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Research Progress of Wheat-Psathyrostachys huashanica Chromosome Introgression Line |
FENG Yan1, REN Shu-Min1, PANG Yu-Hui1, LI Jiao-Jiao1, WANG Chun-Ping1, LI Jia-Chuang1,*, ZHAO Ji-Xin2,* |
1 College of Agriculture, Henan University of Science and Technology, Luoyang 471000, China; 2 College of Agriculture, Northwest A&F University, Yangling 712100, China |
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Abstract Psathyrostachys huashanica (2n=2x=14, NsNs) is one of the wild relatives of wheat (Triticum aesivum). It has excellent characteristics such as resistance to various wheat diseases, cold and drought tolerance, high quality and early maturity. It has important utilization value for broadening the genetic basis of wheat and creating new germplasm. This article focuses on the wheat-P. huashanica chromosome introgression lines; summarizes the various types of wheat-P. huashanica derived lines that have been created in recent years; and summarizes the common identification methods of P. huashanica chromosome homologous groups in wheat background. The Oligo probes applicable in the fluorescence in situ hybridization experiments were listed, and the available expressed sequences tags-sequencetagged sites (EST-STS), simple sequence repeats (SSR), sequence characterized amplified region (SCAR), PCR-based landmark unique gene (PLUG), and kompetitive allele-specific PCR (KASP) molecular markers were sorted out according to the homologous groups. In addition, the effects of genetic material introgression of P. huashanica on the resistance of receptor wheat to powdery mildew, stripe rust, take-all and other diseases, as well as agronomic traits such as plant height, 1 000-grain weight and tiller number were analyzed. Finally, the application of P. huashanica in wheat breeding was prospected, in order to provide reference for the application of P. huashanica in wheat genetic breeding.
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Received: 21 August 2024
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Corresponding Authors:
*zhaojixin@nwafu.edu.cn; chunpingw@haust.edu.cn
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[1] 白宇皓. 2017. 小麦-华山新麦草衍生后代纹枯病抗性鉴定与华山新麦草Ns染色体特异SCAR标记开发[D]. 硕士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 18-20. (Bai H Y. 2017. Wheat sharp eyespot resistance evaluation of wheat-Psathyrostachys huashanica derived lines and development of Ns chromosome specific SCAR markers[D]. Thesis for M.S., Northwest A&F University, Suppervisor: Chen X H, pp. 18-20.) [2] 曹张军, 王献平, 王美南, 等. 2005. 小麦背景中来自华山新麦草的抗条锈病基因的遗传学分析和分子标记[J]. 遗传学报, (07): 738-743. (Cao Z J, Wang X P, Wang M N, et al. 2005. Genetic analysis and molecular markers of a novel stripe rust resistance gene YrHua in wheat originated from Psathyrostachys huashanica Keng[J]. Acta Genetica Sinica, (07): 738-743.) [3] 陈漱阳, 侯文胜, 张安静, 等. 1996. 普通小麦-华山新麦草异附加系的选育及细胞遗传学研究[J]. 遗传学报,(06): 447-452+488. (Chen S Y, Hou W S, Zhang A J, et al.1996. Breeding and cytogenetic study of Triticum aestivum-Psathyrostachys huashanica aline lines[J]. Acta Genetica Sinica,(06): 447-452, 488.) [4] 陈漱阳, 张安静, 傅杰. 1991. 普通小麦与华山新麦草的杂交[J]. 遗传学报, 18(06): 508-512. (Chen S Y, Zhang A J, Fu J.1991. The hybridization between Triticum aestivum and Psathyrostachys huashanica[J]. Acta Genetica Sinica, 18(06): 508-512.) [5] 邓欣, 郑祥博, 陈春环, 等. 2013. 普通小麦-华山新麦草衍生后代H18和0841的SSR标记鉴定[J]. 麦类作物学报, 33(3): 423-428. (Deng X, Zheng X B, Chen C H, et al.2013. Identification of the wheat-Psathyrostachys huashanica derivatives H18 and 0841 from common with SSR marker[J]. Journal of Triticeae Crops, 33(3): 423-428.) [6] 刁慧珊. 2018. 小麦-华山新麦草衍生后代分子细胞遗传学及其纹枯病抗性鉴定评价[D]. 硕士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 11-14. (Diao H S.2018. Cytological identification and evaluation of the resistance to sharp eyespot (Rizoctonia cerealis) of progeny of wheat-Psathyrostachys huashanica Keng[D]. Thesis for M.S., Northwest A&F University, Supervisor: Chen X H, pp. 11-14.) [7] 杜万里. 2014. 普通小麦-华山新麦草异附加系分子细胞遗传学研究及其SCAR标记开发[D]. 博士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 16-37, 88-95. (Du W L.2014. Molecular cytogenetics characterization of wheat-Psathyrostachys huashanica Keng disomic addition lines study of alien addition lines and development of SCAR markers[D]. Thesis for Ph.D., Northwest A&F University, Suppervisor: Chen X H, pp. 16-37+88-95.) [8] 杜雅楠, 陈新宏, 赵继新, 等. 2010. 小麦-华山新麦草衍生后代抗旱性分析[J]. 麦类作物学报, 30(04): 670-675. (Du Y N, Chen X H, Zhao J X, et al.2010. Analysis on drought resistance of Triticum-Psathyrostachys deritivesat germination and seedling stages[J]. Journal of Triticeae Crops, 30(04): 670-675.) [9] 傅杰, 赵继新, 陈漱阳, 等. 2003. 小麦-华山新麦草抗全蚀病新种质的分子细胞遗传学研究[J]. 西北植物学报, 23(11): 1905-1909. (Fu J, Zhao J X, Chen S Y, et al.2003. Studies on molecular cytogenetics of wheat-Psathyrostachys huashanica germplasm with resistance to wheat take-all fungus.[J]. Acta Botanica Boreali-Occidentalia Sinica, 23(11): 1905-1909.) [10] 耿以礼, 耿伯介. 1959. 中国主要植物图说(禾本科)[M]. 北京: 科学出版社, pp. 342-437. (Geng Y L, Geng B J.1959. Flora Illustrata Plantarum Primarum Sinicarum (Gramineae)[M]. Science Press, Beijing, China, pp. 342-437.) [11] 关红梅. 1997. 植物染色体原位杂交的发展与应用[J]. 中国农学通报,(05): 34-5, 8. (Guan H M.1997. Development and application of in situ hybridization of plant chromosomes[J]. Chinese Agricultural Science Bulletin,(05): 34-5+8.) [12] 郭本兆, 卢生莲, 孙永华. 1987. 中国植物志(第九卷第三分册)[M]. 北京: 科学出版社, pp. 51-104. (Guo B Z, Lu S L, Sun Y H.1987. Flora Reipublicae Popularis Sinicae (Volume 9, Part 3)[M]. Science Press, Beijing, China, pp. 51-104.) [13] 韩静. 2021. 小麦-华山新麦草衍生后代的分子细胞遗传学鉴定及白粉病抗性基因定位[D]. 硕士学位论文, 西北农林科技大学, 导师: 武军, pp. 26-33. (Han J.2021. Molecular cytogenetic identification of the wheat-Psathyrostachys huashanica derivative lines and mapping of powdery mildew resistance genes[D]. Thesis for M.S., Northwest A&F University, Supervisor: Wu J. pp. 26-33) [14] 韩颜超. 2015. 普通小麦-华山新麦草衍生后代的分子细胞遗传学研究[D]. 硕士学位论文, 西北农林科技大学, 导师: 吉万全, pp. 26-33. (Han Y C.2015. Molecular cytogenetic studies on derivatives of wheat-Psathyrostachys huashanica[D]. Thesis for M.S., Northwest A&F University, Suppervisor: Ji W Q, pp. 26-33.) [15] 韩颜超, 王长有, 陈春环, 等. 2015. 普通小麦—华山新麦草1Ns二体异附加系的分子细胞遗传学研究[J]. 麦类作物学报, 35(08): 1044-1049. (Han Y C, Wang C Y, Chen C H, et al.2015. Molecular cytogenetic study of wheat-Psathyrostachys huashanica 1Ns disomic alien addition line[J]. Journal of Triticeae Crops, 35(08): 1044-1049.) [16] 郝冬冬. 2019. 小麦-华山新麦草衍生后代的抗病性鉴定及细胞学研究[D]. 硕士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 16-21. (Hao D D.2019. Resistance identification and cytogenetic studies on wheat-Psathyrostachys huashanica derived lines[D]. Thesis for M.S., Northwest A&F University. Supervisor: Chen X H, pp. 16-21.) [17] 侯文胜, 张安静, 杨群慧, 等. 1997. 普通小麦—华山新麦草异代换系的选育及细胞遗传学研究 [J]. 西北植物学报, (03): 368-373. (Hou W S, Zhang A J, Yang Q H, et al. 1997. Breeding and cytogenetic study of Triticum aestivum-Psathyrostachys huashanica aline substitution lines[J]. Acta Botanica Boreali-Occidentalia Sinica, (03): 368-373.) [18] 井金学, 傅杰, 袁红旭, 等. 1999. 三个小麦野生近缘种抗条锈性传递的初步研究[J]. 植物病理学报, (02): 147-150. (Jing J X, Fu J, Yuan H X, et al. 1999. A preliminary study on heredity of the resistance to stripe rust in three wild relatives of wheat[J]. Journal Acta of Phytopathology, (02): 147-150.) [19] 李大勇, 张学勇, 杨继, 等. 2000. 普通小麦三个基因组之间的遗传关系及原位杂交分析[J]. 植物学报, (09): 957-964. (Li D Y, Zhang X Y, Yang J, et al. 2000. Genetic relationship and genomic in situ hybridization analysis of the three genomes in Triticum aestivum[J]. Acta Botanica Sinica, (09): 957-964.) [20] 李寒, 卢涛, 黄文娣, 等. 2020. 小麦-华山新麦草易位系H1684细胞学鉴定及抗条锈性遗传分析[J]. 分子植物育种, 18(11): 3643-3648. (Li H, Lu T, Huang W D, et al.2020. Cytological identification and resistance inheritance in wheat-Psathyrostachys huashanica translocation line H1684[J]. Molecular Plant Breeding, 18(11): 3643-3648.) [21] 李家创. 2021. 5份小麦-华山新麦草衍生后代的分子细胞遗传学鉴定及重要农艺性状评价[D]. 博士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 71-77. (Li J C.2021. Molecular cytogenetic identification and important agronomic traits evaluation of five wheat-Psathyrostachys huashanica Keng derived lines[D]. Thesis for Ph.D., Northwest A&F University, Suppervisor: Chen X H, pp. 71-77.) [22] 李强. 2010. 几个重要小麦品种(系)全生育期抗条锈病基因的遗传分析和分子作图[D]. 博士学位论文, 西北农林科技大学, 导师: 井金学, pp. 57-60. (Li Q.2010. Inheritance and molecular mapping of gene(s) for all-stage resistance to stripe rust in several wheat cultivars (lines) [D]. Thesis for Ph.D., Northwest A&F University, Supervisor: Jing J X, pp. 57-60.) [23] 李三月. 2021. 抗白粉病小麦-华山新麦草7Ns附加系鉴定及特异分子标记开发[D]. 硕士学位论文, 四川农业大学, 导师: 周永红, pp. 21-25. (Li S Y.2021. Characterization and specific molecular markers development of a wheat-Psathyrostachys huashanica 7Ns addition line with resistance to Powdery Mildew[D]. Thesis for M.S., Sichuan Agricultural University, Supervisor: Zhou Y H, pp. 21-25.) [24] 李忠虎. 2019. 华山新麦草基因组测序研究进展[C]. 中国作物学会. 第十届全国小麦基因组学及分子育种大会摘要集. 西北大学生命科学学院. (Li Z H.2019. Research Progress on the Genome Sequencing of Psathyrostachys huashanica[C]. Crop Science Society of China. Abstracts of the 10th National Conference on Wheat Genomics and Molecular Breeding. College of Life Sciences, Northwest University) [25] 刘成, 韩冉, 汪晓璐, 等. 2020. 小麦远缘杂交现状,抗病基因转移及利用研究进展[J]. 中国农业科学, 53(7): 22. (Liu C, Han R, Wang X L, et al.2020. Research progress of wheat wild hybridization, disease resistance genes transfer and utilization[J]. Scientia Agricultura Sinica, 53(7): 22. [26] 刘佩, 杨敏娜, 周新力, 等. 2008. 普通小麦-华山新麦草易位系H9020-1-6-8-3抗条锈病基因的遗传分析和SSR标记[J]. 植物病理学报, (01): 104-107. (Liu P, Yang M N, Zhou X L, et al. 2008. Genetic analysis and molecular mapping of stripe rust resistance of wheat translocation line H9020-1-6-8-3 derived from Psathyrostachys huashanica Keng[J]. Acta Phytopathologica Sinica, (01): 104-107.) [27] 马东方, 尹军良, 刘署艳, 等. 2015a. 普通小麦-华山新麦草易位系9020-17-25-6抗条锈性遗传分析及分子标记[J]. 植物保护学报, 42(03): 327-333. (Ma D F, Yin J L, Liu S Y, et al.2015a. Genetic and molecular mapping of stripe rust resistance gene in wheat-Psathyrostachys huashanica translocation line 9020-17-25-6[J]. Journal of Plant Protection, 42(03): 327-433.) [28] 马东方, 方正武, 李强, 等. 2015b. 普通小麦-华山新麦草易位系H9015-17抗条锈病基因的标记定位[J]. 植物病理学报, 45(05): 501-508. (Ma D F, Fang Z W, Li Q, et al.2015b. Molecular mapping of a stripe rust resistance gene of wheat translocation line H9015-17 derived from Psathyrostachys huashanica Keng[J]. Acta Phytopathologica Sinica, 45(05): 501-508.) [29] 苏佳妮. 2015. 小麦-华山新麦草易位系材料24-6的分子细胞学鉴定及华山新麦草1Ns, 3Ns, 5Ns特异SCAR标记开发[D]. 硕士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 14-26. (Su J N.2015a. Cytological and molecular marker identification of wheat-Psathyrostachys huashanica translocation line metarial 24-6 and establishment specific SCAR markers on Psathyrostachys huashanica chromosome 1Ns, 3Ns and 5Ns[D]. Thesis for M.S., Northwest A&F University, Suppervisor: Chen X H, pp. 14-26.) [30] 苏佳妮, 武军, 赵继新, 等. 2014. 小麦-华山新麦草易位系24-6的鉴定[J]. 麦类作物学报, 34(05): 615-620. (Su J N, Wu J, Zhao J X, et al.2014. Identification of a translocation line 24-6 from offsprings between wheat-Psathyrostachys huashanica[J]. Journal of Triticeae Crops, 34(05): 615-620.) [31] 田月娥, 黄静, 李强, 等. 2011. 源于华山新麦草抗条锈病基因YrH122遗传分析和SSR标记[J].植物病理学报, 41(01): 64-71. (Tian Y E, Huang J, Li Q, et al.2011. Inheritance and SSR mapping of a stripe-rust resistance gene YrH122 derived from Psathyrostachys huashanica Keng[J]. Acta Phytopathologica Sinica, 41(01): 64-71.) [32] 万永芳, 颜济, 杨俊良, 等. 1997. 小麦近缘野生植物的赤霉病抗性研究[J]. 植物病理学报, (02): 107-111. (Wan Y F, Yan J, Yang J L, et al. 1997. Study on wild relatives of wheat for resistance to head scab[J]. Acta Phytopathologica Sinica, (02): 107-111.) [33] 王亮明. 2015. 小麦-华山新麦草杂种后代细胞遗传学研究及其早熟、高光合与耐盐相关基因染色体定位[D]. 博士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 31-35. (Wang L M.2015. The hybrid progeny of wheat-Psathyrostachys huashanica Keng cytogenetics research and early maturing、high photosynthetic and salt resistance genes chromosome location reseach[D]. Thesis for Ph.D., Northwest A&F University, Supervisor: Chen X H, pp. 31-35.) [34] 王亮明, 敬樊, 刘洋, 等. 2015. 小麦-华山新麦草二体附加系不同Ns染色体对小麦幼穗发育进程及光合作用的影响[J]. 农业生物技术学报, 23(08): 1002-1010. (Wang L M, Jing F, Liu Y, et al.2015. The influence of different Ns chromosomes in wheat-Psathyrostachys huashanica disomic addition lines on young ear development and photosynthesis[J]. Journal of Agricultural Biotechnology, 23(08): 1002-1010.) [35] 王美南, 商鸿生. 2000. 华山新麦草对小麦全蚀病菌的抗病性研究[J]. 西北农业大学学报, (06): 69-71. (Wang M N, Shang H S. 2000. Evaluation of resistance in Psathyrostachys huashaica to wheat Take-all fungus[J]. Journal of Northwest Agricultural University, (06): 69-71.) [36] 王秀娟, 陈新宏, 庞玉辉, 等. 2015. 小麦-华山新麦草异代换系DH2322的分子细胞遗传学鉴定[J]. 作物学报, 41(02): 207-213. (Wang X J, Chen X H, Pang Y H, et al.2015. Molecular cytogenetics identification of a wheat-Psathyrostachys huashanica substitution line DH2322[J]. Acta Agronomica Sinica, 41(02): 207-213.) [37] 王秀娟, 赵继新, 庞玉辉, 等. 2014. 小麦-华山新麦草7Ns异附加系的分子细胞遗传学研究[J]. 麦类作物学报, 34(04): 454-459. (Wang X J, Zhao J X, Pang Y H, et al.2014. Molecular and cytogenetic characterization of Triticum-Psathyrostachys huashanica 7Ns alien addition line[J]. Journal of Triticeae Crops, 34(04): 454-459.) [38] 王益, 康厚扬, 原红军, 等. 2008. 普通小麦与华山新麦草衍生后代的农艺性状和细胞遗传学研究[J]. 四川农业大学学报, 26(04): 6. (Wang Y, Kang H Y, Yuan H J, et al.2008. Study on agronomic traits and cytogenetics of the derived progenies from Triticum aestivum and Psathyrostachys huashanica[J]. Journal of Sichuan Agricultural University, 26(04): 6.) [39] 王勇, 徐春波, 松梅. 2005. 我国新麦草属牧草研究进展[J]. 中国草地, (02): 66-71. (Wang Y, Xu C B, Song M. 2005. Advances in studies on Psathyrostachys Nevski in China[J]. Grassland of China, (02): 66-71.) [40] 魏芳勤. 2008. 小麦-华山新麦草后代材料抗全蚀病鉴定及其遗传分析[D]. 博士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 26-27. (Wei F Q.2008. Identification and genetic analysis of the resistance of wheat-Psathyrostachys husashanica off spring to take-all[D]. Thesis for M.S., Northwest A&F University, Supervisor: Chen X H, pp. 71-77.) [41] 魏芳勤, 武军, 赵继新, 等. 2009. 普通小麦和华山新麦草衍生系H9021对全蚀病抗性的遗传分析[J]. 麦类作物学报, 29(01): 153-156. (Wei F Q, Wu J, Zhao J X, et al.2009. Genetic analysis of resistance to take-all fungus of wheat Line H9021 derived from wheat-Psathyrostachys huashanica[J]. Journal of Triticeae Crops, 29(01): 153-156.) [42] 吴宽, 牛永浩, 康克功, 等. 2019. 华山新麦草易位系抗黄矮病的鉴定[J]. 麦类作物学报, 39(07): 783-786. (Wu K, Niu Y H, Kang K G, et al.2019. Evaluation of Psathyrostachys huashanica translocation lines resistant to barley yellow dwarf disease[J]. Journal of Triticeae Crops, 39(07): 783-786.) [43] 武军, 赵继新, 陈新宏, 等. 2007. 普通小麦-华山新麦草二体附加植株减数分裂中期染色体行为及形态学分析[J]. 西北农林科技大学学报: 自然科学版, 35(9): 45-48. (Wu J, Zhao J X, Chen X H, et al.2007. PMC M I chromosome behavior and morphology analysis on disomic additional plants derived from wheat-Psathyrostachys huashanica[J]. Journal of Northwest A&F University (Nat. Sci . Ed.), 35(9): 45-48.) [44] 武军,马琳,赵继新,等. 2010. 普通小麦-华山新麦草矮秆种质B62的分子细胞学鉴定[J].西北农林科技大学学报:自然科学版, 38(12):5. (Wu J, Ma L, Zhao J X, et al.2010. Molecular cytology on a dwarf germplasm derived from Triticum aestivum×Psathyrostachys huashanica[J]. Journal of Northwest A&F University (Nat.Sci.Ed.), 38(12): 5.) [45] 谢林财, 屈晓健, 吉万全, 等. 2023. 三个小麦-华山新麦草二体附加系分子细胞遗传学的初步鉴定[J]. 麦类作物学报, 43(12): 1495-1503. (Xie L C, Qu X J, Ji W Q, et al.2023. Preliminary molecular cytogenetic identification of three additional lines of wheat-Psathyrostachys huashanica disomy[J]. Journal of Triticeae Crops, 43(12): 1495-1503.) [46] 姚强, 王阳, 贺苗苗, 等. 2010. 普通小麦-华山新麦草易位系H9020-20-12-1-8抗条锈病基因SSR标记[J]. 农业生物技术学报, 18(04): 676-681. (Yao Q, Wang Y, He M M, et al.2010. SSR molecular mapping of stripe rust resistance gene of wheat translocation line H9020-20-12-1-8 derived from Psathyrostachys huashanica Keng[J]. Journal of Agricultural Biotechnology, 18(04): 676-681.) [47] 尹军良. 2011. 普通小麦-华山新麦草易位系H9020-17-25-6-4和天867的抗条锈性遗传分析[D]. 硕士学位论文, 西北农林科技大学, 导师: 井金学, pp. 18-24. (Yin J L.2011. Genetic analysis of H9020-17-25-6-4 and Tian 867 for resistance to stripe rust[D]. Thesis for M.S., Northwest A&F University, Suppervisor:Jing J X, pp. 18-24.) [48] 赵继新, 陈新宏, 王小利, 等. 2003. 普通小麦-华山新麦草异代换系和附加系的C-分带鉴定[J]. 西北农林科技大学学报(自然科学版), 31(6): 1-4. (Zhao J X, Chen X H, Wang X L, et al.2003. Identification of wheat-Psathyrostachys huashanica alien substitution lines and addition lines by C-banding[J]. Journal of Northwest A&F University (Nat. Sci . Ed.), 31(6): 1-4.) [49] 赵继新, 陈新宏, 王小利, 等. 2004a. 普通小麦-华山新麦草异代换系的分子细胞遗传学研究[J]. 西北植物学报, 24(13): 5. (Zhao J X, Chen X H, Wang X L, et al.2004a. Molecular cytogenetic study on the alien substitution lines of Triticum-Psathyrostachys[J]. Acta Botanica Boreali-Occidentalia Sinica, 24(13): 5.) [50] 赵继新, 陈新宏, 王小利, 等. 2004b. 普通小麦-华山新麦草异附加系的分子细胞遗传学研究[J]. 西北农林科技大学学报(自然科学版),(11): 105-108+113. (Zhao J X, Chen X H, Wang X L, et al.2004b. Molecular cytogenetic study on the alien addition lines of Triticum-Psathyrostachys[J]. Journal of Northwest A&F University (Nat. Sci . Ed.),(11): 105-108+113.) [51] 赵继新, 武军, 程雪妮, 等. 2010. 普通小麦-华山新麦草1Ns二体异附加系的农艺性状和品质[J]. 作物学报, 36(09): 1610-1614. (Zhao J X, Wu J, Cheng X N, et al.Agronomic and quality traits of a wheat-Psathyrostachys huashanica 1Ns disomic addition line[J]. Acta Agronomica Sinica, 36(09): 1610-1614.) [52] 张德时. 2019. 普通小麦-华山新麦草衍生后代的筛选和鉴定[D]. 硕士学位论文, 西北农林科技大学, 导师: 张宏, pp. 18-25. (Zhang D S.2019. Screening and identification of wheat-Psathyrostachys huashanica derivatives[D]. Thesis for M.S., Northwest A&F University, Suppervisor: Zhang H, pp. 18-25.) [53] 张德时, 王斯文, 王长有, 等. 2020. 小麦-华山新麦草异附加系的细胞遗传学和分子标记辅助鉴定[J]. 麦类作物学报, 40(01): 12-20. (Zhang D S, Wang S W, Wang C Y, et al.2020. Cytogenetic and marker assisted identification of wheat-Psathyrostachys huashanica alien addition lines[J]. Journal of Triticeae Crops, 40(01): 12-20.) [54] 张浩, 曾春艳, 康厚扬, 等. 2023. 一种华山新麦草2Ns染色体特异KASP分子标记引物及其应用.中国, CN116144824A[P/OL]. (Zhang H, Zeng C Y, Kang H Y, et al.2023. A Specific KASP molecular marker primer for chromosome 2Ns of Psathyrostachys huashanica and its application. China, CN116144824A[P/OL].) [55] 张文涛. 2011. 普通小麦-华山新麦草二体异附加系的分子细胞遗传学鉴定[D]. 硕士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 36-38. (Zhang W T.2011. Molecular cytogenetics identification of the wheat-Psathyrostachys huashanica disomic addition lines[D]. Thesis for M.S., Northwest A&F University, Suppervisor: Chen X H, pp. 36-38.) [56] 张志娟. 2015. 普通小麦-华山新麦草小片段易位系的分子细胞遗传学鉴定[D]. 硕士学位论文, 四川农业大学, 导师: 周永红, pp. 18-23. (Zhang Z J.2015. Molecular cytogenetic characterization of a small segment translocation lines from wheat-Psathyrostachys huashanica amphiploid[D]. Thesis for M.S., Sichuan Agricultural University, Suppervisor: Zhou Y H, pp. 18-23.) [57] 张珍悦. 2020. 小麦-华山新麦草抗纹枯病渐渗系H-6-11-1的分子细胞遗传学分析[D]. 硕士学位论文, 西北农林科技大学, 导师: 陈新宏, pp. 14-21. (Zhang Z Y.2020. Cytological identification and evaluation of wheat-Psastachys huashanica introgression line H-6-11-1 with sharp eyespot resistance[D]. Thesis for M.S., Northwest A&F University, Suppervisor: Chen X H, pp. 14-21.) [58] 周荣华, 贾继增, 董玉琛. 1997. 用基因组原位杂交技术检测小麦-新麦草杂交后代[J]. 中国科学C辑: 生命科学, (06): 543-549. (Zhou R H, Jia J Z, Dong Y C.1997. Detection of progenies from wheat-Psathyrostachys juncea hybridization by genomic in situ hybridization[J]. Science in China (Series C: Life Sciences), (06): 543-549.) [59] Baden C.1991. A taxonomic revision of Psathyrostachys (Poaceae)[J]. Nordic Journal of Botany, 11(1): 23-26. [60] Bai S S, Yuan F, Zhang H, et al.2020. Characterization of the Wheat-Psathyrostachys huashania Keng 2Ns/2D substitution line H139: A novel germplasm with enhanced resistance to wheat take-all[J]. Frontiers in Plant Science, 11: 233. [61] Bai S S, Zhang H B, Han J, et al.2021. Identification of genetic locus with resistance to take-all in the wheat-Psathyrostachys huashanica Keng introgression line H148[J]. Journal of Integrative Agriculture, 20(12): 3101-3113. [62] Branlard G, Dardevet M, Saccomano R, et al.2001. Genetic diversity of wheat storage proteins and bread wheat quality[J]. Euphytica, 119(1): 59-67. [63] Cao Z J, Deng Z Y, Wang M N, et al.2008. Inheritance and molecular mapping of an alien stripe-rust resistance gene from a wheat-Psathyrostachys huashanica translocation line[J]. Plant Science, 174(5): 544-549. [64] Chi Y, Yang J L, Sun G L.1994. Intermeiocyte connections and cytomixis in intergeneric hybrid of Roegneria ciliaris (Trin.) Nevski with Psathyrostachys huashanica Keng[J]. Cytologia, 58(2): 187-193. [65] Danilova T V, Friebe B, Gill B S.2012. Single-copy gene fluorescence in situ hybridization and genome analysis: Acc-2 loci mark evolutionary chromosomal rearrangements in wheat[J]. Chromosoma, 121(6): 597-611. [66] Dewey D R, Hsiao C.1983. A cytogenetic basis for transferring russian wild rye from elymus to Psathyrostachys[J]. Crop Science, 23(1): 123-126. [67] Du W L, Wang J, Lu M, et al.2013a. Molecular cytogenetic identification of a wheat-Psathyrostachys huashanica Keng 5Ns disomic addition line with stripe rust resistance[J]. Molecular Breeding, 31: 879-888. [68] Du W L, Wang J, Wang L, et al.2013b. Development and characterization of a Psathyrostachys huashanica Keng 7Ns chromosome addition line with leaf rust resistance[J]. PLOS One, 8(8): e70879. [69] Du W L, Wang J, Wang L M, et al.2014a. Molecular characterization of a wheat-Psathyrostachys huashanica Keng 2Ns disomic addition line with resistance to stripe rust[J]. Molecular Genetics and Genomics, 289: 735-743. [70] Du W L, Wang J, Lu M, et al.2014b. Characterization of a wheat-Psathyrostachys huashanica Keng 4Ns disomic addition line for enhanced tiller numbers and stripe rust resistance[J]. Planta, 239: 97-105. [71] Du W L, Wang J, Pang Y H, et al.2014c. Isolation and characterization of a wheat-Psathyrostachys huashanica Keng 3Ns disomic addition line with resistance to stripe rust[J]. Genome, 57(1): 37-44. [72] Du W L, Zhao J, Wang J, et al.2015. Cytogenetic and molecular marker-based characterization of a wheat-Psathyrostachys huashanica Keng 2Ns (2D) substitution line[J]. Plant Molecular Biology Reporter, 33: 414-423. [73] Han J, Liu Y, Hou C, et al.2020. A 1Ns disomic addition from Psathyrostachys huashanica Keng confers resistance to powdery mildew in wheat[J]. Agronomy, 10(2): 312. [74] Hou C C, Han J, Zhang L L, et al.2022. Identification of resistance to Fusarium head blight and molecular cytogenetics of interspecific derivatives between wheat and Psathyrostachys huashanica[J]. Breeding Science, 72(3): 213-221. [75] Hsiao C, Wang R R C, Dewey D R.1986. Karyotype analysis and genome relationships of 22 diploid species in the tribe Triticeae[J]. Canadian Journal of Genetics, 28(1): 109-120. [76] Kang H Y, Wang Y, Fedak G, et al.2011. Introgression of chromosome 3Ns from Psathyrostachys huashanica into wheat specifying resistance to stripe rust[J]. PLOS One, 6(7): e21802. [77] Kang H Y, Zhang Z J, Xu L L, et al.2016. Characterization of wheat-Psathyrostachys huashanica small segment translocation line with enhanced kernels per spike and stripe rust resistance[J]. Genome, 59(4): 221-229. [78] Kishii M, Dou Q, Garg M,et al.2010. Production of wheat-Psathyrostachys huashanica chromosome addition lines[J]. Japanese Journal of Genetics, 85(04): 281-286. [79] László P, Lajos B, László L.2011. Occurrence of 1BL.1RS wheat-rye chromosome translocation and of Sr36/Pm6 resistance gene cluster in wheat cultivars registered in Hungary[J]. Euphytica, 179(2):287-295. [80] Li J C, Yang X Y, Cheng Z J, et al.2019. Molecular cytogenetic characterization of a novel wheat-Psathyrostachys huashanica Keng 5Ns (5D) disomic substitution line with stripe rust resistance[J]. Molecular Breeding, 39(7). [81] Li J C, Liu Y, Cheng X N, et al.2020a. Molecular characteristics and inheritance of a chromosome segment from Psathyrostachys huashanica Keng in a wheat background[J]. Genetic Resources and Crop Evolution, 67(5): 1245-1257. [82] Li J C, Zhao L, Cheng X N, et al.2020b. Molecular cytogenetic characterization of a novel wheat-Psathyrostachys huashanica Keng T3DS-5NsL• 5NsS and T5DL-3DS• 3DL dual translocation line with powdery mildew resistance[J]. BMC Plant Biology, 20: 1-13. [83] Li J C, Li J J, Cheng X N, et al.2021. Molecular cytogenetic and agronomic characterization of the similarities and differences between wheat-Leymus mollis Trin. and wheat-Psathyrostachys huashanica Keng 3Ns (3D) substitution lines[J]. Frontiers in Plant Science, 12: 644896. [84] Li J C, Li J J, Li Z, et al.2023a. Rapid identification of Psathyrostachys huashanica Keng chromosomes in wheat background based on ND-FISH and SNP array methods[J]. Journal of Integrative Agriculture, 22(10): 2934-2948. [85] Li J J, Li J C, Jiang S W, et al.2023b. Addition of Psathyrostachys huashanica HMW glutenin subunit expresses positive contribution to protein polymerization and gluten microstructure of receptor wheat[J]. Food Chemistry,405: 134739. [86] Li T, Tang S J,Li W, et al.2023c. Genome evolution and initial breeding of the Triticeae grass Leymus chinensis dominating the Eurasian Steppe[J].Proceedings of the National Academy of Sciences of the USA, 120(44):e2308984120-e2308984120. [87] Linde-Laursen I, von Bothmer R.1984. Identification of the somatic chromosomes of Psathyrostachys fragilis (Poaceae)[J]. Canadian Journal of Genetics and Cytology, 26(4): 430-435. [88] Linde-Laursen I, von Bothmer R.1986. Comparison of the karyotypes of Psathyrostachys juncea and P. huashanica (Poaceae) studied by banding techniques[J]. Plant Systematics and Evolution, 151: 203-213. [89] Liu Y, Huang S, Han J, et al.2021. Development and molecular cytogenetic identification of a new wheat-Psathyrostachys huashanica Keng translocation line resistant to powdery mildew[J]. Frontiers in Plant Science, 12: 689502. [90] Liu Z G, Yao W Y, Shen X X, et al.2014. Molecular mapping of a stripe rust resistance gene YrH9020a transferred from Psathyrostachys huashanica Keng on wheat chromosome 6D[J]. Journal of Integrative Agriculture, 13(12): 2577-2583. [91] Ma D F, Lu H, Tang M S, et al.2013a. Genetic analysis and molecular mapping of a stripe rust resistance gene YrH9014 in wheat line H9014-14-4-6-1[J]. Journal of Integrative Agriculture, 12(4): 638-645. [92] Ma D F, Zhou X, Hou L, et al.2013b. Genetic analysis and molecular mapping of a stripe rust resistance gene derived from Psathynrostachys huashanica Keng in wheat line H9014-121-5-5-9[J]. Molecular Breeding, 32: 365-372. [93] Ma D F, Hou L, Sun C, et al.2019. Molecular mapping of stripe rust resistance gene YrH9017 in wheat-Psathyrostachys huashanica introgression line H9017-14-16-5-3[J]. Journal of Integrative Agriculture, 18(1): 108-114. [94] Mukai Y, Gill B S.1991. Detection of barley chromatin added to wheat by genomic in situ hybridization[J]. Genome, 34(3): 448-452. [95] Pang J Y, Huang C, Wang Y, et al.2023. Molecular cytological analysis and specific marker development in wheat-Psathyrostachys huashanica Keng 3Ns additional line with elongated glume[J]. International Journal of Molecular Sciences, 24(7): 6726. [96] Qu X J, Zhang D S, Zhang X Y, et al.2021. Cytogenetic and marker assisted identification of a wheat-Psathyrostachys huashanica Keng f. ex P.C.Kuo alien substitution line conferring processing quality and resistance to stripe rust[J]. Genet Resour Crop Evol, 69(2): 687-698. [97] Song S, Tao Y, Zhang H, et al.2013. Psathyrostachys huashanica, a potential resource for resistance to barley yellow dwarf virus-GAV[J]. European Journal of Plant Pathology, 137: 217-221. [98] Sun C, Liu Y K, Chao K, et al.2018. Characterization and molecular mapping of stripe rust resistance in wheat-Psathyrostachys huashanica introgression line H9015-17-1-9-6[J]. Canadian Journal of Plant Pathology, 41: 65-75. [99] Tan B, Zhao L, Li L, et al.2021. Identification of a wheat-Psathyrostachys huashanica 7Ns ditelosomic addition line conferring early maturation by cytological analysis and newly developed molecular and Fish markers[J]. Frontiers in Plant Science, 12: 784001. [100] Tan B, Wang M, Cai L, et al.2022. Cytogenetic and molecular marker analyses of a novel wheat-Psathyrostachys huashanica 7Ns disomic addition line with powdery mildew resistance[J]. International Journal of Molecular Sciences, 23(18): 10285. [101] Tang Z, Yang Z, Fu S.2014. Oligonucleotides replacing the roles of repetitive sequences pAs1, pSc119.2, pTa-535, pTa 71, CCS1, and PA WRC.1 for FISH analysis[J]. Journal of Applied Genetics, 55: 313-318. [102] Wang L, Liu Y, Du W, et al.2015. Anatomy and cytogenetic identification of a wheat-Psathyrostachys huashanica Keng line with early maturation[J]. PLOS One, 10(10): e0131841. [103] Wang J, Wang L M, Du W L, et al.2014. Development of 5Ns chromosome-specific SCAR markers for utilization in future wheat breeding programs[J]. Russian Journal of Genetics, 2014, 50: 606-612. [104] Wang RR-C.2011. Wild Crop Relatives: Genomic and Breeding Resources: Cereals[M]. Berlin, Heidelberg: Springer Berlin Heidelberg, pp. 77-108. [105] Wang RR-C, Hsiao C.1984. Morphology and cytology of interspecific hybrids of Leymus mollis[J]. Journal of Heredity, 75(6): 488-492. [106] Yan Y, Hsam S, Yu J, et al.2003. Allelic variation of the HMW glutenin subunits in Aegilops tauschii accessions detected by sodium dodecyl sulphate (SDS-PAGE), acid polyacrylamide gel (A-PAGE) and capillary electrophoresis[J]. Euphytica, 130: 377-385. [107] Zhao J X, Ji W Q, Wu J, et al.2010. Development and identification of a wheat-Psathyrostachys huashanica addition line carrying HMW-GS, LMW-GS and gliadin genes[J]. Genetic Resources and Crop Evolution, 57: 387-394. [108] Zhang H, Wang F, Zeng C, et al.2022. Development and application of specific FISH probes for karyotyping Psathyrostachys huashanica chromosomes[J]. BMC Genomics, 23(1): 309. |
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