Page 157 - 《广西植物》2023年第7期
P. 157
7 期 魏飒等: 粗山羊草种质遗传多样性及群体结构的 ISSR 分析 1 3 2 5
markers [J]. J Plant Genet Resourꎬ 22(2): 361-370. [郜 PESTSOVA Eꎬ KORZUN Vꎬ GONCHAROV NPꎬ et al.ꎬ
晓峰ꎬ 周仪ꎬ 宋丹阳ꎬ 等ꎬ 2021. 基于穗形特征与分子标 2000. Microsatellite analysis of Aegilops tauschii germplasm
记进行中国节节麦核心种质的创建 [J]. 植物遗传资源 [J]. Theor Appl Genetꎬ 101: 100-106.
学报ꎬ 22(2): 361-370.] PRITCHARD JKꎬ STEPHENS Mꎬ DONNELLY Pꎬ 2000.
GHASEMZADE Rꎬ BEHAMTA MRꎬ AGHAII MJꎬ et al.ꎬ Inference of population structure using multilocus genotype
2008. Intra ̄ and inter ̄population diversity of Iranian Aegilops data [J]. Geneticsꎬ 155(2): 945-959.
tauschii based on seed storage protein electrophoresis ROHLF FJꎬ 2000. NTSYS ̄pc: numerical taxonomy and
[J]. Int J Agric Biolꎬ 10(4): 463-465. multivariate analysis system Version 2. 1 [ Z]. New York:
HAO Mꎬ ZHANG LQꎬ ZHAO LBꎬ et al.ꎬ 2019. A breeding Exeter Software.
strategy targeting the secondary gene pool of bread wheat: SOHAIL Qꎬ SHEHZAD Tꎬ KILIAN Aꎬ et al.ꎬ 2012.
introgression from a synthetic hexaploid wheat [ J]. Theor Development of diversity array technology (DArT) markers
Appl Genetꎬ 132(8): 2285-2294. for assessment of population structure and diversity in
HSAM SLKꎬ KIEFFER Rꎬ ZELLER FJꎬ 2001. Significance of Aegilops tauschii [J]. Breed Sciꎬ 62(1): 38-45.
Aegilops tauschii glutenin genes on breadmaking properties of SU YZꎬ ZOU MWꎬ ZHU YMꎬ et al.ꎬ 2020. Analysis of
wheat [J]. Cereal Chemꎬ 78(5): 521-525. population structure and origin in Aegilops tauschii Coss. from
KHODAEE Lꎬ AZIZINEZHAD Rꎬ ETMINAN ARꎬ et al.ꎬ China through SNP markers [J]. Genet Resour Crop Evolꎬ
2021. Assessment of genetic diversity among Iranian Aegilops 67(4): 923-934.
triuncialis accessions using ISSRꎬ SCoTꎬ and CBDP markers WAINES JGꎬ 1998. In situ conservation of wild relatives of crop
[J]. J Genet Eng Biotechnolꎬ 19: 5. plants in relation to their history [ M] / / DAMANIA ABꎬ
KONG LRꎬ DONG YCꎬ JIA JZꎬ 1998. Random amplified VALKOUN Jꎬ WILCOX Gꎬ et al. The Origins of Agriculture
polymorphism of DNA analysis in Aegilops tauschii [J]. Acta and Crop Domesticatio. ICARDAꎬ Apeppoꎬ
Bot Sinꎬ 40(3): 223- 227. [孔令让ꎬ 董玉琛ꎬ 贾继增ꎬ Syria: 300-306.
1998. 粗山羊草随机扩增多态性 DNA 研究 [J]. 植物学 WANG JRꎬ LUO MCꎬ CHEN ZXꎬ et al.ꎬ 2013. Aegilops
报ꎬ 40(3): 223-227.] tauschii single nucleotide polymorphisms shed light on the
KOORNNEEF Mꎬ ALONSO ̄BLANCO Cꎬ VREUGDENHIL Dꎬ origins of wheat D ̄genome genetic diversity and pinpoint the
2004. Naturally occurring genetic variation in Arabidopsis geographic origin of hexaploid wheat [ J]. New Phytolꎬ
thaliana [J]. Ann Rev Plant Biolꎬ 55(1): 141-172. 198(3): 925-937.
LAGUDAH ESꎬ APPELS Rꎬ BROWN AHDꎬ 1991. The WANG YJꎬ WANG CYꎬ LIU XLꎬ et al.ꎬ 2010. Genetic
molecular ̄genetic analysis of Triticum tauschiiꎬ the D ̄ diversity of Aegliops tauschii based on SSR marker [ J]. J
genome donor to hexaploid wheat [ J]. Genomeꎬ 34 (3): Agric Biotechnolꎬ 18(3): 493-500. [王亚娟ꎬ 王长有ꎬ 刘
375-386. 新伦ꎬ 等ꎬ 2010. 基于 SSR 标记的粗山羊草遗传多样性分
LI YGꎬ SU YZꎬ ZHANG DLꎬ et al.ꎬ 2017. Genetic diversity of 析 [J]. 农业生物技术学报ꎬ 18(3): 493-500.]
Aegilops tauschii accessions native to China revealed by ISSR WEI HTꎬ LI Jꎬ PENG ZSꎬ et al.ꎬ 2008. Relationships of
markers [J]. J Triticeae Cropsꎬ 37(1): 30-39. [李玉阁ꎬ Aegilops tauschii revealed by DNA fingerprints: the evidence
苏亚中ꎬ 张大乐ꎬ 等ꎬ 2017. 中国节节麦基于 ISSR 标记的 for agriculture exchange between China and the West
遗传多样性分析 [J]. 麦类作物学报ꎬ 37(1): 30-39.] [J]. Prog Nat Sciꎬ 18(12): 1525-1531.
LIU Kꎬ MUSE SVꎬ 2005. PowerMarker: an integrated analysis WILLIAM MDHMꎬ PEÑA RJꎬ MUJEEB ̄KAZI Aꎬ 1993. Seed
environment for genetic marker analysis [J]. Bioinformaticsꎬ protein and isozyme variations in Triticum tauschii (Aegilops
21(9): 2128-2129. squarrosa) [J]. Theor Appl Genetꎬ 87: 257-263.
LUBBERS ELꎬ GILL KSꎬ COX TSꎬ et al.ꎬ 1991. Variation of YAN ZHꎬ WAN YFꎬ LIU KFꎬ et al.ꎬ 2002. Identification of a
molecular markers among geographically diverse accessions of novel HMW glutenin subunit and comparison of its amino
Triticum tauschii [J]. Genomeꎬ 34(3): 354-361. acid sequence with those of homologous subunits [J]. Chin
MAHJOOB MMMꎬ GORAFI YSAꎬ KAMAL NMꎬ et al.ꎬ Sci Bullꎬ 47(3): 222-226.
2021. Genome ̄wide association study of morpho ̄physiological YEH FCꎬ YANG RCꎬ BOYLE Tꎬ 1999. POPGENE version
traits in Aegilops tauschii to broaden wheat genetic diversity 1. 32 Microsoft windows ̄based freeware for populations
[J]. Plantsꎬ 10(2): 211. genetic analysis [Z]. Edmonton: University of Alberta.
MIZUNO Nꎬ YAMASAKI Mꎬ MATSUOKA Yꎬ et al.ꎬ ZHANG Cꎬ Cairangzhuomaꎬ KA MXꎬ et al.ꎬ 2020. Genetic
2010. Population structure of wild wheat D ̄genome diversity of naked barley analyzed by ISSR molecular markers
progenitor Aegilops tauschii Coss.: implications for [J]. Mol Plant Breedꎬ 18(4): 1193-1201. [张超ꎬ 才让卓
intraspecific lineage diversification and evolution of common 玛ꎬ 卡毛先ꎬ 等ꎬ 2020. 应用 ISSR 分子标记分析裸大麦的
wheat [J]. Mol Ecolꎬ 19(5): 999-1013. 遗传多样性 [J]. 分子植物育种ꎬ 18(4): 1193-1201.]
MOURAD AMIꎬ BELAMKAR Vꎬ BAENZIGER PSꎬ 2020. ZHAO XPꎬ ZHOU Yꎬ LÜ LLꎬ et al.ꎬ 2019. Genetic diversity of
Molecular genetic analysis of spring wheat core collection Aegilops tauschii Coss. and its utilization in improving
using genetic diversityꎬ population structureꎬ and linkage common wheat [J]. Biotechnol Bullꎬ 35(7): 181-189. [赵
disequilibrium [J]. BMC Genomꎬ 21(1): 1-12. 昕鹏ꎬ 周云ꎬ 吕琳琳ꎬ 等ꎬ 2019. 节节麦遗传多样性及在
OLSON ELꎬ ROUSE MNꎬ PUMPHREY MOꎬ et al.ꎬ 2013. 改良普通小麦中的应用 [J]. 生物技术通报ꎬ 35(7):
Introgression of stem rust resistance genes SrTA10187 and 181-189.]
SrTA10171 from Aegilops tauschii to wheat [J]. Theor Appl
Genetꎬ 126(10): 2477-2484. (责任编辑 周翠鸣)