欢迎访问作物学报,今天是

作物学报 ›› 2011, Vol. 37 ›› Issue (01): 58-66.doi: 10.3724/SP.J.1006.2011.00058

• 作物遗传育种·种质资源·分子遗传学 • 上一篇    下一篇

玉米Rubisco活化酶基因ZmRCA1的序列变异分析

谭贤杰1,2,宋燕春3,石云素3,程伟东1,吴子恺1,*,王天宇3,黎裕3,*   

  1. 1 广西大学农学院,广西南宁530005; 2 广西农科院玉米所,广西南宁530227; 3 中国农业科学院作物科学研究所,北京100081
  • 收稿日期:2010-05-25 修回日期:2010-08-04 出版日期:2011-01-12 网络出版日期:2010-11-16
  • 基金资助:

    本研究由国家重点基础研究发展计划(973计划)项目(2011CB100100, 2009CB118401)和国家高技术研究发展计划(863计划)项目(2006AA10Z188)资助。

Analysis of Sequence Polymorphism of ZmRCA1 in Maize

TAN Xian-Jie1,2,SONG Yan-Chun3,SHI Yun-Su3,CHENG Wei-Dong1,WU Zhi-Kai1,*,WANG Tian-Yu3,LI Yu3,*   

  1. 1 School of Agronomy, Guangxi University, Nanning 530005, China;2 Maize Research Institute, Guangxi Academy of Agricultural Sciences, Nanning 530227, China;3Institute of Crop Science, Chinese Academy of Agricultural Sciences, Beijing 100081, China
  • Received:2010-05-25 Revised:2010-08-04 Published:2011-01-12 Published online:2010-11-16

摘要: Rubisco活化酶(RCA)是一种可激活光合作用关键酶Rubisco的伴侣蛋白,可通过对Rubisco的活性调节决定植物的碳同化效率。为了研究玉米ZmRCA1的多态性,本研究参考GenBank中编码玉米Rubisco活化酶的ZmRCA1基因组序列设计引物对玉米微核心种质的95份自交系的ZmRCA1进行测序,获得长约1 680 bp的基因组序列。多态分析表明,在1 680 bp的区间内共发现22个SNP和8个InDel,其中5个SNP和1个InDel变异产生氨基酸序列改变;频率在0.1以上的13个多态性位点共形成27种单倍型,利用6个多态性位点就可以分辨约90%的单倍型。ZmRCA1基因具有高度序列保守性,基因DNA序列相似性为97.9%,而氨基酸序列的相似性则达99.8%;中性检验表明ZmRCA1基因符合中性进化模型假设,没有发生纯化选择。

关键词: Rubisco活化酶(RCA), 单核苷酸多态性(SNP), InDel, 连锁不平衡(LD), 单倍型, 单倍型标签SNP

Abstract: Rubisco is a pivotal enzyme that initiates the first step of carbon fixation and photorespiration in plant photosynthesis. Rubisco accounts for up to half of the soluble protein in the leaves of plants. Nevertheless the catalytic rate of Rubisco iscomparatively low. Rubisco activity is regulated mainly by Rubisco activase, which serves as a molecular chaperone. By activating and regulating Rubisco, RCA potentially influences the efficiency of carbon assimilation in plants. Thereby, RCA has identified a possible target gene for improve production in crops breeding.To investigate polymorphism of ZmRCA1, sequened and analyzed the genomic sequences of ZmRCA1 from a minicore set of 95 maize inbreds lines. Totally 22 SNPs and 8 InDels were identified in a 1 680 bp sequence alignment. There were five SNPs and one InDel which generated amino acid sequence variation. A total of 27 haplotypes were identified with 13 polymorphic loci which the frequency was 0.1 or more. Approximately 90% haplotypes could be distinctly distinguished by six polymorphic loci. The ZmRCA1 gene was highly conserved, with the genic similarity of 97.9% and the amino acid sequence similarity of 99.8%. Neutrality tests showed that no purifying selection occurred in ZmRCA1.

Key words: Rubisco activase (RCA), SNP, InDel, LD, Haplotype, htSNP

[1]Ellis R J. The most abundant protein in the world. Trends Biochem Sci, 1979, 4: 241–244
[2]Parry M A J, Madgwick P J, Carvahlo J F C, Andralojc P J. Prospects for increasing photosynthesis by overcoming the limitations of Rubisco. J Agric Sci, 2007, 145: 31–43
[3]Portis A R. Regulation of ribulose 1,5-bisphosphate carboxylase/oxygenase activity. Annu Rev Plant Physiol Plant Mol Biol, 1992, 43: 415–437
[4]Martinez B E, Molina G J, Sanchez J E. Regulation of Rubisco activity during grain-fill in maize: possible role of Rubisco activase. J Agric Sci, 1997, 128: 155–161
[5]Wong X-Y(翁晓燕), Mao W-H(毛伟华).The relationship of Rubisco activase to Rubisco and photosynthetic rate during development of rice leaf. Acta Agric Zhejiang (浙江农业学报), 2000, 12(3): 121–125 (in Chinese with English abstract)
[6]Jiang D-A(蒋德安), Lu Q(陆庆), Weng X-Y(翁晓燕). Role of key enzymes for photosynthesis in the diurnal of photosynthetic rate in rice. Acta Agron Sin (作物学报), 2001, 27(3): 301–307 (in Chinese with English abstract)
[7]Zhang G(张国), Li B(李滨), Zhou Q(邹琦).Cloning and expression of Rubisco activase gene in wheat. Chin Bull Bot (植物学通报), 2005, 22(3): 313–319 (in Chinese with English abstract)
[8]Ristic Z, Momcilovic I, Budovinik U, Vara Prasad P V, Fu J, Deridder B P, Elthon T E, Mladenov N. Rubisco activase and wheat productivity under heat-stress conditions. J Exp Bot, 2009, 60: 4003–4014
[9]Parry M A J, Keys A J, Madgwick P J,Carmo-Silva A E, Andralojc P J.Rubisco regulation: a role for inhibitors. J Exp Bot, 2008, 59: 1569–1580
[10]Salvucci M E, van de Loo F J, Stecher D. 2003. Two isoforms of rubisco activase in cotton, the products of separate genes not alternative splicing. Planta, 2003, 216: 736–744
[11]Vargas-Suarez M, Ayala-Ochoa A, Lozano-Franco J, Garcia-Torres I, Diaz-Quinonez A, Ortiz-Navarrete V F, Sanchez-de-Jimenez E. Rubisco activase chaperone activity is regulated by a post translational mechanism in maize leaves. J Exp Bot, 2004, 55: 2533–2539
[12]Sage R F, Way D A, Kubien D S.Rubisco, Rubisco activase, and global climate change. J Exp Bot, 2008, 59: 1581–1595
[13]Shen J B, Ogren W L. Alteration of spinach ribulose-1,5-bisphosphate carboxylase/oxygenase activity in response to changing partial pressure O2 and light in Phaseolus vulgaris. Plant Physiol, 1992, 99: 1201–1207
[14]Kurek I, Chang T K., Bertain S M, Madrigal A, Liu L, Lassner M W, Zhu G. Enhanced thermostability of Arabidopsis Rubisco activase improves photosynthesis and growth rates under moderate heat stress. Plant Cell, 2007, 19: 3230–3241
[15]Li Y, Shi Y, Cao Y, Wang T. Establishment of a core collection for maize germplasm preserved in Chinese National Genebank using geographic distribution and characterization data. Genet Resour Crop Evol, 2004, 51: 845–852
[16]Doyle J J, Doyle J L. Isolation of plant DNA from fresh tissue. Focus, 1990, 12: 13–15
[17]Watterson G A. On the number of segregating sites in genetical models without recombination. Theor Pop Biol, 1975, 7: 256–276
[18]Nei M,Li W H. Mathematical model for studying genetic variation in terms of restriction endonucleases. Proc Natl Acad Sci USA, 1979, 76: 5269–5273
[19]Tajima F. Statistical method for testing the neutral mutationhypothesis by DNA polymorphism. Genetics, 1989, 123: 585–595
[20]Fu Y X., Li W H. Statistical tests of neutrality of mutations.Genetics, 1993, 133: 693–709
[21]Brookes A J. The essence of SNPs. Gene, 1999, 234: 177–186
[22]Clifford R, Edmonson M, Hu Y, Nguyen C, Scherpbier T, Buetow K H. Expression-based genetic/physical maps of single nucleotide polymorphisms identified by the cancer genome anatomy project. Genome Res, 2000, 10: 1259–1265
[23]Zondrvan K T, Cardon R C. The complex interplay among factors that influence allelic association. Nat Rev Genet, 2004, 5: 89–100
[24]Deutsch S, Iseli C, Bucher P, Antonarakis S E, Scott H S. A cSNP map and database for human chromosome 21. Genome Res, 2001, 11: 300–307
[25]Tenaillon M I, Sawkins M C, Long A D, Gaut RL, Doebley J F, Gaut B S. Patterns of DNA sequence polymorphism along chromosome 1 of maize (Zea mays ssp mays L.). Proc Natl Acad Sci USA, 2001, 98: 9161–9166
[26]Rafalski A. Applications of single nucleotide polymorphisms in crop plant genetics. Curr Opin Plant Biol, 2002, 5: 94–100
[27]Mogg R, Batley J, Hanley S, Edwards D, O’Sullivan H, Edwards K J. Characterising the flanking regions of Zea mays microsatellites reveals a large number of useful sequence polymorphisms. Theor Appl Genet, 2002, 105: 532–543
[28]Ching A, Caldwell K S, Jung M, Dolan M, Smith O S, Tingey S, Morgante M, Rafalski A J. SNP frequency, haplotype structure and linkage disequilibrium in elite maize inbred lines. BMC Genet, 2002, 3: 19
[29]Hanson M A, Gaut B S, Stec A O, Fuerstenberg S I, Goodman M M, Coe E H, Doebley J F. Evolution of anthocyanin biosynthesis in maize kernels: the role of regulatory and enzymatic loci. Genetics, 1996, 143: 1395–1407
[30]Palaisa K A, Morgante M, Williams M, Rafalski A. Contrasting effects of selection on sequence diversity and linkage disequilibrium at two phytoene synthase loci. Plant Cell, 2003, 15: 1795–1806
[31]Zhang L-B, Zhu Q, Wu Z-Q, Ross-Ibarra J, Gaut B S, Ge S, Sang T. Fast fixation of non-shattering allele but slow domestication of rice. New Phytologist, 2009, 184: 708–720
[32]Wang R L, Stec A, Hey J, Lukens L, Doebley J. The limits of selection during maize domestication. Nature, 1999, 398, 236–239
[33]Flint-Garcia S A, Thomsberry J M, Buckler E S. Structure of linkage disequilibrium in plants. Annu Rev Plant Biol, 2003, 54: 357–374
[34]Seng K C, Seng C K. The success of the genome-wide association approach: a brief story of a long struggle. Eur J Human Genet, 2008, 16: 554–564
[35]Patil N, Berno A J, Hinds D A, Barrett W A, Doshi J M, Hacker C R, Kautzer C R, Lee D H, Marjoribanks C, McDonough D P, Nguyen B T, Norris M C, Sheehan J B, Shen N, Stern D, Stokowski R P, Thomas D J, Trulson M O, Vyas K R, Frazer K A, Fodor S P, Cox D R. Blocks of limited haplotype diversity revealed by high-resolution scanning of human chromosome 21. Science, 2001, 294: 1719–1723
[1] 彭佳泺, 李颖, 李丹丹, 杨军宁, 郭学峰, 张文姣, 俞晓雪, 周亚荣, 王振玉, 王彩香, 马雄风, 宿俊吉. 陆地棉I类LBD家族成员鉴定及GhLBD6调控开花期的功能和单倍型分析[J]. 作物学报, 2026, 52(6): 1682-1697.
[2] 唐宽强, 李公允, 宋美毅, 赵雪, 常春玲. 大豆株高性状全基因组关联分析及预测模型构建[J]. 作物学报, 2026, 52(6): 1743-1756.
[3] 张献丰, 郭利建, 李康春, 孔斌雪, 刘玉芳, 车卓, 杨德龙. 小麦ABHD6基因家族鉴定与粒重功能标记开发[J]. 作物学报, 2026, 52(6): 1711-1727.
[4] 李诗晴, 王茜, 王素华, 张耀文, 王丽侠. 绿豆种质资源苗期耐盐性鉴定及相关基因发掘[J]. 作物学报, 2026, 52(2): 376-388.
[5] 朱维佳, 王蕊, 薛英杰, 田红丽, 范亚明, 王璐, 李松, 徐丽, 卢柏山, 史亚兴, 易红梅, 陆大雷, 杨扬, 王凤格. 兼容双平台的玉米糯质基因InDel功能标记开发与应用[J]. 作物学报, 2025, 51(9): 2330-2340.
[6] 李璐琪, 程宇坤, 白斌, 雷斌, 耿洪伟. 小麦叶片气孔相关性状全基因组关联分析[J]. 作物学报, 2025, 51(9): 2266-2284.
[7] 杨海洋, 吴林宣, 李博纹, 石翰峰, 袁禧龙, 刘金朝, 蔡海荣, 陈诗怡, 郭涛, 王慧. 基于QTL定位发现的OsWRI3调控水稻种子的落粒性[J]. 作物学报, 2025, 51(7): 1712-1724.
[8] 刘建国, 陈冬东, 陈玉玉, 易琴琴, 李清, 徐正进, 钱前, 沈兰. 水稻MKKs家族基因成员OsMKK4的不同等位基因型及自然变异对籽粒的影响[J]. 作物学报, 2025, 51(3): 598-608.
[9] 徐林珊, 郜耿东, 王宇, 王家星, 杨吉招, 武亚瑞, 张宵寒, 常影, 李真, 谢雄泽, 龚德平, 王晶, 葛贤宏. 甘蓝型油菜漆酶基因家族成员表达模式及与茎秆抗折力的关联分析[J]. 作物学报, 2025, 51(1): 134-148.
[10] 范子培, 李龙, 史雨刚, 孙黛珍, 李超男, 景蕊莲. 小麦TabHLH112-2B基因克隆及每穗小穗数相关功能标记开发[J]. 作物学报, 2024, 50(2): 403-413.
[11] 阳世杰, 王华智, 潘怡敏, 黄蕊, 侯森, 秦慧彬, 穆志新, 王海岗. 山西谷子种质资源株高全基因组关联分析[J]. 作物学报, 2024, 50(12): 2984-2997.
[12] 胡艳娟, 薛丹, 耿嫡, 朱末, 王天穹, 王晓雪. 水稻OsCDF1基因突变效应及其基因组变异分析[J]. 作物学报, 2023, 49(9): 2362-2372.
[13] 宋兆建, 冯紫旖, 屈天歌, 吕品苍, 杨晓璐, 湛明月, 张献华, 何玉池, 刘育华, 蔡得田. 四倍体水稻回复二倍体品系的籼粳属性鉴定和杂种优势利用初探[J]. 作物学报, 2023, 49(8): 2039-2050.
[14] 李刚, 周彦辰, 熊亚俊, 陈伊洁, 郭庆元, 高杰, 宋健, 王俊, 李英慧, 邱丽娟. 大豆叶型调控基因Ln及其同源基因单倍型分析[J]. 作物学报, 2023, 49(8): 2051-2063.
[15] 陶顺玉, 吴贝, 刘念, 罗怀勇, 黄莉, 周小静, 陈伟刚, 郭建斌, 喻博伦, 雷永, 廖伯寿, 姜慧芳. 花生InDel标记开发及其在含油量QTL定位中的应用[J]. 作物学报, 2023, 49(5): 1222-1230.
Viewed
Full text


Abstract

Cited

  Shared   
  Discussed   
No Suggested Reading articles found!