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商品详细scarabgenomics/ScarabXpress®T7 lac化学活性细胞试剂盒/CurrencyDecimalSeparator:,CurrencyGroupSeparator:,CurrencyGroupSizes:,,CurrencyGroupSizes:[3],CurrencyNegativePattern:14,CurrencyPositivePattern:2,CurrencySymbol:$,NumberDecimalDigits:2,N
scarabgenomics/ScarabXpress®T7 lac化学活性细胞试剂盒/CurrencyDecimalSeparator:,CurrencyGroupSeparator:,CurrencyGroupSizes:,,CurrencyGroupSizes:[3],CurrencyNegativePattern:14,CurrencyPositivePattern:2,CurrencySymbol:$,NumberDecimalDigits:2,N
scarabgenomics/ScarabXpress®T7 lac化学活性细胞试剂盒/CurrencyDecimalSeparator:,CurrencyGroupSeparator:,CurrencyGroupSizes:,,CurrencyGroupSizes:[3],CurrencyNegativePattern:14,CurrencyPositivePattern:2,CurrencySymbol:$,NumberDecimalDigits:2,N
商品编号: C-1709-05
品牌: scarabgenomics
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产品分类: 细胞计数仪
公司分类: Cell_counter
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电话号码: 4000-520-616
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商品介绍

Background

Using synthetic biology methods, the Escherichia coli K-12 genome was reduced by making a series of planned, precise deletions. The multiple-deletion series (MDS™) platform exemplifies the “Clean Genome®” concept, providing bacterial strains with ideal characteristics for regulated biopharmaceutical applications:

  • Scarab Genomics has engineered its Clean Genome® E. coli hosts for robust growth in minimal salts media, allowing production under strictly defined conditions.
  • Plasmid and genomic stability are enhanced because transposable insertion sequences (I.S. elements) have been eliminated.
  • Cultures are more stable because cryptic prophage were deleted, eliminating spontaneous cell lysis.
  • Genes for toxins, virulence factors, flagella and fimbrae have also been removed to improve product purity and safety.
  • Cells can continue to grow during protein expression because over 700 non-essential genes are eliminated and no longer compete for cellular resources, increasing metabolic efficiency
  • High yields of recombinant protein drives down post fermentation processing costs.

The ScarabXpress T7 lac host strain carries the gene for T7 RNA polymerase on its chromosome under the control of a modified lac promoter and operator and is designed for use with T7 promoter based expression vectors. The dynamics of recombinant protein induction are significantly different in this host than in those experienced with the commonly used expression host BL21(DE3). In minimal medium lacking lactose, the ScarabXpress® T7 lac strain has more tightly regulated protein expression than BL21(DE3), providing the ability to reproducibly and precisely control induction. ScarabXpress T7 lac utilizes the wild-type lac promoter, which is of lower strength relative to the lacUV5 variant present in BL21(DE3). Moreover, the wild-type lac promoter is subject to regulation by the catabolite activator protein, CAP, whereas BL21(DE3) lacUV5 activity is largely CAP-independent due to a change in the CAP binding site. The properties of the wild-type promoter render it more sensitive to the effects of catabolite repression and promoter activation occurs gradually post-induction. This is in contrast to the rather abrupt expression of lacUV5 upon induction that is a reflection of its strength and CAP-independence.

The ScarabXpress® T7 lac strain is also more sensitive to repression; the promoter is more tightly regulated by LacI due to an alteration in a lac operator. The net result is a lowering of the background levels of expression relative to BL21(DE3). As a consequence of this tighter regulation, the ScarabXpress T7 lac host often works optimally with expression vectors that do NOT supply extra lac repressor from a plasmid encoded copy of the lacI gene. In multiple cases, significantly higher expression yields of a target protein have been observed by using a vintage pET vector i.e. one that carries neither the lacI gene nor a lac operator on its backbone. lacI-based pET plasmids were created to address the inherent leakiness of BL21(DE3). The additional lac repressor generated from this type of vector prevents full induction of the ScarabXpress® T7 lac host and may only yield optimal results when attempting to express proteins that substantially inhibit the growth of the Scarab host strain.

Figures

Figure 1. Inducer titration of pET9-TEST- PRO expression in BL21(DE3) and ScarabXpress®. Shake flask cultures were grown in 50 ml Korz minimal medium plus 0.2% glucose at 37°C to an OD600 of 0.01 then induced overnight with the indicated concentrations of IPTG. Cell pellets from each sample were obtained by centrifugation and soluble proteins were resuspended in BugBuster® protein extraction reagent for SDS-PAGE analsysis, loading the same OD600 equivalent in each lane. (M), molecular mass marker (sizes in kd at left edge of gel); arrowheads indicate TEST-PRO protein; chart at bottom indicates cell density (OD600) at harvest Figure 2: ScarabXpress®-1(T7 lac) yields 12X more protein than BL21. Figure 3: Multiple Deletion Strains tolerate "deleterious” genes. A chimeric gene composed of VP60 of rabbit hemorrhagic disease virus fused to the B subunit of cholera toxin (CTX) was very unstable in E. coli. Individually, both genes were stable in E. coli HB101, C600 and DH10B, but pCTXVP60 carrying the fusion gene in the same hosts did not produce fusion protein and was recovered in low yields. All recovered plasmids contained mutations in the CTXVP60 open reading frame, virtually all resulting from IS insertions. In contrast, the recombinant plasmid was completely stable in MDS™; normal yields of plasmid DNA were obtained. Representative restriction patterns of pCTXVP60. (A) Plasmid DNA from MDS™42 was transformed and propagated in the indicated host, then digested with NcoI and EcoRI. A representative of each restriction pattern was purified and sequenced. M, molecular weight marker, 1 kbp ladder; 1, MDS™41, no insertion; 2, MDS™42, no insertion; 3, DH10B, IS10 insertion; 4, DH10B, IS10 insertion/deletion; 5, C600, IS5 insertion; 6, C600, IS1 insertion; 7, C600, IS1 insertion. (B) Relative position of the IS element insertion sites in the CTXVP60 reading frame determined for the five examples presented.

Specifications

Kit Components ScarabXpress® T7 lac Chemically Competent Cells pUC19 Control DNA (10 pg/µl) SOC Medium Genotypes MDS™42 multiple-deletion strain (1) with a chromosomal copy of the T7 RNA Polymerase gene. Quality Control Transformation efficiency is tested using pUC19 control DNA, performed in duplicate. Transformed cells are plated on LB plates containing 50 μg/ml carbenicillin. Transformation efficiency is ≥1x108 cfu/μg DNA. Storage Conditions Store components at –80°C. Do not store cells in liquid nitrogen.

Related Products

White Glove IS Detection Kit

Support

Product Manuals ScarabXpress® T7 lac Chemically Competent Cell Kit

Reports E. coli Host Case Study ScarabXpress®-1 (T7 lac) Yields 12X More Protein Than BL21(DE3) Papers
  1. Pósfai G, et al., (2006) Emergent properties of reduced-genome Escherichia coli. Science 312:1044-6.
  2. Chacko S. Chakiath, CS & Esposito, D (2007): Improved recombinational stability of lentiviral expression vectors using reduced-genome Escherichia coli. BioTechniques 43:466-470.

Patents & Disclaimers

Products are sold for non-commercial use only, under Scarab Genomics limited use label license: Limited Label Use.Scarab is providing you with this Material subject to the non-transferable right to use the subject amount of the Material for your research at your academic institution. The Recipient agrees not to sell or otherwise transfer this Material, or anything derived or produced from the Material to a third party. NO RIGHTS ARE PROVIDED TO USE THE MATERIAL OR ANYTHING DERIVED OR PRODUCED FROM THE MATERIAL FOR COMMERCIAL PURPOSES. If the Recipient makes any changes to the chromosome of the Material that results in an invention in breach of this limited license, then Scarab will have a worldwide, exclusive, royalty-free license to such invention whether patentable or not. If the Recipient is not willing to accept the terms of this limited license, Scarab is willing to accept return of this product with a full refund, minus shipping and handling costs. For information on obtaining a license to this Material for purposes other than research, please contact Scarab’s Licensing Department. Scarab Genomics’ technology is covered by U.S. Pat. No. 6,989,265 and related foreign applications. The use of these cells is covered under U.S. Patent No. 5,693,489 assigned to Brookhaven Science Associates. The use of these cells for expression of a recombinant gene, including the use of the cells for in-house research, by any commercial entity requires a license from Brookhaven Science Associates. Information about licenses may be obtained from the Office of Technology Commercialization and Partnerships, Brookhaven National Laboratory, Bldg. 490-C, Upton, New York; Telephone number (631) 344-7134. Clean Genome® is a registered trademark of Scarab Genomics, LLC. BugBuster® is a registered trademark of Merck KGaA, Darmstadt, Germany.

品牌介绍
scarabgenomics在pDNA生产中遇到的一个常见挑战是茎环DNA结构的存在,例如病毒长末端重复序列(LTR)或短发夹RNA(shRNA),它们难以复制并且即使在特意设计的E中也使载体不稳定大肠杆菌宿主,例如Stbl3™。清洁Genome® 大肠杆菌可显着提高不稳定pDNA载体的产量。CleanGenome®E . coli Out表现出用于慢病毒生产的Stbl3™。Chakiath&Esposito(2007)研究表明,“包含慢重复序列的慢病毒表达克隆通常在大肠杆菌中表现出极大的不稳定性。。” 即使是专门设计用于克隆慢病毒直接重复序列的宿主(例如Stbl3™)也被证明是不足够的。Chakiath&Esposito表明,CleanGenome® 大肠杆菌菌株MDS™42是基因组平台减少的基础菌株,可稳定包含这些重复序列的慢病毒表达克隆(图1)。在使用MDS™42进行的100多次克隆反应中,这些作者仅选择了两个转化子菌落进行分析,在超过95%的情况下,两个克隆都具有正确的限制性图谱,从而节省了重组质粒制备的大量时间和精力。同样,衍生自腺相关病毒(AAV)的载体带有两个反向重复序列,形成40 bp茎。在末端,另外两个9bp的茎分支进一步终止于环结构。这两个茎环本身包含直接重复序列,当在标准大肠杆菌宿主中生长时,特别容易被删除。极端的例子是pT-ITR-IL2载体(图2),其中包含ITR1和ITR2茎环,它们也是彼此直接重复的。为了测试CleanGenome®菌株解决不稳定的生物治疗性pDNA生产挑战的能力,圣甲虫基因组公司使用了腺相关病毒pT-ITR-IL2载体。将其转化到MDS™42和未还原的亲本菌株大肠杆菌中K-12 MG1655。选择含有对NotI,KpnI和MscI具有正确限制模式的质粒的克隆。为了测试在大肠杆菌中的生长过程中的稳定性,将来自两个宿主的一式三份的克隆在Luria Broth中在37°C下生长24小时,并进行选择。取出培养样品进行分析,然后将每组的一种正确培养物通过在新鲜肉汤中稀释10-6 – 10-7来开始连续传代。再进行四次相似的连续传代,从每个阶段分离质粒DNA以进行分析。在MDS™42中生长的pT-ITR-IL2的限制性酶切消化模式没有随传代而改变,而MG1655生长的质粒不稳定(图3)。)。KpnI消化物(单个位点)显示出较小的质粒片段,与通过内部重组使质粒重复序列之间的“锤头”区域丢失相一致。MscI消化(每个ITR两侧的位点)同样显示出片段之一的逐渐丢失,与KpnI消化一致。DNA测序证实了这些结果。