Mendel Centre for Plant Genomics and Proteomics, Central European Institute of Technology (CEITEC), Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic.
National Centre for Biomolecular Research, Faculty of Science, Masaryk University, Kamenice 5, CZ-625 00 Brno, Czech Republic.
Int J Mol Sci. 2022 Jun 6;23(11):6352. doi: 10.3390/ijms23116352.
Much of plant development depends on cell-to-cell redistribution of the plant hormone auxin, which is facilitated by the plasma membrane (PM) localized PIN FORMED (PIN) proteins. Auxin export activity, developmental roles, subcellular trafficking, and polarity of PINs have been well studied, but their structure remains elusive besides a rough outline that they contain two groups of 5 alpha-helices connected by a large hydrophilic loop (HL). Here, we focus on the PIN1 HL as we could produce it in sufficient quantities for biochemical investigations to provide insights into its secondary structure. Circular dichroism (CD) studies revealed its nature as an intrinsically disordered protein (IDP), manifested by the increase of structure content upon thermal melting. Consistent with IDPs serving as interaction platforms, PIN1 loops homodimerize. PIN1 HL cytoplasmic overexpression in disrupts early endocytic trafficking of PIN1 and PIN2 and causes defects in the cotyledon vasculature formation. In summary, we demonstrate that PIN1 HL has an intrinsically disordered nature, which must be considered to gain further structural insights. Some secondary structures may form transiently during pairing with known and yet-to-be-discovered interactors.
植物发育的很大一部分依赖于植物激素生长素的细胞间再分配,这是由质膜(PM)定位的 PIN 形成(PIN)蛋白促成的。生长素的外排活性、发育作用、亚细胞运输和 PIN 的极性已经得到了很好的研究,但除了它们包含两组由大亲水性环(HL)连接的 5α 螺旋的大致轮廓外,其结构仍然难以捉摸。在这里,我们专注于 PIN1 HL,因为我们可以大量生产它,以便进行生化研究,从而深入了解其二级结构。圆二色性(CD)研究表明它是一种固有无序的蛋白质(IDP),这表现为热融时结构含量的增加。与 IDP 作为相互作用平台一致,PIN1 环同源二聚化。在 中过表达 PIN1 HL 细胞质会破坏 PIN1 和 PIN2 的早期内吞运输,并导致子叶脉管形成缺陷。总之,我们证明了 PIN1 HL 具有固有无序的性质,在与已知和尚未发现的相互作用者配对时,必须考虑到这一点以获得进一步的结构见解。一些二级结构可能在与已知和未知的相互作用者配对时形成短暂的结构。