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金属微环器件,利用红外光脉冲在哺乳动物细胞中实现高效的大 cargo 传递。

Metallic micro-ring device for highly efficient large cargo delivery in mammalian cells using infrared light pulses.

机构信息

Department of Engineering Design, Indian Institute of Technology Madras, Chennai, India.

Indian Institute of Science Education and Research, Tirupati, India.

出版信息

Lab Chip. 2023 May 2;23(9):2175-2192. doi: 10.1039/d2lc00899h.

Abstract

Uniform transfection of biomolecules into live cells with high delivery efficiency and cell viability is an immensely important area of biological research and has many biomedical applications. In the present study, we report highly efficient, uniform parallel intracellular delivery of small to very large biomolecules into diverse cell types using a titanium micro-ring (TMR) device activated by infrared (IR) light pulse. A TMR array device (2 cm × 2 cm) consists of a 10 μm outer diameter and 3 μm inner diameter for each micro-ring, and 10 μm interspacing between two micro-rings. Upon IR (1050 nm) pulse laser irradiation on the TMR device, photothermal cavitation bubbles are generated, disrupting the cell plasma membrane, and biomolecules are gently delivered into the cells by a simple diffusion process. This TMR device successfully delivered diverse types of small to very large biomolecules such as propidium iodide (PI; 668.4 Da) dye, dextran (3 kDa), small interfering RNA (13.3 kDa), enhanced green fluorescent protein expression plasmid DNA (6.2 kb), and β-galactosidase enzyme (465 kDa) into human cervical (SiHa), mouse fibroblast (L929), and mouse neural crest-derived (N2a) cancer cells. For smaller molecules (PI dye), delivery efficiency and cell viability were achieved at ∼96% and ∼97%, respectively, with a laser fluence of 21 mJ cm for 250 pulses. In contrast, ∼85% transfection efficiency and ∼90% cell viability were achieved for plasmid DNA with 45 mJ cm laser fluence for 250 pulses in SiHa cells. Moreover, the intracellular delivery of β-galactosidase enzyme was confirmed with confocal microscopy and flow cytometry analysis resulting in ∼83% co-staining of β-galactosidase enzyme and calcein AM. Based on these efficient deliveries of diverse types of biomolecules in different cell types, the device has the potential for cellular diagnostic and therapeutic applications.

摘要

高效、均匀地将小到非常大的生物分子平行递送到各种细胞类型中,同时保持高转染效率和细胞活力,是生物医学研究中一个极其重要的领域,具有广泛的应用前景。在本研究中,我们报告了一种使用钛微环(TMR)装置和红外(IR)光脉冲高效、均匀地将小到非常大的生物分子平行递送到各种细胞类型中的方法。TMR 阵列装置(2cm×2cm)由每个微环的外径 10μm、内径 3μm 以及两个微环之间 10μm 的间隔组成。当 TMR 装置受到 IR(1050nm)脉冲激光照射时,会产生光热空化气泡,破坏细胞膜,然后通过简单的扩散过程将生物分子轻柔地递送到细胞内。该 TMR 装置成功地将各种类型的小到非常大的生物分子,如碘化丙啶(PI;668.4Da)染料、葡聚糖(3kDa)、小干扰 RNA(13.3kDa)、增强型绿色荧光蛋白表达质粒 DNA(6.2kb)和β-半乳糖苷酶酶(465kDa)递送到人宫颈(SiHa)、小鼠成纤维细胞(L929)和小鼠神经嵴衍生(N2a)癌细胞中。对于较小的分子(PI 染料),在激光强度为 21mJcm、脉冲数为 250 个的条件下,转染效率和细胞活力分别达到约 96%和 97%。相比之下,在 SiHa 细胞中,当激光强度为 45mJcm、脉冲数为 250 个时,质粒 DNA 的转染效率约为 85%,细胞活力约为 90%。此外,通过共聚焦显微镜和流式细胞术分析证实了β-半乳糖苷酶酶的细胞内递送,结果表明β-半乳糖苷酶酶与钙黄绿素 AM 的共染色率约为 83%。基于这种在不同细胞类型中高效传递各种类型生物分子的能力,该装置具有用于细胞诊断和治疗的应用潜力。

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