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Dnmt3b Methylates DNA by a Noncooperative Mechanism and Its Activity Is Unaffected by Manipulations at the Predicted Dimer Interface

机译:Dnmt3b甲基化DNA的非合作机制其活动不受预测的二聚体界面上的操作的影响。

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摘要

The catalytic domains of the de novo DNA methyltransferases Dnmt3a-C and Dnmt3b-C are highly homologous. However, their unique biochemical properties could potentially contribute to differences in the substrate preferences or biological functions of these enzymes. Dnmt3a-C forms tetramers through interactions at the dimer interface, which also promote multimerization on DNA and cooperativity. Similar to the case for processive enzymes, cooperativity allows Dnmt3a-C to methylate multiple sites on the same DNA molecule; however, it is unclear whether Dnmt3b-C methylates DNA by a cooperative or processive mechanism. The importance of the tetramer structure and cooperative mechanism is emphasized by the observation that the R882H mutation in the dimer interface of DNMT3A is highly prevalent in acute myeloid leukemia and leads to a substantial loss of its activity. Under conditions that distinguish between cooperativity and processivity, we show that in contrast to that of Dnmt3a-C, the activity of Dnmt3b-C is not cooperative and confirm the processivity of Dnmt3b-C and the full length Dnmt3b enzyme. Whereas the R878H mutation (mouse homologue of R882H) led to the loss of cooperativity of Dnmt3a-C, the activity and processivity of the analogous Dnmt3b-C R829H variant were comparable to those of the wild-type enzyme. Additionally, buffer acidification that attenuates the dimer interface interactions of Dnmt3a-C had no effect on Dnmt3b-C activity. Taken together, these results demonstrate an important mechanistic difference between Dnmt3b and Dnmt3a and suggest that interactions at the dimer interface may play a limited role in regulating Dnmt3b-C activity. These new insights have potential implications for the distinct biological roles of Dnmt3a and Dnmt3b.
机译:从头DNA甲基转移酶Dnmt3a-C和Dnmt3b-C的催化结构域高度同源。但是,它们独特的生化特性可能会导致这些酶在底物偏好或生物学功能方面的差异。 Dnmt3a-C通过二聚体界面上的相互作用形成四聚体,这也促进了DNA的多聚化和协同作用。与进行性酶类似,协同作用使Dnmt3a-C可以甲基化同一DNA分子上的多个位点。但是,尚不清楚Dnmt3b-C是否通过协同或过程机制使DNA甲基化。通过观察到,DNMT3A二聚体界面中的R882H突变在急性髓样白血病中非常普遍,并导致其活性大量丧失,这一观察结果强调了四聚体结构和协同机制的重要性。在区分协作性和持续性的条件下,我们表明,与Dnmt3a-C相比,Dnmt3b-C的活性不协作,并证实了Dnmt3b-C和全长Dnmt3b酶的持续性。尽管R878H突变(R882H的小鼠同源物)导致Dnmt3a-C的协同性丧失,但类似的Dnmt3b-C R829H变体的活性和可加工性与野生型酶相当。此外,减弱Dnmt3a-C的二聚体界面相互作用的缓冲液酸化对Dnmt3b-C的活性没有影响。两者合计,这些结果表明Dnmt3b和Dnmt3a之间的重要机制差异,并表明二聚体界面上的相互作用可能在调节Dnmt3b-C活性中起有限的作用。这些新见解对Dnmt3a和Dnmt3b的独特生物学作用具有潜在的影响。

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