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通过对 PIN 和 AUX/LAX 基因家族的分析评估番茄(Solanum lycopersicum)中的生长素分布。

Evaluating auxin distribution in tomato (Solanum lycopersicum) through an analysis of the PIN and AUX/LAX gene families.

机构信息

Boyce Thompson Institute for Plant Research, Ithaca, NY 14853, USA.

出版信息

Plant J. 2012 May;70(4):585-98. doi: 10.1111/j.1365-313X.2011.04895.x. Epub 2012 Feb 10.

DOI:10.1111/j.1365-313X.2011.04895.x
PMID:22211518
Abstract

The temporal and spatial control of auxin distribution has a key role in the regulation of plant growth and development, and much has been learnt about the mechanisms that influence auxin pools and gradients in vegetative tissues, particularly in Arabidopsis. For example polar auxin transport, mediated by PIN and AUX/LAX proteins, is central to the control of auxin distribution. In contrast, very little information is known about the dynamics of auxin distribution and the molecular basis of its transport within and between fruit tissues, despite the fact that auxin regulates many aspects of fruit development, which include fruit formation, expansion, ripening and abscission. In addition, functional information regarding the key regulators of auxin fluxes during both vegetative and reproductive development in species other than Arabidopsis is scarce. To address these issues, we have investigated the spatiotemporal distribution of auxin during tomato (Solanum lycopersicum) fruit development and the function of the PIN and AUX/LAX gene families. Differential concentrations of auxin become apparent during early fruit growth, with auxin levels being higher in internal tissues than in the fruit pericarp and the pattern of auxin accumulation depended on polar transport. Ten tomato PIN (SlPIN1 to 10) and five AUX/LAX (SlLAX1 to 5) genes were identified and found to display heterogeneous expression patterns, with tissue and developmental-stage specificity. RNAi-mediated co-silencing of SlPIN4 and SlPIN3 did not affect fruit development, which suggested functional redundancy of PIN proteins, but did lead to a vegetative phenotype, and revealed a role for these genes in the regulation of tomato shoot architecture.

摘要

生长素分布的时空控制在植物生长和发育的调节中起着关键作用,人们已经了解了许多影响植物组织中生长素池和梯度的机制,尤其是在拟南芥中。例如,由 PIN 和 AUX/LAX 蛋白介导的极性生长素运输对于生长素分布的控制至关重要。相比之下,尽管生长素调节果实发育的许多方面,包括果实形成、膨胀、成熟和脱落,但对于果实组织内和组织间生长素分布的动态及其运输的分子基础知之甚少。此外,关于除拟南芥以外的物种在营养和生殖发育过程中生长素通量的关键调节剂的功能信息也很少。为了解决这些问题,我们研究了番茄(Solanum lycopersicum)果实发育过程中生长素的时空分布以及 PIN 和 AUX/LAX 基因家族的功能。在早期果实生长过程中,生长素的浓度出现明显差异,内部组织中的生长素浓度高于果实果皮,生长素积累的模式取决于极性运输。鉴定了 10 个番茄 PIN(SlPIN1 到 10)和 5 个 AUX/LAX(SlLAX1 到 5)基因,并发现它们表现出组织和发育阶段特异性的不均匀表达模式。SlPIN4 和 SlPIN3 的 RNAi 共沉默并不影响果实发育,这表明 PIN 蛋白具有功能冗余性,但确实导致了营养生长表型,并揭示了这些基因在调节番茄茎结构中的作用。

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