Nath Nidhi, Hurst Robin, Hook Brad, Meisenheimer Poncho, Zhao Kate Q, Nassif Nadine, Bulleit Robert F, Storts Douglas R
Research and Development, Promega Corporation, Madison, Wisconsin 53711, USA.
J Proteome Res. 2008 Oct;7(10):4475-82. doi: 10.1021/pr800323j. Epub 2008 Sep 6.
For protein microarrays, maintaining protein stability during the slide processing steps of washing, drying, and storage is of major concern. Although several studies have focused on the stability of immobilized antibodies in antibody microarrays, studies on protein-protein interaction arrays and enzyme arrays are lacking. In this paper we used five bait-prey protein interaction pairs and three enzymes to optimize the washing, drying, and storage conditions for protein arrays. The protein arrays for the study were fabricated by combining HaloTag technology and cell-free protein expression. The HaloTag technology, in combination with cell-free expression, allowed rapid expression and immobilization of fusion proteins on hydrogel-coated glass slides directly from cell extracts without any prior purification. Experimental results indicate enzyme captured on glass slides undergoes significant loss of activity when washed and spin-dried using only phosphate buffer, as is typically done with antibody arrays. The impact of washing and spin-drying in phosphate buffer on protein-protein interaction arrays was minimal. However, addition of 5% glycerol to the wash buffer helps retain enzyme activity during washing and drying. We observed significant loss of enzyme activity when slides were stored dry at 4 degrees C, however immobilized enzymes remained active for 30 days when stored at -20 degrees C in 50% glycerol. We also found that cell-free extract containing HaloTag-fused enzymes could undergo multiple freeze/thaw cycles without any adverse impact on enzyme activity. The findings indicate that for large ongoing studies, proteins of interest expressed in cell-free extract can be stored at -70 degrees C and repeatedly used to print small batches of protein array slides to be used over a few weeks.
对于蛋白质微阵列而言,在洗涤、干燥和储存等载玻片处理步骤中维持蛋白质稳定性是主要关注点。尽管已有多项研究聚焦于抗体微阵列中固定化抗体的稳定性,但关于蛋白质 - 蛋白质相互作用阵列和酶阵列的研究却很匮乏。在本文中,我们使用了五对诱饵 - 猎物蛋白质相互作用对和三种酶来优化蛋白质阵列的洗涤、干燥和储存条件。本研究中的蛋白质阵列是通过结合卤代标签技术和无细胞蛋白质表达来制备的。卤代标签技术与无细胞表达相结合,使得融合蛋白能够直接从细胞提取物中快速表达并固定在水凝胶包被的载玻片上,无需任何预先纯化。实验结果表明,当仅使用磷酸盐缓冲液(抗体阵列通常的洗涤方式)进行洗涤和旋转干燥时,捕获在载玻片上的酶会发生显著的活性损失。在磷酸盐缓冲液中洗涤和旋转干燥对蛋白质 - 蛋白质相互作用阵列的影响最小。然而,在洗涤缓冲液中添加5%甘油有助于在洗涤和干燥过程中保留酶活性。我们观察到,当载玻片在4℃干燥储存时,酶活性会显著损失,但是当在50%甘油中于 - 20℃储存时,固定化酶可保持活性30天。我们还发现,含有卤代标签融合酶的无细胞提取物可以经受多次冻融循环而对酶活性没有任何不利影响。这些发现表明,对于正在进行的大型研究,在无细胞提取物中表达的目标蛋白质可以储存在 - 70℃,并反复用于打印小批量的蛋白质阵列载玻片,以便在几周内使用。