D. Umpiérrez Puchalvert , F. Zoppolo , M. Bentura , A. Castilla , E. Savio , S. Rodríguez Giordano , G. Irazoqui
{"title":"固定化酶催化[11C](S,S)-S-腺苷蛋氨酸([11C](S,S)-SAM)立体选择性合成的可行性","authors":"D. Umpiérrez Puchalvert , F. Zoppolo , M. Bentura , A. Castilla , E. Savio , S. Rodríguez Giordano , G. Irazoqui","doi":"10.1016/j.procbio.2024.12.006","DOIUrl":null,"url":null,"abstract":"<div><div>This work aims to develop a stereoselective enzymatic alternative for the radiosynthesis of [<sup>11</sup>C]<em>(S,S)</em>-S-adenosylmethionine ([<sup>11</sup>C](<em>S,S</em>)-SAM), a potential PET-CT radiotracer for monitoring particularly aggressive prostate tumors. Conventional synthesis of this compound has been carried out at Uruguayan Center of Molecular Imaging, resulting in an almost racemic mixture 53:47 ratio of <em>(R,S)</em> to <em>(S,S)</em> isomer. Producing the radiotracer in an optically pure form is a requirement for administration to humans and additionally it would enhance diagnostic sensitivity when administered to the patient. The main challenges were designing a biocatalyst capable of withstanding the harsh conditions of the radiotracer synthesis module and achieving the reaction in a very short time due to the rapid decay of <sup>11</sup>C. A mutant of <em>E. coli</em> methionine adenosyltransferase (I303V MAT) with enhanced SAM synthesis was cloned, expressed, and immobilized on agarose using an irreversible covalent isourea bond. This immobilized enzyme synthesized [<sup>11</sup>C](S,S)-SAM from [<sup>11</sup>C]L-methionine in an automated module, with the labeled methionine produced in situ from [<sup>11</sup>C]CH3I and L-homocysteine thiolactone. The product was obtained with an enantio and diasteromeric excess greater than 99 % and average conversion of 80 %. The reuse of the immobilized enzyme was studied, showing that after three cycles of reuse the radiosynthesis performance remained unchanged.</div></div>","PeriodicalId":20811,"journal":{"name":"Process Biochemistry","volume":"149 ","pages":"Pages 137-143"},"PeriodicalIF":4.0000,"publicationDate":"2025-02-01","publicationTypes":"Journal Article","fieldsOfStudy":null,"isOpenAccess":false,"openAccessPdf":"","citationCount":"0","resultStr":"{\"title\":\"Feasibility of a stereoselective synthesis of [11C](S,S)-S-adenosylmethionine ([11C](S,S)-SAM) catalyzed by an immobilized enzyme\",\"authors\":\"D. Umpiérrez Puchalvert , F. Zoppolo , M. Bentura , A. Castilla , E. Savio , S. Rodríguez Giordano , G. Irazoqui\",\"doi\":\"10.1016/j.procbio.2024.12.006\",\"DOIUrl\":null,\"url\":null,\"abstract\":\"<div><div>This work aims to develop a stereoselective enzymatic alternative for the radiosynthesis of [<sup>11</sup>C]<em>(S,S)</em>-S-adenosylmethionine ([<sup>11</sup>C](<em>S,S</em>)-SAM), a potential PET-CT radiotracer for monitoring particularly aggressive prostate tumors. Conventional synthesis of this compound has been carried out at Uruguayan Center of Molecular Imaging, resulting in an almost racemic mixture 53:47 ratio of <em>(R,S)</em> to <em>(S,S)</em> isomer. Producing the radiotracer in an optically pure form is a requirement for administration to humans and additionally it would enhance diagnostic sensitivity when administered to the patient. The main challenges were designing a biocatalyst capable of withstanding the harsh conditions of the radiotracer synthesis module and achieving the reaction in a very short time due to the rapid decay of <sup>11</sup>C. A mutant of <em>E. coli</em> methionine adenosyltransferase (I303V MAT) with enhanced SAM synthesis was cloned, expressed, and immobilized on agarose using an irreversible covalent isourea bond. This immobilized enzyme synthesized [<sup>11</sup>C](S,S)-SAM from [<sup>11</sup>C]L-methionine in an automated module, with the labeled methionine produced in situ from [<sup>11</sup>C]CH3I and L-homocysteine thiolactone. The product was obtained with an enantio and diasteromeric excess greater than 99 % and average conversion of 80 %. 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引用次数: 0
摘要
这项工作旨在开发一种立体选择性酶替代放射合成[11C](S,S)-S-腺苷蛋氨酸([11C](S,S)-SAM),一种潜在的PET-CT放射性示踪剂,用于监测特别侵袭性前列腺肿瘤。该化合物在乌拉圭分子成像中心进行了常规合成,得到(R,S)与(S,S)异构体的外消旋混合物,比例为53:47。以光学纯净的形式生产放射性示踪剂是给人施用的要求,另外,当给病人施用时,它将提高诊断灵敏度。主要的挑战是设计一种生物催化剂,能够承受放射性示踪剂合成模块的恶劣条件,并在很短的时间内实现反应,因为11C的快速衰变。克隆并表达了大肠杆菌蛋氨酸腺苷转移酶(I303V MAT)突变体,并利用不可逆的共价异脲键将其固定在琼脂糖上。该固定化酶在自动化模块中由[11C] l -蛋氨酸合成[11C](S,S)-SAM,标记的蛋氨酸由[11C]CH3I和l -同型半胱氨酸硫内酯原位生成。该产物的对映异构体和非对映异构体过量大于99 %,平均转化率为80 %。对固定化酶的重复使用进行了研究,结果表明,在重复使用三次后,固定化酶的放射性合成性能保持不变。
Feasibility of a stereoselective synthesis of [11C](S,S)-S-adenosylmethionine ([11C](S,S)-SAM) catalyzed by an immobilized enzyme
This work aims to develop a stereoselective enzymatic alternative for the radiosynthesis of [11C](S,S)-S-adenosylmethionine ([11C](S,S)-SAM), a potential PET-CT radiotracer for monitoring particularly aggressive prostate tumors. Conventional synthesis of this compound has been carried out at Uruguayan Center of Molecular Imaging, resulting in an almost racemic mixture 53:47 ratio of (R,S) to (S,S) isomer. Producing the radiotracer in an optically pure form is a requirement for administration to humans and additionally it would enhance diagnostic sensitivity when administered to the patient. The main challenges were designing a biocatalyst capable of withstanding the harsh conditions of the radiotracer synthesis module and achieving the reaction in a very short time due to the rapid decay of 11C. A mutant of E. coli methionine adenosyltransferase (I303V MAT) with enhanced SAM synthesis was cloned, expressed, and immobilized on agarose using an irreversible covalent isourea bond. This immobilized enzyme synthesized [11C](S,S)-SAM from [11C]L-methionine in an automated module, with the labeled methionine produced in situ from [11C]CH3I and L-homocysteine thiolactone. The product was obtained with an enantio and diasteromeric excess greater than 99 % and average conversion of 80 %. The reuse of the immobilized enzyme was studied, showing that after three cycles of reuse the radiosynthesis performance remained unchanged.
期刊介绍:
Process Biochemistry is an application-orientated research journal devoted to reporting advances with originality and novelty, in the science and technology of the processes involving bioactive molecules and living organisms. These processes concern the production of useful metabolites or materials, or the removal of toxic compounds using tools and methods of current biology and engineering. Its main areas of interest include novel bioprocesses and enabling technologies (such as nanobiotechnology, tissue engineering, directed evolution, metabolic engineering, systems biology, and synthetic biology) applicable in food (nutraceutical), healthcare (medical, pharmaceutical, cosmetic), energy (biofuels), environmental, and biorefinery industries and their underlying biological and engineering principles.