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A simplified characterization of S-adenosyl-l-methionine-consuming enzymes with 1-Step EZ-MTase: a universal and straightforward coupled-assay for in vitro and in vivo setting

机译:使用1步EZ-MTase简化S-腺苷-1-甲硫氨酸消耗酶的表征:一种适用于体外和体内环境的通用且直接的偶联测定

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摘要

Methyltransferases use S-adenosyl-l-methionine (SAM) to deposit methyl marks. Many of these epigenetic ‘writers’ are associated with gene regulation. As cancer etiology is highly correlated with misregulated methylation patterns, methyltransferases are emerging therapeutic targets. Successful assignment of methyltransferases' roles within intricate biological networks relies on (1) the access to enzyme mechanistic insights and (2) the efficient screening of chemical probes against these targets. To characterize methyltransferases in vitro and in vivo, we report a highly-sensitive one-step deaminase-linked continuous assay where the S-adenosyl-l-homocysteine (SAH) enzyme-product is rapidly and quantitatively catabolized to S-inosyl-l-homocysteine (SIH). To highlight the broad capabilities of this assay, we established enzymatic characteristics of two protein arginine methyltransferases (PRMT5 and PRMT7), a histone-lysine N-methyltransferase (DIM-5) and a sarcosine/dimethylglycine N-methyltransferase (SDMT). Since the coupling deaminase TM0936 displays robust activity over a broad pH-range we determined the pH dependence of SDMT reaction rates. TM0936 reactions are monitored at 263 nm, so a drawback may arise when methyl acceptor substrates absorb within this UV-range. To overcome this limitation, we used an isosteric fluorescent SAM-analog: S-8-aza-adenosyl-l-methionine. Most enzymes tolerated this probe and sustained methyltransfers were efficiently monitored through loss of fluorescence at 360 nm. Unlike discontinuous radioactive- and antibody-based assays, our assay provides a simple, versatile and affordable approach towards the characterization of methyltransferases. Supported by three logs of linear dynamic range, the 1-Step EZ-MTase can detect methylation rates as low as 2 μM h–1, thus making it possible to quantify low nanomolar concentrations of glycine N-methyltransferase within crude biological samples. With Z′-factors above 0.75, this assay is well suited to high-throughput screening and may promote the identification of novel therapeutics.
机译:甲基转移酶使用S-腺苷-1-蛋氨酸(SAM)沉积甲基标记。这些表观遗传的“作家”中有许多与基因调控有关。由于癌症的病因学与甲基化模式的失调高度相关,因此甲基转移酶已成为新兴的治疗目标。在复杂的生物网络中成功分配甲基转移酶的作用取决于(1)获得酶机制的见解和(2)针对这些目标的化学探针的有效筛选。为了表征体外和体内甲基转移酶,我们报告了一种高度敏感的一步脱氨酶联用连续测定法,其中S-腺苷-1-同型半胱氨酸(SAH)酶产物被快速定量地分解为S-肌苷-1-同型半胱氨酸(SIH)。为了突出此测定法的广泛功能,我们建立了两种蛋白质精氨酸甲基转移酶(PRMT5和PRMT7),组蛋白-赖氨酸N-甲基转移酶(DIM-5)和肌氨酸/二甲基甘氨酸N-甲基转移酶(SDMT)的酶促特性。由于偶联脱氨酶TM0936在较宽的pH范围内均显示出强大的活性,因此我们确定了SDMT反应速率的pH依赖性。 TM0936反应在263 nm处进行监测,因此当甲基受体底物在此UV范围内吸收时,可能会出现缺陷。为了克服此限制,我们使用了等位荧光SAM模拟物:S-8-氮杂-腺苷-1-蛋氨酸。大多数酶耐受该探针,并且通过在360 nm处的荧光损失有效监测了持续的甲基转移。与不连续的基于放射性和抗体的分析方法不同,我们的分析方法为表征甲基转移酶提供了一种简单,通用且价格合理的方法。一阶EZ-MTase在三个线性动态范围的对数的支持下,可以检测到低至2μMh –1 的甲基化速率,从而可以定量测定低纳摩尔浓度的甘氨酸N-甲基转移酶粗生物样品中。当Z'-因子高于0.75时,该测定法非常适合高通量筛选,并可能促进新疗法的鉴定。

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