Dye structure affects Taq DNA polymerase terminator selectivity

被引:12
|
作者
Brandis, JW [1 ]
机构
[1] PE Biosyst, Genet Anal Business Unit, DNA Chem Grp, Foster City, CA 94404 USA
关键词
D O I
10.1093/nar/27.8.1912
中图分类号
Q5 [生物化学]; Q7 [分子生物学];
学科分类号
071010 ; 081704 ;
摘要
All DNA sequencing methods have benefited from the development of new F667Y versions of Taq DNA polymerase. However, terminator chemistry methods show less uniform peak height patterns when compared to primer chemistry profiles suggesting that the dyes and/or their linker arms affect enzyme selectivity. We have measured elementary nucleotide rate and binding constants for representative rhodamine- and fluorescein-labeled terminators to determine how they interact with F667 versions of Taq Pol I. We have also developed a rapid gel-based selectivity assay that can be used to screen and to quantify dye-enzyme interactions with F667Y versions of the enzyme. Our results show that 6-TAMRA-ddTTP behaves like unlabeled ddTTP, while 6-FAM-ddTTP shows a 40-fold reduction in the rate constant for polymerization without affecting ground-state nucleotide binding. Detailed mechanism studies indicate that both isomers of different fluorescein dyes interfere with a conformational change step which the polymerase undergoes following nucleotide binding but only when these dyes are attached to pyrimidines. When these same dyes are attached to purines by the same propargylamino linker arm, they show no effect on enzyme selectivity, These studies suggest that it may be possible to develop fluorescein terminators for thermocycle DNA sequencing methods for polymerases that do not discriminate between deoxy- and dideoxynucleotides.
引用
收藏
页码:1912 / 1918
页数:7
相关论文
共 50 条
  • [21] Single-molecule Taq DNA polymerase dynamics
    Turvey, Mackenzie W.
    Gabriel, Kristin N.
    Lee, Wonbae
    Taulbee, Jeffrey J.
    Kim, Joshua K.
    Chen, Silu
    Lau, Calvin J.
    Kattan, Rebecca E.
    Pham, Jenifer T.
    Majumdar, Sudipta
    Garcia, Davil
    Weiss, Gregory A.
    Collins, Philip G.
    SCIENCE ADVANCES, 2022, 8 (10)
  • [22] Study on the interaction of colloidal gold with Taq DNA polymerase
    Zhu, Hong-Ping
    Mi, Li-Juana
    Chen, Shi-Moua
    Wang, Wen-Fen
    Yao, Si-De
    CHINESE JOURNAL OF CHEMISTRY, 2007, 25 (09) : 1233 - 1237
  • [23] A simple and efficient method for extraction of Taq DNA polymerase
    Chen, Sique
    Zheng, Xiujuan
    Cao, Hongrui
    Jiang, Linghui
    Liu, Fangqian
    Sun, Xinli
    ELECTRONIC JOURNAL OF BIOTECHNOLOGY, 2015, 18 (05): : 355 - 358
  • [24] Thermodynamic basis of the thermal stability of Taq DNA polymerase
    Schoeffler, AJ
    Karantzeni, I
    Yang, XM
    Datta, K
    LiCata, VJ
    FASEB JOURNAL, 2002, 16 (05): : A1188 - A1188
  • [25] Thermodynamic and Structural Origins for the Thermostability of Taq DNA Polymerase
    Liu, Chin-Chi
    Yang, Yanling
    LiCata, Vince J.
    FASEB JOURNAL, 2009, 23
  • [26] Extreme free energy of stabilization of taq DNA polymerase
    Schoeffler, AJ
    Joubert, AM
    Peng, FG
    Khan, FH
    Liu, CC
    LiCata, VJ
    PROTEINS-STRUCTURE FUNCTION AND BIOINFORMATICS, 2004, 54 (04) : 616 - 621
  • [27] A FUNCTIONAL ASSAY FOR TAQ DNA-POLYMERASE IN PCR
    WADA, M
    KLEIN, C
    SCHELL, J
    REISS, B
    BIOTECHNIQUES, 1994, 16 (01) : 26 - &
  • [28] INHIBITION OF TAQ DNA POLYMERASE BY IRIDOID AGLYCONE DERIVATES
    Pungitore, C. R.
    Garcia, C.
    Sotero Martin, V.
    Tonn, C. E.
    CELLULAR AND MOLECULAR BIOLOGY, 2012, 58 : 1786 - 1790
  • [29] IDENTIFICATION AND ELIMINATION OF DNA-SEQUENCES IN TAQ DNA-POLYMERASE
    HUGHES, MS
    BECK, LA
    SKUCE, RA
    JOURNAL OF CLINICAL MICROBIOLOGY, 1994, 32 (08) : 2007 - 2008
  • [30] TAQ DNA-POLYMERASE FOR LABELING DNA USING RANDOM PRIMERS
    SAYAVEDRASOTO, LA
    GRESSHOFF, PM
    BIOTECHNIQUES, 1992, 13 (04) : 568 - &