A mammalian expression system for rapid production and purification of active MAP kinase phosphatases

被引:26
作者
Chen, PL [1 ]
Hutter, D [1 ]
Liu, PH [1 ]
Liu, YS [1 ]
机构
[1] NIA, Stress Signaling Unit, Cellular & Mol Biol Lab, NIH,Intramural Res Program, Baltimore, MD 21224 USA
关键词
D O I
10.1006/prep.2001.1599
中图分类号
Q5 [生物化学];
学科分类号
071010 ; 081704 ;
摘要
Expression of enzymatically active mammalian proteins in Escherichia coli can proven to be a challenging task due to poor solubility, improper folding, and lack of adequate posttranslational modification. Expression of mammalian proteins using baculovirus or yeast systems is time-consuming and may also be subject to inadequate modification. In order to overcome these technical difficulties, we have developed a mammalian expression system for the convenient subcloning of cDNA fragments, high-level expression, and one-step purification of enzymatically active proteins. The mammalian expression vector pEBG that expresses glutathione S-transferase fusion proteins was modified to create an SrfI restriction site in the multiple cloning site. The protein coding sequences of ALAP kinase phosphatase-1 (MKP-1), MAP kinase phosphatase-2 (MKP2), and the tumor suppressor PTEN were PCR-amplified using Pfu DNA polymerase and cloned into the SrfI site through SrfI digestion-coupled ligation. The resulting plasmids were transiently transfected into 293T cells using FuGENE 6 transfection reagent. Forty eight hours after transfection, cells were harvested and bioactive recombinant proteins were purified by glutathione-Sepharose beads. Protein yield, which ranged from 200 to 700 jug, was more than adequate for biochemical studies. The usefulness of this versatile system for studying protein function and its potential application for proteomics research are discussed. (C) 2002 Elsevier Science (USA).
引用
收藏
页码:481 / 488
页数:8
相关论文
共 29 条
[1]  
BENDIG MM, 1988, GENETIC ENG, V7, P91
[2]  
Brawner Mary E., 1994, Current Opinion in Biotechnology, V5, P475, DOI 10.1016/0958-1669(94)90060-4
[3]   Catalytic activation of the phosphatase MKP-3 by ERK2 mitogen-activated protein kinase [J].
Camps, M ;
Nichols, A ;
Gillieron, C ;
Antonsson, B ;
Muda, M ;
Chabert, C ;
Boschert, U ;
Arkinstall, S .
SCIENCE, 1998, 280 (5367) :1262-1265
[4]   Dual specificity phosphatases: a gene family for control of MAP kinase function [J].
Camps, M ;
Nichols, A ;
Arkinstall, S .
FASEB JOURNAL, 2000, 14 (01) :6-16
[5]   Discordance between the binding affinity of mitogen-activated protein kinase subfamily members for MAP kinase phosphatase-2 and their ability to activate the phosphatase catalytically [J].
Chen, PL ;
Hutter, D ;
Yang, XL ;
Gorospe, M ;
Davis, RJ ;
Liu, YS .
JOURNAL OF BIOLOGICAL CHEMISTRY, 2001, 276 (31) :29440-29449
[6]   The mitogen-activated protein kinase phosphatases PAC1, MKP-1, and MKP-2 have unique substrate specificities and reduced activity in vivo toward the ERK2 sevenmaker mutation [J].
Chu, YF ;
Solski, PA ;
KhosraviFar, R ;
Der, CJ ;
Kelly, K .
JOURNAL OF BIOLOGICAL CHEMISTRY, 1996, 271 (11) :6497-6501
[7]  
Dowd S, 1998, J CELL SCI, V111, P3389
[8]   ANALYSIS OF MUTATION IN HUMAN-CELLS BY USING AN EPSTEIN-BARR-VIRUS SHUTTLE SYSTEM [J].
DUBRIDGE, RB ;
TANG, P ;
HSIA, HC ;
LEONG, PM ;
MILLER, JH ;
CALOS, MP .
MOLECULAR AND CELLULAR BIOLOGY, 1987, 7 (01) :379-387
[9]   Transgenic plants as factories for biopharmaceuticals [J].
Giddings, G ;
Allison, G ;
Brooks, D ;
Carter, A .
NATURE BIOTECHNOLOGY, 2000, 18 (11) :1151-1155
[10]  
Hagenson M J, 1991, Bioprocess Technol, V12, P193