蝎毒镇痛活性肽Bm K Ang M1是从东亚钳蝎(Buthus martensii Karsch)蝎毒中分离得到的一种新型长链蝎毒素,其镇痛活性强且毒性低,有望开发成镇痛新药。本文将Bm K Ang M1基因转入毕赤酵母(Pichia pastoris)GS115,筛选得到甲醇利用缓慢型(...蝎毒镇痛活性肽Bm K Ang M1是从东亚钳蝎(Buthus martensii Karsch)蝎毒中分离得到的一种新型长链蝎毒素,其镇痛活性强且毒性低,有望开发成镇痛新药。本文将Bm K Ang M1基因转入毕赤酵母(Pichia pastoris)GS115,筛选得到甲醇利用缓慢型(Muts)和快速型(Mut+)的重组子;采用实时荧光定量PCR方法,检测了Mut+重组子中Bm K Ang M1基因的拷贝数,筛选出含单拷贝Bm K Ang M1基因的Mut+重组子;在相同培养条件下,比较了含单拷贝Bm K Ang M1基因的Muts和Mut+重组子表达Bm K Ang M1的水平。结果表明,Muts重组子中Bm K Ang M1基因转录水平是Mut+重组子的2.7倍,Muts重组子中Bm K Ang M1蛋白表达量是Mut+重组子的1.5倍。因此,Muts重组子比Mut+重组子具有更强的Bm K Ang M1表达能力。展开更多
The MutS protein plays an important role in the DNA mismatch repair system. Mutations in the mutS gene can lead to genome instability and ultimately cell malfunction. Here we have established a method for identifying ...The MutS protein plays an important role in the DNA mismatch repair system. Mutations in the mutS gene can lead to genome instability and ultimately cell malfunction. Here we have established a method for identifying functional defective mutants of MutS by random mutation and rifampicin screening. Some novel functional sites in MutS were identified. The MutS mutant strains were analyzed using surface plasmon resonance, gel filtration and far-western methods to determine the molecular mechanisms behind the DNA mismatch repair function of MutS.展开更多
文摘蝎毒镇痛活性肽Bm K Ang M1是从东亚钳蝎(Buthus martensii Karsch)蝎毒中分离得到的一种新型长链蝎毒素,其镇痛活性强且毒性低,有望开发成镇痛新药。本文将Bm K Ang M1基因转入毕赤酵母(Pichia pastoris)GS115,筛选得到甲醇利用缓慢型(Muts)和快速型(Mut+)的重组子;采用实时荧光定量PCR方法,检测了Mut+重组子中Bm K Ang M1基因的拷贝数,筛选出含单拷贝Bm K Ang M1基因的Mut+重组子;在相同培养条件下,比较了含单拷贝Bm K Ang M1基因的Muts和Mut+重组子表达Bm K Ang M1的水平。结果表明,Muts重组子中Bm K Ang M1基因转录水平是Mut+重组子的2.7倍,Muts重组子中Bm K Ang M1蛋白表达量是Mut+重组子的1.5倍。因此,Muts重组子比Mut+重组子具有更强的Bm K Ang M1表达能力。
基金supported by the National Natural Science Foundation of China (Grant No. 30670443)the Chinese Academy of Sciences (Grant Nos. KSCX1-YW-R-63, KSCX2-YW-G-017 and KZCX2-YW-420)
文摘The MutS protein plays an important role in the DNA mismatch repair system. Mutations in the mutS gene can lead to genome instability and ultimately cell malfunction. Here we have established a method for identifying functional defective mutants of MutS by random mutation and rifampicin screening. Some novel functional sites in MutS were identified. The MutS mutant strains were analyzed using surface plasmon resonance, gel filtration and far-western methods to determine the molecular mechanisms behind the DNA mismatch repair function of MutS.