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本文引用的文献

1
Effects of Low O(2) Root Stress on Ethylene Biosynthesis in Tomato Plants (Lycopersicon esculentum Mill cv Heinz 1350).低氧根胁迫对番茄植株(Lycopersicon esculentum Mill cv Heinz 1350)乙烯生物合成的影响。
Plant Physiol. 1992 Jan;98(1):97-100. doi: 10.1104/pp.98.1.97.
2
Inhibition of ethylene synthesis in tomato plants subjected to anaerobic root stress.厌氧根系胁迫下番茄植株中乙烯合成的抑制
Plant Physiol. 1982 Nov;70(5):1503-7. doi: 10.1104/pp.70.5.1503.
3
Xylem Transport of 1-Aminocyclopropane-1-carboxylic Acid, an Ethylene Precursor, in Waterlogged Tomato Plants.木质部中 1-氨基环丙烷-1-羧酸(乙烯前体)在淹水番茄植株中的运输。
Plant Physiol. 1980 Feb;65(2):322-6. doi: 10.1104/pp.65.2.322.
4
Effects of root anaerobiosis on ethylene production, epinasty, and growth of tomato plants.根部缺氧对番茄植株乙烯生成、偏上生长及生长的影响。
Plant Physiol. 1978 Apr;61(4):506-9. doi: 10.1104/pp.61.4.506.
5
Modification of fruit ripening by suppressing gene expression.
Plant Physiol. 1992 Oct;100(2):549-51. doi: 10.1104/pp.100.2.549.
6
Export of Abscisic Acid, 1-Aminocyclopropane-1-Carboxylic Acid, Phosphate, and Nitrate from Roots to Shoots of Flooded Tomato Plants (Accounting for Effects of Xylem Sap Flow Rate on Concentration and Delivery).淹水番茄植株根系向地上部运输脱落酸、1-氨基环丙烷-1-羧酸、磷酸盐和硝酸盐(考虑木质部汁液流速对浓度和运输量的影响)
Plant Physiol. 1995 Feb;107(2):377-384. doi: 10.1104/pp.107.2.377.
7
A mechanical strain-induced 1-aminocyclopropane-1-carboxylic acid synthase gene.一种机械应变诱导的1-氨基环丙烷-1-羧酸合酶基因。
Proc Natl Acad Sci U S A. 1995 Feb 28;92(5):1595-8. doi: 10.1073/pnas.92.5.1595.
8
Structure and expression of cDNAs encoding 1-aminocyclopropane-1-carboxylate oxidase homologs isolated from excised mung bean hypocotyls.从切除的绿豆下胚轴中分离得到的编码1-氨基环丙烷-1-羧酸氧化酶同源物的cDNA的结构与表达
Planta. 1994;194(2):223-9.
9
Structure and expression of an ethylene-related mRNA from tomato.番茄中一种与乙烯相关的信使核糖核酸的结构与表达
Nucleic Acids Res. 1987 Jan 26;15(2):731-9. doi: 10.1093/nar/15.2.731.

淹水番茄植株茎中1-氨基环丙烷-1-羧酸氧化酶活性增加,使乙烯产量提高到生理活性水平。

Increased 1-Aminocyclopropane-1-Carboxylic Acid Oxidase Activity in Shoots of Flooded Tomato Plants Raises Ethylene Production to Physiologically Active Levels.

作者信息

English P. J., Lycett G. W., Roberts J. A., Jackson M. B.

机构信息

IACR-Long Ashton Research Station, Department of Agricultural Sciences, University of Bristol, Long Ashton, Bristol BS18 9AF, United Kingdom (P.J.E., M.B.J.).

出版信息

Plant Physiol. 1995 Dec;109(4):1435-1440. doi: 10.1104/pp.109.4.1435.

DOI:10.1104/pp.109.4.1435
PMID:12228680
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC157679/
Abstract

Soil flooding increased 1-aminocyclopropane-1-carboxylic (ACC) acid oxidase activity in petioles of wild-type tomato (Lycopersicon esculentum L.) plants within 6 to 12 h in association with faster rates of ethylene production. Petioles of flooded plants transformed with an antisense construct to one isoform of an ACC oxidase gene (ACO1) produced less ethylene and had lower ACC oxidase activity than those of the wild type. Flooding promoted epinastic curvature but did so less strongly in plants transformed with the antisense construct than in the wild type. Exogenous ethylene, supplied to well-drained plants, also promoted epinastic curvature, but transformed and wild-type plants responded similarly. Flooding increased the specific delivery (flux) of ACC to the shoots (picomoles per second per square meter of leaf) in xylem sap flowing from the roots. The amounts were similar in both transformed and wild-type plants. These observations demonstrate that changes in ACC oxidase activity in shoot tissue resulting from either soil flooding or introducing ACC oxidase antisense constructs can influence rates of ethylene production to a physiologically significant extent. They also implicate systemic root to shoot signals in regulating the activity of ACC oxidase in the shoot.

摘要

土壤淹水在6至12小时内提高了野生型番茄(Lycopersicon esculentum L.)叶柄中1-氨基环丙烷-1-羧酸(ACC)氧化酶的活性,同时乙烯产生速率加快。用ACC氧化酶基因(ACO1)的一种同工型的反义构建体转化的淹水植物叶柄产生的乙烯较少,且ACC氧化酶活性低于野生型。淹水促进了叶片偏上性弯曲,但用反义构建体转化的植物比野生型植物的促进作用弱。向排水良好的植物供应外源乙烯也促进了叶片偏上性弯曲,但转化植物和野生型植物的反应相似。淹水增加了从根部流出的木质部汁液中ACC向地上部的特定输送量(通量)(每平方米叶片每秒皮摩尔数)。转化植物和野生型植物中的量相似。这些观察结果表明,土壤淹水或引入ACC氧化酶反义构建体导致地上部组织中ACC氧化酶活性的变化可在生理上显著影响乙烯产生速率。它们还表明,根系到地上部的系统性信号参与调节地上部ACC氧化酶的活性。