STOP1 调控的小辅酶 RNA55(SAUR55)参与质子/苹果酸共同分泌,促进拟南芥对铝的耐受性

IF 4.6 Q2 MATERIALS SCIENCE, BIOMATERIALS
Raj Kishan Agrahari, Yuriko Kobayashi, Takuo Enomoto, Tasuku Miyachi, Marie Sakuma, Miki Fujita, Takuya Ogata, Yasunari Fujita, Satoshi Iuchi, Masatomo Kobayashi, Yoshiharu Y. Yamamoto, Hiroyuki Koyama
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引用次数: 0

摘要

质子(H+)释放与植物在铝根毒作用下从根部排出铝增强型有机酸(OAs)有关。据报道,铝增强的有机酸排泄机制受对丙酮根瘤毒性敏感的锌指 TF1(STOP1)调控,STOP1 调控主要的铝耐受基因。然而,铝胁迫下与 OAs 排泄有关的 H+ 释放机制尚未完全阐明。最近的生理学和分子遗传学研究表明,小辅酶 RNAs(SAURs)参与了植物质膜 H+-ATP 酶对胁迫响应的激活。我们假设 STOP1 参与了 Al 响应 SAURs 的调控,这可能有助于 Al 胁迫条件下质子和苹果酸盐的共同分泌。在对stop1(对质子根毒敏感1)突变体根的转录组分析中,我们发现STOP1调控了其中一个SAURs(即SAUR55)的转录。此外,我们还观察到 SAUR55 的表达受 Al 诱导,而在 STOP1 T-DNA 插入敲除(KO)突变体(STOP1-KO)中则受到抑制。通过硅分析,我们在 SAUR55 的启动子中发现了一个 STOP1 结合的功能位点。随后的体外和体内研究证实,STOP1 直接与 SAUR55 启动子结合。这表明在铝胁迫下,STOP1 直接调控 SAUR55 的表达。接下来,我们结合 STOP1-KO 研究了 SAUR55 的 T-DNA 插入 KO 突变体(saur55)在根瘤中的质子释放和苹果酸排泄情况。在铝胁迫下,saur55 和 STOP1-KO 都抑制了根瘤的酸化和苹果酸的释放。此外,saur55 的根系生长对含铝培养基很敏感。相反,过表达 SAUR55 的品系增强了根瘤酸化和苹果酸释放,从而提高了对铝的耐受性。在拟南芥的自然变异中也观察到了这些与耐碱性的关联。这些研究结果表明,STOP1 对 SAUR55 的转录调控通过 PM H+-ATPase 2 积极调节 H+ 的排泄,而 PM H+-ATPase 2 通过拟南芥根部苹果酸盐的分泌增强了对铝的耐受性。SAUR55 对 PM H+-ATPase 2 的激活可能是由于 PP2C.D2/D5 与质膜上的磷酸酶相互作用而受到抑制。此外,烟草中 NtSTOP1 的 RNAi- 抑制表明,在 Al 胁迫下根瘤酸化受到抑制,这与 SAUR55 同源物受到抑制有关,而 SAUR55 同源物在烟草中可被 Al 诱导。这表明,STOP1 对 Al 诱导的 SAURs 的转录调控在多种植物的 OAs 排泄中发挥了关键作用,是一种 Al 耐受机制。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
STOP1-regulated SMALL AUXIN UP RNA55 (SAUR55) is involved in proton/malate co-secretion for Al tolerance in Arabidopsis
Proton (H+) release is linked to aluminum (Al)-enhanced organic acids (OAs) excretion from the roots under Al rhizotoxicity in plants. It is well-reported that the Al-enhanced organic acid excretion mechanism is regulated by SENSITIVE TO PROTON RHIZOTOXICITY1 (STOP1), a zinc-finger TF that regulates major Al tolerance genes. However, the mechanism of H+ release linked to OAs excretion under Al stress has not been fully elucidated. Recent physiological and molecular-genetic studies have implicated the involvement of SMALL AUXIN UP RNAs (SAURs) in the activation of plasma membrane H+-ATPases for stress responses in plants. We hypothesized that STOP1 is involved in the regulation of Al-responsive SAURs, which may contribute to the co-secretion of protons and malate under Al stress conditions. In our transcriptome analysis of the roots of the stop1 (sensitive to proton rhizotoxicity1) mutant, we found that STOP1 regulates the transcription of one of the SAURs, namely SAUR55. Furthermore, we observed that the expression of SAUR55 was induced by Al and repressed in the STOP1 T-DNA insertion knockout (KO) mutant (STOP1-KO). Through in silico analysis, we identified a functional STOP1-binding site in the promoter of SAUR55. Subsequent in vitro and in vivo studies confirmed that STOP1 directly binds to the promoter of SAUR55. This suggests that STOP1 directly regulates the expression of SAUR55 under Al stress. We next examined proton release in the rhizosphere and malate excretion in the T-DNA insertion KO mutant of SAUR55 (saur55), in conjunction with STOP1-KO. Both saur55 and STOP1-KO suppressed rhizosphere acidification and malate release under Al stress. Additionally, the root growth of saur55 was sensitive to Al-containing media. In contrast, the overexpressed line of SAUR55 enhanced rhizosphere acidification and malate release, leading to increased Al tolerance. These associations with Al tolerance were also observed in natural variations of Arabidopsis. These findings demonstrate that transcriptional regulation of SAUR55 by STOP1 positively regulates H+ excretion via PM H+-ATPase 2 which enhances Al tolerance by malate secretion from the roots of Arabidopsis. The activation of PM H+-ATPase 2 by SAUR55 was suggested to be due to PP2C.D2/D5 inhibition by interaction on the plasma membrane with its phosphatase. Furthermore, RNAi-suppression of NtSTOP1 in tobacco shows suppression of rhizosphere acidification under Al stress, which was associated with the suppression of SAUR55 orthologs, which are inducible by Al in tobacco. It suggests that transcriptional regulation of Al-inducible SAURs by STOP1 plays a critical role in OAs excretion in several plant species as an Al tolerance mechanism.
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来源期刊
ACS Applied Bio Materials
ACS Applied Bio Materials Chemistry-Chemistry (all)
CiteScore
9.40
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2.10%
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464
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