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Invitrogen™

Champion™ pET SUMO Expression System

Le système d’expression Champion™ pET SUMO produit les plus hauts niveaux de protéines solubles dans E. coli. Il utilise uneAfficher plus
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RéférenceQuantité
K3000120 réactions
Référence K30001
Prix (EUR)
1 368,00
Each
Quantité:
20 réactions
Prix (EUR)
1 368,00
Each
Le système d’expression Champion™ pET SUMO produit les plus hauts niveaux de protéines solubles dans E. coli. Il utilise une fusion par petit modificateur associé à l’ubiquitine (SUMO), appartenant à la famille en croissance des protéines liées à l’ubiquitine, pour améliorer la solubilité des protéines de fusion exprimées. Contrairement à l’ubiquitine, le SUMO participe à la stabilisation et à la localisation des protéines in vivo. Après l’expression, la fraction 11 kd SUMO peut être clivée par une protéase SUMO (ULP-1) hautement spécifique et active au niveau du terminal carboxyle, produisant ainsi des protéines natives*. Le système d’expression de protéines et de peptides Champion™ pET SUMO offre :

• Une solubilité nettement supérieure avec une fusion SUMO à extrémité N-terminale. Un clivage très efficace produit des protéines natives d’intérêt avec la protéase SUMO (ULP-1)*Le clivage hautement spécifique élimine les risques de digestion interne de votre protéine d’intérêt, quelle que soit sa séquence d’acides aminés. Une stabilité significativement accrue grâce à la fusion SUMO, il peut être utilisé pour le promoteur T7lac de la production des petits peptides pour l’expression des protéines de haut niveau. Marqueur 6xHis à extrémité N-terminale pour la détection et la purification des protéines
Usage exclusivement réservé à la recherche. Ne pas utiliser pour des procédures de diagnostic.
Spécifications
Résistance aux antibiotiques des bactériesKanamycine (KanR)
Souche bactérienne ou de levuresBL21(DE3)
ClivageSUMO
Système constitutif ou inductibleInductible
Mécanisme d’expressionExpression cellulaire
Système d’expressionE. coli
Agent d’inductionIPTG
Type de produitSystème d’expression
Quantité20 réactions
Agent de sélection (eucaryotique)Néant
VecteurpET
Méthode de clonageTA Cloning™
Gamme de produitsChampion, TA Cloning
AccélérateurT7, lacO
Marqueur de protéineÉtiquette His (6x), étiquette SUMO
Unit SizeEach
Contenu et stockage
Le système d’expression Champion™ pET SUMO est fourni sous forme de système complet. La boîte Champion™ pET SUMO TA Cloning™ contient un vecteur Champion™ pET SUMO linéarisé, de l’eau stérile, des dNTP, un tampon PCR 10X, des amorces et un modèle de contrôle, de l’ADN ligase T4, un tampon de ligature 10X, des amorces pour le séquençage ou l’analyse PCR et un contrôle d’expression. Stockage à -20°C. La boîte SUMO Protease contient de la protéase SUMO et des tampons. Conservation à -80°C. La boîte One Shot™ TOP10 contient vingt-et-un aliquotes de 50 µl d’E. coli chimiquement compétentes, un milieu S.O.C. et un plasmide de contrôle. Conservation à -80°C. La boîte One Shot¤ BL21(DE3) contient vingt-et-un aliquotes de 50 µl d’E. coli chimiquement compétent, un milieu S.O.C. et un plasmide de contrôle. Conservation à -80°C.

Foire aux questions (FAQ)

My gene of interest is toxic to bacterial cells. Are there any precautions you can suggest?

Several precautions may be taken to prevent problems resulting from basal level expression of a toxic gene of interest. These methods all assume that the T7-based or Champion-based expression plasmid has been correctly designed and created.

- Propagate and maintain your expression plasmid in a strain that does not contain T7 RNA polymerase (i.e., DH5α).
- If using BL21 (DE3) cells, try growing cells at room temperature rather than 37 degrees C for 24-48 hr.
- Perform a fresh transformation using a tightly regulated E. coli strain, such as BL21-AI cells.
- After following the transformation protocol, plate the transformation reaction on LB plates containing 100 µg/mL ampicillin and 0.1% glucose. The presence of glucose represses basal expression of T7 RNA polymerase.
- Following transformation of BL21-AI cells, pick 3 or 4 transformants and inoculate directly into fresh LB medium containing 100 µg/mL ampicillin or 50 µg/mL carbenicillin (and 0.1% glucose, if desired). When the culture reaches an OD600 of 0.4, induce expression of the recombinant protein by adding L-arabinose to a final concentration of 0.2%.
- When performing expression experiments, supplement the growth medium with 0.1% glucose in addition to 0.2% arabinose.
- Try a regulated bacterial expression system such as our pBAD system.

Find additional tips, troubleshooting help, and resources within our Protein Expression Support Center.

I'm trying to express my protein using a bacterial expression system. How do I know if I'm seeing degradation of my protein or if what I’m seeing is codon usage bias?

Typically, if you see 1-2 dominant bands, translation stopped prematurely due to codon usage bias. With degradation, you usually see a ladder of bands. With degradation, you can try using a protease inhibitor and add it to the lysis buffer to help prevent degradation. If degradation is the issue, a time point experiment can be done to determine the best time to harvest the cells.

Find additional tips, troubleshooting help, and resources within our Protein Expression Support Center.

I'm trying to express my protein using a bacterial expression system and am getting inclusion bodies. What should I do?

If you are having a solubility issue, try to decrease the temperature or decrease the amount of IPTG used for induction. You can also try a different, more stringent cell strain for expression. Adding 1% glucose to the bacterial culture medium during expression can also help.

Find additional tips, troubleshooting help, and resources within our Protein Expression Support Center.

I'm getting low protein yield from my bacterial expression system. What can I do to improve this?

- Inoculate from fresh bacterial cultures, since higher protein yields are generally obtained from a fresh bacterial colony.

- Check the codon usage in the recombinant protein sequence for infrequently used codons. Replacing the rare codons with more commonly used codons can significantly increase expression levels. For example, the arginine codons AGG and AGA are used infrequently by E. coli, so the level of tRNAs for these codons is low.

- Add protease inhibitors, such as PMSF, to buffers during protein purification. Use freshly made PMSF, since PMSF loses effectiveness within 30 min of dilution into an aqueous solution.

- If you are using ampicillin for selection in your expression experiments, you may be experiencing plasmid instability due to the absence of selective conditions. This occurs as the ampicillin is destroyed by β-lactamase or hydrolyzed under the acidic media conditions generated by bacterial metabolism. You may want to substitute carbenicillin for ampicillin in your transformation and expression experiments.

- The recombinant protein may be toxic to bacterial cells. Try a tighter regulation system for competent cell expression such as BL21-AI. You may also consider trying a different expression system such as the pBAD system.

Find additional tips, troubleshooting help, and resources within our Protein Expression Support Center.

My cells are growing very slowly, and I'm not getting any protein expression from my baterial expression system. What can I do to fix this?

This typically occurs when your gene of interest is toxic. Try using a tighter regulation system, such as BL21 (DE3) (pLysS) or BL21 (DE3) (pLysE), or BL21(AI).

Find additional tips, troubleshooting help, and resources within our Protein Expression Support Center.

Citations et références (1)

Citations et références
Abstract
A novel hematopoietic granulin induces proliferation of goldfish (Carassius auratus L.) macrophages.
Authors:Hanington PC, Barreda DR, Belosevic M,
Journal:J Biol Chem
PubMed ID:16473876
'Granulins are a group of highly conserved growth factors that have been described from a variety of organisms spanning the metazoa. In this study, goldfish granulin was one of the most commonly identified transcripts in the differential cross-screening of macrophage cDNA libraries and was preferentially expressed in proliferating macrophages. Unlike ... More