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Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth
Extant eukaryote ecology is primarily sustained by oxygenic photosynthesis, in which chlorophylls play essential roles. The exceptional photosensitivity of chlorophylls allows them to harvest solar energy for photosynthesis, but on the other hand, they also generate cytotoxic reactive oxygen species...
Autores principales: | , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , , |
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Formato: | Online Artículo Texto |
Lenguaje: | English |
Publicado: |
Nature Publishing Group UK
2019
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Materias: | |
Acceso en línea: | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6775998/ https://www.ncbi.nlm.nih.gov/pubmed/30809012 http://dx.doi.org/10.1038/s41396-019-0377-0 |
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author | Kashiyama, Yuichiro Yokoyama, Akiko Shiratori, Takashi Hess, Sebastian Not, Fabrice Bachy, Charles Gutierrez-Rodriguez, Andres Kawahara, Jun Suzaki, Toshinobu Nakazawa, Masami Ishikawa, Takahiro Maruyama, Moe Wang, Mengyun Chen, Man Gong, Yingchun Seto, Kensuke Kagami, Maiko Hamamoto, Yoko Honda, Daiske Umetani, Takahiro Shihongi, Akira Kayama, Motoki Matsuda, Toshiki Taira, Junya Yabuki, Akinori Tsuchiya, Masashi Hirakawa, Yoshihisa Kawaguchi, Akane Nomura, Mami Nakamura, Atsushi Namba, Noriaki Matsumoto, Mitsufumi Tanaka, Tsuyoshi Yoshino, Tomoko Higuchi, Rina Yamamoto, Akihiro Maruyama, Tadanobu Yamaguchi, Aika Uzuka, Akihiro Miyagishima, Shinya Tanifuji, Goro Kawachi, Masanobu Kinoshita, Yusuke Tamiaki, Hitoshi |
author_facet | Kashiyama, Yuichiro Yokoyama, Akiko Shiratori, Takashi Hess, Sebastian Not, Fabrice Bachy, Charles Gutierrez-Rodriguez, Andres Kawahara, Jun Suzaki, Toshinobu Nakazawa, Masami Ishikawa, Takahiro Maruyama, Moe Wang, Mengyun Chen, Man Gong, Yingchun Seto, Kensuke Kagami, Maiko Hamamoto, Yoko Honda, Daiske Umetani, Takahiro Shihongi, Akira Kayama, Motoki Matsuda, Toshiki Taira, Junya Yabuki, Akinori Tsuchiya, Masashi Hirakawa, Yoshihisa Kawaguchi, Akane Nomura, Mami Nakamura, Atsushi Namba, Noriaki Matsumoto, Mitsufumi Tanaka, Tsuyoshi Yoshino, Tomoko Higuchi, Rina Yamamoto, Akihiro Maruyama, Tadanobu Yamaguchi, Aika Uzuka, Akihiro Miyagishima, Shinya Tanifuji, Goro Kawachi, Masanobu Kinoshita, Yusuke Tamiaki, Hitoshi |
author_sort | Kashiyama, Yuichiro |
collection | PubMed |
description | Extant eukaryote ecology is primarily sustained by oxygenic photosynthesis, in which chlorophylls play essential roles. The exceptional photosensitivity of chlorophylls allows them to harvest solar energy for photosynthesis, but on the other hand, they also generate cytotoxic reactive oxygen species. A risk of such phototoxicity of the chlorophyll must become particularly prominent upon dynamic cellular interactions that potentially disrupt the mechanisms that are designed to quench photoexcited chlorophylls in the phototrophic cells. Extensive examination of a wide variety of phagotrophic, parasitic, and phototrophic microeukaryotes demonstrates that a catabolic process that converts chlorophylls into nonphotosensitive 13(2),17(3)-cyclopheophorbide enols (CPEs) is phylogenetically ubiquitous among extant eukaryotes. The accumulation of CPEs is identified in phagotrophic algivores belonging to virtually all major eukaryotic assemblages with the exception of Archaeplastida, in which no algivorous species have been reported. In addition, accumulation of CPEs is revealed to be common among phototrophic microeukaryotes (i.e., microalgae) along with dismantling of their secondary chloroplasts. Thus, we infer that CPE-accumulating chlorophyll catabolism (CACC) primarily evolved among algivorous microeukaryotes to detoxify chlorophylls in an early stage of their evolution. Subsequently, it also underpinned photosynthetic endosymbiosis by securing close interactions with photosynthetic machinery containing abundant chlorophylls, which led to the acquisition of secondary chloroplasts. Our results strongly suggest that CACC, which allowed the consumption of oxygenic primary producers, ultimately permitted the successful radiation of the eukaryotes throughout and after the late Proterozoic global oxygenation. |
format | Online Article Text |
id | pubmed-6775998 |
institution | National Center for Biotechnology Information |
language | English |
publishDate | 2019 |
publisher | Nature Publishing Group UK |
record_format | MEDLINE/PubMed |
spelling | pubmed-67759982019-10-04 Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth Kashiyama, Yuichiro Yokoyama, Akiko Shiratori, Takashi Hess, Sebastian Not, Fabrice Bachy, Charles Gutierrez-Rodriguez, Andres Kawahara, Jun Suzaki, Toshinobu Nakazawa, Masami Ishikawa, Takahiro Maruyama, Moe Wang, Mengyun Chen, Man Gong, Yingchun Seto, Kensuke Kagami, Maiko Hamamoto, Yoko Honda, Daiske Umetani, Takahiro Shihongi, Akira Kayama, Motoki Matsuda, Toshiki Taira, Junya Yabuki, Akinori Tsuchiya, Masashi Hirakawa, Yoshihisa Kawaguchi, Akane Nomura, Mami Nakamura, Atsushi Namba, Noriaki Matsumoto, Mitsufumi Tanaka, Tsuyoshi Yoshino, Tomoko Higuchi, Rina Yamamoto, Akihiro Maruyama, Tadanobu Yamaguchi, Aika Uzuka, Akihiro Miyagishima, Shinya Tanifuji, Goro Kawachi, Masanobu Kinoshita, Yusuke Tamiaki, Hitoshi ISME J Article Extant eukaryote ecology is primarily sustained by oxygenic photosynthesis, in which chlorophylls play essential roles. The exceptional photosensitivity of chlorophylls allows them to harvest solar energy for photosynthesis, but on the other hand, they also generate cytotoxic reactive oxygen species. A risk of such phototoxicity of the chlorophyll must become particularly prominent upon dynamic cellular interactions that potentially disrupt the mechanisms that are designed to quench photoexcited chlorophylls in the phototrophic cells. Extensive examination of a wide variety of phagotrophic, parasitic, and phototrophic microeukaryotes demonstrates that a catabolic process that converts chlorophylls into nonphotosensitive 13(2),17(3)-cyclopheophorbide enols (CPEs) is phylogenetically ubiquitous among extant eukaryotes. The accumulation of CPEs is identified in phagotrophic algivores belonging to virtually all major eukaryotic assemblages with the exception of Archaeplastida, in which no algivorous species have been reported. In addition, accumulation of CPEs is revealed to be common among phototrophic microeukaryotes (i.e., microalgae) along with dismantling of their secondary chloroplasts. Thus, we infer that CPE-accumulating chlorophyll catabolism (CACC) primarily evolved among algivorous microeukaryotes to detoxify chlorophylls in an early stage of their evolution. Subsequently, it also underpinned photosynthetic endosymbiosis by securing close interactions with photosynthetic machinery containing abundant chlorophylls, which led to the acquisition of secondary chloroplasts. Our results strongly suggest that CACC, which allowed the consumption of oxygenic primary producers, ultimately permitted the successful radiation of the eukaryotes throughout and after the late Proterozoic global oxygenation. Nature Publishing Group UK 2019-02-26 2019-08 /pmc/articles/PMC6775998/ /pubmed/30809012 http://dx.doi.org/10.1038/s41396-019-0377-0 Text en © The Author(s) 2019 Open Access This article is licensed under a Creative Commons Attribution 4.0 International License, which permits use, sharing, adaptation, distribution and reproduction in any medium or format, as long as you give appropriate credit to the original author(s) and the source, provide a link to the Creative Commons license, and indicate if changes were made. The images or other third party material in this article are included in the article’s Creative Commons license, unless indicated otherwise in a credit line to the material. If material is not included in the article’s Creative Commons license and your intended use is not permitted by statutory regulation or exceeds the permitted use, you will need to obtain permission directly from the copyright holder. To view a copy of this license, visit http://creativecommons.org/licenses/by/4.0/. |
spellingShingle | Article Kashiyama, Yuichiro Yokoyama, Akiko Shiratori, Takashi Hess, Sebastian Not, Fabrice Bachy, Charles Gutierrez-Rodriguez, Andres Kawahara, Jun Suzaki, Toshinobu Nakazawa, Masami Ishikawa, Takahiro Maruyama, Moe Wang, Mengyun Chen, Man Gong, Yingchun Seto, Kensuke Kagami, Maiko Hamamoto, Yoko Honda, Daiske Umetani, Takahiro Shihongi, Akira Kayama, Motoki Matsuda, Toshiki Taira, Junya Yabuki, Akinori Tsuchiya, Masashi Hirakawa, Yoshihisa Kawaguchi, Akane Nomura, Mami Nakamura, Atsushi Namba, Noriaki Matsumoto, Mitsufumi Tanaka, Tsuyoshi Yoshino, Tomoko Higuchi, Rina Yamamoto, Akihiro Maruyama, Tadanobu Yamaguchi, Aika Uzuka, Akihiro Miyagishima, Shinya Tanifuji, Goro Kawachi, Masanobu Kinoshita, Yusuke Tamiaki, Hitoshi Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth |
title | Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth |
title_full | Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth |
title_fullStr | Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth |
title_full_unstemmed | Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth |
title_short | Taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated Earth |
title_sort | taming chlorophylls by early eukaryotes underpinned algal interactions and the diversification of the eukaryotes on the oxygenated earth |
topic | Article |
url | https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6775998/ https://www.ncbi.nlm.nih.gov/pubmed/30809012 http://dx.doi.org/10.1038/s41396-019-0377-0 |
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