首页> 外文期刊>Nucleic Acids Research >HIGH-RESOLUTION NMR STUDY OF A GDAGA TETRANUCLEOTIDE LOOP THAT IS AN IMPROVED SUBSTRATE FOR RICIN, A CYTOTOXIC PLANT PROTEIN
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HIGH-RESOLUTION NMR STUDY OF A GDAGA TETRANUCLEOTIDE LOOP THAT IS AN IMPROVED SUBSTRATE FOR RICIN, A CYTOTOXIC PLANT PROTEIN

机译:GDAGA四核苷酸环的高分辨核磁共振研究,该环氧化物是植物毒素植物毒素蓖麻蛋白的改良底物

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摘要

Ricin is a cytotoxic plant protein that inactivates ribosomes by hydrolyzing the N-glycosidic bond at position A4324 in eukaryotic 28S rRNA, Recent studies showed that a four-nucleotide loop, GAGA, can function as a minimum substrate for ricin (the first adenosine corresponds to the site of depurination), We previously clarified the solution structure of this loop by NMR spectroscopy [Orita ef al, (1993) Nucleic Acids Res. 21, 5670-5678], To elucidate further details of the structural basis for recognition of its substrate by ricin, we studied the properties of a synthetic dodecanucleotide, r1C2U3C4A5G6dA7G8A9U10G11A12G (6dA12mer), which forms an RNA hairpin structure with a GdAGA loop and in which the site of depurination is changed from adenosine to 2'-deoxyadenosine, The N-glycosidase activity against the GdAGA loop of the A-chain of ricin was 26 times higher than that against the GAGA loop, NMR studies indicated that the overall structure of the GdAGA loop was similar to that of the GAGA loop with the exception of the sugar puckers of 6dA and 7G, Therefore, it appears that the 2'-hydroxyl group of adenosine at the depurination site (6A) does not participate in the recognition by ricin of the substrate, Since the 2'-hydroxyl group can potentially destabilize the developing positive charge of the putative transition state intermediate, an oxycarbonium ion, the electronic effect may explain, at least in part, the faster rate of depurination of the GdAGA loop compared to that of GAGA loop, We also show that the amino group of 7G is essential for substrate recognition by the ricin A-chain.
机译:蓖麻毒素是一种细胞毒性植物蛋白,可通过水解真核28S rRNA中A4324位置的N-糖苷键使核糖体失活。最近的研究表明,四核苷酸环GAGA可作为蓖麻毒素的最小底物(第一个腺苷对应于之前,我们通过NMR光谱阐明了该环的溶液结构[Orita等,(1993)Nucleic Acids Res。 21,5670-5678],为阐明蓖麻毒素识别其底物的结构基础的进一步细节,我们研究了合成的十二核苷酸r1C2U3C4A5G6dA7G8A9U10G11A12G(6dA12mer)的性质,该物质形成具有GdAGA环的RNA发夹结构,其中脱嘌呤的位点由腺苷变为2'-脱氧腺苷,蓖麻蛋白A链对GdAGA环的N-糖苷酶活性比对GAGA环的N-糖苷酶活性高26倍,NMR研究表明, GdAGA环与GAGA环类似,不同之处在于6dA和7G的糖皱褶。因此,似乎在去纯化位点(6A)上腺苷的2'-羟基不参与蓖麻毒素的识别由于2'-羟基可能会破坏假定的过渡态中间体碳氧离子的正电荷稳定,因此电子效应至少可以解释为部分是,与GAGA环相比,GdAGA环的纯化速度更快。我们还显示7G的氨基对于蓖麻毒素A链识别底物至关重要。

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