Fan L, Zheng S, Wang X
Department of Biochemistry, Kansas State University, Manhattan 66506, USA.
Plant Cell. 1997 Dec;9(12):2183-96. doi: 10.1105/tpc.9.12.2183.
Membrane disruption has been proposed to be a key event in plant senescence, and phospholipase D (PLD; EC 3.1.4.4) has been thought to play an important role in membrane deterioration. We recently cloned and biochemically characterized three different PLDs from Arabidopsis. In this study, we investigated the role of the most prevalent phospholipid-hydrolyzing enzyme, PLD alpha, in membrane degradation and senescence in Arabidopsis. The expression of PLD alpha was suppressed by introducing a PLD alpha antisense cDNA fragment into Arabidopsis. When incubated with abscisic acid and ethylene, leaves detached from the PLD alpha-deficient transgenic plants showed a slower rate of senescence than did those from wild-type and transgenic control plants. The retardation of senescence was demonstrated by delayed leaf yellowing, lower ion leakage, greater photosynthetic activity, and higher content of chlorophyll and phospholipids in the PLD alpha antisense leaves than in those of the wild type. Treatment of detached leaves with abscisic acid and ethylene stimulated PLD alpha expression, as indicated by increases in PLD alpha mRNA, protein, and activity. In the absence of abscisic acid and ethylene, however, detached leaves from the PLD alpha-deficient and wild-type plants showed a similar rate of senescence. In addition, the suppression of PLD alpha did not alter natural plant growth and development. These data suggest that PLD alpha is an important mediator in phytohormone-promoted senescence in detached leaves but is not a direct promoter of natural senescence. The physiological relevance of these findings is discussed.
膜破坏被认为是植物衰老过程中的一个关键事件,磷脂酶D(PLD;EC 3.1.4.4)被认为在膜降解中起重要作用。我们最近从拟南芥中克隆并对三种不同的PLD进行了生化特性分析。在本研究中,我们研究了最普遍的磷脂水解酶PLDα在拟南芥膜降解和衰老中的作用。通过将PLDα反义cDNA片段导入拟南芥来抑制PLDα的表达。当与脱落酸和乙烯一起孵育时,从缺乏PLDα的转基因植物上分离的叶片比野生型和转基因对照植物的叶片衰老速度更慢。PLDα反义叶片中叶片黄化延迟、离子渗漏较低、光合活性较高以及叶绿素和磷脂含量较高,证明了衰老的延迟。用脱落酸和乙烯处理分离的叶片刺激了PLDα的表达,这表现为PLDα mRNA、蛋白质和活性的增加。然而,在没有脱落酸和乙烯的情况下,缺乏PLDα的植物和野生型植物的分离叶片衰老速度相似。此外,PLDα的抑制并没有改变植物的自然生长和发育。这些数据表明,PLDα是脱落酸促进离体叶片衰老的重要介质,但不是自然衰老的直接促进剂。讨论了这些发现的生理相关性。