通过敲除ATF4基因增强HEK293T细胞膜蛋白的产生:CRISPR-Cas9介导的方法

0 MEDICINE, RESEARCH & EXPERIMENTAL
Byung-Jo Choi, Ba Reum Kim, Ho Joong Choi, Ok-Hee Kim, Say-June Kim
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引用次数: 0

摘要

HEK293T细胞由于其人类起源而被广泛用于治疗性蛋白生产,从而实现准确的翻译后修饰。本研究旨在利用CRISPR-Cas9技术敲除ATF4基因,从而增强HEK293T细胞膜蛋白的产生。用携带优化单导RNA (ATF4- ko -3)和Cas9基因的慢病毒感染HEK293T细胞,对ATF4基因进行编辑。采用一体化和双矢量系统进行比较评价。利用下一代测序技术(NGS)和膜蛋白分离试剂盒对atf4敲除(KO)细胞的基因组测序和膜蛋白产量与野生型(WT)细胞进行比较。单细胞分析证实了基因编辑模式,NGS验证了预期的缺失。膜蛋白的产生也通过流式细胞术间接评估,分析表达膜-绿色荧光蛋白的细胞。与WT细胞相比,ATF4-KO细胞的膜蛋白产量显著增加,提高了52.2±19.0%。比较了两种递送系统的基因编辑效率,基于T7核酸内切酶I检测,双载体系统显示出更高的效率。Western blot分析证实ATF4抑制,膜蛋白表达增加,包括E-cadherin和CD63。通过PAGE进行的定量分析显示,纯化膜蛋白的产量增加了77.2±30.6%,与观察到的增强一致。使用Membrane-GFP的流式细胞术进一步显示了22.9±9.7%的生产力提高。综上所述,ATF4敲除显著提高了HEK293T细胞的膜蛋白产量,通过实现更有效的蛋白质合成,为生物制药制造提供了潜在的改进。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Enhanced membrane protein production in HEK293T cells via ATF4 gene knockout: A CRISPR-Cas9 mediated approach.

HEK293T cells are extensively utilized for therapeutic protein production due to their human origin, which enables accurate post-translational modifications. This study aimed to enhance membrane protein production in HEK293T cells by knocking out the ATF4 gene using CRISPR-Cas9 technology. The ATF4 gene was edited by infecting HEK293T cells with a lentivirus carrying optimized single-guide RNA (ATF4-KO-3) and Cas9 genes. Comparative evaluations were conducted using all-in-one and two-vector systems. Genome sequencing and membrane protein productivity of ATF4-knockout (KO) cells were compared to wild-type (WT) cells using next-generation sequencing (NGS) and a membrane protein isolation kit, respectively. Single-cell analysis confirmed gene editing patterns, with NGS verifying the intended deletions. Membrane protein production was also assessed indirectly via flow cytometry, analyzing cells expressing Membrane-GFP. Compared to WT cells, ATF4-KO cells exhibited a significant increase in membrane protein production, with a 52.2 ± 19.0% improvement. Gene editing efficiency was compared between the two delivery systems, with the two-vector system demonstrating higher efficiency based on T7 endonuclease I assays. Western blot analysis confirmed ATF4 suppression and increased expression of membrane proteins, including E-cadherin and CD63. Quantitative analysis via PAGE revealed a 77.2 ± 30.6% increase in purified membrane protein yields, consistent with the observed enhancements. Flow cytometry using Membrane-GFP further demonstrated a 22.9 ± 9.7% increase in productivity. In summary, ATF4 knockout significantly enhances membrane protein production in HEK293T cells, offering potential improvements in biopharmaceutical manufacturing by enabling more efficient protein synthesis.

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