Cloning, Verification and Tissue Expression of Long-chain Acyl-CoA Synthetase 6 (LACS6) Gene in Peanut (Arachis hypogaea L.)
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摘要: 长链酰基辅酶A合成酶(long chain acyl-CoA synthetase:LACS)是油脂代谢的重要催化酶。为揭示花生脂肪酸代谢机理,采用RT-PCR技术,首次从花生Arachis hypogaea L.克隆到LACS6(GenBank登录号:KU301860),分析该基因的结构组成,预测编码氨基酸与其他植物的同源性,采用Real-Time PCR技术对LACS6的组织表达进行研究。结果显示,花生LACS6基因全长2 116 bp,包含2 088 bp的ORF,编码695个氨基酸,有23个外显子和22个内含子。氨基酸序列比对显示花生LACS6有真核生物酰基辅酶A合成酶保守结构域,并含有保守的激活位点和绑定位点。同源性分析发现花生LACS6与鹰嘴豆、绿豆、大豆、梅等13种物种的氨基酸一致性在79%~87%,进化树分析显示,花生LACS6与鹰嘴豆等豆科植物亲缘较近。实时荧光PCR分析表明,花生LACS6在花生根、茎、叶、子房柄、仁和花等组织均有表达,且差异明显。子房柄和花的表达量极高,与根、茎、叶和仁等组织有极显著差异,花生LACS6组织的表达量大小排序为花 > 子房柄 > 叶 > 仁 > 茎 > 根。本研究结果为揭示花生脂肪酸代谢和品质改良提供理论依据。
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关键词:
- 花生 /
- 长链酰基辅酶A合成酶 /
- 组织表达 /
- 油脂
Abstract: Long-chain acyl coenzyme A synthetase (LACS) is one of the important catalytic lipid metabolic enzymes in peanut plants. To understand the mechanism of the fatty acid metabolism in peanut (Arachis hypogaea L.), the cDNA of LACS6 gene was cloned by RT-PCR (GenBank accession number:KU301860). Its structure was analyzed, homology with other plants compared, and mRNA expression in different tissues obtained using real-time PCR. The results showed that the cDNA was 2,116 bp including an open reading frame of 2,088 bp, encoded 695 amino acids, and had 23 exons and 22 introns. Its amino acid sequence alignment showed a conserved domain of eukaryotic long-chain fatty acid CoA synthetase, as well as conserved activation and binding sites. The homologies of LACS6 gene with the genes from Cicer arietinum, Vigna radiate, Glycine max, Prunus mume and others were between 79% and 87%. The evolutionary tree indicated that the gene was close to those from leguminous plants, such as chickpeas. The real-time PCR analysis showed that it was differentially expressed in the ovary stalks, roots, stems, leaves, flowers and kernels on a peanut plant. The ovary stalks and flowers had the highest expression among all,and with significant differences,The order of expression ranked as flowers > ovary stalks > leaves > kernels > stems > roots. The information obtained would benefit further studies on the fatty acid metabolism and quality improvement for peanut.-
Key words:
- peanut (Arachis hypogaea L.) /
- long-chain acyl CoA synthetase /
- tissue expression /
- lipid
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表 1 AhLACS6与其他植物LACS6的一致性
Table 1. Homology of AhLACS6 gene and other plant LACS6 genes
物种 登录号 一致性
/%鹰嘴豆 Cicer arietinum XP_004496750.1 87 绿豆 Vigna radiata XP_014524185.1 86 大豆 Glycine max XP_003555336.1 86 梅 Prunus mume XP_008222945.1 85 葡萄 Vitis vinifera XP_002277936.1 84 蓖麻 Ricinus communis NP_001310618.1 84 白梨 Pyrus x bretschneideri XP_009364219.1 85 苹果 Malus domestica XP_008390867.1 85 枣 Ziziphus jujuba XP_015888035.1 84 野草莓 Fragaria vesca XP_004296905.1 83 杨 Populus trichocarpa XP_002315784.2 82 黄瓜 Cucumis sativus XP_004134142.1 81 欧洲油菜 Brassica napus XP_013735920.1 79 -
[1] SARVAMANGALA C, GOWDA M V C, VARSHNEY R K. Identification of quantitative trait loci for protein content, oil content and oil quality for groundnut(Arachis hypogaea L.)[J]. Field Crops Research, 2011, 122(1):49-59. doi: 10.1016/j.fcr.2011.02.010 [2] 王移收. 工业用油料植物脂肪酸及其改良[J].中国油料作物学报, 2006, 28(4):498-502. http://www.cnki.com.cn/Article/CJFDTOTAL-ZGYW200604025.htm [3] SHEN B, SINKEVICIUS K W, SELINGER D A, et al. The homeobox gene GLABRA2 affects seed oil content in Arabidopsis[J]. Plant Molecular Biology, 2006, 60(3):377-387. doi: 10.1007/s11103-005-4110-1 [4] HILLS M J, MURPHY D J, BEEVERS H. Inhibition of neutral lipase from castor bean lipid bodies by coenzyme A (coA) and oleoyl-coA[J]. Plant Physiology, 1989, 89(3):1006-1010. doi: 10.1104/pp.89.3.1006 [5] SHOCKEY J M, FULDA M S, BROWSE J A. Arabidopsis contains nine long-chain acyl-coenzyme a synthetase genes that participate in fatty acid and glycerolipid metabolism[J]. Plant Physiology, 2002, 129(4):1710-1722. doi: 10.1104/pp.003269 [6] L S, SONG T, KOSMA DK, et al. Arabidopsis CER8 encodes long-chain acyl-coA synthetase 1(LACS1) that has overlapping functions with LACS2 in plant wax and cutin synthesis[J]. The Plant Journal, 2009, 59:553-564. doi: 10.1111/tpj.2009.59.issue-4 [7] SCHNURR J A, SHOCKEY J M, BROWSE J. The acyl-coA synthetase encoded by LACS2 is essential for normal cuticle development in Arabidopsis[J]. Plant Cell, 2004, 16(3):629-642. doi: 10.1105/tpc.017608 [8] PULSIFER I P, KLUGE S, ROWLAND O. Arabidopsis long-chain acyl-CoA synthetase 1(LACS1), LACS2, and LACS3 facilitate fatty acid uptake in yeast[J]. Plant Physiology & Biochemistry, 2012, 51(2):31-39. http://cn.bing.com/academic/profile?id=20500e0f9a8c2b6465a0418dbc88b9b3&encoded=0&v=paper_preview&mkt=zh-cn [9] JESSEN D, OLBRICH A, KNUFER J, et al. Combined activity of LACS1 and LACS4 is required for proper pollen coat formation in Arabidopsis[J]. The Plant Journal, 2011, 68:715-726. doi: 10.1111/j.1365-313X.2011.04722.x [10] FULDA M, SHOCKEY J, WERBER M, et al. Two long-chain acyl-CoA synthetases from Arabidopsis thaliana involved in peroxisomal fatty acid β-oxidation[J]. The Plant Journal, 2002, 32(1):93-103. doi: 10.1046/j.1365-313X.2002.01405.x [11] MARTIN F, JUDY S, AMINE A, et al. Peroxisomal acyl-CoA synthetase activity is essential for seedling development in Arabidopsis thaliana[J]. Plant Cell, 2004, 16(2):394-405. doi: 10.1105/tpc.019646 [12] SCHNURR J A, SHOCKEY J M, DE BOER G J, et al. Fatty acid export from the chloroplast. Molecular characterization of a major plastidial acyl-coenzyme A synthetase from Arabidopsis[J]. Plant Physiology, 2002, 129(4):1700-1709. doi: 10.1104/pp.003251 [13] ZHAO L, KATAVIC V, LI F, HAUGHN GW, et al. Insertional mutant analysis reveals that long-chain acyl-CoA synthetase 1(LACS1), but not LACS8, functionally overlaps with LACS9 in Arabidopsis seed oil biosynthesis[J]. The Plant Journal, 2010, 64:1048-1058. doi: 10.1111/tpj.2010.64.issue-6 [14] PONGDONTRI P, HILLS M. Characterization of a novel plant acyl-coA synthetase that is expressed in lipogenic tissues of Brassica napus L[J]. Plant molecular biology, 2001, 47(6):717-726. doi: 10.1023/A:1013652014744 [15] LILI Y, XIAOLI T, BINGJUN J, et al. A peroxisomal long-chain acyl-CoA synthetase from Glycine max involved in lipid degradation[J]. Plos One, 2014, 9(7):e100144-e100144. doi: 10.1371/journal.pone.0100144 [16] WANG X L, LI X B. The GhACS1 gene encodes an acyl-CoA synthetase which is essential for normal microsporogenesis in early anther development of cotton[J]. Plant Journal, 2009, 57(3):473-486. doi: 10.1111/tpj.2009.57.issue-3 [17] JIA J, ZHAO S, KONG X, et al. Aegilops tauschii draft genome sequence reveals a gene repertoire for wheat adaptation[J]. Nature, 2013, 496(7443):91-95. doi: 10.1038/nature12028 [18] AZNAR-MORENO J A, CALER N M V, MART NEZ-FORCE E, et al. Sunflower(Helianthus annuus) long-chain acyl-coenzyme a synthetases expressed at high levels in developing seeds[J]. Physiologia Plantarum, 2014, 150(3):363-373. doi: 10.1111/ppl.2014.150.issue-3 [19] LING H Q, ZHAO S, LIU D, et al. Draft genome of the wheat A-genome progenitor Triticum urartu[J]. Nature, 2013, 496(7443):87-90. doi: 10.1038/nature11997 [20] CHAN A P, CRABTREE J, ZHAO Q, et al. Draft genome sequence of the oilseed species Ricinus communis[J]. Nature biotechnology, 2010, 28(9):951-956. doi: 10.1038/nbt.1674 [21] 熊发前, 刘俊仙, 王丛丛, 等mCTAB-dLiCl法高效提取花生各组织部位RNA及其验证[J]. 南方农业学报, 2013, 44(11):1781-1784. http://www.cnki.com.cn/Article/CJFDTOTAL-GXNY201311006.htm [22] CONTI E, FRANKS N P, BRICK P. Crystal structure of luciferase throws light on a superfamily of adenylate-forming enzymes[J]. Structure, 1996, 4(3):287-298. doi: 10.1016/S0969-2126(96)00033-0 [23] CONTI E, STACHELHAUS T, MARAHIEL M A, et al. Structural basis for the activation of phenylalanine in the non-ribosomal biosynthesis of gramicidin S[J]. Embo Journal, 1997, 16(14):4174-4183. doi: 10.1093/emboj/16.14.4174 [24] SHOCKEY J M, FULDA M S, JOHN B. Arabidopsis contains a large superfamily of acyl-activating enzymes. Phylogenetic and biochemical analysis reveals a new class of acyl-coenzyme A synthetases[J]. Plant Physiology, 2003, 132(2):1065-1076. doi: 10.1104/pp.103.020552