[1] 乔雨, 石凤翎, 钱亚斯, 等. 蒙农红豆草EMS诱变后代光合特性比较研究[J]. 草地学报, 2020, 28(2): 367-374 [2] 任志强, 杨慧珍, 卜华虎, 等. 诱变在作物遗传育种中的应用进展[J]. 中国农学通报, 2016, 32(33): 125-129 [3] SUDAN J, RAINA M, SINGH R. Plant epigenetic mechanisms: role in abiotic stress and their generational heritability[J]. 3 Biotech, 2018, 8(3): 172-184 [4] VANYUSHIN B F, ASHAPKIN V V. DNA methylation in higher plants: Past, present and future[J]. Biochim Biophys Acta, 2011, 1809(8): 360-368 [5] ABID G, MINGEOT D, MUHOVSKI Y, et al. Analysis of DNA methylation patterns associated with drought stress response in faba bean (Vicia faba L. ) using methylation sensitive amplification polymorphism (MSAP)[J]. Environmental and Experimental Botany, 2017, 142(4): 34-44 [6] 苏畅. 基于白桦全基因组重亚硫酸盐测序(bisulfite-sequencing)的甲基化图谱分析[D]. 哈尔滨: 东北林业大学, 2015: 8-21 [7] 薛倩. 京海黄鸡腿肌全基因组甲基化和转录组分析研究[D]. 扬州: 扬州大学, 2017: 48-56 [8] 赵倩, 王巍, 张萌, 等. 重离子辐射诱导水稻DNA甲基化变化的分析[J]. 核农学报, 2016, 30(9): 1665-1671 [9] 杨震, 郭会君, 赵林姝, 等. 60Co-γ射线诱导的小麦基因组DNA的甲基化变异[J]. 核农学报, 2015, 29(1): 1-9 [10] 司灿. 铁皮石斛对干旱胁迫的生理响应及DNA甲基化研究[D]. 厦门: 华侨大学, 2016: 37-50 [11] 朱恒星. 四倍体长春花(Catharanthus roseus)生物学特性研究及DNA甲基化分析[D]. 重庆: 西南大学, 2009: 23-34 [12] 韩微波, 张月学, 唐凤兰, 等. 卫星搭载选育紫花苜蓿品种农1号[J]. 黑龙江农业科学, 2015(1): 168-169 [13] 申晓慧. 两种诱变处理对紫花苜蓿种子萌发及植株生理生化特性的影响[J]. 草业科学, 2018, 35(6): 1435-1442 [14] 申晓慧, 冯鹏, 李如来, 等. 不同诱变处理对紫花苜蓿生理生化指标的影响[J]. 农学学报, 2018, 8(10): 70-75 [15] FENG P, SHEN X H, LI R L, et al. Effect of different mutagenesis methods on microstructure and ultrastructure of alfalfa[J]. Pakistan Journal of Botany, 2018, 50(4): 1387-1393 [16] 张延召, 曹喜兵, 翟晓巧, 等. 适用于AFLP分析的泡桐DNA提取方法研究[J]. 河南农业大学学报, 2009, 43(6): 610-614 [17] GUO S, DIEP D, PLONGTHONGKUM N, et al. Identification of methylation haplotype blocks aids in deconvolution of heterogeneous tissue samples and tumor tissue-of-origin mapping from plasma DNA[J]. Nature Genetics, 2017, 49(4): 635-642 [18] KRUEGER F, ANDREWS S R. Bismark: a flexible aligner and methylation caller for Bisulfite-Seq applications[J]. Bioinformatics, 2011(27): 1571-1572 [19] YANG X D, MACKENZIE S A. Approaches to whole-genome methylome analysis in plants[J]. Methods in Molecular Biology, 2020(2093): 15-31 [20] KANEHISA M, FURUMICHI M. KEGG: new prespectives on genomes, pathways, diseases and drugs[J]. Nucleic Acids Research, 2016(45): 353-361 [21] ARTHUR B, QIANG H P, LIAM S, et al. Dynamic DNA Methylation in Plant Growth and Development[J]. International Journal of Molecular Sciences, 2018, 19(7): 2144 [22] ZEMAACH A, KIM M Y, HSIEH P H, et al. The Arabidopsis Nucleosome Remodeler DDM1 Allows DNA Methyltransferases to Access H1-Containing Heterochromatin[J]. Cell, 2013, 153(1): 193-205 [23] SUDAN J, RAINA M, SINGH R. Plant epigenetic mechanisms: role in abiotic stress and their generational heritability[J]. Biotechnology, 2018, 8(3): 172 [24] XIAO K, CHEN J H, QI X M, et al. DNA methylation is involved in the regulation of pepper fruit ripening and interacts with phytohormones[J]. Journal of Experimental Botany, 2020, 71(6): 1928-1942 [25] 崔会婷, 孙熙喏, 马承泽, 等. 代谢组学在牧草与草坪草抗逆性中的研究进展[J]. 草地学报, 2020, 28(4): 873-880. [26] ZHONG S L, FEI Z J, CHEN Y R, et al. Single-base resolution methylomes of tomato fruit development reveal epigenome modifications associated with ripening[J]. Nature Biotechnology, 2013, 31(2): 154-159 [27] 邢燕霞, 黄韫宇, 齐艳, 等. NaCl胁迫下黑麦草种子萌发过程中DNA甲基化与基因表达分析[J]. 草地学报, 2014, 22(2): 366-374 [28] NIEDERHUTH C E, BEWICK A J, JI L, et al. Widespread natural variation of DNA methylation within angiosperms[J]. Genome Biol, 2016, 17(1): 194 [29] XU J D, ZHOU S S, GONG X Q, et al. Single-base methylome analysis reveals dynamic epigenomic differences associated with water deficit in apple[J]. Plant Biotechnol Journal, 2018, 16(2): 672-687 [30] GRAFI G. Epigenetics in plant development and response to stress[J]. Biochim Biophys Acta, 2011, 1809(8): 351-352 [31] SHI J M, LU W H, SUN Y Q. Comparison of space flight and heavy ion radiation induced genomic/epigenomic mutations in rice (Oryzasativa)[J]. Life Sciences in Space Research, 2014(1): 74-79 [32] LIANG D, ZHANG Z, WU H, et al. Single-base-resolution methylomes of populus trichocarpa reveal the association between DNA methylation and drought stress[J]. BMC Genetics, 2014, 15(Suppl1): S9 [33] 赵一博, 辛翠花, 赵慧, 等. DNA甲基化在植物响应重金属胁迫中的作用[J]. 种子, 2016, 35(12): 43-46 [34] 华霜. 低温胁迫白灵菇原基形成过程中DNA甲基化变异及调控基因研究[D]. 长春: 吉林农业大学, 2017: 33-40 [35] 赵振利, 张靖曼, 郑秋莉, 等. 白花泡桐丛枝病发生过程中全基因组DNA甲基化差异分析[J]. 河南农业大学学报, 2020, 54(3): 400-407 [36] 申晓慧, 姜成, 冯鹏, 等. 零磁空间诱变对紫花苜蓿品种生长特性的研究[J]. 核农学报, 2018, 32(4): 633-638 |