Biodesign Center for Molecular Design and Biomimetics (at the Biodesign Institute) at Arizona State University, Tempe, AZ, 85287, USA.
School of Molecular Sciences, Arizona State University, Tempe, AZ, 85287, USA.
Nat Commun. 2022 Apr 28;13(1):2271. doi: 10.1038/s41467-022-28522-2.
Controlled transport of biomolecules across lipid bilayer membranes is of profound significance in biological processes. In cells, cargo exchange is mediated by dedicated channels that respond to triggers, undergo a nanomechanical change to reversibly open, and thus regulate cargo flux. Replicating these processes with simple yet programmable chemical means is of fundamental scientific interest. Artificial systems that go beyond nature's remit in transport control and cargo are also of considerable interest for biotechnological applications but challenging to build. Here, we describe a synthetic channel that allows precisely timed, stimulus-controlled transport of folded and functional proteins across bilayer membranes. The channel is made via DNA nanotechnology design principles and features a 416 nm opening cross-section and a nanomechanical lid which can be controllably closed and re-opened via a lock-and-key mechanism. We envision that the functional DNA device may be used in highly sensitive biosensing, drug delivery of proteins, and the creation of artificial cell networks.
生物分子在脂质双层膜中的受控运输在生物过程中具有重要意义。在细胞中,货物交换是由专门的通道介导的,这些通道对触发因素做出反应,经历纳米力学变化以可逆地打开,从而调节货物通量。用简单但可编程的化学手段复制这些过程具有基础科学意义。超越自然在运输控制和货物方面的人工系统对于生物技术应用也具有相当大的兴趣,但构建起来具有挑战性。在这里,我们描述了一种合成通道,该通道允许折叠和功能蛋白在双层膜之间进行精确定时、刺激控制的运输。该通道是通过 DNA 纳米技术设计原则制造的,具有 416nm 的开口横截面和纳米力学盖,该纳米力学盖可以通过锁钥机制进行可控关闭和重新打开。我们设想该功能 DNA 器件可用于高灵敏度生物传感、蛋白质的药物输送以及人工细胞网络的创建。