Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes

Abstract Background Although our knowledge about diatom photosynthesis has made huge progress over the last years, many aspects about their photosynthetic apparatus are still enigmatic. According to published data, the spatial organization as well as the biochemical composition of diatom thylakoid m...

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Main Authors: Marcel Kansy, Daniela Volke, Line Sturm, Christian Wilhelm, Ralf Hoffmann, Reimund Goss
Format: Article
Language:English
Published: BMC 2020-10-01
Series:BMC Plant Biology
Subjects:
Online Access:http://link.springer.com/article/10.1186/s12870-020-02668-x
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spelling doaj-b1cab01dbcde4616acfe91c3f741499c2020-11-25T04:00:23ZengBMCBMC Plant Biology1471-22292020-10-0120111610.1186/s12870-020-02668-xPre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexesMarcel Kansy0Daniela Volke1Line Sturm2Christian Wilhelm3Ralf Hoffmann4Reimund Goss5Institute of Biology, Leipzig UniversityInstitute for Bioanalytical Chemistry, Centre for Biotechnology and Biomedicine, Leipzig UniversityInstitute of Biology, Leipzig UniversityInstitute of Biology, Leipzig UniversityInstitute for Bioanalytical Chemistry, Centre for Biotechnology and Biomedicine, Leipzig UniversityInstitute of Biology, Leipzig UniversityAbstract Background Although our knowledge about diatom photosynthesis has made huge progress over the last years, many aspects about their photosynthetic apparatus are still enigmatic. According to published data, the spatial organization as well as the biochemical composition of diatom thylakoid membranes is significantly different from that of higher plants. Results In this study the pigment protein complexes of the diatom Thalassiosira pseudonana were isolated by anion exchange chromatography. A step gradient was used for the elution process, yielding five well-separated pigment protein fractions which were characterized in detail. The isolation of photosystem (PS) core complex fractions, which contained fucoxanthin chlorophyll proteins (FCPs), enabled the differentiation between different FCP complexes: FCP complexes which were more closely associated with the PSI and PSII core complexes and FCP complexes which built-up the peripheral antenna. Analysis by mass spectrometry showed that the FCP complexes associated with the PSI and PSII core complexes contained various Lhcf proteins, including Lhcf1, Lhcf2, Lhcf4, Lhcf5, Lhcf6, Lhcf8 and Lhcf9 proteins, while the peripheral FCP complexes were exclusively composed of Lhcf8 and Lhcf9. Lhcr proteins, namely Lhcr1, Lhcr3 and Lhcr14, were identified in fractions containing subunits of the PSI core complex. Lhcx1, Lhcx2 and Lhcx5 proteins co-eluted with PSII protein subunits. The first fraction contained an additional Lhcx protein, Lhcx6_1, and was furthermore characterized by high concentrations of photoprotective xanthophyll cycle pigments. Conclusion The results of the present study corroborate existing data, like the observation of a PSI-specific antenna complex in diatoms composed of Lhcr proteins. They complement other data, like e.g. on the protein composition of the 21 kDa FCP band or the Lhcf composition of FCPa and FCPb complexes. They also provide interesting new information, like the presence of the enzyme diadinoxanthin de-epoxidase in the Lhcx-containing PSII fraction, which might be relevant for the process of non-photochemical quenching. Finally, the high negative charge of the main FCP fraction may play a role in the organization and structure of the native diatom thylakoid membrane. Thus, the results present an important contribution to our understanding of the complex nature of the diatom antenna system.http://link.springer.com/article/10.1186/s12870-020-02668-xAnion exchange chromatographyFucoxanthin chlorophyll proteinLhcxMass spectrometryPhotosystem IPhotosystem II
collection DOAJ
language English
format Article
sources DOAJ
author Marcel Kansy
Daniela Volke
Line Sturm
Christian Wilhelm
Ralf Hoffmann
Reimund Goss
spellingShingle Marcel Kansy
Daniela Volke
Line Sturm
Christian Wilhelm
Ralf Hoffmann
Reimund Goss
Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes
BMC Plant Biology
Anion exchange chromatography
Fucoxanthin chlorophyll protein
Lhcx
Mass spectrometry
Photosystem I
Photosystem II
author_facet Marcel Kansy
Daniela Volke
Line Sturm
Christian Wilhelm
Ralf Hoffmann
Reimund Goss
author_sort Marcel Kansy
title Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes
title_short Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes
title_full Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes
title_fullStr Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes
title_full_unstemmed Pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of FCP complexes
title_sort pre-purification of diatom pigment protein complexes provides insight into the heterogeneity of fcp complexes
publisher BMC
series BMC Plant Biology
issn 1471-2229
publishDate 2020-10-01
description Abstract Background Although our knowledge about diatom photosynthesis has made huge progress over the last years, many aspects about their photosynthetic apparatus are still enigmatic. According to published data, the spatial organization as well as the biochemical composition of diatom thylakoid membranes is significantly different from that of higher plants. Results In this study the pigment protein complexes of the diatom Thalassiosira pseudonana were isolated by anion exchange chromatography. A step gradient was used for the elution process, yielding five well-separated pigment protein fractions which were characterized in detail. The isolation of photosystem (PS) core complex fractions, which contained fucoxanthin chlorophyll proteins (FCPs), enabled the differentiation between different FCP complexes: FCP complexes which were more closely associated with the PSI and PSII core complexes and FCP complexes which built-up the peripheral antenna. Analysis by mass spectrometry showed that the FCP complexes associated with the PSI and PSII core complexes contained various Lhcf proteins, including Lhcf1, Lhcf2, Lhcf4, Lhcf5, Lhcf6, Lhcf8 and Lhcf9 proteins, while the peripheral FCP complexes were exclusively composed of Lhcf8 and Lhcf9. Lhcr proteins, namely Lhcr1, Lhcr3 and Lhcr14, were identified in fractions containing subunits of the PSI core complex. Lhcx1, Lhcx2 and Lhcx5 proteins co-eluted with PSII protein subunits. The first fraction contained an additional Lhcx protein, Lhcx6_1, and was furthermore characterized by high concentrations of photoprotective xanthophyll cycle pigments. Conclusion The results of the present study corroborate existing data, like the observation of a PSI-specific antenna complex in diatoms composed of Lhcr proteins. They complement other data, like e.g. on the protein composition of the 21 kDa FCP band or the Lhcf composition of FCPa and FCPb complexes. They also provide interesting new information, like the presence of the enzyme diadinoxanthin de-epoxidase in the Lhcx-containing PSII fraction, which might be relevant for the process of non-photochemical quenching. Finally, the high negative charge of the main FCP fraction may play a role in the organization and structure of the native diatom thylakoid membrane. Thus, the results present an important contribution to our understanding of the complex nature of the diatom antenna system.
topic Anion exchange chromatography
Fucoxanthin chlorophyll protein
Lhcx
Mass spectrometry
Photosystem I
Photosystem II
url http://link.springer.com/article/10.1186/s12870-020-02668-x
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