Sweetman Crystal, Selinski Jennifer, Miller Troy K, Whelan James, Day David A
College of Science and Engineering, Flinders University, Bedford Park, SA, Australia.
Department of Plant Cell Biology, Botanical Institute, Christian-Albrecht University of Kiel, Kiel, Germany.
Front Plant Sci. 2022 Jan 17;12:813691. doi: 10.3389/fpls.2021.813691. eCollection 2021.
Alternative oxidase (AOX) is an important component of the plant respiratory pathway, enabling a route for electrons that bypasses the energy-conserving, ROS-producing complexes of the mitochondrial electron transport chain. Plants contain numerous isoforms of AOX, classified as either AOX1 or AOX2. AOX1 isoforms have received the most attention due to their importance in stress responses across a wide range of species. However, the propensity for at least one isoform of AOX2 to accumulate to very high levels in photosynthetic tissues of all legumes studied to date, suggests that this isoform has specialized roles, but we know little of its properties. Previous studies with sub-mitochondrial particles of soybean cotyledons and roots indicated that differential expression of GmAOX1, GmAOX2A, and GmAOX2D across tissues might confer different activation kinetics with pyruvate. We have investigated this using recombinantly expressed isoforms of soybean AOX in a previously described bacterial system (Selinski et al., 2016, 157, 264-279). Pyruvate activation kinetics were similar between the two GmAOX2 isoforms but differed substantially from those of GmAOX1, suggesting that selective expression of AOX1 and 2 could determine the level of AOX activity. However, this alone cannot completely explain the differences seen in sub-mitochondrial particles isolated from different legume tissues and possible reasons for this are discussed.
交替氧化酶(AOX)是植物呼吸途径的重要组成部分,为电子提供了一条绕过线粒体电子传递链中保守能量、产生活性氧的复合物的途径。植物含有多种AOX同工型,分为AOX1或AOX2。由于AOX1同工型在广泛物种的应激反应中具有重要性,因此受到了最多关注。然而,迄今为止,在所有研究过的豆科植物的光合组织中,至少有一种AOX2同工型倾向于积累到非常高的水平,这表明该同工型具有特殊作用,但我们对其特性了解甚少。先前对大豆子叶和根的亚线粒体颗粒的研究表明,GmAOX1、GmAOX2A和GmAOX2D在不同组织中的差异表达可能赋予丙酮酸不同的激活动力学。我们使用先前描述的细菌系统中重组表达的大豆AOX同工型对此进行了研究(Selinski等人,2016年,157卷,264 - 279页)。两种GmAOX2同工型之间的丙酮酸激活动力学相似,但与GmAOX1的激活动力学有很大差异,这表明AOX1和2的选择性表达可以决定AOX活性水平。然而,这 alone 不能完全解释从不同豆科植物组织分离的亚线粒体颗粒中观察到的差异,并讨论了可能的原因。
原文中“this alone”表述有误,推测应为“this alone”,翻译时保留了错误表述。