Research Papers

Genetic Analysis and Gene Mapping of an albino lethal Mutant in Rice

Expand
  • 1 College of Chemistry and Life Sciences, Zhejiang Normal University, Jinhua 321004, China; 2 Institute of Crop and Nuclear Technology Utilization, Zhejiang Academy of Agricultural Sciences, Hangzhou 310021, China;

Received date: 2012-08-14

  Revised date: 2012-09-13

  Online published: 2013-05-10

Abstract

An albino lethal mutant, temporarily designated as albino lethal 4(abl4), was obtained from 60Co γray radiation mutant pool of  japonica rice Zhonghua 11. The seedling of abl4 showed albino phenotype from germination to 3leafstage, then died. The chlorophyll and carotenoid contents in  abl4 mutant were too low to be detected. Moreover, the electron transport rate and the effective quantum yield of photosystem Ⅱ in abl4  were about zero. On the other hand, the potential photochemical efficiency of PSⅡ in abl4 was also at an undetectably low level, indicating that the activity of photochemical reaction was lost in the leaves of abl4. The activities of antioxidant enzymes induding superoxide dismutase and peroxidase were significantly increased, while catalase was decreased significantly. As results, the content of malondialdehyde was also increased significantly in abl4 compared with the wild type, suggesting that abl4 was strongly subjected to high oxidant stress. Transmission electron microscopy examination showed that abl4 plastids contained some empty vesicles without thylakoids. It was revealed that the phenotype of abl4 was controlled by a single recessive nuclear gene. An F2 population generated by crossing the abl4 mutant with the indica rice cultivar Longtefu B was used for gene mapping,ABL4 was preliminarily located between RM3785 and RM303 on rice chromosome 4 and further mapped to a 201 kb region. 

Cite this article

CHENG Shichao1,2, LIU Heqin2, ZHAI Guowei2, FENG Shizuo1,2, ZHAO Hui1,2, WANG Dekai2,*, TAO Yuezhi2 . Genetic Analysis and Gene Mapping of an albino lethal Mutant in Rice[J]. Chinese Journal OF Rice Science, 2013 , 27(3) : 240 -246 . DOI: 10.3969/j.issn.10017216.2013.03.003

References

\[1\]Abdallah F,  Salamini F,  Leister D. A prediction of the size and evolutionary origin of the proteome of chloroplasts of Arabidopsis. Trends Plant Sci,  2000,  5(4): 141142.

\[2\]Friso G,  Giacomelli L,  Ytterberg A J,  et al. Indepth analysis of the thylakoid membrane proteome of Arabidopsis thaliana chloroplasts:  new proteins,  New functions,  and a plastid proteome database. Plant Cell,  2004,  16(2): 478499.

\[3\]黄晓群,  赵海新,  董春林,  等. 水稻叶绿素合成缺陷突变体及其生物学研究进展. 西北植物学报,   2005,  25(8):  16851691.

\[4\]何冰,  刘玲珑,  张文伟,  等. 植物叶色突变体. 植物生理学通讯, 2006,  42(1): 19.

\[5\]Iwata N, Omura T. Linkage studies in rice (Oryza sativa L) Some albino genes and their linkage relation with marker genes. Sci Bull Fac Agric Kyushu Univ,  1978,  33(1):  18.

\[6\]Iwata N,  Satoh H, Omura T.Linkage analysis by use of trisomics in rice (Oryza sativa L.):IV. Linkage groups locating on chromosomes 2 and 10. Jpn J Breed,  1981,  31(0):  6667.

\[7\]赵海军,  吴殿星,  舒庆尧,  等. 携带白化转绿型叶色标记光温敏核不育系玉兔S的选育及其特征特性. 中国水稻科学,  2004, 18(6):  515521.

\[8\]夏九成, 王玉平, 马炳田,  等. 水稻(Oryza sativa L.)苗期低温白化突变体al12的超微结构与基因定位. 遗传学报, 2006,  33(12): 11121119.

\[9\]陈涛,  张亚东,  赵凌,  等.水稻白化转绿突变基因gra(t)的精细定位与候选基因分析.遗传学报, 2009,  36(2): 117123.

\[10\]余庆波,  江华,  米华玲,  等. 水稻白化突变体alb21 生理特性和基因定位. 上海师范大学学报:自然科学版, 2005, 34(1): 7075.

\[11\]孙萌萌,  余庆波,  张慧琦,  等.控制水稻叶绿体发育基因OsALB23的定位.植物生理与分子生物学报,2006,  32(4): 433437.

\[12\]Jung K H,  Hur J,  Ryu C H,  et al. Characterization of a rice chlorophylldeficient mutant using the TDNA genetrap system. Plant Cell Physiol,  2003, 44(5): 463472.

\[13\]Su N,  Hu M L,  Wu D X,  et al. Disruption of a rice pentatricopeptide repeat protein causes a seedlingspecific albino phenotype and its utilization to enhance seed purity in hybrid rice production. Plant Physiol,  2012,  159(1): 227238.

\[14\]Gothandam K M,  Kim E S,  Cho H, et al. OsPPR1,  a pentatricopeptide repeat protein of rice is essential for the chloroplast biogenesis. Plant Mol Biol,  2005,  58(3): 421433.

\[15\]Wellburn A R. The spectral determination of chlorophyll  a and b, as well as total carotenoids,  using various solvents with spectrophotometers of different resolution. Plant Physiol,  1994,  144:  307313.

\[16\]Rogers S O, Bendich A J. Extraction of DNA from plant tissues. Plant Mol Biol Manual,   1988,  A6:  110.

\[17\]McCouch S R,  Teytelman L,  Xu Y B, et al. Development and mapping of 2240 new SSR markers for rice (Oryza sativa L.). DNA Res,  2002,  9(6):  199207.

\[18\]Panaud O,  Chen X,  McCouch S R. Development microsatellite markers characterization of simple sequence length polymorphism (SSLPs) in rice (Oryza sativa L). Mol Gen Genet,  1996,  252(5):  597607.

\[19\]Michelmore R W,  Paran I,  Kesseli R V. Identification of markers linked to diseaseresistance genes by bulked segregation analysis:  A rapid method to detect markers in specific genomic regions by using segregation population. Proc Natl Acad Sci USA,  1991,  88(21):  98289832.

\[20\]Stenbaek A,  Jensen P E. Redox regulation of chlorophyll biosynthesis. Phytochemistry,  2010,  71 (8/9): 853859.

\[21\]李育红, 王宝和, 戴正元,  等. 一个水稻新型叶色突变体的形态结构与遗传定位.中国水稻科学, 2011, 25(6):  587593.

\[22\]奉保华, 杨杨, 施勇烽,  等. 水稻淡褐斑叶突变体lbsl1的遗传分析与基因定位.中国水稻科学, 2012, 26(3):  297301.

\[23\]Zhang J X,  Kirkham M B. Droughtstressinduced changes in activities of superoxide dismutase,  catalase,  and peroxidase in wheat species. Plant Cell Physiol,  35(5): 785791.

\[24\]Shim I S,  Momose Y,  Yamamoto A,  et al. Inhibition of catalase activity by oxidative stress and its relationship to salicylic acid accumulation in plants. Plant Growth Regul,  2003,  39(3): 285292.

\[25\]金怡,  刘合芹,  汪得凯,  等.一个水稻苗期白条纹叶抽穗期白穗突变体的遗传分析和基因定位. 中国水稻科学, 2011, 25(6): 461466.

\[26\]汪庆,  汪得凯,  陶跃之. 一个新的水稻半矮化小穗突变体的遗传分析与基因定位. 中国水稻科学, 2011, 25(6): 677680.
Outlines

/

Tel: 0571-63370278 E-mail: cjrs@263.net
Supported by Beijing Magtech Co., Ltd.