Lathrop Julia Tait, Fijalkowska Iwona, Hammond David
Jerome Holland Laboratory, American Red Cross Biomedical R&D, Rockville, MD 20855, USA.
Anal Biochem. 2007 Feb 1;361(1):65-76. doi: 10.1016/j.ab.2006.11.017. Epub 2006 Dec 4.
Small molecules that bind proteins can be used as ligands for protein purification and for investigating protein-protein and protein-drug interactions. Unfortunately, many methods used to identify new ligands to desired proteins suffer from common shortcomings, including the requirement that the target protein be purified and/or the requirement that the ligands be selected under conditions different from those under which it will be used. We have developed a new method called the Bead blot that can (i) select ligands to unpurified proteins, including trace proteins, present in complex materials (e.g., unfractionated plasma); (ii) select ligands to multiple proteins under a variety of conditions in a single experiment; and (iii) be used with libraries of different types of ligands. In the Bead blot, a library of ligands, synthesized on chromatography resin beads, is incubated with a starting material containing a target protein for which a ligand is sought. The proteins in the material bind to their complementary ligands according to specific affinity interactions. Then the protein-loaded beads are immobilized in a porous matrix, and the proteins are directionally eluted from the beads and captured on a membrane superimposed on the beads. The location of the target protein on the membrane is determined, and because the position of the protein(s) on the membrane reflects the position of the bead(s) in the matrix, the bead that originally bound the protein is identified, with subsequent elucidation of the ligand sequence. Ligands to several targets can be identified in one experiment. Here we demonstrate the broad utility of this method by the selection of ligands that purify plasma protein complexes or that remove pathogens from whole blood with very high affinity constants. We also select ligands to a protein based on competitive elution.
能与蛋白质结合的小分子可用作蛋白质纯化以及研究蛋白质 - 蛋白质和蛋白质 - 药物相互作用的配体。不幸的是,许多用于鉴定所需蛋白质新配体的方法都存在一些共同缺点,包括需要纯化目标蛋白质和/或需要在与使用条件不同的情况下选择配体。我们开发了一种名为珠印迹的新方法,它可以:(i)从复杂材料(如未分级血浆)中存在的未纯化蛋白质(包括痕量蛋白质)中选择配体;(ii)在单个实验的各种条件下从多种蛋白质中选择配体;(iii)与不同类型配体的文库一起使用。在珠印迹法中,在色谱树脂珠上合成的配体文库与含有待寻找配体的目标蛋白质的起始材料一起孵育。材料中的蛋白质根据特异性亲和相互作用与它们互补的配体结合。然后将负载蛋白质的珠子固定在多孔基质中,蛋白质从珠子上定向洗脱并捕获在叠加在珠子上的膜上。确定目标蛋白质在膜上的位置,并且由于膜上蛋白质的位置反映了基质中珠子的位置,所以可以识别最初结合蛋白质的珠子,随后阐明配体序列。在一个实验中可以鉴定出几种靶标的配体。在这里,我们通过选择能够以非常高的亲和常数纯化血浆蛋白复合物或从全血中去除病原体的配体来证明该方法的广泛实用性。我们还基于竞争性洗脱选择蛋白质的配体。