Oh Seung Soo, Qian Jiangrong, Lou Xinhui, Zhang Yanting, Xiao Yi, Soh H Tom
Materials Department, [corrected] University of California, Santa Barbara, California 93106, USA.
Anal Chem. 2009 Jul 1;81(13):5490-5. doi: 10.1021/ac900759k.
Aptamers are nucleic acid-based reagents that bind to target molecules with high affinity and specificity. However, methods for generating aptamers from random combinatorial libraries (e.g., systematic evolution of ligands by exponential enrichment (SELEX)) are often labor-intensive and time-consuming. Recent studies suggest that microfluidic SELEX (M-SELEX) technology can accelerate aptamer isolation by enabling highly stringent selection conditions through the use of very small amounts of target molecules. We present here an alternative M-SELEX method, which employs a disposable microfluidic chip to rapidly generate aptamers with high affinity and specificity. The micromagnetic separation (MMS) chip integrates microfabricated ferromagnetic structures to reproducibly generate large magnetic field gradients within its microchannel that efficiently trap magnetic bead-bound aptamers. Operation of the MMS device is facile and robust and demonstrates high recovery of the beads (99.5%), such that picomolar amounts of target molecule can be used. Importantly, the device demonstrates exceptional separation efficiency in removing weakly bound and unbound ssDNA to rapidly enrich target-specific aptamers. As a model, we demonstrate here the generation of DNA aptamers against streptavidin in three rounds of positive selection. We further enhanced the specificity of the selected aptamers via a round of negative selection in the same device against bovine serum albumin (BSA). The resulting aptamers displayed dissociation constants ranging from 25 to 65 nM for streptavidin and negligible affinity for BSA. Since a wide spectrum of molecular targets can be readily conjugated to magnetic beads, MMS-based SELEX provides a general platform for rapid generation of specific aptamers.
适配体是基于核酸的试剂,能以高亲和力和特异性结合靶分子。然而,从随机组合文库生成适配体的方法(例如指数富集配体系统进化技术(SELEX))往往 labor-intensive 且耗时。最近的研究表明,微流控 SELEX(M-SELEX)技术可以通过使用极少量的靶分子实现高度严格的筛选条件,从而加速适配体的分离。我们在此提出一种替代的 M-SELEX 方法,该方法采用一次性微流控芯片快速生成具有高亲和力和特异性的适配体。微磁分离(MMS)芯片集成了微加工的铁磁结构,可在其微通道内可重复地产生大的磁场梯度,从而有效地捕获与磁珠结合的适配体。MMS 装置操作简便且稳健,磁珠回收率高(99.5%),因此可以使用皮摩尔量的靶分子。重要的是,该装置在去除弱结合和未结合的单链 DNA 以快速富集靶标特异性适配体方面表现出卓越的分离效率。作为一个模型,我们在此展示了通过三轮阳性筛选生成抗链霉亲和素的 DNA 适配体。我们通过在同一装置中针对牛血清白蛋白(BSA)进行一轮阴性筛选,进一步提高了所选适配体的特异性。所得适配体对链霉亲和素的解离常数范围为 25 至 65 nM,对 BSA 的亲和力可忽略不计。由于多种分子靶标可以很容易地与磁珠偶联,基于 MMS 的 SELEX 为快速生成特异性适配体提供了一个通用平台。