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1
Effects of protein inhibitors and auxin on nucleic Acid metabolism in peanut cotyledons.蛋白质抑制剂和生长素对花生子叶核酸代谢的影响。
Plant Physiol. 1966 Jun;41(6):919-22. doi: 10.1104/pp.41.6.919.
2
Nucleic Acid and protein metabolism of senescing and regenerating soybean cotyledons.衰老和再生大豆子叶的核酸与蛋白质代谢
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3
The control of ribonucleic acid synthesis in bacteria. The synthesis and stability of ribonucleic acid in chloramphenicol-inhibited cultures of Escherichia coli.细菌中核糖核酸合成的控制。氯霉素抑制的大肠杆菌培养物中核糖核酸的合成与稳定性。
Biochem J. 1971 Apr;122(2):149-59. doi: 10.1042/bj1220149.
4
Studies on the role of RNA synthesis in auxin induction of cell enlargement.RNA合成在生长素诱导细胞膨大过程中的作用研究。
Plant Physiol. 1968 Feb;43(2):140-50. doi: 10.1104/pp.43.2.140.
5
Light effects on the nucleic acids of excised cotton cotyledons.光照对离体棉花子叶核酸的影响。
Plant Physiol. 1966 Mar;41(3):395-404. doi: 10.1104/pp.41.3.395.
6
EXTRACELLULAR RIBONUCLEASE FORMATION IN BACILLUS SUBTILIS AND ITS STIMULATION BY ACTINOMYCIN D.枯草芽孢杆菌中细胞外核糖核酸酶的形成及其受放线菌素D的刺激
Biochem J. 1965 Jun;95(3):699-706. doi: 10.1042/bj0950699.
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Relationship between RNA synthesis, cell division, and morphology of mammalian cells. I. Puromycin aminonucleoside as an inhibitor of RNA synthesis and division in HeLa cells.哺乳动物细胞中RNA合成、细胞分裂与形态之间的关系。I. 嘌呤霉素氨基核苷作为HeLa细胞中RNA合成及分裂的抑制剂
J Cell Biol. 1966 Jun;29(3):411-21. doi: 10.1083/jcb.29.3.411.
8
BIOSYNTHESIS OF MYCOBACILLIN, A NEW ANTIFUNGAL PEPTIDE. I. ROLE OF NUCLEIC ACID.新型抗真菌肽分枝杆菌素的生物合成。I. 核酸的作用。
J Bacteriol. 1964 Jun;87(6):1397-401. doi: 10.1128/jb.87.6.1397-1401.1964.
9
ASSOCIATION OF RAPIDLY METABOLIZED DNA AND RNA.快速代谢的 DNA 与 RNA 的关联
Science. 1964 Nov 20;146(3647):1066-9. doi: 10.1126/science.146.3647.1066.
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Inhibition of the peptide bond synthesizing cycle by chloramphenicol.氯霉素对肽键合成循环的抑制作用。
J Bacteriol. 1969 Mar;97(3):1099-105. doi: 10.1128/jb.97.3.1099-1105.1969.

引用本文的文献

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An auxin research odyssey: 1989-2023.生长素研究的探索历程:1989-2023 年。
Plant Cell. 2024 May 1;36(5):1410-1428. doi: 10.1093/plcell/koae054.
2
Inhibition of in vitro DNA Synthesis by Auxins.生长素对体外DNA合成的抑制作用。
Plant Physiol. 1968 Jun;43(6):1008-10. doi: 10.1104/pp.43.6.1008.
3
Studies on the role of RNA synthesis in auxin induction of cell enlargement.RNA合成在生长素诱导细胞膨大过程中的作用研究。
Plant Physiol. 1968 Feb;43(2):140-50. doi: 10.1104/pp.43.2.140.
4
Degradation of 2,4,5-trichlorophenoxyacetic Acid in woody plants.木质植物中 2,4,5-三氯苯氧乙酸的降解。
Plant Physiol. 1967 Mar;42(3):459-60. doi: 10.1104/pp.42.3.459.
5
Modification of abscission by UV-induced alteration in RNA and protein metabolism.紫外线诱导的RNA和蛋白质代谢改变对脱落的影响。
Plant Physiol. 1967 Mar;42(3):461-2. doi: 10.1104/pp.42.3.461.

本文引用的文献

1
Nucleic Acid Metabolism in Peanut Cotyledons.花生子叶中的核酸代谢
Plant Physiol. 1965 May;40(3):582-7. doi: 10.1104/pp.40.3.582.
2
Nucleic Acid, Mitochondria, & Enzyme Changes in Cotyledons of Peanut Seeds during Germination.花生种子萌发过程中子叶的核酸、线粒体及酶的变化
Plant Physiol. 1963 Jul;38(4):440-6. doi: 10.1104/pp.38.4.440.
3
Regulation of ribosomal and transfer RNA synthesis.核糖体RNA和转运RNA合成的调控。
J Mol Biol. 1962 Mar;4:193-210. doi: 10.1016/s0022-2836(62)80051-5.
4
A fractionating column for analysis of nucleic acids.用于核酸分析的分馏柱。
Anal Biochem. 1960 Jun;1:66-77. doi: 10.1016/0003-2697(60)90020-8.
5
THE EFFECT OF ACTINOMYCIN D AND PUROMYCIN UPON RNA AND PROTEIN METABOLISM IN CALF LENS.放线菌素D和嘌呤霉素对小牛晶状体中RNA和蛋白质代谢的影响。
Biochim Biophys Acta. 1965 Apr 19;95:561-8. doi: 10.1016/0005-2787(65)90510-1.
6
ASSOCIATION OF RAPIDLY METABOLIZED DNA AND RNA.快速代谢的 DNA 与 RNA 的关联
Science. 1964 Nov 20;146(3647):1066-9. doi: 10.1126/science.146.3647.1066.
7
PUROMYCIN INHIBITION OF PROTEIN SYNTHESIS: INCORPORATION OF PUROMYCIN INTO PEPTIDE CHAINS.嘌呤霉素对蛋白质合成的抑制作用:嘌呤霉素掺入肽链的过程。
Proc Natl Acad Sci U S A. 1964 Apr;51(4):585-92. doi: 10.1073/pnas.51.4.585.
8
EFFECTS OF PUROMYCIN ON RNA SYNTHESIS IN MAMMALIAN CELLS.嘌呤霉素对哺乳动物细胞中RNA合成的影响。
Proc Natl Acad Sci U S A. 1963 Sep;50(3):436-46. doi: 10.1073/pnas.50.3.436.
9
THE BINDING OF S-RNA BY ESCHERICHIA COLI RIBOSOMES.大肠杆菌核糖体与S-RNA的结合
J Mol Biol. 1963 Oct;7:360-78. doi: 10.1016/s0022-2836(63)80030-3.
10
Distinct cistrons for the two ribosomal RNA components.两种核糖体RNA组分的不同顺反子。
Proc Natl Acad Sci U S A. 1963 Apr;49(4):538-44. doi: 10.1073/pnas.49.4.538.

蛋白质抑制剂和生长素对花生子叶核酸代谢的影响。

Effects of protein inhibitors and auxin on nucleic Acid metabolism in peanut cotyledons.

机构信息

Department of Horticulture, Purdue University, Lafayette, Indiana.

出版信息

Plant Physiol. 1966 Jun;41(6):919-22. doi: 10.1104/pp.41.6.919.

DOI:10.1104/pp.41.6.919
PMID:16656356
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1086452/
Abstract

The accumulation of labeled phosphorus into newly synthesized nucleic acids or peanut cotyledon slices incubated with chloramphenicol, puromycin, or 2,4-dichlorophenoxyacetic acid (2,4-D) was reduced. Promotion of nucleic acid synthesis was not noted by any of these chemicals. Chloramphenicol completely inhibited the synthesis of the DNA-RNA fraction at 1.25 x 10(-3)m while soluble and ribosomal RNA was inhibited by 70% and 80%, respectively. At the same concentration messenger RNA was inhibited by only 40%. These effects suggest that chloramphenicol inhibit nucleic acid synthesis in peanut cotyledons in a differential manner. Similar results were noted for DNA at low concentrations of 2,4-D. However, at high concentrations of 2,4-D, DNA as well as RNA fractions were inhibited in a similar manner at a given concentration. Puromycin did not differentially inhibit nucleic acid synthesis except at 2 x 10(-3)m where DNA was least inhibited.Nondifferential inhibition suggests that a common site or precursor pool essential for the synthesis of all nucleic acid fractions is altered. Differential inhibition may be due to the interference with a specific rate-limiting step, directly or indirectly, in the formation of a particular nucleic acid.

摘要

用氯霉素、嘌呤霉素或 2,4-二氯苯氧乙酸(2,4-D)处理标记磷积累到新合成的核酸或花生子叶切片中,会被减少。这些化学物质都没有促进核酸合成。氯霉素在 1.25 x 10(-3)m 时完全抑制 DNA-RNA 部分的合成,而可溶性 RNA 和核糖体 RNA 分别被抑制 70%和 80%。在相同浓度下,信使 RNA 仅被抑制 40%。这些结果表明,氯霉素以不同的方式抑制花生子叶中的核酸合成。在低浓度的 2,4-D 下也注意到了类似的 DNA 结果。然而,在高浓度的 2,4-D 下,在给定浓度下,DNA 和 RNA 部分以相似的方式被抑制。嘌呤霉素除了在 2 x 10(-3)m 时对 DNA 的抑制作用最小外,并没有对核酸合成进行差异抑制。非差异抑制表明,对所有核酸部分合成至关重要的共同位点或前体池发生了改变。差异抑制可能是由于直接或间接地干扰了特定的限速步骤,从而形成特定的核酸。