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Cloning of HD-Zip Transcription Factor Pehox14 Gene in Moso Bamboo (Phyllostachys edulis) and Its Functional Analysis Under Drought and Salt Stress |
LIU Yu-Jiao, YAN Xiao-Ling, CHANG Xin, XIAO Ya-Qian, CAO Shan, GUO Xiao-Qin* |
National Key Laboratory for Development and Utilization of Forest Food Resources/Key Laboratory of Bamboo Science and Technology of Ministry of Education/Bamboo Industry Institute, Zhejiang A&F University, Hangzhou 311300, China |
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Abstract The homeodomain-leucine zipper (HD-Zip) protein is a specific transcription factor in plants, playing important regulatory roles in plant growth, development and environmental stress response. Moso bamboo (Phyllostachys edulis) grows rapidly and exhibits strong adaptability. It can cope with environmental stress and maintain normal growth and development under abiotic stress. In order to explore the expression pattern of the HD-Zip gene in moso bamboo under drought and salt stress, this study obtained the HD-Zip family member Pehox14 (GenBank No. PQ806999) gene from moso bamboo. Sequence analysis showed that the ORF length of the Pehox14 gene was 699 bp, encoding 232 amino acids, including 3 exons and 2 introns. The Pehox14 protein had a conserved Homeodomain domain and a special HALZ (Leucine Zipper) domain. Subcellular localization showed that Pehox14 was located in nucleus. By using qRT-PCR to analyze the expression patterns under drought and salt stress conditions, the results showed that the expression of Pehox14 gene was significantly upregulated under drought and salt stress. Transgenic Arabidopsis plants were generated by Agrobacterium infection. Analysis of abiotic stress indicated that when transgenic Arabidopsis plants were subjected to mannitol and NaCl treatment, their germination rate, survival rate and plant height were significantly higher than those of control, indicating that overexpression of Pehox14 could enhance the tolerance of transgenic Arabidopsis to drought and salt stress. In addition, under stress conditions of 200 mmol/L mannitol and 200 mmol/L NaCl, the expression of stress-related genes, such as AtRD29A (responsive to desiccation 29A), AtRD22 (responsive to desiccation 22), AtLEA (late embryogenesis abundant), AtSOS1 (salt overly sensitive 1), AtNHX1 (Na+/H+ exchanger 1) and AtHKT (high-affinity K+ transporter) was significantly upregulated in transgenic plants. Overall, Pehox14 plays a positive regulatory role in response to drought and salt stress. This study provides a theoretical basis for investigating the molecular regulation mechanism of HD-Zip transcription factors in stress resistance of moso bamboo.
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Received: 25 October 2024
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Corresponding Authors:
*xqguo@Zafu.edu.cn
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[1] 梁思维, 姜昊梁, 翟立红, 等. 2020. 玉米HD-ZIPⅠ亚家族基因鉴定及表达分析[J]. 作物学报, 46: 532-543. (Liang S W, Jiang H L, Zhai L H, et al.2020. Genome-wide identification and expression analysis of HD-ZIPⅠ subfamily genes in maize[J]. Acta Agronomica Sinica, 46: 532-543.) [2] 王亦学, 郝曜山, 张欢欢, 等. 2023. 小麦胁迫相关蛋白基因TaSAP12-D的耐盐性分析[J]. 核农学报, 37: 42-50. (Wang Y X, Hao Y S, Zhang H H, et al.2023. Identification and analysis of salt-tolerance of stress associated protein gene (TaSAP12-D) from wheat[J]. Journal of Nuclear Agriculture Sciences, 37: 42-50.) [3] Agalou A, Purwantomo S, Overnäs E, et al.2007. A genome-wide survey of HD-Zip genes in rice and analysis of drought-responsive family members[J]. Plant Molecular Biology, 66: 87-103. [4] An J P, Yao J F, Xu R R, et al.2018. An apple NAC transcription factor enhances salt stress tolerance by modulating the ethylene response[J]. Physiologia Plantarum, 164(3): 279-289. [5] Ariel F D, Manavella P A, Dezar C A, et al.2007. The true story of the HD-Zip family[J]. Trends in Plant Science, 12(9): 419-426. [6] Chen D, Chen Z, Wu M, et al.2017. Genome-wide identification and expression analysis of the HD-Zip gene family in moso bamboo (Phyllostachys edulis)[J]. Journal of Plant Growth Regulation, 36: 323-337. [7] Gao S, Fang J, Xu F, et al.2016. Rice HOX12 regulates panicle exsertion by directly modulating the expression of ELONGATED UPPERMOST INTERNODE1[J]. The Plant Cell, 28(3): 680-95. [8] Gao Y, Liu H, Zhang K, et al.2020. A moso bamboo transcription factor, Phehdz1, positively regulates the drought stress response of transgenic rice[J]. Plant Cell Reports, 40: 187-204. [9] Gong S, Ding Y, Hu S, et al.2019. The role of HD-Zip classⅠ transcription factors in plant response to abiotic stresses[J]. Physiologia Plantarum, 167: 516-525. [10] Gong Z, Xiong L, Shi H, et al.2020. Plant abiotic stress response and nutrient use efficiency[J]. Science China Life Sciences, 63: 635-674. [11] Henriksson E, Olsson A S, Johannesson H, et al.2005. Homeodomain leucine zipper classⅠ genes in Arabidopsis. expression patterns and phylogenetic relationships[J]. Plant Physiology, 139: 509-518. [12] Hong Y, Liu Y, Jia L, et al.2021. Genome-wide characterization of homeobox-leucine zipper gene family in tomato (Solanum lycopersicum) and functional analysis of SlHDZ34 (Ⅲ sub-family member) under salinity stress[J]. Environmental and Experimental Botany, 192: 114652. [13] Li Y, Yang Z, Zhang Y, et al.2022. The roles of HD-ZIP proteins in plant abiotic stress tolerance[J]. Front Plant Science, 13: 1027071. [14] Parida A K, Das A B.2004. Salt tolerance and salinity effects on plants: A review[J]. Ecotoxicology and Environmental Safety, 60(3): 324-349. [15] Qu D, Wu F, Zhao X, et al.2021. A bZIP transcription factor VabZIP12 from blueberry induced by dark septate endocyte improving the salt tolerance of transgenic Arabidopsis[J]. Plant Science, 315: 111135. [16] Que F, Liu Q, Zha R, et al.2022. Genome-wide identification, expansion, and evolution analysis of homeobox gene family reveals TALE genes important for secondary cell wall biosynthesis in moso bamboo (Phyllostachys edulis)[J]. International Journal of Molecular Sciences, 23(8): 4112. [17] Sharif R, Raza A, Chen P, et al.2021. HD-ZIP gene family: Potential roles in improving plant growth and regulating stress-responsive mechanisms in plants[J]. Genes, 12(8): 1256. [18] Sharif R, Xie C, Wang J, et al.2020. Genome wide identification, characterization and expression analysis of HD-ZIP gene family in Cucumis sativus L. under biotic and various abiotic stresses[J]. International Journal of Biological Macromolecules, 158: 502-520. [19] Sharma M, Kumar P, Verma V, et al.2022. Understanding plant stress memory response for abiotic stress resilience: Molecular insights and prospects[J]. Plant Physiology and Biochemistry, 179: 10-24. [20] Sun H, Li L, Lou Y, Zhao H, et al.2017. The bamboo aquaporin gene PeTIP4;1-1 confers drought and salinity tolerance in transgenic Arabidopsis[J]. Plant Cell Reports, 36: 597-609. [21] Tang Y, Bao X, Wang S, et al.2019. A physic nut stress-responsive HD-Zip transcription factor, JcHDZ07, confers enhanced sensitivity to salinity stress in transgenic Arabidopsis[J]. Frontiers in Plant Science, 10: 942. [22] Wang Q, Guan C, Wang P, et al.2019. The effect of AtHKT1;1 or AtSOS1 mutation on the expressions of Na+ or K+ transporter genes and ion homeostasis in Arabidopsis thaliana under salt stress[J]. International Journal of Molecular Sciences, 20(5): 1085. [23] Wang W, Vinocur B, Altman A.2003. Plant responses to drought, salinity and extreme temperatures: Towards genetic engineering for stress tolerance[J]. Planta, 218(1): 1-14. [24] Wang X, Geng X, Bi X, et al.2022. Genome-wide identification of AOX family genes in moso bamboo and functional analysis of PeAOX1b_2 in drought and salinity stress tolerance[J]. Plant Cell Reports, 41(12): 2321-2339. [25] Wei M, Liu A, Zhang Y, et al.2019. Genome-wide characterization and expression analysis of the HD-Zip gene family in response to drought and salinity stresses in sesame[J]. BMC Genomics, 20(1): 748. [26] Xu Y, Wang L, Liu H, et al.2022. Identification of TCP family in moso bamboo (Phyllostachys edulis) and salt tolerance analysis of PheTCP9 in transgenic Arabidopsis[J]. Planta, 256(1): 5. [27] Yamaguchi-Shinozaki K, Shinozaki K.1993. The plant hormone abscisic acid mediates the drought-induced expression but not the seed-specific expression of rd22, a gene responsive to dehydration stress in Arabidopsis thaliana[J]. Molecular and General Genetics MGG, 238(1-2): 17-25. [28] Yamaguchi-Shinozaki K, Shinozaki K.1994. A novel cis-acting element in an Arabidopsis gene is involved in responsiveness to drought, low-temperature, or high-salt stress[J]. The Plant Cell, 6(2): 251-264. [29] Yan X, Yue Z, Pan X, et al.2022. The HD-ZIP gene family in Watermelon: Genome-wide identification and expression analysis under abiotic stresses[J]. Genes, 13(12): 2242. [30] Yang L, Liu H, Fu S M, et al.2017. Na+/H+ and K+/H+ antiporters AtNHX1 and AtNHX3 from Arabidopsis improve salt and drought tolerance in transgenic poplar[J]. Biologia Plantarum, 61(4): 641-650. [31] Zhang K, Lan Y, Zhang S, et al.2024a. A PLATZ transcription factor PhePLATZ8 from moso bamboo (Phyllostachysedulis) plays a positive role in regulating growth and abiotic stress tolerance[J]. Industrial Crops and Products, 221: 119334. [32] Zhang Y, Wu L, Li Y, et al.2024b. Bamboo shoot and its food applications in last decade: An undervalued edible resource from forest to feed future people[J]. Trends in Food Science & Technology, 146: 104399. [33] Zhang Z, Huang B, Chen J, et al.2022. Genome-wide identification of JRL genes in moso bamboo and their expression profiles in response to multiple hormones and abiotic stresses[J]. Frontiers in Plant Science, 12: 809666. [34] Zhao Y, Ma Q, Jin X, et al.2014. A novel maize homeodomain-leucine zipper (HD-Zip)Ⅰ gene, Zmhdz10, positively regulates drought and salt tolerance in both rice and Arabidopsis[J]. Plant & Cell Physiology, 55(6): 1142-1156. [35] Zhu C, Lin Z, Liu Y, et al.2024. A bamboo HD‐Zip transcription factor PeHDZ72 conferred drought tolerance by promoting sugar and water transport[J]. Plant, Cell & Environment, 1-13. [36] Zhu C, Yang K, Li G, et al.2021. Identification and expression analyses of invertase genes in moso bamboo reveal their potential drought stress functions[J]. Frontiers in Genetics, 12: 696300. [37] Żyła N, Babula-Skowrońska D.2023. Evolutionary consequences of functional and regulatory divergence of HD-ZipⅠ transcription factors as a source of diversity in protein interaction networks in plants[J]. Journal of Molecular Evolution, 91(5): 581-597. |
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