T4 DNA Ligase (1 U/μL)
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T4 DNA Ligase (1 U/μL)
Invitrogen™

T4 DNA Ligase (1 U/μL)

T4 DNA Ligase는 double-stranded DNA와 3´ hydroxyl 및 5´ phosphate termini 사이에 있는 ATP에서 phosphodiester 결합 형성을 가수분해합니다. 고유한 T4자세히 알아보기
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카탈로그 번호수량
15224017100 U
15224025500 U
152240904 x 500 U
카탈로그 번호 15224017
제품 가격(KRW)
124,000
Online offer
Ends: 31-Dec-2025
137,000
할인액 13,000 (9%)
Each
카트에 추가하기
수량:
100 U
대량 주문 또는 맞춤형 요청
제품 가격(KRW)
124,000
Online offer
Ends: 31-Dec-2025
137,000
할인액 13,000 (9%)
Each
카트에 추가하기
T4 DNA Ligase는 double-stranded DNA와 3´ hydroxyl 및 5´ phosphate termini 사이에 있는 ATP에서 phosphodiester 결합 형성을 가수분해합니다. 고유한 T4 DNA Ligase buffer가 5분 내에 ligation을 최적화합니다(1). Single-stranded nucleic acid는 이 효소의 기질이 아닙니다. T4 DNA Ligase Technical Bulletin을 이용할 수 있습니다.

어플리케이션: Cloning (blunt-end 또는 cohesive-end ligation) (2). linker 또는 adapter를 blunt-ended DNA에 추가 (2).

기원: E. coli œ lysogen NM989에서 정제함.

성능 및 품질 검사: Endodeoxyribonuclease, 3´ 및 5´ exodeoxyribonuclease assays; ligation efficiency 검사 완료.

단위 정의: 1 단위가 37°C에서 20분 내에 1 nmol 32P-labeled pyrophosphate을 ATP로 가수분해합니다. (1 단위는 cohesive-end ligation unit 약 300개에 해당합니다.)

단위 반응 조건: 66 mM Tris-HCl (pH 7.6), 6.6 mM MgCl2 , 10 mM DTT, 66 μM ATP, 3.3 μM 32 P-labeled pyrophosphate, enzyme 0.1 ml - 20분, 37°C.
For Research Use Only. Not for use in diagnostic procedures.
사양
함께 사용가능한 버퍼DNA Ligase Buffer, 5X Reaction Buffer
제품 유형T4 DNA Ligase
수량100 U
배송 조건Dry Ice
농도1 U/μL
효소Ligase
Unit SizeEach
구성 및 보관
T4 DNA Ligase is supplied with a vial of 5X reaction buffer [250 mM Tris-HCl (pH 7.6), 50 mM MgCl2, 5 mM ATP, 5 mM DTT, 25% (w/v) polyethylene glycol-8000]. Store at -20°C.

자주 묻는 질문(FAQ)

What is the difference between T4 DNA Ligase and E.coli DNA Ligase?

The main difference between the 2 enzymes is that E. coli DNA Ligase cannot ligate blunt dsDNA fragments. Both ligases can be used to repair single stranded nicks in duplex DNA and to perform cohesive or sticky end ligations. E. coli DNA Ligase is generally used to seal nicks during second strand cDNA synthesis, since T4 DNA Ligase could result in formation of chimeric inserts.

How can I optimize my ligation reaction?

Please consider the following suggestions:
1– Try different molar ratios of insert to vector. Having an excess of insert is usually what will work, try 1:1 to 15:1 insert:vector.
2– Try increasing the time of the ligation at 37 degrees C.
3– Try performing the ligation at 16 degrees C overnight (you can set it up on your PCR machine).

I cannot transform my cells right away. Can I store my ligation reaction? If so, at what temperature should I store it?

Make sure you have inactivated the ligase and store the ligation reaction at 4 degrees C.

What kind of controls should I have for restriction cloning?

You can have all of the below controls or select the one you consider the most appropriate to the problem you are facing:
1– Transform the E. coli with circular plasmid to assess the competency of the cells (how well they are taking up DNA).
2– Transform and plate the dephosphorylated vector. It will help you assess how well the dephosphorylation worked and what proportion of colonies in your ligation transformation plate could be false positives (re-ligated vector or background).
3– Use T4 DNA igase to re-ligate your cut vector, or lambda DNA/Hind III marker. It will help you assess whether the ligase itself is working properly.

What are common inhibitors of the T4 DNA ligase?

dATP is a competitive inhibitor. Phosphate will reduce ligation efficiency. Detergents in your ligation buffer will likely not affect activity. High levels (0.2M) Na2+, K+, Cs+, Li+, and NH4+ inhibit the enzyme almost completely. Polyamines, spermine, and spermidine also serve as inhibitors.

인용 및 참조 문헌 (13)

인용 및 참조 문헌
Abstract
DNA sequence variation in the promoter region of the VEGF gene impacts VEGF gene expression and maximal oxygen consumption.
Authors:Prior SJ, Hagberg JM, Paton CM, Douglass LW, Brown MD, McLenithan JC, Roth SM,
Journal:Am J Physiol Heart Circ Physiol
PubMed ID:16339827
'In its role as an endothelial cell proliferation and migration factor, vascular endothelial growth factor (VEGF) can affect peripheral circulation, and therefore impact maximal oxygen consumption (Vo2max). Because of the role of VEGF, and because variation in the VEGF gene has the ability to alter VEGF gene expression and VEGF ... More
Identification of coenzyme M biosynthetic phosphosulfolactate synthase: a new family of sulfonate-biosynthesizing enzymes.
Authors: Graham David E; Xu Huimin; White Robert H;
Journal:J Biol Chem
PubMed ID:11830598
'The hyperthermophilic euryarchaeon Methanococcus jannaschii uses coenzyme M (2-mercaptoethanesulfonic acid) as the terminal methyl carrier in methanogenesis. We describe an enzyme from that organism, (2R)-phospho-3-sulfolactate synthase (ComA), that catalyzes the first step in coenzyme M biosynthesis. ComA catalyzed the stereospecific Michael addition of sulfite to phosphoenolpyruvate over a broad range ... More
Biosynthesis of riboflavin in archaea studies on the mechanism of 3,4-dihydroxy-2-butanone-4-phosphate synthase of Methanococcus jannaschii.
Authors:Fischer M, Romisch W, Schiffmann S, Kelly M, Oschkinat H, Steinbacher S, Huber R, Eisenreich W, Richter G, Bacher A,
Journal:J Biol Chem
PubMed ID:12200440
'The hypothetical protein predicted by the open reading frame MJ0055 of Methanococcus jannaschii was expressed in a recombinant Escherichia coli strain under the control of a synthetic gene optimized for translation in an eubacterial host. The recombinant protein catalyzes the formation of the riboflavin precursor 3,4-dihydroxy-2-butanone 4-phosphate from ribulose 5-phosphate ... More
Characterization of the SECIS binding protein 2 complex required for the co-translational insertion of selenocysteine in mammals.
Authors:Kinzy SA, Caban K, Copeland PR,
Journal:Nucleic Acids Res
PubMed ID:16155186
'Selenocysteine is incorporated into at least 25 human proteins by a complex mechanism that is a unique modification of canonical translation elongation. Selenocysteine incorporation requires the concerted action of a kink-turn structural RNA (SECIS) element in the 3'' untranslated region of each selenoprotein mRNA, a selenocysteine-specific translation elongation factor (eEFSec) ... More
Substantially enhanced cloning efficiency of SAGE (Serial Analysis of Gene Expression) byadding a heating step to the original protocol.
Authors:Kenzelmann M, Muhlemann K
Journal:Nucleic Acids Res
PubMed ID:9889294
'The efficiency of the original SAGE (Serial Analysis of Gene Expression) protocol was limited by a small average size of cloned concatemers. We describe a modification of the technique that overcomes this problem. Ligation of ditags yields concatemers of various sizes. Small concatemers may aggregate and migrate with large ones ... More