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Titlebook: Genetic Engineering for Nitrogen Fixation; Alexander Hollaender,R. H. Burris,R. C. Valentine Book 1977 Springer Science+Business Media New

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發(fā)表于 2025-3-21 18:29:27 | 只看該作者 |倒序?yàn)g覽 |閱讀模式
書(shū)目名稱(chēng)Genetic Engineering for Nitrogen Fixation
編輯Alexander Hollaender,R. H. Burris,R. C. Valentine
視頻videohttp://file.papertrans.cn/383/382514/382514.mp4
叢書(shū)名稱(chēng)Basic Life Sciences
圖書(shū)封面Titlebook: Genetic Engineering for Nitrogen Fixation;  Alexander Hollaender,R. H. Burris,R. C. Valentine Book 1977 Springer Science+Business Media New
描述There is a time in scientific research when a number of developments coincide making it possible to progress with a tough and complicated problem. It is believed that such a time has come in the area of biological nitrogen fixation. A better understanding of photosynthesis, cell hybridization, plasmid, and gene transfer between cells not necessarily genetically related, have opened new avenues of research. New developments in traditional genetics, cell biology, biochemistry, including enzyme chemistry, and plant physi- ology have brought about the feeling this is a most appro- priate time to pull together the different approaches in a conference where the lines of research could be discussed and thus help to speed up developments in this area. What makes biological nitrogen fixation especially im- portant is the promise that a good understanding of the basic problem would help us to make organisms more amenable to fix nitrogen, not only in symbiosis with legumes, but also with other plant species and develop a wider variety of organisms with the ability to fix N ? It will also 2 encourage a search for naturally occurring N2 fixing organ- isms other than the traditional N2 fixers. S
出版日期Book 1977
關(guān)鍵詞biochemistry; biology; cell biology; chemistry; enzymes; gene transfer; genetic engineering; genetics
版次1
doihttps://doi.org/10.1007/978-1-4684-0880-5
isbn_softcover978-1-4684-0882-9
isbn_ebook978-1-4684-0880-5
copyrightSpringer Science+Business Media New York 1977
The information of publication is updating

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General Introduction to the Conferencee National Science Foundation and, in particular, the Research Applications Directorate. This conference is being supported by the Foundation through an unsolicited grant to Associated Universities, Inc. from the Energy and Resources Division of the Research Applied to National Needs (RANN) Program
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Overview of Nitrogen Fixations somewhat over 90 years now since Hellriegel and Wilfarth clearly indicated that biological N. fixation occurs in leguminous plants. There had been earlier indications of this as evidenced by the long-accepted practice of crop rotation between leguminous and nonleguminous plants. In the 1830’s Bous
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Plasmids as Vectors for Gene Cloningogenic plasmid El (ColE1) or plasmids closely related to ColEl. ColE1 is a relatively low molecular weight plasmid, naturally occurring in ., that specifies the production of antibiotically active protein, colicin El, and conveys to cells harboring the plasmid immunity to this colicin. The ColE1 pla
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Nitrogen Fixation (NIF) Regulatory Mutants of ,: Determination of the Energy Cost of N, Fixation ,, Burns & Hardy, 1975; Winter and Burris, 1976; Zumft & Mortenson, 1975). Evidence has been presented by Hardy & Havelka (1973) that the supply of energy may often be a rate-limiting step in symbiotic N. fixation. It has, however, proved difficult to determine exactly how much energy is required. . e
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The Ti-Plasmid of ,,, A Natural Vector for the Introduction of , Genes in Plants?DNA must be taken up by the recipient plant cells without drastic alterations (e.g. extensive breakdown), secondly the introduced DNA must be replicated and the new copies must be distributed among the daughter cells at mitosis. Finally the introduced DNA must be expressed via transcription, transla
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