Localization and characterization θ carbonic anhydrases in Thalassiosira pseudonana

被引:0
|
作者
Hermanus Nawaly
Atsuko Tanaka
Yui Toyoshima
Yoshinori Tsuji
Yusuke Matsuda
机构
[1] Kwansei Gakuin University,Department of Bioscience, School of Biological and Environmental Sciences
[2] University of the Ryukyus,Department of Chemistry, Biology and Marine Science, Faculty of Science
[3] Kyoto University,Graduate School of Biostudies
来源
Photosynthesis Research | 2023年 / 156卷
关键词
Marine diatom; Carbonic anhydrase; CO; -concentrating mechanism; Pyrenoid;
D O I
暂无
中图分类号
学科分类号
摘要
Carbonic anhydrase (CA) is a crucial component for the operation of CO2-concentrating mechanisms (CCMs) in the majority of aquatic photoautotrophs that maintain the global primary production. In the genome of the centric marine diatom, Thalassiosira pseudonana, there are four putative gene sequences that encode θ-type CA, which was a type of CA recently identified in marine diatoms and green algae. In the present study, specific subcellular locations of four θCAs, TpθCA1, TpθCA2, TpθCA3, and TpθCA4 were determined by expressing GFP-fused proteins of these TpθCAs in T. pseudonana. As a result, C-terminal GFP fusion proteins of TpθCA1, TpθCA2, and TpθCA3 were all localized in the chloroplast; TpθCA2 was at the central chloroplast area, and the other two TpθCAs were throughout the chloroplast. Immunogold-labeling transmission electron microscopy was further performed for the transformants expressing TpθCA1:GFP and TpθCA2:GFP with anti-GFP-monoclonal antibody. TpθCA1:GFP was localized in the free stroma area, including the peripheral pyrenoid area. TpθCA2:GFP was clearly located as a lined distribution at the central part of the pyrenoid structure, which was most likely the pyrenoid-penetrating thylakoid. Considering the presence of the sequence encoding the N-terminal thylakoid-targeting domain in the TpθCA2 gene, this localization was likely the lumen of the pyrenoid-penetrating thylakoid. On the other hand, TpθCA4:GFP was localized in the cytoplasm. Transcript analysis of these TpθCAs revealed that TpθCA2 and TpθCA3 were upregulated in atmospheric CO2 (0.04% CO2, LC) levels, while TpθCA1 and TpθCA4 were highly induced under 1% CO2 (HC) condition. The genome-editing knockout (KO) of TpθCA1, by CRISPR/Cas9 nickase, gave a silent phenotype in T. pseudonana under LC–HC conditions, which was in sharp agreement with the case of the previously reported TpθCA3 KO. In sharp contrast, TpθCA2 KO is so far unsuccessful, suggesting a housekeeping role of TpθCA2. The silent phenotype of KO strains of stromal CAs suggests that TpαCA1, TpθCA1, and TpθCA3 may have functional redundancy, but different transcript regulations in response to CO2 of these stromal CAs suggest in part their independent roles.
引用
收藏
页码:217 / 229
页数:12
相关论文
共 50 条
  • [31] Structural and biochemical characterization of novel carbonic anhydrases fromPhaeodactylum tricornutum
    Jin, Shengyang
    Vullo, Daniela
    Bua, Silvia
    Nocentini, Alessio
    Supuran, Claudiu T.
    Gao, Yong-gui
    [J]. ACTA CRYSTALLOGRAPHICA SECTION D-STRUCTURAL BIOLOGY, 2020, 76 : 676 - 686
  • [32] Characterization and expression analysis of genes encoding α and β carbonic anhydrases in Arabidopsis
    Fabre, Nicolas
    Reiter, Ilja M.
    Becuwe-Linka, Noelle
    Genty, Bernard
    Rumeau, Dominique
    [J]. PLANT CELL AND ENVIRONMENT, 2007, 30 (05): : 617 - 629
  • [33] CHARACTERIZATION OF STABLE CONFORMATIONAL VARIANTS OF ERYTHROCYTE CARBONIC-ANHYDRASES
    BOUTHIER, M
    GULIAN, JM
    MALLET, B
    CALAF, R
    REYNAUD, J
    [J]. BIOCHIMIE, 1979, 61 (10) : 1161 - 1168
  • [34] Revealing the architecture of the photosynthetic apparatus in the diatom Thalassiosira pseudonana
    Arshad, Rameez
    Calvaruso, Claudio
    Boekema, Egbert J.
    Buechel, Claudia
    Kouril, Roman
    [J]. PLANT PHYSIOLOGY, 2021, 186 (04) : 2124 - 2136
  • [35] Resting cell formation in the marine diatom Thalassiosira pseudonana
    Wang, Guangning
    Huang, Lu
    Zhuang, Shanshan
    Han, Fang
    Huang, Qianqian
    Hao, Mengyuan
    Lin, Guifang
    Chen, Longnan
    Shen, Biying
    Li, Feng
    Li, Xuesong
    Chen, Changping
    Gao, Yahui
    Mock, Thomas
    Liang, Junrong
    [J]. NEW PHYTOLOGIST, 2024, 243 (04) : 1347 - 1360
  • [36] Molecular genetic manipulation of the diatom Thalassiosira pseudonana (Bacillariophyceae)
    Poulsen, Nicole
    Chesley, Patrick M.
    Kroger, Nils
    [J]. JOURNAL OF PHYCOLOGY, 2006, 42 (05) : 1059 - 1065
  • [37] Fatty acid desaturases from the microalga Thalassiosira pseudonana
    Tonon, T
    Sayanova, O
    Michaelson, LV
    Qing, R
    Harvey, D
    Larson, TR
    Li, Y
    Napier, JA
    Graham, IA
    [J]. FEBS JOURNAL, 2005, 272 (13) : 3401 - 3412
  • [38] Silica biomineralisation in diatoms: The model organism Thalassiosira pseudonana
    Sumper, Manfred
    Brunner, Eike
    [J]. CHEMBIOCHEM, 2008, 9 (08) : 1187 - 1194
  • [39] Localization of enzymes relating to C4 organic acid metabolisms in the marine diatom, Thalassiosira pseudonana
    Rie Tanaka
    Sae Kikutani
    Anggara Mahardika
    Yusuke Matsuda
    [J]. Photosynthesis Research, 2014, 121 : 251 - 263
  • [40] Physiological responses of the diatoms Thalassiosira weissflogii and Thalassiosira pseudonana to nitrogen starvation and high light
    Qiao, Hongjin
    Zang, Shasha
    Yan, Fang
    Xu, Zhiguang
    Wang, Lei
    Wu, Hongyan
    [J]. MARINE ENVIRONMENTAL RESEARCH, 2021, 166