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Titlebook: DNA-based markers in plants; Ronald L. Phillips,Indra K. Vasil Book 1994 Springer Science+Business Media Dordrecht 1994 DNA.Liana.arabidop

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發(fā)表于 2025-3-21 18:19:10 | 只看該作者 |倒序瀏覽 |閱讀模式
書目名稱DNA-based markers in plants
編輯Ronald L. Phillips,Indra K. Vasil
視頻videohttp://file.papertrans.cn/261/260231/260231.mp4
叢書名稱Advances in Cellular and Molecular Biology of Plants
圖書封面Titlebook: DNA-based markers in plants;  Ronald L. Phillips,Indra K. Vasil Book 1994 Springer Science+Business Media Dordrecht 1994 DNA.Liana.arabidop
描述The double helix architecture of DNA was elucidated in 1953. Twenty years later, in 1973, the discovery of restriction enzymes helped to create recombinant DNA molecules in vitro. The implications of these powerful and novel methods of molecular biology, and their potential in the genetic manipulation and improvement of microbes, plants and animals, became increasingly evident, and led to the birth of modern biotechnology. The first transgenic plants in which a bacterial gene had been stably integrated were produced in 1983, and by 1993 transgenic plants had been produced in all major crop species, including the cereals and the legumes. These remarkable achievements have resulted in the production of crops that are resistant to potent but environmentally safe herbicides, or to viral pathogens and insect pests. In other instances genes have been introduced that delay fruit ripening, or increase starch content, or cause male sterility. Most of these manipulations are based on the introduction of a single gene - generally of bacterial origin - that regulates an important monogenic trait, into the crop of choice. Many of the engineered crops are now under field trials and are expected
出版日期Book 1994
關鍵詞DNA; Liana; arabidopsis thaliana; development; evolution; gene; genome; molecular techniques; plant; plants; w
版次1
doihttps://doi.org/10.1007/978-94-011-1104-1
isbn_softcover978-94-010-4482-0
isbn_ebook978-94-011-1104-1Series ISSN 1381-1932
issn_series 1381-1932
copyrightSpringer Science+Business Media Dordrecht 1994
The information of publication is updating

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RFLP technology, in linear order on cytogenetically defined structures called chromosomes. Shortly thereafter the first chromosome map was produced by Sturtevant with segregation data derived from studies on . (Crow and Dove 1988). The markers on this first genetic map were phenotypic traits scored by visual observ
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Breeding multigenic traits,llennia. These increases (many have been dramatic) have resulted from artificial selection, either conscious or unconscious, on the phenotypes of the targeted species. Until the 20th century, plant breeding was largely an art with little or no knowledge of genetic principles. Although plant improvem
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Nuclear DNA markers in systematics and evolution,tion (species) and attempt to infer the processes involved in evolutionary change from the observed pattern. A variety of approaches have traditionally been used to infer systematic or evolutionary relationships among plant species including morphology, anatomy, cytology, breeding systems, cross-com
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Molecular maps of alfalfa,lfalfa originated near the Caspian Sea in northern Iran and northeastern Turkey; its cultivation spread throughout the Mediterranean region and into Germany, France, and China by the time of the Roman Empire (Bolton 1962). Today, alfalfa is raised on all continents and is currently cultivated on mor
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RFLP maps of barley,l. 1979). Barley has also been a favorite genetic experimental organism since the rediscovery of Mendel’s laws of heredity (Tschermak 1901; cited from Smith 1951). The widespread use of barley is attributable to its diploid nature (2n = 2x = 14), self fertility, large chromosomes (6–8 .m), high degr
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