Bacteriophage T4 Dam DNA-[N6-adenine]Methyltransferase

KINETIC EVIDENCE FOR A CATALYTICALLY ESSENTIAL CONFORMATIONAL CHANGE IN THE TERNARY COMPLEX*

Abstract

We carried out a steady state kinetic analysis of the bacteriophage T4 DNA-[N6-adenine]methyltransferase (T4 Dam) mediated methyl group transfer reaction fromS-adenosyl-l-methionine (AdoMet) to Ade in the palindromic recognition sequence, GATC, of a 20-mer oligonucleotide duplex. Product inhibition patterns were consistent with a steady state-ordered bi-bi mechanism in which the order of substrate binding and product (methylated DNA, DNAMe andS-adenosyl-l-homocysteine, AdoHcy) release was AdoMet↓DNA↓DNAMe↑AdoHcy↑. A strong reduction in the rate of methylation was observed at high concentrations of the substrate 20-mer DNA duplex. In contrast, increasing substrate AdoMet concentration led to stimulation in the reaction rate with no evidence of saturation. We propose the following model. Free T4 Dam (initially in conformational form E) randomly interacts with substrates AdoMet and DNA to form a ternary T4 Dam-AdoMet-DNA complex in which T4 Dam has isomerized to conformational state F, which is specifically adapted for catalysis. After the chemical step of methyl group transfer from AdoMet to DNA, product DNAMe dissociates relatively rapidly (k off = 1.7 s−1) from the complex. In contrast, dissociation of product AdoHcy proceeds relatively slowly (k off = 0.018 s−1), indicating that its release is the rate-limiting step, consistent withk cat = 0.015 s−1. After AdoHcy release, the enzyme remains in the F conformational form and is able to preferentially bind AdoMet (unlike form E, which randomly binds AdoMet and DNA), and the AdoMet-F binary complex then binds DNA to start another methylation cycle. We also propose an alternative pathway in which the release of AdoHcy is coordinated with the binding of AdoMet in a single concerted event, while T4 Dam remains in the isomerized form F. The resulting AdoMet-F binary complex then binds DNA, and another methylation reaction ensues. This route is preferred at high AdoMet concentrations.

  • Abbreviations:
    MTase
    methyltransferase
    AdoMet
    S-adenosyl-l-methionine
    AdoHcy
    S-adenosyl-l-homocysteine
    DNAMe
    methylated DNA
    hmCyt-DNA
    5-hydroxymethylcytosine-containing T4 αgt βgt(unglucosylated) DNA
    MSC
    model selection criterion
    • Received September 13, 2001.
    • Revision received October 26, 2001.
    Table of Contents

    This Article

    1. The Journal of Biological Chemistry 277, 279-286.
    1. All Versions of this Article:
      1. M108864200v1
      2. 277/1/279 (most recent)

    Article Usage Stats

    Submit your work to JBC.

    You'll be in good company.