Acta Agronomica Sinica ›› 2021, Vol. 47 ›› Issue (6): 1124-1137.doi: 10.3724/SP.J.1006.2021.04150
• CROP GENETICS & BREEDING·GERMPLASM RESOURCES·MOLECULAR GENETICS • Previous Articles Next Articles
XU Jing1(), PAN Li-Juan1, LI Hao-Yuan2, WANG Tong1, CHEN Na1, CHEN Ming-Na1, WANG Mian1, YU Shan-Lin1, HOU Yan-Hua2,*(), CHI Xiao-Yuan1,*()
[1] | Sarvamangala C, Gowda M, Varshney R. Identification of quantitative trait loci for protein content, oil content and oil quality for groundnut (Arachis hypogaea L.). Field Crops Res, 2011,122:49-59. |
[2] | Huth P J, Fulgoni III V L, Larson B T. A systematic review of high-oleic vegetable oil substitutions for other fats and oils on cardiovascular disease risk factors: implications for novel high-oleic soybean oils. Adv Nutr, 2015,6:674-693. |
[3] | 陈玉梅, 李璐璐, 陈锦玲, 徐媛, 李惠敏, 秦新民. 基于转录组测序的花生籽粒不同发育时期油脂合成相关基因差异表达分析. 河南农业科学, 2019,48(7):24-37. |
Chen Y M, Li L L, Chen J L, Xu Y, Li H M, Qin X M. Differential expression analysis of genes related to lipid synthesis through transcriptome sequencing during different developmental stages in peanut seed. J Henan Agric Sci, 2019,48(7):24-37 (in Chinese with English abstract). | |
[4] | Chi X Y, Yang Q L, Pan L J, Chen N, Wang T, Wang M, Yang Z, Guan X, Yu S L. Isolation and expression analysis of glycerol-3-phosphate acyltransferase genes from peanuts (Arachis hypogaea L.). Grasas y Aceites, 2015,66:e093. |
[5] | Chi X Y, Hu R B, Zhang X W, Chen M N, Chen N, Pan L J, Wang T, Wang M, Yang Z, Wang Q F, Yu S L. Cloning and functional analysis of three diacylglycerol acyltransferase genes from peanut (Arachis hypogaea L.). PLoS One, 2014,9:e105834. |
[6] | Zheng L, Shockey J, Guo F, Shi L M, Li X G, Shan L, Wan S B, Peng Z Y. Discovery of a new mechanism for regulation of plant triacylglycerol metabolism: the peanut diacylglycerol acyltransferase-1 gene family transcriptome is highly enriched in alternative splicing variants. J Plant Physiol, 2017,219:62-70. |
[7] | Chi X Y, Dong F, Yang Q L, Chen M N, Chen N, Pan L J, Wang T, Wang M, Yang Z, He Y N, Yu S L. Expression and characterization of Lysophosphatidyl acyltransferase genes from peanut (Arachis hypogaea L.). Res Crops, 2014,15:141-153. |
[8] | Chen S L, Huang J Q, Lei Y, Zhang Y T, Ren X P, Chen Y N, Jiang H F, Yan L Y, Li Y R, Liao B S. Identification and characterization of a gene encoding a putative lysophosphatidyl acyltransferase from Arachis hypogaea. J Biosci, 2012,37:1029-1039. |
[9] | 皮广静, 刘风珍, 万勇善, 张昆, 吕玉英, 张秀荣. 花生高油品系农大D666及其亲本油脂合成酰基转移酶基因的表达分析. 分子植物育种, 2018,16:1057-1065. |
Pi G J, Liu F Z, Wan Y S, Zhang K, Lyu Y Y, Zhang X R. Expression analysis of Acyltransferase genes involved in oil biosynthesis in high-oil peanut line Nongda D666 and parents. Mol Plant Breed, 2018,16:1057-1065 (in Chinese with English abstract). | |
[10] | Chi X Y, Yang Q L, Pan L J, Chen M N, He Y N, Yang Z, Yu S L. Isolation and characterization of fatty acid desaturase genes from peanut (Arachis hypogaea L.). Plant Cell Rep, 2011,30:1393-1404. |
[11] | Chi X Y, Zhang Z M, Chen N, Zhang X W, Wang M, Chen M N, Wang T, Pan L J, Chen J, Yang Z, Guan X Y, Yu S L. Isolation and functional analysis of fatty acid desaturase genes from peanut (Arachis hypogaea L.). PLoS One, 2017,12:e0189759. |
[12] | Focks N, Benning C. Wrinkled1: a novel, low-seed-oil mutant of Arabidopsis with a deficiency in the seed-specific regulation of carbohydrate metabolism. Plant Physiol, 1998,118:91-101. |
[13] | Pouvreau B, Baud B, Vernoud V, Morin V, Py C, Gendrot G, Pichon J P, Rouster J, Paul W, Rogowsky P M. Duplicate maize Wrinkled1 transcription factors activate target genes involved in seed oil biosynthesis. Plant Physiol, 2011,156:674-686. |
[14] | 孙金波, 石素华, 杨利, 李凤丽, 王兴军, 赵术珍. 花生WRI1基因家族的全基因组与表达谱分析. 花生学报, 2020,49(1):9-18. |
Sun J B, Shi S H, Yang L, Li F L, Wang X J, Zhao S Z. Genome-wide analysis of WRI1 gene family and their expression profiles in peanut. J Peanut Sci, 2020,49(1):9-18 (in Chinese with English abstract). | |
[15] | Harwood H J. Oleochemicals as a fuel: mechanical and economic feasibility. J Am Oil Chem Soci, 1984,61:315-324. |
[16] | 迟晓元, 郝翠翠, 潘丽娟, 陈娜, 陈明娜, 王通, 王冕, 杨珍, 梁成伟. 不同花生品种脂肪酸组成及其积累规律的研究. 花生学报, 2016,45(3):32-36. |
Chi X Y, Hao C C, Pan L J, Chen N, Chen M N, Wang T, Wang M, Yang Z, Liang C W. Fatty acid accumulation pattern in different types of peanut. J Peanut Sci, 2016,45:32-36 (in Chinese with English abstract). | |
[17] | Yu P, Wang C H, Xu Q, Feng Y, Yuan X P, Yu H Y, Wang Y P, Tang S X, Wei X H. Detection of copy number variations in rice using array-based comparative genomic hybridization. BMC Genomics, 2011,12:372. |
[18] | 陈娜, 迟晓元, 程果, 潘丽娟, 陈明娜, 王通, 王冕, 杨珍, 禹山林. 花生中低温胁迫相关转录因子基因的筛选. 核农学报, 2016,30(1):19-27. |
Chen N, Chi X Y, Cheng G, Pan L J, Chen M N, Wang T, Wang M, Yang Z, Yu S L. Profiling of genes encoding cold stress-related transcription factors in peanut. J Nucl Agric Sci, 2016,30:19-27 (in Chinese with English abstract). | |
[19] | Barbour J A, Howe P R, Buckley J D, Bryan J, Coates A M. Cerebrovascular and cognitive benefits of high-oleic peanut consumption in healthy overweight middle-aged adults. Nutr Neurosci, 2017,20:555-562. |
[20] | 姜慧芳, 任小平, 黄家权, 雷永, 廖伯寿. 野生花生脂肪酸组成的遗传变异及远缘杂交创造高油酸低棕榈酸花生新种质. 作物学报, 2009,35:25-32. |
Jiang H F, Ren X P, Huang J Q, Lei Y, Liao B S. Genetic variation of fatty acid components in Arachis species and development of interspecific hybrids with high oleic and low palmitic acids. Acta Agron Sin, 2009,35:25-32 (in Chinese with English abstract). | |
[21] | 于明洋, 孙明明, 郭悦, 姜平平, 雷永, 黄冰艳, 冯素萍, 郭宝珠, 隋炯明, 王晶珊. 利用回交法快速选育高油酸花生新品系. 作物学报, 2017,43:855-861. |
Yu M Y, Sun M M, Guo Y, Jiang P P, Lei Y, Huang B Y, Feng S P, Guo B Z, Sui J M, Wang J S. Breeding new peanut line with high oleic acid content using backcross method. Acta Agron Sin, 2017,43:855-861 (in Chinese with English abstract). | |
[22] | 陈四龙. 花生油脂合成相关基因的鉴定与功能研究. 中国农业科学院研究生院博士学位论文,北京, 2012, pp 60-61. |
Chen S L. Identification and Functional Analysis of Lipid Biosynthesis Related Genes in Peanut (Arachis hypogaea L.). PhD Dissertation of Graduate School of Chinese Academy of Agricultural Sciences, Beijing,China, 2012, pp 60-61 (in Chinese with English abstract). | |
[23] |
Li F P, Ma C Z, Wang X, Gao C B, Zhang J F, Wang Y Y, Cong N, Li X H, Wen J, Yi B, Shen J X, Tu J X, Fu T D. Characterization of sucrose transporter alleles and their association with seed yield-related traits in Brassica napus L. BMC Plant Biol, 2011,11:168.
doi: 10.1186/1471-2229-11-168 |
[24] |
Zaborowska Z, Starzycki M, Femiak I, Swiderski M, Legocki A B. Yellow lupine gene encoding stearoyl-ACP desaturase: organization, expression and potential application. Acta Biochim Pol, 2002,49:29-42.
pmid: 12136953 |
[25] | Bruner A C, Jung S, Abbott A G, Powell G L. The naturally occurring high oleate oil character in some peanut varieties results from reduced oleoyl-PC desaturase activity from mutation of aspartate 150 to asparagine. Crop Sci, 2001,41:522-526. |
[26] | 官梅, 李栒, 官春云. 利用基因芯片技术研究甘蓝型油菜油酸合成中差异表达基因. 作物学报, 2010,36:968-978. |
Guan M, Li X, Guan C Y. Differentially expressed genes in oleic acid synthesis of Brassica napus by detected gene chip. Acta Agron Sin, 2010,36:968-978 (in Chinese with English abstract). | |
[27] | 李玉兰, 孙勤富, 王幼平. 植物油脂合成的转录调控研究进展. 分子植物育种, 2016,14:2509-2518. |
Li Y L, Sun Q F, Wang Y P. Research advance in transcriptional regulation of lipid synthesis and accumulation in plant. Mol Plant Breed, 2016,14:2509-2518 (in Chinese with English abstract). | |
[28] | Maeo K, Tokuda T, Ayame A, Mitsui N, Kawai T, Tsukagoshi H, Ishiguro S, Nakamura K. An AP2-type transcription factor, WRINKLED1, of Arabidopsis thaliana binds to the AW-box sequence conserved among proximal upstream regions of genes involved in fatty acid synthesis. Plant J, 2009,60:476-487. |
[29] | Fukuda N, Ikawa Y, Aoyagi T, Kozaki A. Expression of the genes coding for plastidic acetyl-CoA carboxylase subunits is regulated by a location-sensitive transcription factor binding site. Plant Mol Biol, 2013,82:473-483. |
[1] | YANG Huan, ZHOU Ying, CHEN Ping, DU Qing, ZHENG Ben-Chuan, PU Tian, WEN Jing, YANG Wen-Yu, YONG Tai-Wen. Effects of nutrient uptake and utilization on yield of maize-legume strip intercropping system [J]. Acta Agronomica Sinica, 2022, 48(6): 1476-1487. |
[2] | LI Hai-Fen, WEI Hao, WEN Shi-Jie, LU Qing, LIU Hao, LI Shao-Xiong, HONG Yan-Bin, CHEN Xiao-Ping, LIANG Xuan-Qiang. Cloning and expression analysis of voltage dependent anion channel (AhVDAC) gene in the geotropism response of the peanut gynophores [J]. Acta Agronomica Sinica, 2022, 48(6): 1558-1565. |
[3] | LI A-Li, FENG Ya-Nan, LI Ping, ZHANG Dong-Sheng, ZONG Yu-Zheng, LIN Wen, HAO Xing-Yu. Transcriptome analysis of leaves responses to elevated CO2 concentration, drought and interaction conditions in soybean [Glycine max (Linn.) Merr.] [J]. Acta Agronomica Sinica, 2022, 48(5): 1103-1118. |
[4] | DING Hong, XU Yang, ZHANG Guan-Chu, QIN Fei-Fei, DAI Liang-Xiang, ZHANG Zhi-Meng. Effects of drought at different growth stages and nitrogen application on nitrogen absorption and utilization in peanut [J]. Acta Agronomica Sinica, 2022, 48(3): 695-703. |
[5] | HUANG Li, CHEN Yu-Ning, LUO Huai-Yong, ZHOU Xiao-Jing, LIU Nian, CHEN Wei-Gang, LEI Yong, LIAO Bo-Shou, JIANG Hui-Fang. Advances of QTL mapping for seed size related traits in peanut [J]. Acta Agronomica Sinica, 2022, 48(2): 280-291. |
[6] | WANG Ying, GAO Fang, LIU Zhao-Xin, ZHAO Ji-Hao, LAI Hua-Jiang, PAN Xiao-Yi, BI Chen, LI Xiang-Dong, YANG Dong-Qing. Identification of gene co-expression modules of peanut main stem growth by WGCNA [J]. Acta Agronomica Sinica, 2021, 47(9): 1639-1653. |
[7] | WANG Jian-Guo, ZHANG Jia-Lei, GUO Feng, TANG Zhao-Hui, YANG Sha, PENG Zhen-Ying, MENG Jing-Jing, CUI Li, LI Xin-Guo, WAN Shu-Bo. Effects of interaction between calcium and nitrogen fertilizers on dry matter, nitrogen accumulation and distribution, and yield in peanut [J]. Acta Agronomica Sinica, 2021, 47(9): 1666-1679. |
[8] | SHI Lei, MIAO Li-Juan, HUANG Bing-Yan, GAO Wei, ZHANG Zong-Xin, QI Fei-Yan, LIU Juan, DONG Wen-Zhao, ZHANG Xin-You. Characterization of the promoter and 5'-UTR intron in AhFAD2-1 genes from peanut and their responses to cold stress [J]. Acta Agronomica Sinica, 2021, 47(9): 1703-1711. |
[9] | GAO Fang, LIU Zhao-Xin, ZHAO Ji-Hao, WANG Ying, PAN Xiao-Yi, LAI Hua-Jiang, LI Xiang-Dong, YANG Dong-Qing. Source-sink characteristics and classification of peanut major cultivars in North China [J]. Acta Agronomica Sinica, 2021, 47(9): 1712-1723. |
[10] | ZHANG He, JIANG Chun-Ji, YIN Dong-Mei, DONG Jia-Le, REN Jing-Yao, ZHAO Xin-Hua, ZHONG Chao, WANG Xiao-Guang, YU Hai-Qiu. Establishment of comprehensive evaluation system for cold tolerance and screening of cold-tolerance germplasm in peanut [J]. Acta Agronomica Sinica, 2021, 47(9): 1753-1767. |
[11] | XUE Xiao-Meng, WU JIE, WANG Xin, BAI Dong-Mei, HU Mei-Ling, YAN Li-Ying, CHEN Yu-Ning, KANG Yan-Ping, WANG Zhi-Hui, HUAI Dong-Xin, LEI Yong, LIAO Bo-Shou. Effects of cold stress on germination in peanut cultivars with normal and high content of oleic acid [J]. Acta Agronomica Sinica, 2021, 47(9): 1768-1778. |
[12] | HAO Xi, CUI Ya-Nan, ZHANG Jun, LIU Juan, ZANG Xiu-Wang, GAO Wei, LIU Bing, DONG Wen-Zhao, TANG Feng-Shou. Effects of hydrogen peroxide soaking on germination and physiological metabolism of seeds in peanut [J]. Acta Agronomica Sinica, 2021, 47(9): 1834-1840. |
[13] | ZHANG Wang, XIAN Jun-Lin, SUN Chao, WANG Chun-Ming, SHI Li, YU Wei-Chang. Preliminary study of genome editing of peanut FAD2 genes by CRISPR/Cas9 [J]. Acta Agronomica Sinica, 2021, 47(8): 1481-1490. |
[14] | DAI Liang-Xiang, XU Yang, ZHANG Guan-Chu, SHI Xiao-Long, QIN Fei-Fei, DING Hong, ZHANG Zhi-Meng. Response of rhizosphere bacterial community diversity to salt stress in peanut [J]. Acta Agronomica Sinica, 2021, 47(8): 1581-1592. |
[15] | HUANG Wen-Gong, JIANG Wei-Dong, YAO Yu-Bo, SONG Xi-Xia, LIU Yan, CHEN Si, ZHAO Dong-Sheng, WU Guang-Wen, YUAN Hong-Mei, REN Chuan-Ying, SUN Zhong-Yi, WU Jian-Zhong, KANG Qing-Hua. Transcriptome profiling of flax (Linum usttatissimum L.) response to low potassium stress [J]. Acta Agronomica Sinica, 2021, 47(6): 1070-1081. |
|