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4-苯基丁酸通过一条不依赖IBR3的途径转化为苯乙酸,作为一种生长素促进植物再生。

4-Phenylbutyric acid promotes plant regeneration as an auxin by being converted to phenylacetic acid via an IBR3-independent pathway.

作者信息

Iwase Akira, Takebayashi Arika, Aoi Yuki, Favero David S, Watanabe Shunsuke, Seo Mitsunori, Kasahara Hiroyuki, Sugimoto Keiko

机构信息

RIKEN Center for Sustainable Resource Science, Yokohama, Kanagawa 230-0045, Japan.

JST, PRESTO, Kawaguchi, Saitama 332-0012, Japan.

出版信息

Plant Biotechnol (Tokyo). 2022 Mar 25;39(1):51-58. doi: 10.5511/plantbiotechnology.21.1224b.

Abstract

4-Phenylbutyric acid (4PBA) is utilized as a drug to treat urea cycle disorders and is also being studied as a potential anticancer drug that acts via its histone deacetylase (HDAC) inhibitor activity. During a search to find small molecules that affect plant regeneration in Arabidopsis, we found that 4PBA treatment promotes this process by mimicking the effect of exogenous auxin. Specifically, plant tissue culture experiments revealed that a medium containing 4PBA enhances callus formation and subsequent shoot regeneration. Analyses with auxin-responsive or cytokinin-responsive marker lines demonstrated that 4PBA specifically enhances AUXIN RESPONSE FACTOR (ARF)-dependent auxin responses. Our western blot analyses showed that 4PBA treatment does not enhance histone acetylation in Arabidopsis, in contrast to butyric acid and trichostatin A, other chemicals often used as HDAC inhibitors, suggesting this mechanism of action does not explain the observed effect of 4PBA on regeneration. Finally, mass spectroscopic analysis and genetic approaches uncovered that 4PBA in Arabidopsis plants is converted to phenylacetic acid (PAA), a known natural auxin, in a manner independent of peroxisomal IBR3-related β-oxidation. This study demonstrates that 4PBA application promotes regeneration in explants via its auxin activity and has potential applications to not only plant tissue culture engineering but also research on the plant β-oxidation pathway.

摘要

4-苯基丁酸(4PBA)被用作治疗尿素循环障碍的药物,同时也作为一种潜在的抗癌药物进行研究,其作用机制是通过组蛋白去乙酰化酶(HDAC)抑制活性。在寻找影响拟南芥植物再生的小分子的过程中,我们发现4PBA处理通过模拟外源生长素的作用来促进这一过程。具体而言,植物组织培养实验表明,含有4PBA的培养基可增强愈伤组织形成及随后的芽再生。利用生长素响应或细胞分裂素响应标记系进行的分析表明,4PBA特异性增强了依赖生长素响应因子(ARF)的生长素反应。我们的蛋白质免疫印迹分析表明,与丁酸和曲古抑菌素A(其他常用作HDAC抑制剂的化学物质)不同,4PBA处理并未增强拟南芥中的组蛋白乙酰化,这表明这种作用机制无法解释4PBA对再生的观察到的影响。最后,质谱分析和遗传学方法揭示,拟南芥植物中的4PBA以一种独立于过氧化物酶体IBR3相关β-氧化的方式转化为苯乙酸(PAA),一种已知的天然生长素。本研究表明,4PBA的应用通过其生长素活性促进外植体再生,不仅在植物组织培养工程中具有潜在应用,而且在植物β-氧化途径的研究中也有潜在应用。

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