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使用纳米吸管将细胞不可渗透的蛋白质糖基化探针直接递送至细胞内

Direct Intracellular Delivery of Cell-Impermeable Probes of Protein Glycosylation by Using Nanostraws.

作者信息

Xu Alexander M, Wang Derek S, Shieh Peyton, Cao Yuhong, Melosh Nicholas A

机构信息

Department of Materials Science and Engineering, Stanford University, 476 Lomita Mall, Stanford, CA, 94305, USA.

Present address: Chemistry and Chemical Engineering Division, California Institute of Technology, 1200 E California Boulevard, Pasadena, CA, 91106, USA.

出版信息

Chembiochem. 2017 Apr 4;18(7):623-628. doi: 10.1002/cbic.201600689. Epub 2017 Mar 14.

Abstract

Bioorthogonal chemistry is an effective tool for elucidating metabolic pathways and measuring cellular activity, yet its use is currently limited by the difficulty of getting probes past the cell membrane and into the cytoplasm, especially if more complex probes are desired. Here we present a simple and minimally perturbative technique to deliver functional probes of glycosylation into cells by using a nanostructured "nanostraw" delivery system. Nanostraws provide direct intracellular access to cells through fluid conduits that remain small enough to minimize cell perturbation. First, we demonstrate that our platform can deliver an unmodified azidosugar, N-azidoacetylmannosamine, into cells with similar effectiveness to a chemical modification strategy (peracetylation). We then show that the nanostraw platform enables direct delivery of an azidosugar modified with a charged uridine diphosphate group (UDP) that prevents intracellular penetration, thereby bypassing multiple enzymatic processing steps. By effectively removing the requirement for cell permeability from the probe, the nanostraws expand the toolbox of bioorthogonal probes that can be used to study biological processes on a single, easy-to-use platform.

摘要

生物正交化学是阐明代谢途径和测量细胞活性的有效工具,但其应用目前受到阻碍,难以将探针穿过细胞膜并进入细胞质,特别是在需要更复杂的探针时。在此,我们展示了一种简单且对细胞扰动极小的技术,通过使用纳米结构的“纳米吸管”递送系统,将糖基化功能探针递送至细胞内。纳米吸管通过流体管道为细胞提供直接的细胞内通路,管道尺寸足够小,可将细胞扰动降至最低。首先,我们证明我们的平台能够将未修饰的叠氮糖N - 叠氮乙酰甘露糖胺递送至细胞内,其效果与化学修饰策略(全乙酰化)相似。然后,我们表明纳米吸管平台能够直接递送带有带电荷的尿苷二磷酸基团(UDP)修饰的叠氮糖,该修饰会阻止其进入细胞内,从而绕过多个酶促加工步骤。通过有效消除探针的细胞渗透性要求,纳米吸管扩展了生物正交探针的工具库,可用于在单一、易于使用的平台上研究生物过程。

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