两个垩白突变体的鉴定及突变基因的图位克隆

展开
  • 中国水稻研究所 水稻生物学国家重点实验室,杭州 310006

收稿日期: 2017-01-06

  修回日期: 2017-02-13

  网络出版日期: 2017-11-10

基金资助

国家重点研发计划资助项目(2016YFD0101801);国家自然科学基金资助项目(31471472, 31301303, 31501280)

Identification and Gene Mapping-based Clone of Two Chalkiness Mutants in Rice

Expand
  • State Key Laboratory of Rice Biology, China National Rice Research Institute, Hangzhou 310006, China
# These authors contributed equally to this work; *Corresponding author, E-mail: weixiangjin@caas.cn

Received date: 2017-01-06

  Revised date: 2017-02-13

  Online published: 2017-11-10

摘要

【目的】 研究两个水稻垩白突变体胚乳垩白的形成机制,为稻米品质改良提供理论基础。【方法】 以从中花11的EMS突变体库中筛选出的两个稳定遗传的垩白突变体eb6eb7为材料,对其进行农艺性状、稻米理化性质和遗传学分析,并利用eb6与南京11衍生的F2群体对控制垩白的基因进行图位克隆。同时对候选基因的表达模式及淀粉合成相关基因在突变体及野生型中表达情况进行了分析。【结果】 与野生型相比,两个突变体胚乳中央部位呈现白色且不透明,淀粉复合颗粒形状不规则且排列疏松,而突变体胚乳边缘部位与野生型无异,都为半透明状,淀粉复合颗粒呈多面体且排列致密。相对于野生型,突变体eb6eb7成熟种子中的直链淀粉含量和胶稠度显著降低,蛋白质含量显著升高。RVA谱分析显示突变体淀粉黏滞性明显低于野生型。同时,支链淀粉聚合度分析显示突变体eb6中聚合度(DP)小于16的短链显著增加,DP为16~23的中长链显著减少。遗传分析表明突变体eb6eb7胚乳垩白表型由单隐性核基因控制,并且它们为一对等位突变体。利用突变体eb6与南京11杂交衍生的F2群体将突变体基因定位在第1染色体长臂上物理距离86.6 kb的区间内。该区间包含22个开放阅读框(ORF),其中ORF13编码腺苷二磷酸葡萄糖焦磷酸化酶大亚基2(OsAGPL2)。序列分析发现eb6eb7分别在OsAGPL2第3、第7外显子上发生1个单碱基替换,并分别导致一个氨基酸替换。RT-PCR及原位杂交结果显示,OsAGPL2主要在水稻发育中的籽粒中表达。同时OsAGPL2的突变导致了多个淀粉合成相关基因在水稻籽粒灌浆过程中的表达模式发生改变。【结论】 突变体eb6eb7籽粒胚乳出现严重垩白表型为OsAGPL2突变所致。本研究进一步证明了OsAGPL2在调控水稻籽粒胚乳中淀粉的合成、淀粉复合颗粒的形成及稻米理化性质的平衡中起着重要的作用。

本文引用格式

张习春, 鲁菲菲, 吕育松, 罗荣剑, 焦桂爱, 邬亚文, 唐绍清, 胡培松, 魏祥进 . 两个垩白突变体的鉴定及突变基因的图位克隆[J]. 中国水稻科学, 2017 , 31(6) : 568 -579 . DOI: 10.16819/j.1001-7216.2017.7003

Abstract

【Objective】Chalkiness affects the appearance, processing, cooking and eating quality of rice. The objective of the study was to uncover the genetic mechanism of two rice chalky endosperm mutants for improving rice quality. 【Method】Two chalkiness mutants, eb6 and eb7 were identified from EMS-treated japonica rice Zhonghua 11. The agronomic traits and starch physicochemical properties of the two mutants were investigated. Genetic analysis and map-based cloning for the gene responsible for the eb6 and eb7 phenotypes were carried out with the F2 population derived from the cross between eb6 and Nanjing 11, eb7 and 93-11. Furthermore, the expression pattern of candidate gene and the transcript levels of genes related to starch synthase in mutants and wild type(WT) were also investigated.【Result】The central parts of them were white and opaque, with loosely and irregularly arranged and smaller compound starch granules(SGs). Whereas, the marginal part of endosperms of WT and mutants and the central part of WT were filled with densely packed, similar sized polyhedral SGs. The amylose content and gel consistency of mutants were dramatically lower than those of WT. Simultaneously, the proportions of chains with degree of polymerization(DP) of amylopectin in the range from 6 to 16 were significantly increased, whereas the proportion of chains with DP in the range from 16 to 23 was noticeably decreased in the eb6. Genetic analysis showed that a single recessive gene controls chalkiness phenotype of mutants. Based on the F2 population derived from the cross between eb6 and Nanjing 11, the gene was finally narrowed down to a 86.6 kb physical region on chromosome 1. Within this region, one open reading frame(LOC_Os01g44220) has been annotated as large subunit of ADP-glucose pyrophosphorylase gene(OsAGPL2). Sequence analysis revealed that there was only one a nucleotide substitution in the 3rd exon of eb6 and the 7th exon of eb7, which resulted in an amino acid replacement in OsAGPL2, respectively. The qRT-PCR and in-situ hybridization assay indicated that OsAGPL2 was mainly expressed in the developing grains. Moreover, the expression patterns of many genes involved starch synthesis were intensively influenced in mutants.【Conclusion】OsAGPL2 indisputably corresponds to endosperm chalkiness of eb6 and eb7. And all results suggest that OsAGPL2 plays an important role in starch synthesis, the formation of compound starch granules and rice quality.

参考文献

[1] 江良荣, 李义珍, 王侯聪, 黄育民. 稻米外观品质的研究进展与分子改良策略. 分子植物育种, 2003, 1(2): 243-255.
[1] Jiang L R, Li Y Z, Wang H C, Huang Y M.Research progresses on appearance quality of rice grain and strategies for its molecular improvement.Mol Plant Breed, 2003, 1(2): 243-255.
[2] 江户一雄, 江幡守衞. 心白米.に する的研究第2. 日本作物学会纪事, 1959, 28(1): 46-50.
[2] Nagato K, Ebata M.Studies on white-core rice kernel: II. On the physical properties of the kernel.Jpn J Crop Sci, 1959, 28(1): 46-50. (in Japanese)
[3] Cheng F M, Zhong L J, Wang F, Zhang G P.Differences in cooking and eating properties between chalky and translucent parts in rice grains .Food Chem, 2005, 90(1): 39-46.
[4] 程方民, 钟连进, 舒庆尧, 黄华宏, 石春海, 吴平. 早籼水稻垩白部位淀粉的蒸煮食味品质特征. 作物学报, 2002, 28(3): 363-368.
[4] Cheng F M, Zhong L J, Shu Q Y, Huang H H, Shi C H, Wu P.Studies on the cooking and eating quality properties in chalky milled grains of early indica rice.Acta Agron Sin, 2002, 28(3): 363-368. (in Chinese with English abstract)
[5] 田代亨, 江幡守衞. 腹白米に する的研究第2 . 日本作物学会纪事, 1974, 43(1/2): 105
[5] Tashiro T,Ebata M.Studies on white-belly rice kernel: II. Location on the panicle on occurrence of white-belly kernel.Jpn J Crop Sci, 1974, 43(1): 105-110. (in Japanese)
[6] 程方民, 胡东维, 丁元树. 人工控温条件下稻米垩白形成变化及胚乳扫描结构观察. 中国水稻科学, 2000, 14(2): 83-87.
[6] Cheng F M, Hu D W, Ding Y S.Dynamic change of chalkiness and observation of grain endosperm structure with scanning electron microscope under controlled temperature condition.Chin J Rice Sci, 2000, 14(2): 83-87. (in Chinese with English abstract)
[7] Invertases S A.Primary structures, functions, and roles in plant development and sucrose partitioning.Plant Physiol, 1999, 121(1): 1-8.
[8] Asano T, Kunieda N, Omura Y, Ibe H, Kawasaki T, Takano M, Sato M, Furuhashi H, Mujin T, Takaiwa F, Wu C Y, Tasa Y, Satozawa T, Sakamoto M, Shimada H.Rice SPK, a calmodulin-like domain protein kinase, is required for storage product accumulation during seed development phosphorylation of sucrose synthase is a possible factor.Plant Cell, 2002, 14(3): 619-628.
[9] Abe T, Niiyama H, Sasahara T.Cloning of cDNA for UDP-glucose pyrophosphorylase and the expression of mRNA in rice endosperm.Theor Appl Genet, 2002, 105(2/3): 216-221.
[10] Cho J I, Ryoo N, Ko S, Lee S K, Lee J, Jung K H, Lee Y H, Bhoo S H, Winderickx J, An G, Hahn T R, Jeon J S.Structure, expression, and functional analysis of the hexokinase gene family in rice(Oryza sativa L.). Planta, 2006, 224(3): 598-611.
[11] Kawagoe Y, Kubo A, Satoh H, Takaiwa F, Nakamura Y.Roles of isoamylase and ADP-glucose pyrophosphorylase in starch granule synthesis in rice endosperm.Plant J, 2005, 42(2): 164-174.
[12] Kubo A, Fujita N, Harada K, Matsuda T, Satoh H, Nakamura Y.The starch-debranching enzymes isoamylase and pullulanase are both involved in amylopectin biosynthesis in rice endosperm.Plant Physiol, 1999, 121(2): 399-410.
[13] Hirose T, Terao T.A comprehensive expression analysis of the starch synthase gene family in rice (Oryza sativa L.) . Planta, 2004, 220(1): 9-16.
[14] Ball S, Guan H P, James M, Myers A, Keeling P, Mouille G, Buleon A, Colonna P, Preiss J.From glycogen to amylopectin: a model for the biogenesis of the plant starch granule.Cell, 1996, 86(3): 349-352.
[15] She K C, Kusano H, Koizumi K, Yamakawa H, Hakata M, Imamura T, Fukuda M, Naito N, Tsurumaki Y, Yaeshima M, Tsuge T, Matsumoto K, Kudoh M, Itoh E, Kikuchi S, Kishimoto N, Yazaki J, Ando T, Yano M, Aoyama T, Sasaki T, Satoh H, Shimada H.A novel factorFLOURY ENDOSPERM2 is involved in regulation of rice grain size and starch quality. Plant Cell, 2010, 22(10): 3280-3294.
[16] Wang Y H, Ren Y L, Liu X, Jiang L, Chen L M, Han X H, Jin M N, Liu S J, Liu F, Lü J, Zhou K N, Su N, Bao Y Q, Wan J M.OsRab5a regulates endo- membrane organization and storage protein trafficking in rice endosperm cells. Plant J, 2010, 64(5): 812-824.
[17] Ryoo N, Yu C, Park C S, Baik M Y, Park I M, Cho M H, Bhoo S H;An G, Hahn T R, Jeon J S.Knockout of a starch synthase geneOsSSIIIa/Flo5 causes white-core floury endosperm in rice(Oryza sativa L.). Plant Cell Rep, 2007, 26(7): 1083-1095.
[18] Cakir B, Shiraishi S, Tuncel A, Matsusaka H, Satoh R, Singh S, Crofts N, Hosaka Y, Fujita N, Hwang S K, Satoh H, Okita T W.Analysis of the rice ADP-glucose transporter(OsBT1) indicates the presence of regulatory processes in the amyloplast stroma that control ADP-glucose flux into starch. Plant Physiol, 2016, 170(3): 1271-1283.
[19] Li Y, Fan C, Xing Y,Yun P, Luo L, Yan B, Peng B, Xie W, Wang G, Li X, Xiao J, Xu C, He Y.Chalk5 encodes a vacuolar H+-translocating pyrophosphatase influencing grain chalkiness in rice. Nat Genet, 2014, 46(4): 398-404.
[20] Ballicora M A, Iiglesias A A, Preiss J.ADP-glucose pyrophosphorylase: A regulatory enzyme for plant starch synthesis.Photosyn Res, 2004, 79(1): 1-24.
[21] Lee S K, Hwang S K, Han M, Eom J S, Kang H G, Han Y, Choi S B, Cho M H, Bhoo S H, An G, Hahn T R, Okita T W, Jeon J S.Identification of the ADP-glucose pyrophosphorylase isoforms essential for starch synthesis in the leaf and seed endosperm of rice (Oryza sativa L.). Plant Mol Biol, 2007, 65(4): 531-556.
[22] Hwang S K, Okita T W.Understanding structure- function relationship of ADP-glucose pyrophos- phorylase by deciphering its mutant forms//Tetlow I. Starch: Origins, Structure and Metabolism. Vol.5. London UK: the Society for Experimental Biology, 2012: 77-114.
[23] Harn C H, Bae J M, Lee S S, Liu J R.Presence of multiple cDNAs encoding an isoform of ADP-glucose pyrophosphorylase large subunit from sweet potato and characterization of expression levels.Plant & Cell Physiol, 2000, 41(11): 1235-1242.
[24] Akihiro T, Mizuno K, Fujimura T.Gene expression of ADP-glucose pyrophosphorylase and starch contents in rice cultured cells are cooperatively regulated by sucrose and ABA. Plant&Cell Physiol, 2005, 46(6): 937-946.
[25] Nielsen T H, Krapp A, Röper-Schwarz U, Stitt M.The sugar-mediated regulation of genes encoding the small subunit of Rubisco and the regulatory subunit of ADP glucose pyrophosphorylase is modified by phosphate and nitrogen.Plant, Cell & Environ, 1998, 21(5): 443-454.
[26] Haugen T H, Ishaque A, Preiss J.Biosynthesis of bacterial glycogen. Characterization of the subunit structure of Escherichia coli B glucose-1-phosphate adenylyltransferase (EC 2.7. 7.27).J Biol Chem, 1976, 251(24): 880-7885.
[27] Okita T W, Nakata P A, Anderosin J M, Sowokinos J, Morell M, Preiss J.The subunit structure of potato tuber ADPglucose pyrophosphorylase.Plant Physiol, 1990, 93(2): 785-790.
[28] Smith-White B J, Preiss J. Comparison of proteins of ADP-glucose pyrophosphorylase from diverse sources.J Mol Evol,1992, 34(5): 449-464.
[29] Villand P, Olsen O A, Kleczkowski L A.Molecular characterization of multiple cDNA clones for ADP-glucose pyrophosphorylase fromArabidopsis thaliana. Plant Mol Biol, 1993, 23(6): 1279-1284.
[30] Cross J M, Clancy M, Shaw J R, Okita T W, Hannah L C.Both subunits of ADP-glucose pyrophosphorylase are regulatory.Plant Physiol, 2004, 135(1): 137-144.
[31] Georgelis N, Braun E L, Shaw J R, Hannah L C.The two AGPase subunits evolve at different rates in angiosperms, yet they are equally sensitive to activity-altering amino acid changes when expressed in bacteria.Plant Cell, 2007, 19(5): 1458-1472.
[32] Hwang S K, Hamada S, Okita T W.Catalytic implications of the higher plant ADP-glucose pyrophosphorylase large subunit.Phytochemistry, 2007, 68(4): 464-477.
[33] Ohdan T, Francisco P B, Sawadat T, Hirose T, Terao T, Satoh H, Nakamura Y.Expression profiling of genes involved in starch synthesis in sink and source organs of rice.J Exp Bot, 2005, 56(422): 3229-3244.
[34] Cook F R, Fahy B, Trafford K.A rice mutant lacking a large subunit of ADP-glucose pyrophosphorylase has drastically reduced starch content in the culm but normal plant morphology and yield.Funct Plant Biol,2012,39(12): 1068-1078.
[35] Sikka V K, Choi S B, Kavakli I H, Sakulsingharoj C, Gupta S, Lto H, Okita T W.Subcellular compartmentation and allosteric regulation of the rice endosperm ADPglucose pyrophosphorylase. Plant Sci, 2001, 161(3): 461-468.
[36] Burton R A, Johnson P E, Beckles D M, Fincher G B, Jenner H L, Naldrett M J, Naldrett M J, Denyer K.Characterization of the genes encoding the cytosolic and plastidial forms of ADP-glucose pyrophos- phorylase in wheat endosperm.Plant Physiol, 2002, 130(3): 1464-1475.
[37] Denyer K, Dunlap F, Thorbj R T, Keeling P, Smith A M.The major form of ADP-glucose pyrophos- phorylase in maize endosperm is extra-plastidial.Plant Physiol, 1996, 112(2): 779-785.
[38] Tang X J, Peng C, Zhang J, Cai Y, You X M, Kong F, Yan H G, Wang G X, Wang L, Jin J, Chen W W, Chen X G, Ma J, Wang P, Jiang L, Zhang W W, Wan J M.ADP-glucose pyrophosphorylase large subunit 2 is essential for storage substance accumulation and subunit interactions in rice endosperm. Plant Sci, 2016, 249: 70-83.
[39] Tuncel A, Kawaguchi J, Ihara Y, Matsusaka H, Nishi A, Nakamura T, Kuhara S, Hirakawa H, Nakamura Y, Cakir B, Nagamine A, Okita T W, Hwang S K, Satoh H.The rice endosperm ADP-glucose pyrophos- phorylase large subunit is essential for optimal catalysis and allosteric regulation of the heterotetrameric enzyme.Plant&Cell Physiol, 2014, 55(6): 1169-1183.
[40] Zhang D P, Wu J G, Zhang Y J, Shi C H.Phenotypic and candidate gene analysis of a new floury endosperm mutant (osagpl2-3) in rice. Plant Mol Biol Rep, 2012, 30(6): 1303-1312.
[41] Masahiro Y, Isono Y, Satoh H, Omura T.Gene analysis of sugary and shrunken mutants of rice,Oryza sativa L. Jpn J Breeding, 1984, 34(1): 43-49.
[42] 中华人民共和国农业部.米质测定方法NY 147–88.北京: 中国标准出版社, 2002.
[42] Ministry of Agriculture of the People’s Republic of China. Detection Method for Rice Quality NY 147–88. Beijing: China Standard Publishing House, 2002. (in Chinese)
[43] 孙成效, 段彬伍, 谢黎虹, 陈能. 利用近红外透射光谱技术同步测定糙米的多项品质指标初报. 中国水稻科学, 2006, 20(4): 451-454.
[43] Sun C X, Duan B W, Xie L H, Chen N.Determination of several quality characteristics of brown rice by near infrared transmission spectroscopy.Chin J Rice Sci, 2006, 20(4): 451-454. (in Chinese with English abstract)
[44] Han X H, Wang Y H, Liu X, Jiang L, Ren Y L, Liu F, Peng C, Li J J, Jin X M, Wu F Q, Wang J L, Guo X P, Zhang X, Cheng Z J, Wan J M.The failure to express a protein disulphide isomerase-like protein results in a floury endosperm and an endoplasmic reticulum stress response in rice.J Exp Bot, 2012, 63: 121-130.
[45] 康海岐, 常红叶. 杂交水稻主要亲本材料的垩白性状及其胚乳结构电镜扫描. 中国农学通报, 2007, 23(4): 180-185.
[45] Kang H Q, Chang H Y.Study on chalkiness characters and endosperm structures of the main parents’ kernel of hybrid rice. Chin Agric Sci Bull, 2007, 23(4): 180-185. (in Chinese with English abstract)
[46] Li Z W,Trick H N.Rapid method for high-quality RNA isolation from seed endosperm containing high levels of starch .BioTechniques, 2005, 38(6): 872-876.
[47] Bahaji A, Li J, Sánchez-López Á M, Fernández E B, Muñoz F J, Ovecka M, Almagro G, Montero M, Ezquer I, Etxeberria E, Romero J P. Starch biosynthesis, its regulation and biotechnological approaches to improve crop yields.Biotechnol Adv, 2014, 32(1): 87-106.
[48] 刘霞, 付艳苹, 朱晔荣, 李艳萍, 王勇. 水稻垩白形成的生理和遗传机制. 植物生理学通讯, 2007, 43(3): 569-574.
[48] Liu X, Fu Y P, Zhu Y R, Li Y P, Wang Y.Physiological and genetic mechanism of rice chalkiness formation.Plant Physoil Commun, 2007, 43(3): 569-574. (in Chinese)
[49] 周立军, 江玲, 翟虎渠, 万建民. 水稻垩白的研究现状与改良策略. 遗传, 2009, 31(6): 563-572.
[49] Zhou L J, Jiang L, Zhai H Q, Wan J M.Current status and strategies for improvement of rice grain chalkiness.Hereditas(Beijing), 2009, 31(6): 563-572. (in Chinese with English abstract)
[50] Zhang L, Ren Y, Lu B, Yang C Y, Feng Z M, Liu Z, Chen J, Ma W W, Wang Y, Yu X W, Wang Y L, Zhang W W, Wang Y H, Liu S J, Wu F Q, Zhang X, Guo X P, Bao Y Q, Jiang L, Wan J M.FLOURY ENDOSPERM7 encodes a regulator of starch synthesis and amyloplast development essential for peripheral endosperm development in rice.J Exp Bot, 2016, 67(3): 633-647.
文章导航

/

浙ICP备05004719号-5
公安备案号:33010302003356
地址:浙江省杭州市富阳区水稻所路28号 邮编:311400 电话:0571-63370278 E-mail:cjrs@263.net
本系统由北京玛格泰克科技发展有限公司设计开发
总访问量: 今日访问: 在线人数: