Plasmid Info:
Plasmid Information
Product Name: pSF-CMV-Puro-NH2-6His-Rluc-EKT
Product Code: OG1285
Size (bp): 7115 bp
Bacterial Antibiotic Selection: KanR
Origin and Compatibility: pUC high copy derived from pBR322
Bacterial Copy Number: 500-700 per cell
Promoter: Cytomegalovirus (CMV) immediate early promoter / Human Ubiquitin Promoter
Plasmid Purpose:
This plasmid is designed to express tagged proteins in mammalian cells either by transient transfection or by creating stable cell lines. It contains a puromycin resistance expression cassette using the human Ubiquitin promoter to drive expression and allow for the selection of cells containing the plasmid.
About the Cleavage Tag:This plasmid also encodes a protease cleavage site that is designed to be positioned between your gene of interest and the tag to allow the removal of the tag following protein purification or isolation. This plasmid contains a EKT cleavage tag. The protein sequence of the cleavage tag is: DDDDK. Enterokinase (EKT) protease cleaves after the Lysine residue. It can cleave at other basic residues but this is dependent on protein confirmation. If a proline follows the site it will not cut. None of our products contain a proline after the site.
For more information on which cleavage tag to use see our cleavage tag guide.
Promoter Expression Level:This plasmid contains the mammalian CMV promoter to drive gene expression. We have tested all of our mammalian promoters in a range of cell types and CMV is consistently the strongest in those we have studied. However there are many reports of the CMV promoter demonstrating silencing by methylation in long-term culture. For this reason we stock a range of other promoters that are compatible with this plasmid and are available on request.

This plasmid contains an n-terminal Renilla luciferase reporter tag that can be fused to a gene of interest to allow protein detection.
This plasmid also contains a secondary Hexa-Histidine (6His) protein tag. The sequence of this tag is: HHHHHH
We provide a range of dual peptide tag plasmids. This is because some peptide tags provide specific biological properties (e.g small molecule affinity new epitopes solubility or protein secretion) that are not provided by others.
Sequence and Map:
Other Info:
Transcription Termination:This plasmid contains three alternative transcription terminators for mammalian bacterial and bacteriophage (T7) expression. This means that only the promoter needs to be changed to alter the expression system you are using. We sell multiple promoters that can be used in each of these systems. The presence of each terminator does not reduce expression in the alternative systems.
Cloning:
Making Protein Fusions:This plasmid has been designed to allow three types of cloning into the main MCS to join a coding sequence with the tag.
1: SnapFusion Cloning:If you would like to fuse your coding sequence to the tag with minimal additional bases you can use our SnapFusion technology. This process involves amplifying your gene by PCR to add specific restriction sites onto the ends. When these sites are cut they produce an overhang that is compatible with this plasmid cut with BseRI or BsgI.
To insert your gene:
1: Amplify your gene with primers designed using this spreadsheet
2: Cut the plasmid with either BseRI or BsgI.*
3: Cut your gene with the enzyme you added using the spreadsheet (any of AcuI BpmI BpuEI BseRI BsgI EciI).
4: Clone the gene into the plasmid using DNA ligase.
Using this method with an N-terminal tag plasmid will result in the tag coding sequence immediately followed by your genes ATG start codon at the join. This results in a seamless fusion of the two sequences with no extra bases being added. Using this method on C-terminal tag plasmids will convert your genes stop codon into a TAC (Tyr Y) codon followed by the plasmid tag coding sequence. This results in no extra bases between your gene and the tag. See the diagram below for more information.
*Please note that insect expression plasmids cannot be cut with BsgI only BseRI because of unavoidable conflicting sites in the backbone. Also Yeast plasmids cannot be cut with BseRI because of unavoidable restriction sites in the backbone.
Using this technique will create a gene fragment that can be ligated into any or our >1500 peptide and reporter tag plasmids. If you use one of the other techniques below (Gibson InFusion Seamless or LIC) you will need new primers for every vector you clone into because the arms of homology will change according to the tag plasmid you are cloning into.
If you find that your gene sequence has sites in it that make using this cloning strategy difficult you can still use one of the alternative methods below (e.g. standard cloning or Gibson cloning).
Open the Primer Design Tool to help you design primers for cloning your gene in our SnapFusion technique.
2: Standard Enzymes:If you are not concerned about leaving a few extra bases between the tag coding sequence and your gene you can clone your gene into the vector using standard cloning restriction enzymes. This strategy will require you to choose which enzymes you want to use to clone your gene.
Open the Primer Design Tool which provides primers with different enzyme choices positioning your gene as close to the tag as possible in each case. Please note that standard enzymes will always leave additional nucleotides between your gene and the tag but using the spreadsheet will ensure the tag and gene are in frame.
3: Gibson cloning/InfusionHD/GeneArt Seamless/Ligase Independent Cloning (LIC) Methods:
These cloning techniques use reagents sold by other companies and allow you to fuse sequences together using enzymes that chew back the DNA to leave overlapping ends/overhangs. The subsequent method of joining the DNA depends on the kit used. To use one of these techniques you can either design your own primers or you can use the spreadsheet below to help with the design.
Open the Primer Design Tool to help you design primers for cloning your gene using Gibson assembly InfusionHD GeneArt Seamless cloning or Ligase Independent Cloning (LIC) techniques.

IP Status:
Intellectual Property StatusThis product is part of our SnapFast plasmid range, for more information on the Intellectual property status of this plasmid please click here
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启动子是RNA聚合酶能够识别并与之结合,从而起始基因转录的一段DNA序列,通常位于基因上游.一个典型的启 动子包括CAAT-box和TATA-box,它们分别依赖DNA的RNA聚合酶的识别和结合位点,一般位于转录起始位点上游几十个碱基处.在核心启动子上 游通常会有一些特殊的DNA序列,即顺式作用元件,转录因子与之结合从而激活或抑制基因的转录.一旦RNA聚合酶定位并结合在启动子上即可 启动基因转录,因此启动子是基因表达调控的重要元件,它与RNA聚合酶及其他蛋白辅助因子等反式作用因子的相互作用是启动子调控基因转录的实质.
根据启动子的转录模式可将其分为3类:组成型启动子、组织或器官特异性启动子和诱导型启动子.
似乎都是鉴定目的基因是否导入受体细胞 没有鉴定是否成功导入质粒的 鉴定目的基因是否导入受体细胞有四个层次 1 直接鉴定受体细胞中是否有目的基因 用DNA分子杂交 2 鉴定目的基因是否转录 分子杂交(mRNA) 3 目的基因是否表达 抗原-抗体 (蛋白质) 4 看受体细胞发育成的个体是否表现出相关性状
各位大神,我现在用PET28α作为表达载体,在连接的时候是不是载体要进行双酶切、胶回收?我双酶切的目的片段和PET28α连接后,导入感受态中没有成功,不知道怎么回事,请教各位。
2、基因表达载体的构建
(1)目的:使目的基因在受体细胞中稳定存在并且可以遗传给下一代并表达和发挥作用.(2)基因表达载体的组成:目的基因+启动子+终止子+标记基因
②启动子在基因的首段,它是RNA聚合酶的结合位点,能控制着转录的开始,故②正确;
③终止子在基因的尾端,它控制着转录的结束,故③正确;
④由于受体细胞有植物、动物以及微生物之分,以及目的基因导入受体细胞的方法不同,因此基因表达载体的构建是不完全相同的,

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