全部 标题 作者
关键词 摘要

OALib Journal期刊
ISSN: 2333-9721
费用:99美元

查看量下载量

相关文章

更多...

从作物的源流库理论展望新型育种技术

DOI: 10.13560/j.cnki.biotech.bull.1985.2015.03.019, PP. 34-39

Keywords: 源流库,维管束,筛管,反向育种,长距离运输

Full-Text   Cite this paper   Add to My Lib

Abstract:

综述了源流库理论的进展,着重描述了维管束作为流的通道不仅能够运输营养物质而且转运不同种类的生物信号。结合最新的研究进展,针对反向育种中染色体非重组和染色体消除两个重要步骤,展望了利用维管束转运基因沉默信号实现花器官染色体操作的技术,为反向育种技术提供新的思路。

References

[1]  刘振业, 刘贞琦.光合作用的遗传与育种[M]. 贵阳:过州人民出版社, 1984:160-249.
[2]  王忠孝, 高学曾, 许金芳, 等.关于玉米籽粒败育的研究[J].中国农业科学, 1986(6):36-40.
[3]  Cui H, Kong D, Liu X, Hao Y. SCARECROW, SCR-LIKE 23 and SHORT-ROOT control bundle sheath cell fate and function in Arabidopsis thaliana[J]. Plant J, 2014, 78(2):319-327.
[4]  Abraham P, Adams R, Giannone RJ, et al. Defining the boundaries and characterizing the landscape of functional genome expression in vascular tissues of Populus using shotgun proteomics[J]. J Proteome Res, 2012, 11(1):449-460.
[5]  Dafoe NJ, Zamani A, Ekramoddoullah AKM, et al. Analysis of the poplar phloem proteome and its response to leaf wounding[J]. J Proteome Res 2009, 8:2341-50.
[6]  Aki T, Shigyo M, Nakano R, et al. Nano scale proteomics revealed the presence of regulatory proteins including three FT-Like proteins in phloem and xylem saps from rice[J]. Plant Cell Physiol, 2008, 49:767-790.
[7]  (3):456-468.
[8]  Lin MK, Lee YJ, Lough TJ, et al. Analysis of the pumpkin phloem proteome provides insights into angiosperm sieve tube function[J]. Mol Cell Proteomics, 2009, 8:343-356.
[9]  Hand ML, Koltunow AM. The genetic control of apomixis:asexual seed formation[J]. Genetics, 2014, 197(2):441-450.
[10]  Wijnker E, van Dun K, de Snoo CB, et al. Reverse breeding in Arabidopsis thaliana generates homozygous parental lines from a heterozygous plant[J]. Nat Genet, 2012, 44(4):467-470.
[11]  Anai T. Potential of a mutant-based reverse genetic approach for functional genomics and molecular breeding in soybean[J]. Breed Sci, 2012, 61:462-467.
[12]  Kurzbauer MT, Uanschou C, Chen D, Schlogelhofer P. The recombinases DMC1 and RAD51 are functionally and spatially separated during meiosis in Arabidopsis[J]. Plant Cell, 2012, 24(5):2058-2070.
[13]  Sanei M, Pickering R, Kumke K, et al. Loss of centromeric histone H3(CENH3)from centromeres precedes uniparental chromosome elimination in interspecific barley hybrids[J]. Proc Natl Acad Sci USA, 2011, 108(33):E498-505.
[14]  McGarry RC, Kragler F. Phloem-mobile signals affecting flowers:applications for crop breeding[J]. Trends Plant Sci, 2013, 18:198-206.
[15]  Winter SR, Ohlrogge AJ. Leaf angle, Leaf area, and Corn(Zea mays L.)yield[J]. Agron J, 1973, 65:395-397.
[16]  杨建昌.水稻产量源库关系的研究[J].江苏农学院学报, 1993, 14:47-53.
[17]  张秀梅, 任和平, 杨铁钊.玉米果穗顶部籽粒败育发生的时间与籽粒糖含量的关系[J].河南农学院学报, 1984(3):15-24.
[18]  王余龙, 蔡建中.水稻籽粒受容活性及其控制途径[J].江苏农学院学报, 1991, 12(2):17-23.
[19]  郑丕尧.玉米不同叶位叶解剖结构的研究II.不同叶位叶片维管束系统的观察[J].中国农业科学, 1986(6):41-47.
[20]  Jaeger KE, Wigge P. FT protein acts as a long-range signal in Arabi-dopsis[J]. Curr Biol, 2007, 17(12):1050-1054.
[21]  Helariutta, Y, Fukaki H, Dikker J, et al. The SHORT-ROOT gene controls radial patterning of the Arabidopsis root through radial signaling[J]. Cell, 2000, 101(5):555-567.
[22]  Slewinski TL, Anderson AA, Zhang C, Turgeon R. Scarecrow plays a role in establishing Kranz anatomy in maize leaves[J]. Plant Cell Physiol, 2012, 53:2030-2037.
[23]  Whitehill JG, Popova-Butler A, Green K, et al. Interspecific proteomic comparisons reveal ash phloem genes potentially involved in constitutive resistance to the emerald ash borer[J]. PLoS One 2011, 6:e24863.
[24]  Cho WK, Chen XY, Rim Y, et al. Extended latex proteome analysis deciphers additional roles of the lettuce laticifer[J]. Plant Biotechnology Reports, 2010, 4(4):311-319.
[25]  Yoo SC, Chen C, Rojas M, et al. Phloem long-distance delivery of FLOWERING LOCUS T(FT)to the apex[J]. Plant J, 2013, 75
[26]  Cho WK, Chen XY, Rim Y, et al. Proteome study of the phloem sap of pumpkin using multidimensional protein identification technology[J]. J Plant Physiol, 2010, 167(10):771-778.
[27]  Li C, Gu M, Shi N, et al. Mobile FT mRNA contributes to the systemic florigen signalling in floral induction[J]. Sci Rep, 2011, 1(73):1-7.
[28]  Sasaki T, Chino M, Hayashi H, Fujiwara T. Detection of several mRNA species in rice phloem sap[J]. Plant Cell Physiol, 1998, 39:895-897.
[29]  Forster BP, Heberle-Bors E, Kasha KJ, Touraev A. The resurgence of haploids in higher plants[J]. Trends Plant Sci, 2007, 12:368-375.
[30]  Dirks R, van Dun K, de Snoo CB, et al. Reverse breeding:a novel breeding approach based on engineered meiosis[J]. Plant Biotechnol J, 2009, 7(9):837-845.
[31]  Wijnker E, Deurhof L, van de Belt J, et al. Hybrid recreation by reverse breeding in Arabidopsis thaliana[J]. Nat Protoc, 2014, 9(4):761-772.
[32]  Zhang WN, Kollwing G, Stecyk E, et al. Graft-transmissible movement of inverted-repeat-induced siRNA signals into flowers[J]. Plant Journal, 2014, 80(1):106-121.

Full-Text

Contact Us

service@oalib.com

QQ:3279437679

WhatsApp +8615387084133