Key Laboratory of Bio-Inspired Smart Interfacial Science and Technology of Ministry of Education, School of Chemistry, Beihang University , Beijing 100191, P. R. China.
ACS Appl Mater Interfaces. 2018 Jan 31;10(4):3241-3247. doi: 10.1021/acsami.7b14505. Epub 2018 Jan 16.
Gas messenger molecule (NO) plays important roles in K nanochannels of guard cells by binding directly to the heme-containing enzymes. Inspired by this natural phenomenon, we developed artificial K nanochannels modified with ferroporphyrin, where NO triggered the nanochannels to turn "ON" states from the ferroporphyrin blocked "OFF" states. The mechanism relies on the fact that NO has higher affinity with ferroporphyrin compared to carboxyl groups on the nanochannel surface. The synergistic effect of the released carboxyl groups and the conically asymmetric shape leads the ion transportation to be diode-like. However, the nanofluidic diode properties vanished after illumination with light to remove NO from the ferroporphyrin-NO complex. This NO and light cooperative nanofluidic diode possesses excellent stability and reversibility, which shows great promise for use in gas detection and remote control of mass delivery.
气体信使分子(NO)通过直接与含铁血红素酶结合,在保卫细胞的 K 纳米通道中发挥重要作用。受此自然现象启发,我们开发了经过亚铁卟啉修饰的人工 K 纳米通道,其中 NO 可触发纳米通道从亚铁卟啉阻断的“关闭”状态转变为“开启”状态。其机制依赖于以下事实:与纳米通道表面的羧基相比,NO 与亚铁卟啉具有更高的亲和力。释放的羧基和锥形不对称形状的协同作用使离子传输具有类似二极管的特性。然而,当用光从亚铁卟啉-NO 复合物中除去 NO 后,纳米流控二极管的特性消失。这种 NO 和光协同的纳米流控二极管具有出色的稳定性和可重复性,在气体检测和远程控制物质输送方面具有广阔的应用前景。