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用于感染细胞磁分选和提高滴度测定的杆状病毒表达系统

Baculovirus expression system for magnetic sorting of infected cells and enhanced titer determination.

作者信息

Philipps Björn, Forstner Michael, Mayr Lorenz M

机构信息

Novartis Pharma AG, Lead Discovery Center (LDC), CH-4002 Basel, Switzerland.

出版信息

Biotechniques. 2004 Jan;36(1):80-3. doi: 10.2144/04361ST03.

DOI:10.2144/04361ST03
PMID:14740489
Abstract

Recombinant baculoviruses derived from the Autographa californica nuclear polyhedrosis virus (AcNPV) are widely used to express heterologous genes in insect cells, but the use of the baculovirus expression vector system (BEVS) is hampered by slow and tedious procedures for the selection and separation of baculovirus-infected insect cells and for titer determination. Here we developed a new technology based on the bicistronic vector with a fusion protein of the human integral plasma membrane glycoprotein CD4 and green fluorescent protein (GFP) for concomitant expression of target proteins in insect Sf21 cells. Magnetic cell sorting (MACS) technology with anti-CD4 antibody-labeled superparamagnetic beads was used to separate the baculovirus-infected from the noninfected insect cells and therefore to increase the virus titer and to reduce process time. With the herein described use of the MACS-improved baculovirus expression plasmid MACS in baculovirus expression (pMACSiBac-1), we have been able to select the baculovirus-infected insect cells at an early time point of the infection cycle and therefore enrich the virus titer dramatically. Furthermore, simple end point dilution and GFP fluorescence detection can be used for early and facile detection of recombinant viruses and simplified titer determinations. We show that the bicistronic pMACSiBac-1 with an additional multiple cloning site under the control of the very late promoter polyhedrin (PPH) allows for the expression of target proteins in high amounts, less workloads, and shorter timelines.

摘要

源自苜蓿银纹夜蛾核型多角体病毒(AcNPV)的重组杆状病毒被广泛用于在昆虫细胞中表达异源基因,但杆状病毒表达载体系统(BEVS)的使用受到杆状病毒感染昆虫细胞的选择和分离以及滴度测定的缓慢且繁琐程序的阻碍。在此,我们基于双顺反子载体开发了一项新技术,该载体带有人类完整质膜糖蛋白CD4与绿色荧光蛋白(GFP)的融合蛋白,用于在昆虫Sf21细胞中同时表达靶蛋白。利用抗CD4抗体标记的超顺磁性珠的磁性细胞分选(MACS)技术来分离被杆状病毒感染的昆虫细胞与未感染的昆虫细胞,从而提高病毒滴度并缩短操作时间。通过在此描述的在杆状病毒表达中使用经MACS改进的杆状病毒表达质粒MACS(pMACSiBac-1),我们能够在感染周期的早期时间点选择被杆状病毒感染的昆虫细胞,从而显著提高病毒滴度。此外,简单的终点稀释和GFP荧光检测可用于早期且简便地检测重组病毒以及简化滴度测定。我们表明,具有在极晚期启动子多角体蛋白(PPH)控制下的额外多克隆位点的双顺反子pMACSiBac-1能够大量表达靶蛋白,工作量更少且时间线更短。

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