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MBW 复合体中 bHLH 转录因子的进化研究:它们在种子发育中的作用。

Evolutionary studies of the bHLH transcription factors belonging to MBW complex: their role in seed development.

机构信息

Department of BioScience, Università degli Studi di Milano, Via Celoria 26, 20133 Milano, Italy.

Agricultural, Food and Environmental Sciences, University of Perugia, Borgo XX Giugno 74, Perugia, Italy.

出版信息

Ann Bot. 2023 Nov 23;132(3):383-400. doi: 10.1093/aob/mcad097.

Abstract

BACKGROUND AND AIMS

The MBW complex consist of proteins belonging to three major families (MYB, bHLH and WDR) involved in various processes throughout plant development: epidermal cell development, mucilage secretory cells and flavonoid biosynthesis. Recently, it has been reported that TT8, encoding a bHLH transcription factor, is involved in the biosynthesis of flavonoids in the seed coat and it also plays a role in bypassing the postzygotic barrier resulting from an unbalance in genetic loads of the parental lines. Here, we focus on the functional evolution, in seed development, of the bHLH proteins that are part of the MBW complex, complemented with a literature review.

METHODS

Phylogenetic analyses performed across seed plants and expression analyses in the reproductive tissues of four selected angiosperms (Arabidopsis thaliana, Brassica napus, Capsella rubella and Solanum lycopersicum) allow us to hypothesize on the evolution of its functions.

KEY RESULTS

TT8 expression in the innermost layer of the seed coat is conserved in the selected angiosperms. However, except for Arabidopsis, TT8 is also expressed in ovules, carpels and fruits. The homologues belonging to the sister clade of TT8, EGL3/GL3, involved in trichome development, are expressed in the outermost layer of the seed coat, suggesting potential roles in mucilage.

CONCLUSIONS

The ancestral function of these genes appears to be flavonoid biosynthesis, and the conservation of TT8 expression patterns in the innermost layer of the seed coat in angiosperms suggests that their function in postzygotic barriers might also be conserved. Moreover, the literature review and the results of the present study suggest a sophisticated association, linking the mechanisms of action of these genes to the cross-communication activity between the different tissues of the seed. Thus, it provides avenues to study the mechanisms of action of TT8 in the postzygotic triploid block, which is crucial because it impacts seed development in unbalanced crosses.

摘要

背景与目的

MBW 复合体由参与植物发育过程中各种过程的三个主要家族(MYB、bHLH 和 WDR)的蛋白质组成:表皮细胞发育、粘液分泌细胞和类黄酮生物合成。最近,有报道称编码 bHLH 转录因子的 TT8 参与种皮中类黄酮的生物合成,并且在因双亲系遗传负荷不平衡而导致的合子后障碍中也发挥作用。在这里,我们重点研究了作为 MBW 复合体一部分的 bHLH 蛋白在种子发育中的功能进化,并结合文献综述进行了研究。

方法

对种子植物进行系统发育分析,并对四个选定的被子植物(拟南芥、油菜、荠和番茄)的生殖组织进行表达分析,使我们能够假设其功能的进化。

主要结果

在所选择的被子植物中,TT8 在种皮的最内层的表达是保守的。然而,除了拟南芥,TT8 也在胚珠、心皮和果实中表达。属于 TT8 姐妹分支的同源物 EGL3/GL3,参与毛状体发育,在种皮的最外层表达,表明其在粘液中的潜在作用。

结论

这些基因的祖先功能似乎是类黄酮生物合成,并且 TT8 在被子植物种皮最内层的表达模式的保守性表明其在合子后障碍中的功能也可能是保守的。此外,文献综述和本研究的结果表明,这些基因的作用机制与种子不同组织之间的交叉通讯活动之间存在着复杂的联系。因此,它为研究 TT8 在合子后三倍体障碍中的作用机制提供了途径,这是至关重要的,因为它影响了不平衡杂交中的种子发育。

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