您好,欢迎访问四川省农业科学院 机构知识库!

Identification of two novel waxy alleles and development of their molecular markers in sorghum

文献类型: 外文期刊

作者: Lu, Yuangen 1 ; Zhao, Ganlin 2 ; Li, Yan 1 ; Fan, Jing 1 ; Ding, Guoxiang 2 ; Zhao, Jiqun 1 ; Ni, Xianlin 2 ; Xu, Yongju; 1 ;

作者机构: 1.Sichuan Agr Univ, Rice Res Inst, Chengdu 611130, Peoples R China

2.Sichuan Acad Agr Sci, Rice & Sorghum Res Inst, Luzhou 646000, Peoples R China

关键词: Amylopectin;Bioenergy industry;Molecular marker;Sorghum;waxy

期刊名称:GENOME ( 影响因子:2.166; 五年影响因子:2.474 )

ISSN:

年卷期:

页码:

收录情况: SCI

摘要: High amylopectin grains of waxy sorghum have a high economic value in the food and bioenergy industries because of their increased starch digestibility and higher ethanol conversion rate compared with wild-type sorghum grains. Mutation in the granule-bound starch synthase (GBSS) gene contributes to the waxy phenotype. Two classes of waxy alleles, wx~a and wx~b, have been characterized previously. In the present work, we identified two novel types of waxy mutations in the sorghum GBSS gene, designated as wx~c and wx~d. The wx~c allele has a G deletion at the 5′ splicing site of the ninth intron, causing a shift of the 5′ cleavage site; in turn, a reading frame shift occurred and resulted in an early translation termination. The wx~d allele contained a mutation at the 3′ splicing site of the 10th intron, which led to a splicing site shift and resulted in the deletion of five amino acids (GTGKK) in the predicted translation product. Furthermore, cleaved amplified polymorphic sequence (CAPS) markers were developed to detect the wx~c and wx~d alleles. With these markers, classification of waxy alleles was performed in nearly 100 sorghum accessions from our breeding program. Most waxy sorghum cultivars in China were either wx~a or wx~c, implying that these two mutations are preferentially maintained during domestic selection in glutinous sorghum production.

  • 相关文献

[1]Nutrient Limiting Factors in Acidic Vegetable Soils. Wang Zheng-Yin,Tu Shi-Hua,Sulewski, G..

[2]Genetic Diversity Revealed by Single Nucleotide Polymorphism Markers in a Worldwide Germplasm Collection of Durum Wheat. Sun, Daokun,Chen, Liang,Peng, Junhua,Ren, Jing,You, Frank M.,Wang, Jirui,Luo, Ming-Cheng,You, Frank M.,Peng, Yunliang,Nevo, Eviatar,Sun, Dongfa,Peng, Junhua. 2013

[3]Isolation of a new repetitive DNA sequence from Secale africanum enables targeting of Secale chromatin in wheat background. Yang, Zu-Jun,Li, Guang-Rong,Zeng, Zi-Xian,Zhang, Yong,Zhou, Jian-Ping,Liu, Zhao-Hui,Ren, Zheng-Long. 2008

[4]Gene Discovery in Triticum dicoccoides, the Direct Progenitor of Cultivated Wheats. Sun, D. F.,Peng, Y. L.,Nevo, E.,Peng, J. H.. 2013

[5]Identification of SNPs and development of allelic specific PCR markers for high molecular weight glutenin subunit D(t)x1.5 from Aegilops tauschii through sequence characterization. Yang, WY,Zhang, WJ,Lu, BR. 2005

[6]Molecular detection of rye (Secale cereale L.) chromatin in wheat line 07jian126 (Triticum aestivum L.) and its association to wheat powdery mildew resistance. Long, Hai,Zhang, Jie,Deng, Guangbing,Pan, Zhifen,Yu, Maoqun,Yu, Shuiyang,Zhang, Erliang,Yang, Hong,Zhang, Jie.

[7]Association mapping of stigma and spikelet characteristics in rice (Oryza sativa L.). Li, Yong,Luo, Dagang,Gao, Fangyuan,Lu, Xianjun,Ren, Guangjun,Agrama, Hesham A..

[8]Fine mapping of a pistilloid-stamen (PS) gene on the short arm of chromosome 1 in rice. Li, Yunfeng,Yang, Zhenglin,Zhong, Bingqiang,Xie, Rong,Ren, Maozhi,Luo, Da,He, Guanghua. 2006

作者其他论文 更多>>