa

Detalles Bibliográficos
Autores principales: Zsiros, Ottó, Ünnep, Renáta, Nagy, Gergely, Almásy, László, Patai, Roland, Székely, Noémi K., Kohlbrecher, Joachim, Garab, Győző, Dér, András, Kovács, László
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2020
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7456932/
https://www.ncbi.nlm.nih.gov/pubmed/32922427
http://dx.doi.org/10.3389/fpls.2020.01257
_version_ 1783575897950912512
author Zsiros, Ottó
Ünnep, Renáta
Nagy, Gergely
Almásy, László
Patai, Roland
Székely, Noémi K.
Kohlbrecher, Joachim
Garab, Győző
Dér, András
Kovács, László
author_facet Zsiros, Ottó
Ünnep, Renáta
Nagy, Gergely
Almásy, László
Patai, Roland
Székely, Noémi K.
Kohlbrecher, Joachim
Garab, Győző
Dér, András
Kovács, László
author_sort Zsiros, Ottó
collection PubMed
description The thylakoid membranes of vascular plants are differentiated into stacked granum and unstacked stroma regions. The formation of grana is triggered by the macrodomain formation of photosystem II and light-harvesting complex II (PSII-LHCII) and thus their lateral segregation from the photosystem I—light-harvesting complex I (PSI-LHCI) super-complexes and the ATP-synthase; which is then stabilized by stacking interactions of the adjacent PSII-LHCII enriched regions of the thylakoid membranes. The self-assembly and dynamics of this highly organized membrane system and the nature of forces acting between the PSII-LHCII macrodomains are not well understood. By using circular dichroism (CD) spectroscopy, small-angle neutron scattering (SANS) and transmission electron microscopy (TEM), we investigated the effects of Hofmeister salts on the organization of pigment-protein complexes and on the ultrastructure of thylakoid membranes. We found that the kosmotropic agent (NH(4))(2)SO(4) and the Hofmeister-neutral NaCl, up to 2 M concentrations, hardly affected the macro-organization of the protein complexes and the membrane ultrastructure. In contrast, chaotropic salts, NaClO(4), and NaSCN destroyed the mesoscopic structures, the multilamellar organization of the thylakoid membranes and the chiral macrodomains of the protein complexes but without noticeably affecting the short-range, pigment-pigment excitonic interactions. Comparison of the concentration- and time-dependences of SANS, TEM and CD parameters revealed the main steps of the disassembly of grana in the presence of chaotropes. It begins with a rapid diminishment of the long-range periodic order of the grana membranes, apparently due to an increased stacking disorder of the thylakoid membranes, as reflected by SANS experiments. SANS measurements also allowed discrimination between the cationic and anionic effects—in stacking and disorder, respectively. This step is followed by a somewhat slower disorganization of the TEM ultrastructure, due to the gradual loss of stacked membrane pairs. Occurring last is the stepwise decrease and disappearance of the long-range chiral order of the protein complexes, the rate of which was faster in LHCII-deficient membranes. These data are interpreted in terms of a theory, from our laboratory, according to which Hofmeister salts primarily affect the hydrophylic-hydrophobic interactions of proteins, and the stroma-exposed regions of the intrinsic membrane proteins, in particular—pointing to the role of protein-water interface in the stacking interactions of granum thylakoid membranes.
format Online
Article
Text
id pubmed-7456932
institution National Center for Biotechnology Information
language English
publishDate 2020
publisher Frontiers Media S.A.
record_format MEDLINE/PubMed
spelling pubmed-74569322020-09-11 Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts Zsiros, Ottó Ünnep, Renáta Nagy, Gergely Almásy, László Patai, Roland Székely, Noémi K. Kohlbrecher, Joachim Garab, Győző Dér, András Kovács, László Front Plant Sci Plant Science The thylakoid membranes of vascular plants are differentiated into stacked granum and unstacked stroma regions. The formation of grana is triggered by the macrodomain formation of photosystem II and light-harvesting complex II (PSII-LHCII) and thus their lateral segregation from the photosystem I—light-harvesting complex I (PSI-LHCI) super-complexes and the ATP-synthase; which is then stabilized by stacking interactions of the adjacent PSII-LHCII enriched regions of the thylakoid membranes. The self-assembly and dynamics of this highly organized membrane system and the nature of forces acting between the PSII-LHCII macrodomains are not well understood. By using circular dichroism (CD) spectroscopy, small-angle neutron scattering (SANS) and transmission electron microscopy (TEM), we investigated the effects of Hofmeister salts on the organization of pigment-protein complexes and on the ultrastructure of thylakoid membranes. We found that the kosmotropic agent (NH(4))(2)SO(4) and the Hofmeister-neutral NaCl, up to 2 M concentrations, hardly affected the macro-organization of the protein complexes and the membrane ultrastructure. In contrast, chaotropic salts, NaClO(4), and NaSCN destroyed the mesoscopic structures, the multilamellar organization of the thylakoid membranes and the chiral macrodomains of the protein complexes but without noticeably affecting the short-range, pigment-pigment excitonic interactions. Comparison of the concentration- and time-dependences of SANS, TEM and CD parameters revealed the main steps of the disassembly of grana in the presence of chaotropes. It begins with a rapid diminishment of the long-range periodic order of the grana membranes, apparently due to an increased stacking disorder of the thylakoid membranes, as reflected by SANS experiments. SANS measurements also allowed discrimination between the cationic and anionic effects—in stacking and disorder, respectively. This step is followed by a somewhat slower disorganization of the TEM ultrastructure, due to the gradual loss of stacked membrane pairs. Occurring last is the stepwise decrease and disappearance of the long-range chiral order of the protein complexes, the rate of which was faster in LHCII-deficient membranes. These data are interpreted in terms of a theory, from our laboratory, according to which Hofmeister salts primarily affect the hydrophylic-hydrophobic interactions of proteins, and the stroma-exposed regions of the intrinsic membrane proteins, in particular—pointing to the role of protein-water interface in the stacking interactions of granum thylakoid membranes. Frontiers Media S.A. 2020-08-14 /pmc/articles/PMC7456932/ /pubmed/32922427 http://dx.doi.org/10.3389/fpls.2020.01257 Text en Copyright © 2020 Zsiros, Ünnep, Nagy, Almásy, Patai, Székely, Kohlbrecher, Garab, Dér and Kovács http://creativecommons.org/licenses/by/4.0/ This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Plant Science
Zsiros, Ottó
Ünnep, Renáta
Nagy, Gergely
Almásy, László
Patai, Roland
Székely, Noémi K.
Kohlbrecher, Joachim
Garab, Győző
Dér, András
Kovács, László
Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts
title Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts
title_full Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts
title_fullStr Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts
title_full_unstemmed Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts
title_short Role of Protein-Water Interface in the Stacking Interactions of Granum Thylakoid Membranes—As Revealed by the Effects of Hofmeister Salts
title_sort role of protein-water interface in the stacking interactions of granum thylakoid membranes—as revealed by the effects of hofmeister salts
topic Plant Science
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7456932/
https://www.ncbi.nlm.nih.gov/pubmed/32922427
http://dx.doi.org/10.3389/fpls.2020.01257
work_keys_str_mv AT zsirosotto roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT unneprenata roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT nagygergely roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT almasylaszlo roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT patairoland roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT szekelynoemik roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT kohlbrecherjoachim roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT garabgyozo roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT derandras roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts
AT kovacslaszlo roleofproteinwaterinterfaceinthestackinginteractionsofgranumthylakoidmembranesasrevealedbytheeffectsofhofmeistersalts