Center for Plant Systems Biology, VIB-Ghent University, Technologiepark 927, 9052, Gent, Belgium.
Department of Plant Biotechnology and Bioinformatics, Ghent University, Gent, Belgium.
Plant Mol Biol. 2019 Jan;99(1-2):79-93. doi: 10.1007/s11103-018-0803-0. Epub 2018 Dec 3.
Here, we used a hxk1 mutant in the Col-0 background. We demonstrated that HXK1 regulates cell proliferation and expansion early during leaf development, and that HXK1 is involved in sucrose-induced leaf growth stimulation independent of GPT2. Furthermore, we identified KINγ as a novel HXK1-interacting protein. In the last decade, extensive efforts have been made to unravel the underlying mechanisms of plant growth control through sugar availability. Signaling by the conserved glucose sensor HEXOKINASE1 (HXK1) has been shown to exert both growth-promoting and growth-inhibitory effects depending on the sugar levels, the environmental conditions and the plant species. Here, we used a hxk1 mutant in the Col-0 background to investigate the role of HXK1 during leaf growth in more detail and show that it is affected in both cell proliferation and cell expansion early during leaf development. Furthermore, the hxk1 mutant is less sensitive to sucrose-induced cell proliferation with no significant increase in final leaf growth after transfer to sucrose. Early during leaf development, transfer to sucrose stimulates expression of GLUCOSE-6-PHOSPHATE/PHOSPHATE TRANSPORTER2 (GPT2) and represses chloroplast differentiation. However, in the hxk1 mutant GPT2 expression was still upregulated by transfer to sucrose although chloroplast differentiation was not affected, suggesting that GPT2 is not involved in HXK1-dependent regulation of leaf growth. Finally, using tandem affinity purification of protein complexes from cell cultures, we identified KINγ, a protein containing four cystathionine β-synthase domains, as an interacting protein of HXK1.
在这里,我们使用 Col-0 背景下的 hxk1 突变体。我们证明 HXK1 调节叶片发育早期的细胞增殖和扩张,并且 HXK1 参与蔗糖诱导的叶片生长刺激,而不依赖于 GPT2。此外,我们鉴定出 KINγ 是 HXK1 的一种新的互作蛋白。在过去的十年中,人们已经做出了巨大的努力来揭示植物生长控制的潜在机制,通过糖的可用性。保守的葡萄糖传感器己糖激酶 1(HXK1)的信号转导已被证明具有促进生长和抑制生长的双重作用,这取决于糖的水平、环境条件和植物种类。在这里,我们使用 Col-0 背景下的 hxk1 突变体来更详细地研究 HXK1 在叶片生长过程中的作用,并表明它在叶片发育早期的细胞增殖和细胞扩张中都受到影响。此外,与野生型相比,hxk1 突变体对蔗糖诱导的细胞增殖不敏感,转移到蔗糖后叶片最终生长没有明显增加。在叶片发育早期,蔗糖的转移刺激 GLUCOSE-6-PHOSPHATE/PHOSPHATE TRANSPORTER2(GPT2)的表达,并抑制叶绿体分化。然而,在 hxk1 突变体中,蔗糖的转移仍然上调 GPT2 的表达,尽管叶绿体分化不受影响,这表明 GPT2 不参与 HXK1 依赖的叶片生长调节。最后,我们使用细胞培养物中蛋白复合物的串联亲和纯化,鉴定出 KINγ,一种含有四个半胱氨酸β-合酶结构域的蛋白,是 HXK1 的一个互作蛋白。