Feizollahzadeh Sadegh, Kouhpayeh Shirin, Rahimmansh Ilnaz, Khanahmad Hossein, Sabzehei Faezeh, Ganjalikhani-Hakemi Mazdak, Andalib Alireza, Hejazi Zahra, Rezaei Abbas
Department of Immunology, School of Medicine, Isfahan University of Medical Sciences, Isfahan, 81746-73461 Iran.
Department of Molecular Biology and Genetics, School of Medicine, Isfahan University of Medical Sciences, Isfahan, 81746-73461 Iran.
Iran J Biotechnol. 2017 Aug 19;15(2):128-134. doi: 10.15171/ijb.1467. eCollection 2017.
is still the common host for ing and heterologous protein expression. Various strategies have been employed to increase protein expression in , but, it seems that external factors such as selection marker concentration can drastically affect the yield of protein and plasmid. Alterations of protein expression and plasmid yields of in different concentrations of ampicillin, as selection marker, will be determined. In order to improve heterologous expression, the system will be redesigned and optimized. The expression cassette of codon optimized EGFP for was synthesized in pUC57. The pUC57-GFP was transformed into . The expression of GFP was verified by SDS-PAGE and flow cytometry after induction by IPTG (0.5 mM) and incubation with 0, 100, 200 and 300 μg.mL ampicillin. Plasmid copy numbers of samples were determined by Real-Time PCR on AMP gene using regression line of diluted standard curve. GFP expressing clones formed fair green colonies on LB agar supplemented with 0.5 mM IPTG and showed fluorescence in FL1 filter of flow cytometry and an extra protein band on SDS-PAGE gel. The fluorescent intensity of GFP in 0, 100, 200 and 300 μg.mL ampicillin in medium were 549.83, 549.78, 1443.52, 684.87, and plasmid copy numbers were 6.07×10 , 3.21×10 , 2.32×10 , 8.11×10 , respectively. The plasmid yields were 55 ng.μL, 69 ng.μL, 164 ng.μL and 41 ng.μL, respectively. Protein and plasmid yields of are variable in different concentrations of ampicillin and need to be optimized in newly designed expression systems. Protein and plasmid yield in the optimized concentration (200 μg.mL) was significantly (p < 0.01) higher than other doses.
仍然是进行同源和异源蛋白表达的常用宿主。已经采用了各种策略来提高在其中的蛋白表达,但是,似乎诸如选择标记浓度等外部因素会极大地影响蛋白和质粒的产量。将确定在不同浓度的氨苄青霉素(作为选择标记)下的蛋白表达和质粒产量的变化。为了改善异源表达,将对该系统进行重新设计和优化。在pUC57中合成了用于的密码子优化的EGFP的表达盒。将pUC57-GFP转化到中。在用IPTG(0.5 mM)诱导并用0、100、200和300μg/mL氨苄青霉素孵育后,通过SDS-PAGE和流式细胞术验证GFP的表达。使用稀释标准曲线的回归线通过实时PCR在AMP基因上测定样品的质粒拷贝数。表达GFP的克隆在补充有0.5 mM IPTG的LB琼脂上形成了相当绿色的菌落,并在流式细胞术的FL1滤光片中显示出荧光,并且在SDS-PAGE凝胶上有一条额外的蛋白带。培养基中0、100、200和300μg/mL氨苄青霉素中GFP的荧光强度分别为549.83、549.78、1443.52、684.87,质粒拷贝数分别为6.07×10、3.21×10、2.32×10、8.11×10。质粒产量分别为55 ng/μL、69 ng/μL、164 ng/μL和41 ng/μL。在不同浓度的氨苄青霉素中,的蛋白和质粒产量是可变的,需要在新设计的表达系统中进行优化。优化浓度(200μg/mL)下的蛋白和质粒产量显著(p <0.01)高于其他剂量。