Isolation and characterization of an insect cell line able to perform complex N-linked glycosylation on recombinant proteins

被引:58
作者
Ogonah, OW [1 ]
Freedman, RB [1 ]
Jenkins, N [1 ]
Patel, K [1 ]
Rooney, BC [1 ]
机构
[1] UNIV KENT,BIOL LAB,RES SCH BIOSCI,CANTERBURY CT2 7NJ,KENT,ENGLAND
来源
BIO-TECHNOLOGY | 1996年 / 14卷 / 02期
关键词
D O I
10.1038/nbt0296-197
中图分类号
Q81 [生物工程学(生物技术)]; Q93 [微生物学];
学科分类号
071005 ; 0836 ; 090102 ; 100705 ;
摘要
Site specific characterization of the N-glycan structures in human interferon gamma (IFN-gamma) derived from baculovirus-infected insect cells was performed using a combination of reverse-phase, high-performance liquid chromatography (rHPLC) and matrix assisted laser desorption time of flight (MALDI-TOF) mass spectrometry, IFN-gamma was produced in two cell lines, an Estigmena acrea-derived subclone (Ea4), and Spodoptera frugiperda cells (Sf9), Both IFN-gamma N-glycosylation sites (Asn(25) and Asn(97)) were characterized, Site-specific differences were observed in both the percentage of sites occupied by N-linked glycans and the types of structure associated with each site, The glycosylation capabilities and glycan processing of Sf9 were limited to the generation of chitobiose [GlcNAc(2)], truncated tri-mannose core [Man(3)GlcNAc(2)], or oligomannose structures, The glycosylation abilities of Ea4 cells were more extensive, producing IFN-gamma molecules incorporating oligosaccharides with GlcNAc and Gal residues on the outer arms (hybrid or complex type N-glycans), as well as oligomannose N-glycans, Incorporation of an alpha 1-6 linked fucose residue (<70% in Sf9 and <88% in Ea4) was confined to the Asn(25) glycosylation site. These findings demonstrate the more extensive N-glycosylation capabilities of the E(1) acrea-derived Ea4, compared to current insect cell lines used for the expression of recombinant proteins.
引用
收藏
页码:197 / 202
页数:6
相关论文
共 45 条
[21]   DIFFERENTIAL PURIFICATION BY IMMUNOAFFINITY CHROMATOGRAPHY OF 2 CARBOXY-TERMINAL PORTION-DELETED DERIVATIVES OF RECOMBINANT HUMAN INTERFERON-GAMMA FROM ESCHERICHIA-COLI [J].
HONDA, S ;
ASANO, T ;
KAJIO, T ;
NAKAGAWA, S ;
IKEYAMA, S ;
ICHIMORI, Y ;
SUGINO, H ;
NARA, K ;
KAKINUMA, A ;
KUNG, HF .
JOURNAL OF INTERFERON RESEARCH, 1987, 7 (02) :145-154
[22]  
HOOKER AD, 1995, IN PRESS BIOTECH BIO, V48
[23]  
HSIEH P, 1984, J BIOL CHEM, V259, P2375
[24]   HIGH-RESOLUTION SEPARATION OF RECOMBINANT HUMAN INTERFERON-GAMMA GLYCOFORMS BY MICELLAR ELECTROKINETIC CAPILLARY CHROMATOGRAPHY [J].
JAMES, DC ;
FREEDMAN, RB ;
HOARE, M ;
JENKINS, N .
ANALYTICAL BIOCHEMISTRY, 1994, 222 (02) :315-322
[25]   N-GLYCOSYLATION OF RECOMBINANT HUMAN INTERFERON-GAMMA PRODUCED IN DIFFERENT ANIMAL EXPRESSION SYSTEMS [J].
JAMES, DC ;
FREEDMAN, RB ;
HOARE, M ;
OGONAH, OW ;
ROONEY, BC ;
LARIONOV, OA ;
DOBROVOLSKY, VN ;
LAGUTIN, OV ;
JENKINS, N .
BIO-TECHNOLOGY, 1995, 13 (06) :592-596
[26]   GLYCOSYLATION AND SECRETION OF HUMAN-TISSUE PLASMINOGEN-ACTIVATOR IN RECOMBINANT BACULOVIRUS-INFECTED INSECT CELLS [J].
JARVIS, DL ;
SUMMERS, MD .
MOLECULAR AND CELLULAR BIOLOGY, 1989, 9 (01) :214-223
[27]   BIOCHEMICAL-ANALYSIS OF THE N-GLYCOSYLATION PATHWAY IN BACULOVIRUS-INFECTED LEPIDOPTERAN INSECT CELLS [J].
JARVIS, DL ;
FINN, EE .
VIROLOGY, 1995, 212 (02) :500-511
[28]   GLYCOSYLATION OF RECOMBINANT PROTEINS - PROBLEMS AND PROSPECTS [J].
JENKINS, N ;
CURLING, EMA .
ENZYME AND MICROBIAL TECHNOLOGY, 1994, 16 (05) :354-364
[29]  
Kenney A, 1988, Methods Mol Biol, V3, P99, DOI 10.1385/0-89603-126-8:99
[30]  
KLENK HD, 1992, P WORKSHIP BACULOVIR, P166