Mousa Reem, Hidmi Taghreed, Pomyalov Sergei, Lansky Shifra, Khouri Lareen, Shalev Deborah E, Shoham Gil, Metanis Norman
Institute of Chemistry, The Hebrew University of Jerusalem, Jerusalem, Israel.
Department of Pharmaceutical Engineering, Azrieli College of Engineering Jerusalem and Wolfson Centre for Applied Structural Biology, The Hebrew University of Jerusalem, Jerusalem, Israel.
Commun Chem. 2021 Mar 5;4(1):30. doi: 10.1038/s42004-021-00463-9.
The in vitro oxidative folding of proteins has been studied for over sixty years, providing critical insight into protein folding mechanisms. Hirudin, the most potent natural inhibitor of thrombin, is a 65-residue protein with three disulfide bonds, and is viewed as a folding model for a wide range of disulfide-rich proteins. Hirudin's folding pathway is notorious for its highly heterogeneous intermediates and scrambled isomers, limiting its folding rate and yield in vitro. Aiming to overcome these limitations, we undertake systematic investigation of diselenide bridges at native and non-native positions and investigate their effect on hirudin's folding, structure and activity. Our studies demonstrate that, regardless of the specific positions of these substitutions, the diselenide crosslinks enhanced the folding rate and yield of the corresponding hirudin analogues, while reducing the complexity and heterogeneity of the process. Moreover, crystal structure analysis confirms that the diselenide substitutions maintained the overall three-dimensional structure of the protein and left its function virtually unchanged. The choice of hirudin as a study model has implications beyond its specific folding mechanism, demonstrating the high potential of diselenide substitutions in the design, preparation and characterization of disulfide-rich proteins.
蛋白质的体外氧化折叠研究已经开展了六十多年,为深入了解蛋白质折叠机制提供了关键见解。水蛭素是凝血酶最有效的天然抑制剂,是一种含有65个氨基酸残基且具有三个二硫键的蛋白质,被视为多种富含二硫键蛋白质的折叠模型。水蛭素的折叠途径以其高度异质的中间体和混乱的异构体而闻名,这限制了其在体外的折叠速率和产率。为了克服这些限制,我们对天然和非天然位置的二硒键进行了系统研究,并考察它们对水蛭素折叠、结构和活性的影响。我们的研究表明,无论这些取代的具体位置如何,二硒交联都提高了相应水蛭素类似物的折叠速率和产率,同时降低了该过程的复杂性和异质性。此外,晶体结构分析证实,二硒取代保持了蛋白质的整体三维结构,其功能几乎未变。选择水蛭素作为研究模型的意义不仅在于其特定的折叠机制,还表明了二硒取代在富含二硫键蛋白质的设计、制备和表征方面具有很高的潜力。