Department of Biophysics and Radiobiology, Federal University of Pernambuco, Recife, Pernambuco, Brazil.
Biophys J. 2011 Jun 22;100(12):2929-35. doi: 10.1016/j.bpj.2011.05.003.
Despite extensive research in the nanopore-sensing field, there is a paucity of experimental studies that investigate specific ion effects in confined spaces, such as in nanopores. Here, the effect of halogen anions on a simple bimolecular complexation reaction between monodisperse poly(ethylene glycol) (PEG) and α-hemolysin nanoscale pores have been investigated at the single-molecule level. The anions track the Hofmeister ranking according to their influence upon the on-rate constant. An inverse relationship was demonstrated for the off-rate and the solubility of PEG. The difference among anions spans several hundredfold. Halogen anions play a very significant role in the interaction of PEG with nanopores although, unlike K(+), they do not bind to PEG. The specific effect appears dominated by a hydration-dehydration process where ions and PEG compete for water. Our findings provide what we believe to be novel insights into physicochemical mechanisms involved in single-molecule interactions with nanopores and are clearly relevant to more complicated chemical and biological processes involving a transient association of two or more molecules (e.g., reception, signal transduction, enzyme catalysis). It is anticipated that these findings will advance the development of devices with nanopore-based sensors for chemical and biological applications.
尽管在纳米孔传感领域进行了广泛的研究,但对于特定离子在受限空间(如纳米孔)中的影响,仍缺乏实验研究。在这里,我们在单分子水平上研究了卤族阴离子对单分散聚乙二醇(PEG)和α-溶血素纳米孔之间简单双分子络合反应的影响。阴离子根据其对进入速率常数的影响遵循霍夫迈斯特排序。对于解吸速率和 PEG 的溶解度,我们证明了一种反比关系。阴离子之间的差异跨度可达数百倍。尽管卤族阴离子不像 K(+) 那样与 PEG 结合,但它们在 PEG 与纳米孔的相互作用中起着非常重要的作用。特定的影响似乎主要由水合-去水合过程主导,其中离子和 PEG 竞争水。我们的研究结果为纳米孔中单分子相互作用涉及的物理化学机制提供了新颖的见解,并且显然与涉及两个或更多分子的瞬态缔合的更复杂的化学和生物学过程(例如,接收、信号转导、酶催化)相关。预计这些发现将推动基于纳米孔的传感器在化学和生物学应用中的器件的发展。