参考文献/References:
[1]张婷婷,康慧,付璐璐,等. 苹果MdCYP707A家族基因表达分析和MdCYP707A1的功能鉴定[J]. 园艺学报, 2019, 46(8): 1429-1444.
[2]UMEMURA Y, ISHIDUKA T, YAMAMOTO R, et al. The Dof domain, a zinc finger DNA-binding domain conserved only in higher plants, truly functions as a Cys2/Cys2 Zn finger domain[J]. The Plant Journal, 2004, 37 (5): 741-749.
[3]MARZABAL P, GAS E, FONTANET P, et al. The maize Dof protein PBF activates transcription of γ-zein during maize seed development[J]. Plant Molecular Biology, 2008, 67 (5): 441-454.
[4]TOKUNAGA S, SANDA S, URAGUCHI Y, et al. Overexpression of the DOF-Type transcription factor enhances lipid synthesis in Chlorella vulgaris[J]. Applied Biochemistry and Biotechnology, 2019, 189(1): 116-128.
[5]KURAI T, WAKAYAMA M, ABIKO T, et al. Introduction of the ZmDof1 gene into rice enhances carbon and nitrogen assimilation under low-nitrogen conditions[J]. Plant Biotechnology Journal, 2011, 9 (8): 826-837.
[6]李娅,丁文杰,江海燕,等. Dof基因家族调节植物生长发育功能的研究进展[J]. 西北植物学报, 2018, 38(9): 1758-1766.
[7]YANAGISAWA S. The Dof family of plant transcription factors[J]. Trends in Plant Science, 2002, 7(12): 555-560.
[8]SHAW L M, MCINTYRE C L, GRESSHOFF P M, et al. Members of the Dof transcription factor family in Triticum aestivum are associated with light-mediated gene regulation[J]. Functional & Integrative Genomics, 2009, 9(4): 485-498.
[9]GUO Y, QIU L J. Genome-wide analysis of the Dof transcription factor gene family reveals soybean-specific duplicable and functional characteristics[J]. PLoS One, 2013, 8(9): e76809.
[10]LIJAVETZKY D, CARBONERO P, VICENTE-CARBAJOSA J. Genome-wide comparative phylogenetic analysis of the rice and Arabidopsis Dof gene families[J]. BMC Evolutionary Biology, 2003, 3(1): 17.
[11]JUNG S, LEE T, CHENG C H, et al. 15 years of GDR: New data and functionality in the Genome Database for Rosaceae[J]. Nucleic Acids Research, 2019, 47(D1): D1137-D1145.
[12]KANG Y J, YANG D C, KONG L, et al. CPC2: a fast and accurate coding potential calculator based on sequence intrinsic features[J]. Nucleic Acids Research, 2017, 45(W1): W12-W16.
[13]EL-GEBALI S, MISTRY J, BATEMAN A, et al. The Pfam protein families database in 2019[J]. Nucleic Acids Research, 2019, 47(D1): D427-D432.
[14]GASTEIGER E, HOOGLAND C, GATTIKER A, et al. Protein identification and analysis tools on the ExPASy server[M]New Jersey: Humana Press, 2005: 571-607.
[15]KATOH K, ROZEWICKI J, YAMADA K D. MAFFT online service: multiple sequence alignment, interactive sequence choice and visualization[J]. Briefings in Bioinformatics, 2019, 20(4): 1160-1166.
[16]SUBRAMANIAN B, GAO S, LERCHER M J, et al. Evolview v3: a webserver for visualization, annotation, and management of phylogenetic trees[J], Nucleic Acids Research, 2019, 47(W1): W270-W275.
[17]HU B, JIN P, GUO A Y, et al. GSDS 2.0: an upgraded gene feature visualization server[J]. Bioinformatics, 2015, 31(8): 1296-1297.
[18]BAILEY T L , ELKAN C. Fitting a mixture model by expectation maximization to discover motifs in biopolymers[C]// ALTMAN R, BRUTLAG D, KARP P, et al. Proceedings of the Second International Conference on Intelligent Systems for Molecular Biology. Menlo Park, California: AAAI Press,1994: 28-36.
[19]DA L L, LIU Y, YANG J T, et al. AppleMDO: a multi-dimensional omics database for apple co-expression networks and chromatin states[J]. Frontiers in Plant Science, 2019(10): 1333.
[20]EWAS M, KHAMES E, ZIAF K, et al. The tomato DOF daily fluctuations 1, TDDF1 acts as flowering accelerator and protector against various stresses[J]. Scientific Reports, 2017(7): 10299.
[21]CORRALES A R, CARRILLO L, LASIERRA P, et al. Multifaceted role of cycling DOF factor 3 (CDF3) in the regulation of flowering time and abiotic stress responses in Arabidopsis[J]. Plant Cell and Environment, 2017, 40 (5): 748-764.
[22]XU P P, CHEN H Y, YING L, et al. At DOF5.4/OBP4, a DOF transcription factor gene that negatively regulates cell cycle progression and cell expansion in Arabidopsis thaliana[J]. Scientific Reports, 2016(6): 27705.
[23]李辉,黄蔚,刘志薇,等. 茶树两个Dof 转录因子的分离及其在温度胁迫中的响应分析[J]. 茶叶科学, 2016, 36(3): 312-322.
[24]王海波,唐利洲. 基于基因组鉴定小桐子Dof 转录因子家族及其表达分析[J]. 分子植物育种, 2018, 16(3): 764-771.
[25]刘蓓,邱爽,何佳琦,等. 8个大豆Dof转录因子的生物信息学分析及干旱诱导表达[J]. 大豆科学, 2020, 39(3): 377-383.
[26]程冬梅,邓志勇,郭霭光. 小麦高分子量麦谷蛋白亚基等电点的特性分析[J]. 西北植物学报, 2006, 26(3): 532-536.
[27]GABRIELE S, RIZZA A, MARTONE J, et al. The Dof protein DAG1 mediates PIL5 activity on seed germination by negatively regulating GA biosynthetic gene AtGA3ox1[J]. The Plant Journal, 2010, 61(2): 312-323.
[28]GUALBERTI G, PAPI M, BELLUCCI L, et al. Mutations in the Dof zinc finger genes DAG2 and DAG1 influence with opposite effects the germination of Arabidopsis seeds[J]. The Plant Cell, 2002, 14(6): 1253-1263.
[29]SONG Y H, SMITH R W, TO B J, et al. FKF1 conveys crucial timing information for CONSTANS stabilization in the photoperiodic flowering[J]. Science, 2012, 336(6084): 1045-1049.
[30]FORNARA F, PANIGRAHI K C S, GISSOT L, et al. Arabidopsis DOF transcription factors act redundantly to reduce CONSTANS expression and are essential for a photoperiodic flowering response[J]. Developmental Cell, 2009, 17(1): 75-86.
[31]TSUJIMOTO-INUI Y, NAITO Y, SAKURAI N, et al. Functional genomics of the Dof transcription factor family genes in suspension-cultured cells of Arabidopsis thaliana[J]. Plant Biotechnology, 2009(26): 15-28.
[32]SKIRYCZ A, RADZIEJWOSKI A, BUSCH W, et al. The DOF transcription factor OBP1 is involved in cell cycle regulation in Arabidopsis thaliana[J]. The Plant Journal , 2008,56(5): 779-792.
[33]裴徐梨,荆赞革,徐境,等. 青花菜BoDof5.3基因的克隆及渍水胁迫表达特征分析[J].江苏农业学报,2020,36(6):1498-1502.
[34]韩利红,刘潮,张维维,等. 铁皮石斛热激转录因子(Hsf)基因家族鉴定及生物信息学分析[J]. 南方农业学报,2019,50(4):677-684.
[35]庞文玉,王安,杨宝谊,等. 大白菜ENT基因家族的鉴定与生物信息学分析[J].江苏农业科学,2019, 47(12):52-57.
[36]杨冬静,孙厚俊,谢逸萍,等. 甘薯等8种植物JAZ1基因的生物信息学分析[J].江苏农业学报,2019,35(5):1021-1027.
[37]唐跃辉,包欣欣,王健,等. 小桐子Dof基因家族生物信息学与表达分析[J]. 江苏农业学报, 2019, 35(1): 15-25.
[38]SADDEE A A, MALVANKAR M R, KUMAR K. Selection of reference genes for quantitative real-time PCR analysis in halophytic plant Rhizophora apiculata[J]. The Journal of Life and Environmental Sciences, 2018, 6(8): e5226.
[39]KANG H G, SINGH K B. Characterization of salicylic acid-responsive, Arabidopsis Dof domain proteins: overexpression of OBP3 leads to growth defects[J]. The Plant Journal, 2000,21(4): 329-339.
[40]SKIRYCZ A, REICHELT M, BUROW M, et al. DOF transcription factor AtDof1.1 (OBP2) is part of a regulatory network controlling glucosinolate biosynthesis in Arabidopsis[J]. The Plant Journal, 2006,47(1): 10-24.
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