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编码一种ATP结合盒式生长素转运蛋白的CsABCB19基因突变导致黄瓜(Cucumis sativus L.)叶片直立且紧凑。

A mutation in CsABCB19 encoding an ATP-binding cassette auxin transporter leads to erect and compact leaf architecture in cucumber (Cucumis sativus L.).

作者信息

Cheng Feng, Song Mengfei, Zhang Mengru, Zha Gaohui, Yin Juan, Cheng Chunyan, Chen Jinfeng, Lou Qunfeng

机构信息

State Key Laboratory of Crop Genetics and Germplasm Enhancement, College of Horticulture, Nanjing Agricultural University, Nanjing 210095, China.

出版信息

Plant Sci. 2023 Apr;329:111625. doi: 10.1016/j.plantsci.2023.111625. Epub 2023 Feb 8.

Abstract

Leaf architecture, including leaf position and leaf morphology, is a critical component of plant architecture that directly determines plant appearance, photosynthetic utilization, and ultimate productivity. The mechanisms regulating leaf petiole angle and leaf flatness in cucumber remain unclear. In this study, we identified an erect and compact leaf architecture mutant (ecla) from an EMS (ethyl methanesulfonate) -mutagenized cucumber population, which exhibited erect petioles and crinkled leaves. Histological examination revealed significant phenotypic variation in ecla was associated with asymmetric cell expansion. MutMap sequencing combined with genetic mapping revealed that CsaV3_5G037960 is the causative gene for the ecla mutant phenotype. Through protein sequence alignment and Arabidopsis genetic complementation, we identified this gene as a functional direct homolog encoding the ATP-binding cassette transporter AtABCB19, hence named CsABCB19. A nonsynonymous mutation in the eleventh exon of CsABCB19 leads to premature termination of translation. The expression level of CsABCB19 in the ecla mutant was significantly reduced in all tissues compared to the wild type (WT). Transcriptome analysis revealed that auxin and polarity-related genes were significantly differentially expressed in mutant petioles and leaves, compared with those in WT. Auxin assay and exogenous treatment further demonstrated that CsABCB19 regulates leaf architecture by mediating auxin accumulation and transport. Our research is the first report describing the role of the ABCB19 transporter protein in auxin transport controlling cucumber leaf development. Furthermore, this study provides recent insights into the genetic mechanisms conferring morphological diversity and regulation of petiole angle and leaf flattening. DATA AVAILABILITY: The RNA-seq data in this study have been deposited in the NCBI SRA under BioProject accession number PRJNA874548.

摘要

叶片结构,包括叶位和叶形态,是植物结构的关键组成部分,直接决定植物外观、光合利用和最终生产力。黄瓜中调节叶柄角度和叶片平整度的机制尚不清楚。在本研究中,我们从经甲基磺酸乙酯(EMS)诱变的黄瓜群体中鉴定出一个叶片直立紧凑的突变体(ecla),其叶柄直立且叶片皱缩。组织学检查显示,ecla显著的表型变异与不对称细胞扩张有关。MutMap测序结合遗传定位表明,CsaV3_5G037960是导致ecla突变体表型的基因。通过蛋白质序列比对和拟南芥遗传互补,我们确定该基因是编码ATP结合盒转运蛋白AtABCB19的功能直接同源基因,因此命名为CsABCB19。CsABCB19第11外显子中的一个非同义突变导致翻译提前终止。与野生型(WT)相比,CsABCB19在ecla突变体所有组织中的表达水平均显著降低。转录组分析表明,与WT相比,生长素和极性相关基因在突变体叶柄和叶片中显著差异表达。生长素测定和外源处理进一步证明,CsABCB19通过介导生长素积累和运输来调节叶片结构。我们的研究是首次报道ABCB19转运蛋白在生长素运输控制黄瓜叶片发育中的作用。此外,本研究为赋予形态多样性以及叶柄角度和叶片平整度调控的遗传机制提供了新见解。数据可用性:本研究中的RNA-seq数据已存入NCBI SRA,生物项目登录号为PRJNA874548。

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