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一种寻找吲哚-3-乙酸(IAA)代谢突变体的合适策略。

A suitable strategy to find IAA metabolism mutants.

作者信息

Casanova-Sáez Rubén, Pěnčík Aleš, Muñoz-Viana Rafael, Brunoni Federica, Pinto Rui, Novák Ondřej, Ljung Karin, Mateo-Bonmatí Eduardo

机构信息

Umeå Plant Science Centre (UPSC), Department of Forest Genetics and Plant Physiology, Swedish University of Agricultural Sciences, Umeå, Sweden.

Laboratory of Growth Regulators, Institute of Experimental Botany, The Czech Academy of Sciences & Faculty of Science, Palacký University, Olomouc, Czech Republic.

出版信息

Physiol Plant. 2025 Mar-Apr;177(2):e70166. doi: 10.1111/ppl.70166.

Abstract

Indole-3-acetic acid (IAA), the most common form of auxin, is involved in a great range of plant physiological processes. IAA is synthesized from the amino acid tryptophan and can be transported and inactivated in a myriad of ways. Despite intense research efforts, there are still dark corners in our comprehension of IAA metabolism and its interplays with other pathways. Genetic screens are a powerful tool for unbiasedly looking for new players in a given biological process. However, pleiotropism of auxin-related phenotypes and indirect effects make it necessary to incorporate additional screening steps to specifically find mutants affected in IAA homeostasis. We previously developed and validated a high-throughput methodology to simultaneously quantify IAA, key precursors, and inactive forms from as little as 10 mg of fresh tissue. We have carried out a genetic screening to identify mutants involved in IAA metabolism. Auxin reporters DR5:VENUS and 35S:DII-VENUS were EMS-mutagenized and subjected to a parallel morphological and reporter-signal pre-screen. We then obtained the auxin metabolite profile of 325 M selected lines and used multivariate data analysis to identify potential IAA-metabolism mutants. To test the screening design, we identified the causal mutations in three of the candidate lines by mapping-by-sequencing: dii365.3, dii571.1 and dr693. These carry new alleles of CYP83A1, MIAO, and SUPERROOT2, respectively, all of which have been previously involved in auxin homeostasis. Our results support the suitability of this approach to find new genes involved in IAA metabolism.

摘要

吲哚 - 3 - 乙酸(IAA)是生长素最常见的形式,参与了大量的植物生理过程。IAA由氨基酸色氨酸合成,并且可以通过多种方式进行运输和失活。尽管进行了大量深入研究,但在我们对IAA代谢及其与其他途径相互作用的理解方面仍存在一些未知领域。遗传筛选是一种强大的工具,可用于在特定生物过程中无偏见地寻找新的参与者。然而,生长素相关表型的多效性和间接影响使得有必要纳入额外的筛选步骤,以专门找到在IAA稳态中受影响的突变体。我们之前开发并验证了一种高通量方法,可从低至10毫克的新鲜组织中同时定量IAA、关键前体和无活性形式。我们进行了一项遗传筛选,以鉴定参与IAA代谢的突变体。将生长素报告基因DR5:VENUS和35S:DII-VENUS用甲基磺酸乙酯(EMS)诱变,并进行平行的形态学和报告信号预筛选。然后,我们获得了325个M选择系的生长素代谢物谱,并使用多变量数据分析来鉴定潜在的IAA代谢突变体。为了测试筛选设计,我们通过测序定位鉴定了三个候选系中的因果突变:dii365.3、dii571.1和dr693。这些分别携带CYP83A1、MIAO和SUPERROOT2的新等位基因,所有这些基因以前都参与了生长素稳态。我们的结果支持这种方法适用于寻找参与IAA代谢的新基因。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8353/11925725/f59681b5d7b2/PPL-177-e70166-g004.jpg

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