Borges Chad R, Sherma Nisha D
Center for Personalized Diagnostics, The Biodesign Institute at Arizona State University , Tempe, Arizona.
Antioxid Redox Signal. 2014 Jul 20;21(3):511-31. doi: 10.1089/ars.2013.5559. Epub 2014 Feb 18.
Modification of cysteine thiols dramatically affects protein function and stability. Hence, the abilities to quantify specific protein sulfhydryl groups within complex biological samples and map disulfide bond structures are crucial to gaining greater insights into how proteins operate in human health and disease.
Many different molecular probes are now commercially available to label and track cysteine residues at great sensitivity. Coupled with mass spectrometry, stable isotope-labeled sulfhydryl-specific reagents can provide previously unprecedented molecular insights into the dynamics of cysteine modification. Likewise, the combined application of modern mass spectrometers with improved sample preparation techniques and novel data mining algorithms is beginning to routinize the analysis of complex protein disulfide structures.
Proper application of these modern tools and techniques, however, still requires fundamental understanding of sulfhydryl chemistry as well as the assumptions that accompany sample preparation and underlie effective data interpretation.
The continued development of tools, technical approaches, and corresponding data processing algorithms will, undoubtedly, facilitate site-specific protein sulfhydryl quantification and disulfide structure analysis from within complex biological mixtures with ever-improving accuracy and sensitivity. Fully routinizing disulfide structure analysis will require an equal but balanced focus on sample preparation and corresponding mass spectral dataset reproducibility.
半胱氨酸硫醇的修饰会显著影响蛋白质的功能和稳定性。因此,在复杂生物样品中定量特定蛋白质巯基基团以及绘制二硫键结构的能力,对于更深入了解蛋白质在人类健康和疾病中的作用至关重要。
现在有许多不同的分子探针可用于以高灵敏度标记和追踪半胱氨酸残基。与质谱联用,稳定同位素标记的巯基特异性试剂能够以前所未有的方式提供有关半胱氨酸修饰动态的分子见解。同样,现代质谱仪与改进的样品制备技术和新颖的数据挖掘算法的联合应用,正开始使复杂蛋白质二硫键结构的分析常规化。
然而,正确应用这些现代工具和技术仍需要对半胱氨酸化学有基本的了解,以及对样品制备所涉及的假设和有效数据解释的基础有深入认识。
工具、技术方法以及相应数据处理算法的持续发展,无疑将有助于从复杂生物混合物中以不断提高的准确性和灵敏度进行位点特异性蛋白质巯基定量和二硫键结构分析。使二硫键结构分析完全常规化将需要同等且平衡地关注样品制备和相应质谱数据集的重现性。