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生长素驱动的驯化番茄叶片的生态生理学多样化。

Auxin-driven ecophysiological diversification of leaves in domesticated tomato.

机构信息

Departamento de Biologia Vegetal, Universidade Federal de Viçosa, 36570-900 Viçosa, Minas Gerais, Brazil.

Departamento de Botânica, Instituto de Biociências, Universidade de São Paulo, 05508-090 São Paulo, Brazil.

出版信息

Plant Physiol. 2022 Aug 29;190(1):113-126. doi: 10.1093/plphys/kiac251.

DOI:10.1093/plphys/kiac251
PMID:35639975
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC9434155/
Abstract

Heterobaric leaves have bundle sheath extensions (BSEs) that compartmentalize the parenchyma, whereas homobaric leaves do not. The presence of BSEs affects leaf hydraulics and photosynthetic rate. The tomato (Solanum lycopersicum) obscuravenosa (obv) mutant lacks BSEs. Here, we identify the obv gene and the causative mutation, a nonsynonymous amino acid change that disrupts a C2H2 zinc finger motif in a putative transcription factor. This mutation exists as a polymorphism in the natural range of wild tomatoes but has increased in frequency in domesticated tomatoes, suggesting that the latter diversified into heterobaric and homobaric leaf types. The obv mutant displays reduced vein density, leaf hydraulic conductance and photosynthetic assimilation rate. We show that these and other pleiotropic effects on plant development, including changes in leaf insertion angle, leaf margin serration, minor vein density, and fruit shape, are controlled by OBV via changes in auxin signaling. Loss of function of the transcriptional regulator AUXIN RESPONSE FACTOR 4 (ARF4) also results in defective BSE development, revealing an additional component of a genetic module controlling aspects of leaf development important for ecological adaptation and subject to breeding selection.

摘要

异形叶具有束鞘延伸物(BSEs),将叶肉分隔开,而异形叶则没有。BSE 的存在会影响叶片水力和光合速率。番茄(Solanum lycopersicum)obscuravenosa(obv)突变体缺乏 BSEs。在这里,我们鉴定了 obv 基因和致病突变,这是一个非同义氨基酸变化,破坏了一个假定转录因子中的 C2H2 锌指模体。该突变在野生番茄的自然分布范围内是一种多态性,但在驯化番茄中的频率增加,表明后者分化为异形叶和同形叶类型。obv 突变体表现出降低的叶脉密度、叶片水力导度和光合同化率。我们表明,这些和其他对植物发育的多效性影响,包括叶片插入角度、叶片边缘锯齿状、小脉密度和果实形状的变化,是由 OBV 通过改变生长素信号传导控制的。转录调节因子 AUXIN RESPONSE FACTOR 4(ARF4)的功能丧失也导致 BSE 发育缺陷,揭示了一个控制叶片发育重要方面的遗传模块的另一个组成部分,这些方面对生态适应很重要,并且受到育种选择的影响。