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TransStart? FastPfu PCR SuperMix (-dye)

2×TransStart FastPfu PCR 預(yù)混液 (-dye)

目錄號(hào): AS221-01

單 價(jià):¥550

規(guī)格:
1 ml
5×1 ml
數(shù)量:
-
+
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產(chǎn)品詳情介紹

本產(chǎn)品包含TransStart? FastPfu DNA Polymerase、dNTPs和優(yōu)化的反應(yīng)緩沖液,濃度為2×,擴(kuò)增效率強(qiáng),擴(kuò)增速度快,具有高保真性、高特異性。DNA擴(kuò)增時(shí),只需加入模板、引物和水,使SuperMix溶液的濃度為1×即可進(jìn)行反應(yīng)。擴(kuò)增產(chǎn)物為平端,可直接克隆于pEASY?-Blunt系列載體中。2×TransStart? FastPfu PCRSuperMix (+dye)擴(kuò)增產(chǎn)物可直接點(diǎn)樣電泳,如用于克隆,需純化去掉染料。其PCR產(chǎn)物不適用于聚丙烯酰胺凝膠電泳。


? 減少PCR擴(kuò)增操作時(shí)間。
? 避免因多步操作帶來(lái)的污染。
? 保真性是EasyTaq? DNA Polymerase的54倍。

? 基因組DNA片段的擴(kuò)增(≤15 kb)。
? Plasmid DNA片段擴(kuò)增(≤20 kb)。

產(chǎn)品組成

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實(shí)驗(yàn)數(shù)據(jù)

擴(kuò)增能力強(qiáng)

image.png

References

1.Wang J, Qiu Y H, Marti Z, et al. EBV infection and HLA-DR15 jointly drive multiple sclerosis by myelin peptide presentation[J]. Cell, 2026.(IF 42.50)

2.Jin S, Zhu Z, Li Y, et al. Functional RNA splitting drove the evolutionary emergence of type V CRISPR-Cas systems from transposons[J]. Cell, 2025.(IF 42.50)

3.Song R, Guo P, Ren X, et al. A novel polypeptide CAPG-171aa encoded by circCAPG plays a critical role in triple-negative breast cancer[J]. Molecular Cancer, 2023.(IF 37.30)

4.Jin S, Lin Q, Gao Q, et al. Optimized prime editing in monocot plants using PlantPegDesigner and engineered plant prime editors (ePPEs)[J]. Nature Protocols, 2022.(IF 17.02)

5.Wan H, Zhong X, Yang S, et al. Enhancing the Therapeutic Potential of Peptide Antibiotics Using Bacteriophage Mimicry Strategies[J]. Advanced Science, 2025.(IF 14.10)

6.Li X, Zhang S, Wang C, et al. Efficient in situ epitope tagging of rice genes by nuclease-mediated prime editing[J]. The Plant Cell, 2025.(IF 11.60)

7.Liu J, Wang Y, Fan X, et al. A Bacteriophage Protein-Driven Platform for Rapid and Precise Diagnosis of Bacterial Pathogens from Blood Samples[J]. Biosensors and Bioelectronics, 2025.(IF 10.50)

8.Meng X, Wu Q, Cao C, et al. A novel peptide encoded by circSRCAP confers resistance to enzalutamide by inhibiting the ubiquitin-dependent degradation of AR-V7 in castration-resistant prostate cancer[J]. Journal of Translational Medicine, 2025.(IF 7.50)

9.Liu Y, Sun Q, Wang Q, et al. Genome-wide identification of the UGT gene family revealing PbUGT73EC3 participating in drought stress in Phoebe bournei[J]. Plant Stress, 2025.(IF 6.90)

10.Wang Y, Wang Z, Chen Y, et al. A highly efficient CRISPR-Cas9-based genome engineering platform in Acinetobacter baumannii to understand the H2O2-sensing mechanism of OxyR[J]. Cell Chemical Biology, 2019.(IF 6.76)

11.Li M, Yang L, Qian W, et al. A novel rat model of Dravet syndrome recapitulates clinical hallmarks[J]. Neurobiology of Disease, 2023.(IF 6.10)

12.Fu N, Wang L, Han X, et al. Genome-wide identification and expression analysis of calmodulin and calmodulin-like genes, revealing CaM3 and CML13 participating in drought stress in Phoebe bournei[J]. International Journal of Molecular Sciences, 2023.(IF 5.60)

13.Chen K, Hu Z, Song W, et al. Diversity of O-glycosyltransferases contributes to the biosynthesis of flavonoid and triterpenoid glycosides in Glycyrrhiza uralensis[J]. ACS Synthetic Biology, 2019.(IF 5.57)

14.Feng K, Ge H, Chen H, et al. Novel exon mutation in SYCE1 gene is associated with non‐obstructive azoospermia[J]. Journal of Cellular and Molecular Medicine, 2022.(IF 5.30)

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