Molecular mechanism underlying Pyropia haitanensis PhHsp22-mediated increase in the high-temperature tolerance of Chlamydomonas reinhardtii
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Published:2021-01-26
Issue:2
Volume:33
Page:1137-1148
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ISSN:0921-8971
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Container-title:Journal of Applied Phycology
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language:en
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Short-container-title:J Appl Phycol
Author:
Chang Jing, Shi Jianzhi, Lin Jianzhang, Ji Dehua, Xu Yan, Chen Changsheng, Wang Wenlei, Xie ChaotianORCID
Abstract
AbstractGlobal warming is one of the key limiting factors affecting the cultivation of Pyropia haitanensis which is an economically important macroalgae species grown in southern China. However, the mechanism underlying the high-temperature tolerance of P. haitanensis remains largely unknown. In a previous study, we showed that the expression of the small heat shock protein 22 gene (Hsp22) is upregulated in P. haitanensis in response to high-temperature stress, but the associated regulatory mechanism was not fully elucidated. In this study, a transgenic Chlamydomonas reinhardtii expression system was used to functionally characterize P. haitanensis Hsp22. Our analyses indicated that the C-terminal of PhHsp22 is highly conserved and contains an A-crystal structure domain. A phylogenetic analysis revealed PhHsp22 is not closely related to small heat shock protein genes in other species. Additionally, PhHsp22 expression significantly increased at 3 and 6 h after initiating 33 °C treatment, which improved the survival rate of transgenic C. reinhardtii during the early stage of high-temperature treatment. The further transcriptome analysis revealed that PhHsp22 expression can promote pathways related to energy metabolism, metabolites metabolism, and protein homeostasis in transgenic C. reinhardtii cells exposed to high temperatures. Therefore, PhHsp22 may be crucial for the response of Pyropia species to high-temperature stress. Furthermore, this gene may be useful for breeding new high-temperature algal strains.
Funder
National Natural Science Foundation of China Key Technologies Research and Development Program Fujian Province Science and Technology Major Project Agriculture Research System of China
Publisher
Springer Science and Business Media LLC
Subject
Plant Science,Aquatic Science
Reference57 articles.
1. Blouin NA, Brodie JA, Grossman AC, Xu P, Brawley SH (2011) Porphyra: a marine crop shaped by stress. Trends Plant Sci 16:29–37 2. Bochtler M, Ditzel L, Groll M, Hartmann C, Huber R (1999) The proteasome. Annu Rev Biophys Biomol Struct 28:295–317 3. Brawley SH, Blouin NA, Ficko-Blean E, Wheeler GL, Lohr M, Goodson HV, Jenkins JW, Blaby-Haas CE, Helliwell KE, Chan CX, Marriage TN, Bhattacharya D, Klein AS, Badis Y, Brodie J, Cao Y, Collén J, Dittami SM, Gachon CMM, Green BR, Karpowicz SJ, Kim JW, Kudahl UJ, Lin S, Michel G, Mittag M, Olson BJSC, Pangilinan JL, Peng Y, Qiu H, Shu S, Singer JT, Smith AG, Sprecher BN, Wagner V, Wang W, Wang ZY, Yan J, Yarish C, Zäuner-Riek S, Zhuang Y, Zou Y, Lindquist EA, Grimwood J, Barry KW, Rokhsar DS, Schmutz J, Stiller JW, Grossman AR, Prochnik SE (2017) Insights into the red algae and eukaryotic evolution from the genome of Porphyra umbilicalis (Bangiophyceae, Rhodophyta). Proc Natl Acad Sci U S A 114:E6361–E6370 4. Cao M, Xu KP, Yu XZ, Bi GQ, Liu Y, Kong FN, Sun PP, Tang XH, Du GY, Ge Y, Wang DM, Mao YX (2020) A chromosome level genome assembly of Pyropia haitanensis (Bangiales, Rhodophyta). Mol Ecol Resour 20:216–227 5. Chen CS, Ji DH, Xie CT, Xu Y, Liang Y, Zheng YJ, Shi XZ, Wang FX, Zhao ML (2008) Preliminary study on selecting the HT resistance strains and economic traits of Porphyra haitanensis (in Chinese). Acta Oceanol Sin 30:100–106
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