Key Laboratory of Plant Cell and Chromosome Engineering, Institute of Genetics and Developmental Biology, Chinese Academy of Sciences, Beijing 100101, China.
College of Advanced Agricultural Sciences, University of Chinese Academy of Sciences, Beijing 100049, China.
Plant Cell. 2024 Nov 2;36(11):4786-4803. doi: 10.1093/plcell/koae256.
The endosperm in cereal grains is instrumental in determining grain yield and seed quality, as it controls starch and seed storage protein (SSP) production. In this study, we identified a specific nuclear factor-Y (NF-Y) trimeric complex in wheat (Triticum aestivum L.), consisting of TaNF-YA3-D, TaNF-YB7-B, and TaNF-YC6-B, and exhibiting robust expression within the endosperm during grain filling. Knockdown of either TaNF-YA3 or TaNF-YC6 led to reduced starch but increased gluten protein levels. TaNF-Y indirectly boosted starch biosynthesis genes by repressing TaNAC019, a repressor of cytosolic small ADP-glucose pyrophosphorylase 1a (TacAGPS1a), sucrose synthase 2 (TaSuS2), and other genes involved in starch biosynthesis. Conversely, TaNF-Y directly inhibited the expression of Gliadin-γ-700 (TaGli-γ-700) and low molecular weight-400 (TaLMW-400). Furthermore, TaNF-Y components interacted with SWINGER (TaSWN), the histone methyltransferase subunit of Polycomb repressive complex 2 (PRC2), to repress TaNAC019, TaGli-γ-700, and TaLMW-400 expression through trimethylation of histone H3 at lysine 27 (H3K27me3) modifications. Notably, weak mutation of FERTILIZATION INDEPENDENT ENDOSPERM (TaFIE), a core PRC2 subunit, reduced starch but elevated gliadin and LMW-GS contents. Intriguingly, sequence variation within the TaNF-YB7-B coding region was linked to differences in starch and SSP content. Distinct TaNF-YB7-B haplotypes affect its interaction with TaSWN-B, influencing the repression of targets like TaNAC019 and TaGli-γ-700. Our findings illuminate the intricate molecular mechanisms governing TaNF-Y-PRC2-mediated epigenetic regulation for wheat endosperm development. Manipulating the TaNF-Y complex holds potential for optimizing grain yield and enhancing grain quality.
谷物胚乳对于确定谷物产量和种子质量至关重要,因为它控制淀粉和种子贮藏蛋白(SSP)的产生。在这项研究中,我们在小麦(Triticum aestivum L.)中鉴定了一种特定的核因子-Y(NF-Y)三聚体复合物,由 TaNF-YA3-D、TaNF-YB7-B 和 TaNF-YC6-B 组成,在籽粒灌浆期间在胚乳中表现出强烈的表达。敲低 TaNF-YA3 或 TaNF-YC6 都会导致淀粉减少但面筋蛋白水平增加。TaNF-Y 通过抑制 TaNAC019(细胞质小 ADP-葡萄糖焦磷酸化酶 1a(TacAGPS1a)、蔗糖合酶 2(TaSuS2)和其他参与淀粉生物合成的基因的抑制剂)间接促进淀粉生物合成基因的表达。相反,TaNF-Y 直接抑制 Gliadin-γ-700(TaGli-γ-700)和低分子量-400(TaLMW-400)的表达。此外,TaNF-Y 成分与 Polycomb repressive complex 2(PRC2)的组蛋白甲基转移酶亚基 SWINGER(TaSWN)相互作用,通过组蛋白 H3 赖氨酸 27(H3K27me3)修饰的三甲基化来抑制 TaNAC019、TaGli-γ-700 和 TaLMW-400 的表达。值得注意的是,核心 PRC2 亚基 FERTILIZATION INDEPENDENT ENDOSPERM(TaFIE)的弱突变会降低淀粉含量,但会提高醇溶蛋白和 LMW-GS 的含量。有趣的是,TaNF-YB7-B 编码区的序列变异与淀粉和 SSP 含量的差异有关。不同的 TaNF-YB7-B 单倍型影响其与 TaSWN-B 的相互作用,从而影响 TaNAC019 和 TaGli-γ-700 等靶标的抑制。我们的研究结果阐明了控制小麦胚乳发育的 TaNF-Y-PRC2 介导的表观遗传调控的复杂分子机制。操纵 TaNF-Y 复合物有可能优化谷物产量和提高谷物质量。