Allert Malin J, Kumar Shivesh, Wang You, Beese Lorena S, Hellinga Homme W
Department of Biochemistry, Duke University Medical Center, Durham, NC 27710, USA.
Department of Biochemistry, Duke University Medical Center, Durham, NC 27710, USA; Department of Biochemistry and Molecular Biophysics, Washington University in St. Louis, MO 63110, USA.
J Mol Biol. 2024 Nov 15;436(22):168780. doi: 10.1016/j.jmb.2024.168780. Epub 2024 Sep 4.
ABC transporters are ancient and ubiquitous nutrient transport systems in bacteria and play a central role in defining lifestyles. Periplasmic solute-binding proteins (SBPs) are components that deliver ligands to their translocation machinery. SBPs have diversified to bind a wide range of ligands with high specificity and affinity. However, accurate assignment of cognate ligands remains a challenging problem in SBPs. Urea metabolism plays an important role in the nitrogen cycle; anthropogenic sources account for more than half of global nitrogen fertilizer. We report identification of urea-binding proteins within a large SBP sequence family that encodes diverse functions. By combining genetic linkage between SBPs, ABC transporter components, enzymes or transcription factors, we accurately identified cognate ligands, as we verified experimentally by biophysical characterization of ligand binding and crystallographic determination of the urea complex of a thermostable urea-binding homolog. Using three-dimensional structure information, these functional assignments were extrapolated to other members in the sequence family lacking genetic linkage information, which revealed that only a fraction bind urea. Using the same combined approaches, we also inferred that other family members bind various short-chain amides, aliphatic amino acids (leucine, isoleucine, valine), γ-aminobutyrate, and as yet unknown ligands. Comparative structural analysis revealed structural adaptations that encode diversification in these SBPs. Systematic assignment of ligands to SBP sequence families is key to understanding bacterial lifestyles, and also provides a rich source of biosensors for clinical and environmental analysis, such as the thermostable urea-binding protein identified here.
ABC转运蛋白是细菌中古老且普遍存在的营养物质转运系统,在确定细菌生活方式中起着核心作用。周质溶质结合蛋白(SBP)是将配体传递至其转运机制的组成部分。SBP已经多样化,能够以高特异性和亲和力结合多种配体。然而,准确确定SBP的同源配体仍然是一个具有挑战性的问题。尿素代谢在氮循环中起着重要作用;人为来源占全球氮肥的一半以上。我们报告了在一个编码多种功能的大型SBP序列家族中鉴定出尿素结合蛋白。通过结合SBP、ABC转运蛋白组件、酶或转录因子之间的遗传连锁关系,我们准确鉴定出同源配体,并通过配体结合的生物物理表征和一种热稳定尿素结合同源物的尿素复合物的晶体学测定进行了实验验证。利用三维结构信息,这些功能分配被外推到缺乏遗传连锁信息的序列家族中的其他成员,这表明只有一小部分结合尿素。使用相同的组合方法,我们还推断其他家族成员结合各种短链酰胺、脂肪族氨基酸(亮氨酸、异亮氨酸、缬氨酸)、γ-氨基丁酸以及尚未知的配体。比较结构分析揭示了这些SBP中编码多样化的结构适应性。将配体系统地分配到SBP序列家族是理解细菌生活方式的关键,也为临床和环境分析提供了丰富的生物传感器来源,比如本文鉴定出的热稳定尿素结合蛋白。