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本文引用的文献

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The negative regulator SMAX1 controls mycorrhizal symbiosis and strigolactone biosynthesis in rice.负调控因子 SMAX1 控制水稻的菌根共生和独脚金内酯生物合成。
Nat Commun. 2020 Apr 30;11(1):2114. doi: 10.1038/s41467-020-16021-1.
2
CYP722C from Gossypium arboreum catalyzes the conversion of carlactonoic acid to 5-deoxystrigol.陆地棉 CYP722C 催化卡尔拉酮酸转化为 5-脱甲氧基野麦畏。
Planta. 2020 Apr 18;251(5):97. doi: 10.1007/s00425-020-03390-6.
3
Chemical identification of 18-hydroxycarlactonoic acid as an LjMAX1 product and in planta conversion of its methyl ester to canonical and non-canonical strigolactones in Lotus japonicus.鉴定 18-羟基贝壳杉烯酸为 LjMAX1 产物,并在体内将其甲酯转化为 canonical 和 non-canonical 独脚金内酯在 Lotus japonicus 中的应用。
Phytochemistry. 2020 Jun;174:112349. doi: 10.1016/j.phytochem.2020.112349. Epub 2020 Mar 24.
4
Genome of Tripterygium wilfordii and identification of cytochrome P450 involved in triptolide biosynthesis.三叶鬼臼基因组和参与雷公藤内酯生物合成的细胞色素 P450 的鉴定。
Nat Commun. 2020 Feb 20;11(1):971. doi: 10.1038/s41467-020-14776-1.
5
Direct conversion of carlactonoic acid to orobanchol by cytochrome P450 CYP722C in strigolactone biosynthesis.在独脚金内酯生物合成中,CYP722C 细胞色素 P450 将 carlactonoic 酸直接转化为 Orobanchol。
Sci Adv. 2019 Dec 18;5(12):eaax9067. doi: 10.1126/sciadv.aax9067. eCollection 2019 Dec.
6
Genomics of sorghum local adaptation to a parasitic plant.高粱对寄生植物的局部适应的基因组学研究
Proc Natl Acad Sci U S A. 2020 Feb 25;117(8):4243-4251. doi: 10.1073/pnas.1908707117. Epub 2020 Feb 11.
7
Identification of two oxygenase genes involved in the respective biosynthetic pathways of canonical and non-canonical strigolactones in Lotus japonicus.鉴定参与日本田蓟中典型和非典型独脚金内酯各自生物合成途径的两个加氧酶基因。
Planta. 2020 Jan 6;251(2):40. doi: 10.1007/s00425-019-03332-x.
8
Identification of a 3β-Hydroxysteroid Dehydrogenase/ 3-Ketosteroid Reductase Involved in α-Tomatine Biosynthesis in Tomato.鉴定番茄中参与α-茄碱生物合成的 3β-羟甾脱氢酶/3-酮固醇还原酶。
Plant Cell Physiol. 2019 Jun 1;60(6):1304-1315. doi: 10.1093/pcp/pcz049.
9
Lotuslactone, a non-canonical strigolactone from Lotus japonicus.来自于 Lotus japonicus 的非典型独脚金内酯,莲内酯。
Phytochemistry. 2019 Jan;157:200-205. doi: 10.1016/j.phytochem.2018.10.034. Epub 2018 Nov 12.
10
Methyl zealactonoate, a novel germination stimulant for root parasitic weeds produced by maize.甲基玉米内酯,一种由玉米产生的用于根部寄生杂草的新型萌发刺激物。
J Pestic Sci. 2017 May 20;42(2):58-61. doi: 10.1584/jpestics.D16-103.

高粱中独脚金内酯生物合成的 sorgomol 合酶的鉴定和特性研究。

Identification and characterization of sorgomol synthase in sorghum strigolactone biosynthesis.

机构信息

Graduate School of Agricultural Science, Kobe University, 1-1 Rokkodai, Nada, Kobe 657-8501, Japan.

Kazusa DNA Research Institute, Kazusa-kamatari 2-6-7, Kisarazu, Chiba, 292-0818, Japan.

出版信息

Plant Physiol. 2021 Apr 2;185(3):902-913. doi: 10.1093/plphys/kiaa113.

DOI:10.1093/plphys/kiaa113
PMID:33793911
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8133691/
Abstract

Strigolactones (SLs), first identified as germination stimulants for root parasitic weeds, act as endogenous phytohormones regulating shoot branching and as root-derived signal molecules mediating symbiotic communications in the rhizosphere. Canonical SLs typically have an ABCD ring system and can be classified into orobanchol- and strigol-type based on the C-ring stereochemistry. Their simplest structures are 4-deoxyorobanchol (4DO) and 5-deoxystrigol (5DS), respectively. Diverse canonical SLs are chemically modified with one or more hydroxy or acetoxy groups introduced into the A- and/or B-ring of these simplest structures, but the biochemical mechanisms behind this structural diversity remain largely unexplored. Sorgomol in sorghum (Sorghum bicolor [L.] Moench) is a strigol-type SL with a hydroxy group at C-9 of 5DS. In this study, we characterized sorgomol synthase. Microsomal fractions prepared from a high-sorgomol-producing cultivar of sorghum, Sudax, were shown to convert 5DS to sorgomol. A comparative transcriptome analysis identified SbCYP728B subfamily as candidate genes encoding sorgomol synthase. Recombinant SbCYP728B35 catalyzed the conversion of 5DS to sorgomol in vitro. Substrate specificity revealed that the C-8bS configuration in the C-ring of 5DS stereoisomers was essential for this reaction. The overexpression of SbCYP728B35 in Lotus japonicus hairy roots, which produce 5DS as an endogenous SL, also resulted in the conversion of 5DS to sorgomol. Furthermore, SbCYP728B35 expression was not detected in nonsorgomol-producing cultivar, Abu70, suggesting that this gene is responsible for sorgomol production in sorghum. Identification of the mechanism modifying parental 5DS of strigol-type SLs provides insights on how plants biosynthesize diverse SLs.

摘要

独脚金内酯(SLs)最初被鉴定为根寄生杂草的萌发刺激物,作为内源性植物激素调节分枝,作为根衍生的信号分子在根际中调节共生通讯。典型的 SLs 通常具有 ABCD 环系统,根据 C 环立体化学可分为 Orobanchol 型和 Strigol 型。它们最简单的结构分别是 4-去甲 Orobanchol(4DO)和 5-去甲 Strigol(5DS)。各种典型的 SLs 在 A-和/或 B-环中引入一个或多个羟基或乙酰氧基进行化学修饰,但这种结构多样性的生化机制在很大程度上仍未得到探索。高粱中的 Sorgomol(高粱[Sorghum bicolor(L.)Moench])是一种具有 5DS 中 C-9 位羟基的 Strigol 型 SL。在这项研究中,我们对 Sorgomol 合酶进行了表征。从高 Sorgomol 产生的高粱品种 Sudax 中制备的微粒体部分显示可将 5DS 转化为 Sorgomol。比较转录组分析确定 SbCYP728B 亚科为编码 Sorgomol 合酶的候选基因。重组 SbCYP728B35 在体外催化 5DS 向 Sorgomol 的转化。底物特异性表明,5DS 中 C-环的 C-8bS 构型对该反应至关重要。在 Lotus japonicus 毛状根中过量表达 SbCYP728B35,该根产生 5DS 作为内源性 SL,也导致 5DS 向 Sorgomol 的转化。此外,在不产生 Sorgomol 的品种 Abu70 中未检测到 SbCYP728B35 的表达,表明该基因负责高粱中 Sorgomol 的产生。修饰 Strigol 型 SL 母本 5DS 的机制的鉴定提供了关于植物如何生物合成多种 SLs 的见解。