School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia, USA.
School of Chemical and Biomolecular Engineering, Georgia Institute of Technology, Atlanta, Georgia, USA.
J Biol Chem. 2023 Dec;299(12):105389. doi: 10.1016/j.jbc.2023.105389. Epub 2023 Oct 27.
Sugars Will Eventually be Exported Transporters (SWEETs) are central for sugar allocation in plants. The SWEET family has approximately 20 homologs in most plant genomes, and despite extensive research on their structures and molecular functions, it is still unclear how diverse SWEETs recognize different substrates. Previous work using SweetTrac1, a biosensor constructed by the intramolecular fusion of a conformation-sensitive fluorescent protein in the plasma membrane transporter SWEET1 from Arabidopsis thaliana, identified common features in the transporter's substrates. Here, we report SweetTrac2, a new biosensor based on the Arabidopsis vacuole membrane transporter SWEET2, and use it to explore the substrate specificity of this second protein. Our results show that SWEET1 and SWEET2 recognize similar substrates but some with different affinities. Sequence comparison and mutagenesis analysis support the conclusion that the differences in affinity depend on nonspecific interactions involving previously uncharacterized residues in the substrate-binding pocket. Furthermore, SweetTrac2 can be an effective tool for monitoring sugar transport at vacuolar membranes that would be otherwise challenging to study.
糖将最终被输出载体(SWEETs)对于植物中的糖分配至关重要。SWEET 家族在大多数植物基因组中大约有 20 个同源物,尽管对其结构和分子功能进行了广泛的研究,但仍然不清楚不同的 SWEETs 如何识别不同的底物。以前的工作使用 SweetTrac1,这是一种通过将拟南芥质膜转运蛋白 SWEET1 中的构象敏感荧光蛋白在分子内融合而构建的生物传感器,鉴定了转运蛋白底物中的共同特征。在这里,我们报告了基于拟南芥液泡膜转运蛋白 SWEET2 的新生物传感器 SweetTrac2,并使用它来探索该第二蛋白的底物特异性。我们的结果表明,SWEET1 和 SWEET2 识别相似的底物,但有些具有不同的亲和力。序列比较和突变分析支持这样的结论,即亲和力的差异取决于涉及底物结合口袋中以前未表征的残基的非特异性相互作用。此外,SweetTrac2 可以成为监测液泡膜中糖转运的有效工具,否则这将是难以研究的。