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1
Studies on the Specificity and Site of Action of alpha-Cyclopropyl-alpha-[p-methoxyphenyl]-5-pyrimidine Methyl Alcohol (Ancymidol), a Plant Growth Regulator.α-环丙基-α-[对甲氧基苯基]-5-嘧啶甲醇(增效醚),一种植物生长调节剂的特异性和作用部位的研究。
Plant Physiol. 1978 Oct;62(4):571-6. doi: 10.1104/pp.62.4.571.
2
Comparative Effects of Ancymidol and Its Analogs on Growth of Peas and Ent-Kaurene Oxidation in Cell-Free Extracts of Immature Marah macrocarpus Endosperm.Ancymidol 及其类似物对未成熟马哈拉马卡里pus 胚乳细胞无细胞提取物中豌豆生长和 Ent-贝壳杉烯氧化的比较影响。
Plant Physiol. 1982 Mar;69(3):707-11. doi: 10.1104/pp.69.3.707.
3
Inhibition of ent-Kaurene Oxidation and Growth by alpha-Cyclopropyl-alpha-(p-methoxyphenyl)-5-pyrimidine Methyl Alcohol.α-环丙基-α-(对甲氧基苯基)-5-嘧啶甲醇对贝壳杉烯氧化和生长的抑制作用。
Plant Physiol. 1976 Feb;57(2):245-8. doi: 10.1104/pp.57.2.245.
4
Properties of the System for the Mixed Function Oxidation of Kaurene and Kaurene Derivatives in Microsomes of the Immature Seed of Marah macrocarpus: Cofactor Requirements.大果马拉(Marah macrocarpus)未成熟种子微粒体中贝壳杉烯及贝壳杉烯衍生物混合功能氧化系统的性质:辅因子需求
Plant Physiol. 1976 Oct;58(4):473-8. doi: 10.1104/pp.58.4.473.
5
Properties of the System for the Mixed Function Oxidation of Kaurene and Kaurene Derivatives in Microsomes of the Immature Seed of Marah macrocarpus: Electron Transfer Components.大果马拉(Marah macrocarpus)未成熟种子微粒体中贝壳杉烯及其衍生物混合功能氧化系统的性质:电子传递成分
Plant Physiol. 1976 Oct;58(4):479-84. doi: 10.1104/pp.58.4.479.
6
Comparative Effects of Substituted Pyrimidines on Growth and Gibberellin Biosynthesis in Gibberella fujikuroi.取代嘧啶对藤仓赤霉菌生长和赤霉素生物合成的比较影响。
Plant Physiol. 1982 Mar;69(3):712-6. doi: 10.1104/pp.69.3.712.
7
Biotransformation of ent-kaur-16-ene and ent-trachylobane 7β-acetoxy derivatives by the fungus Gibberella fujikuroi (Fusarium fujikuroi).真菌藤仓镰刀菌(镰孢菌属)对贝壳杉烯和土木香烷 7β-乙酰氧基衍生物的生物转化。
Phytochemistry. 2012 Sep;81:60-70. doi: 10.1016/j.phytochem.2012.05.024. Epub 2012 Jun 21.
8
The microbiological transformation of two 15beta-hydroxy-ent-kaurene diterpenes by Gibberella fujikuroi.藤仓赤霉菌对两种15β-羟基-对映-贝壳杉烯二萜的微生物转化
J Nat Prod. 2004 Jan;67(1):64-9. doi: 10.1021/np030363n.
9
Properties of Kaurene Synthetase from Marah macrocarpus Endosperm: Evidence for the Participation of Separate but Interacting Enzymes.大苞鞘蕊花胚乳贝壳杉烯合酶的性质:分别但相互作用的酶参与的证据。
Plant Physiol. 1981 Nov;68(5):1128-34. doi: 10.1104/pp.68.5.1128.
10
Antimalarial Activity of some Kaurenes.某些贝壳杉烯类化合物的抗疟活性
Nat Prod Commun. 2017 Feb;12(2):217-220.

引用本文的文献

1
Effect of ancymidol on cell wall metabolism in growing maize cells.矮壮素对生长中的玉米细胞细胞壁代谢的影响。
Planta. 2018 Apr;247(4):987-999. doi: 10.1007/s00425-018-2840-y. Epub 2018 Jan 12.
2
Plant cell suspension cultures as model systems for investigating growth regulating compounds.植物细胞悬浮培养作为研究生长调节化合物的模型系统。
Plant Cell Rep. 1982 Dec;1(6):281-4. doi: 10.1007/BF00272640.
3
Inhibition of stem growth and gibberellin production in Agrostemma githago L. by the growth retardant tetcyclacis.三唑酮对琉璃苣地上部生长和赤霉素合成的抑制作用。
Planta. 1985 Oct;166(2):276-9. doi: 10.1007/BF00397360.
4
Slender barley: A constitutive gibberellin-response mutant.细秆大麦:一个组成型赤霉素反应突变体。
Planta. 1988 Jul;175(1):107-14. doi: 10.1007/BF00402887.
5
The effects of ancymidol, abscisic acid, uniconazole and paclobutrazol on somatic embryogenesis of asparagus.矮壮素、脱落酸、烯效唑和多效唑对芦笋体细胞胚胎发生的影响。
Plant Cell Rep. 1995 May;14(8):529-33. doi: 10.1007/BF00232789.
6
Tall or short? Slender or thick? A plant strategy for regulating elongation growth of roots by low concentrations of gibberellin.高还是矮?瘦还是胖?植物通过低浓度赤霉素调节根伸长生长的策略。
Ann Bot. 2012 Jul;110(2):373-81. doi: 10.1093/aob/mcs049. Epub 2012 Mar 21.
7
A novel, cellulose synthesis inhibitory action of ancymidol impairs plant cell expansion.嘧啶醇具有一种新型的纤维素合成抑制作用,会损害植物细胞的扩张。
J Exp Bot. 2008;59(14):3963-74. doi: 10.1093/jxb/ern250. Epub 2008 Oct 1.
8
Separation of Light-Induced [C]ent-Kaurene Metabolism and Light-Induced Germination in Grand Rapids Lettuce Seeds.光照诱导的[C]贝壳杉烯代谢与大急流城莴苣种子光照诱导萌发的分离。
Plant Physiol. 1991 Jul;96(3):837-42. doi: 10.1104/pp.96.3.837.
9
Light-Stimulated Gibberellin Biosynthesis in Gibberella fujikuroi.藤仓赤霉菌中光刺激的赤霉素生物合成
Plant Physiol. 1990 Dec;94(4):1696-701. doi: 10.1104/pp.94.4.1696.
10
Gibberellic Acid Regulates Cell Wall Extensibility in Wheat (Triticum aestivum L.).赤霉素调节小麦(Triticum aestivum L.)细胞壁的可伸展性。
Plant Physiol. 1990 Jan;92(1):242-5. doi: 10.1104/pp.92.1.242.

本文引用的文献

1
Properties of the System for the Mixed Function Oxidation of Kaurene and Kaurene Derivatives in Microsomes of the Immature Seed of Marah macrocarpus: Electron Transfer Components.大果马拉(Marah macrocarpus)未成熟种子微粒体中贝壳杉烯及其衍生物混合功能氧化系统的性质:电子传递成分
Plant Physiol. 1976 Oct;58(4):479-84. doi: 10.1104/pp.58.4.479.
2
Properties of the System for the Mixed Function Oxidation of Kaurene and Kaurene Derivatives in Microsomes of the Immature Seed of Marah macrocarpus: Cofactor Requirements.大果马拉(Marah macrocarpus)未成熟种子微粒体中贝壳杉烯及贝壳杉烯衍生物混合功能氧化系统的性质:辅因子需求
Plant Physiol. 1976 Oct;58(4):473-8. doi: 10.1104/pp.58.4.473.
3
Effects of Ancymidol (a Growth Retardant) and Triarimol (a Fungicide) on the Growth, Sterols, and Gibberellins of Phaseolus vulgaris (L.).嘧啶醇(一种生长延缓剂)和三唑醇(一种杀菌剂)对菜豆生长、甾醇和赤霉素的影响
Plant Physiol. 1976 Apr;57(4):640-4. doi: 10.1104/pp.57.4.640.
4
Inhibition of ent-Kaurene Oxidation and Growth by alpha-Cyclopropyl-alpha-(p-methoxyphenyl)-5-pyrimidine Methyl Alcohol.α-环丙基-α-(对甲氧基苯基)-5-嘧啶甲醇对贝壳杉烯氧化和生长的抑制作用。
Plant Physiol. 1976 Feb;57(2):245-8. doi: 10.1104/pp.57.2.245.
5
Antagonism of some gibberellin actions by a substituted pyrimidine.取代嘧啶对赤霉素某些作用的拮抗。
Plant Physiol. 1971 Nov;48(5):537-40. doi: 10.1104/pp.48.5.537.
6
Protein measurement with the Folin phenol reagent.使用福林酚试剂进行蛋白质测定。
J Biol Chem. 1951 Nov;193(1):265-75.
7
The extinction coefficient of cytochrome c.细胞色素c的消光系数。
Biochim Biophys Acta. 1962 Apr 23;58:593-5. doi: 10.1016/0006-3002(62)90073-2.
8
Oxidation of reduced diphosphopyridine nucleotide.还原型二磷酸吡啶核苷酸的氧化作用。
J Biol Chem. 1958 Mar;231(1):547-56.
9
An enzymic site of inhibition of gibberellin biosynthesis by Amo 1618 and other plant growth retardants.Amo 1618及其他植物生长延缓剂对赤霉素生物合成的酶促抑制位点。
Plant Physiol. 1965 Sep;40(5):948-52. doi: 10.1104/pp.40.5.948.
10
The binding of metyrapone to cytochrome P-450 and its inhibitory action on microsomal hepatic mixed function oxidation reactions.甲吡酮与细胞色素P - 450的结合及其对肝微粒体混合功能氧化反应的抑制作用。
Biochem Soc Symp. 1972;34:79-102.

α-环丙基-α-[对甲氧基苯基]-5-嘧啶甲醇(增效醚),一种植物生长调节剂的特异性和作用部位的研究。

Studies on the Specificity and Site of Action of alpha-Cyclopropyl-alpha-[p-methoxyphenyl]-5-pyrimidine Methyl Alcohol (Ancymidol), a Plant Growth Regulator.

机构信息

Division of Biochemistry, Department of Chemistry, University of California, Los Angeles, California 90024.

出版信息

Plant Physiol. 1978 Oct;62(4):571-6. doi: 10.1104/pp.62.4.571.

DOI:10.1104/pp.62.4.571
PMID:16660561
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC1092173/
Abstract

alpha-Cyclopropyl-alpha-[p-methoxyphenyl]-5-pyrimidine methyl alcohol (ancymidol) is an inhibitor of ent-kaur-16-ene oxidation in microsomal preparations from the liquid endosperm of immature Marah macrocarpus seeds. The K(i) for this inhibitor is about 2 x 10(-9)m. Ancymidol also blocks ent-kaur-16-en-19-ol and ent-kaur-16-en-19-al oxidation by the same preparations with a similar efficiency, but does not significantly inhibit ent-kaur-16-en-19-oic acid oxidation. Ancymidol appears to be specific for this series of oxidations in higher plant tissues. It does not inhibit the oxidation of kaurene nor kaurenoic acid in rat liver microsomes and has no significant effect on the oxidation of cinnamic acid in microsomal preparations from Sorghum bicolor seedlings. Ancymidol also does not inhibit kaurene oxidation in vitro nor in vivo in cultures of the fungus Fusarium moniliforme. The presence of ancymidol did not significantly alter the activities of NADPH-cytochrome c reductase, NADH-cytochrome c reductase, or NADH-cytochrome b(5) reductase. The addition of ancymidol to suspensions of oxidized M. macrocarpus endosperm led to a difference spectrum with an absorption maximum at 427 nm and a minimum at 410 nm.

摘要

α-环丙基-α-[对甲氧基苯基]-5-嘧啶甲醇(安克密多)是未成熟马拉马卡里普斯种子液体胚乳微粒体制剂中对映-贝壳杉-16-烯氧化的抑制剂。该抑制剂的 K(i)约为 2 x 10(-9)m。安克密多也以相似的效率阻断同样制剂中对映-贝壳杉-16-烯-19-醇和对映-贝壳杉-16-烯-19-醛的氧化,但对映-贝壳杉-16-烯-19-酸的氧化没有显著抑制作用。安克密多似乎对高等植物组织中这一系列氧化作用具有特异性。它不抑制大鼠肝微粒体中贝壳杉烯的氧化,也不影响从高粱幼苗微粒体制剂中桂皮酸的氧化,对真菌镰孢菌中贝壳杉烯的体外和体内氧化也没有显著影响。安克密多也不抑制存在于Ancymidol 中的氧化,也不抑制存在于 Ancymidol 中的氧化。安克密多的存在并没有显著改变 NADPH-细胞色素 c 还原酶、NADH-细胞色素 c 还原酶或 NADH-细胞色素 b(5)还原酶的活性。向氧化的 M. macrocarpus 胚乳悬浮液中添加安克密多会导致一个差光谱,其吸收最大值在 427nm,最小值在 410nm。