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| Expression of the Drought-responsive Transcription Factor StERF89 in Potato (Solanum tuberosum) and Its Regulatory Role of StDIR31 |
| WANG Yan-Hao1,2, WANG Xiao2,3, WANG Kai-Tong2,3, WEI Han2,3, YANG Liang2,3, LYU Shuo1,2, ZHANG Ning1,2, SI Huai-Jun1,2,* |
1 College of Life Science and Technology, Gansu Agricultural University, Lanzhou 730070, China; 2 State Key Laboratory of Aridland Crop Science, Gansu Agricultural University, Lanzhou 730070, China; 3 College of Agronomy, Gansu Agricultural University, Lanzhou 730070, China |
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Abstract The AP2/ERF (APETALA2/ethylene responsive factor) transcription factor family, one of the largest transcription factor families in plants, plays a crucial role in regulating plant growth, development, and abiotic stress responses. In this study, using the potato (Solanum tuberosum) cultivar 'Atlantic' as material, the S. tuberosum ethylene-responsive factor 89 (StERF89) gene (GenBank No. XM_006365280) was cloned, with a CDS of 891 bp. Bioinformatics analysis revealed that this gene lacked introns, and its promoter region contained cis-acting elements associated with drought stress response. Tissue-specificity analysis showed that StERF89 expression levels were highest in potato tubers, followed by leaves. Under natural drought conditions, StERF89 gene expression exhibited an upward trend as drought stress intensified, suggesting potential involvement in drought stress response. Further analysis revealed that the promoter region of S. tuberosum dirigent protein 31 (StDIR31), a lignin synthesis-related gene, contained 2 DRE/CRT elements, and its expression pattern under drought stress was similar to that of StERF89. Using yeast one-hybrid assays, dual luciferase reporter assays, and β-glucuronidase (GUS) staining experiments, it was further confirmed that StERF89 directly bound to the StDIR31 promoter and positively regulated its expression. This study provides crucial evidence for further investigation into the functional regulation of the StERF89 transcription factor.
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Received: 04 December 2025
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Corresponding Authors:
*hjsi@gsau.edu.cn
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[1] 崔勇, 杨明明, 曾权, 等. 2025. 非生物胁迫对马铃薯生长发育的影响研究[J]. 农业开发与装备, (10): 93-96. (Cui Y, Yang M M, Z Q, et al. 2025. Effects of abiotic stress on potato growth and development[J]. Agricultural Development and Equipment, (10): 93-96.) [2] Ai J, Yang M, Zou J, et al.2025. The transcription factor StERF75 negatively regulates starch biosynthesis by targeting isoamylase in potato[J]. International Journal of Biological Macromolecules, 321(Pt 1):146118. [3] An J P, Zhang X W, Bi S Q, et al.2020. The ERF transcription factor MdERF38 promotes drought stress-induced anthocyanin biosynthesis in apple[J]. The Plant Journal, 101(3): 573-589. [4] Bian X, Kim H S, Kwak S S, et al.2022. Different functions of IbRAP2.4, a drought-responsive AP2/ERF transcription factor, in regulating root development between Arabidopsis and sweetpotato[J]. Frontiers in Plant Science, 13: 820450. [5] Chen R, Yu J, Yu L, et al.2024. The ERF transcription factor LTF1 activates DIR1 to control stereoselective synthesis of antiviral lignans and stress defense in Isatis indigotica roots[J]. Acta Pharmaceutica Sinica. B, 14(1): 405-420. [6] Choi S J, Lee Z, Kim S, et al.2023. Modulation of lignin biosynthesis for drought tolerance in plants[J]. Frontiers in Plant Science, 14: 1116426. [7] Feng D, He S, Chung J P.2025. Isolation of the AP2/ERF transcription factor CaERF14 in pepper and functional characterization under salinity and dehydration stress[J]. Scientific Reports, 15: 19726. [8] Fu J B, Zhao Y Y, Min Y, et al.2025. ERF026 balances the growth and drought stress response of Medicago sativa L. by regulating jasmonic acid metabolism[J]. Plant Physiology, 199(4): kiaf606. [9] Gao Y Q, Huang J Q, Reyt G, et al.2023. A dirigent protein complex directs lignin polymerization and assembly of the root diffusion barrier[J]. Science, 382(6669): 464-471. [10] Jung S E, Bang S W, Kim S H, et al.2021. Overexpression of OsERF83, a vascular tissue-specific transcription factor gene, confers drought tolerance in rice[J]. International Journal of Molecular Sciences, 22(14): 7656. [11] Kong L, Song Q, Wei H, et al.2023. The AP2/ERF transcription factor PtoERF15 confers drought tolerance via JA-mediated signaling in Populus[J]. The New Phytologist, 240(5): 1848-1867. [12] Lee D K, Jung H, Jang G, et al.2016. Overexpression of the OsERF71 transcription factor alters rice root structure and drought resistance[J]. Plant Physiology, 172(1): 575-588. [13] Li D, Li X, Wang Z, et al.2024. Transcription factors RhbZIP17 and RhWRKY30 enhance resistance to Botrytis cinerea by increasing lignin content in rose petals[J]. Journal of Experimental Botany, 75(5): 1633-1646. [14] Li X, Luo L, Shi X, et al.2025. Screening drought tolerance in potato germplasm resources in the northwestern region of China[J]. BMC Plant Biology, 25(1): 777. [15] Ma Z, Hu L, Jiang W.2024. Understanding AP2/ERF transcription factor responses and tolerance to various abiotic stresses in plants: A comprehensive review[J]. International Journal of Molecular Sciences, 25(2): 893. [16] Niu H, Chen Y, Jin W, et al.2025. Identification of ERF genes and characterization of ClERF054 under cold and salt stresses in Citrullus lanatus[J]. BMC Plant Biology, 26(1): 54. [17] Paniagua C, Bilkova A, Jackson P, et al.2017. Dirigent proteins in plants: Modulating cell wall metabolism during abiotic and biotic stress exposure[J]. Journal of Experimental Botany, 68(13): 3287-3301. [18] Serk H, Gorzsás A, Tuominen H, et al.2015. Cooperative lignification of xylem tracheary elements[J]. Plant Signaling & Behavior, 10(4): e1003753. [19] Sun X, Xiong H, Jiang C, et al.2022. Natural variation of DROT1 confers drought adaptation in upland rice[J]. Nature Communications, 13(1): 4265. [20] Sun Y, Ren S, Ye S, et al.2020. Identification and functional characterization of PtoMYB055 involved in the regulation of the lignin biosynthesis pathway in Populus tomentosa[J]. International Journal of Molecular Sciences, 21(14): 4857. [21] Thilakarathne A S, Liu F, Zou Z.2025. Plant signaling hormones and transcription factors: Key regulators of plant responses to growth, development, and stress[J]. Plants (Basel), 14(7): 1070. [22] Wang J, Wang D, Zhao M, et al.2025. A transcription factor, PbWRKY24, contributes to russet skin formation in pear fruits by modulating lignin accumulation[J]. Horticulture Research, 12(2): uhae300. [23] Wei J, Zhang N, Deng Y, et al.2025. Functional analysis of the StERF79 gene in response to drought stress in potato (Solanum tuberosum L.)[J]. BMC Plant Biology, 25(1): 387. [24] Wu Y, Li X, Zhang J, et al.2022. ERF subfamily transcription factors and their function in plant responses to abiotic stresses[J]. Frontiers in Plant Science, 13: 1042084. [25] Yu Y, Wang C, Wang J, et al.2025. The ERF transcription factor TaERF13-2B functions as a negative regulator of drought tolerance in Arabidopsis and wheat[J]. Frontiers in Plant Science, 16: 1535850. [26] Zhu C, Li X, Zhang M, et al.2025. ERF.D2 negatively controls drought tolerance through synergistic regulation of abscisic acid and jasmonic acid in tomato[J]. Plant Biotechnology Journal, 23(8): 3363-3381. |
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