68Ga-PET radiopharmacy: A generator-based alternative to 18F-radiopharmacy.

H R Maecke, J P André
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引用次数: 53

Abstract

Positron emission tomography (PET) is becoming a dominating method in the field of molecular imaging. Most commonly used radionuclides are accelerator produced 11C and 18F. An alternative method to label biomolecules is the use of metallic positron emitters; among them 68Ga is the most promising as it can be produced from a generator system consisting of an inorganic or organic matrix immobilizing the parent radionuclide 68Ge. Germanium-68 has a long half-life of 271 days which allows the production of long-lived, potentially very cost-effective generator systems. A commercial generator from Obninsk, Russia, is available which uses TiO2 as an inorganic matrix to immobilize 68Ge in the oxidation state IV+. 68Ge(IV) is chemically sufficiently different to allow efficient separation from 68Ga(III). Ga3+ is redox-inert; its coordination chemistry is dominated by its hard acid character. A variety of mono- and bifunctional chelators were developed which allow immobilization of 68Ga3+ and convenient coupling to biomolecules. Especially peptides targeting G-protein coupled receptors overexpressed on human tumour cells have been studied preclinically and in patient studies showing high and specific tumour uptake and specific localization. 68Ga-radiopharmacy may indeed be an alternative to 18F-based radiopharmacy. Freeze-dried, kit-formulated precursors along with the generator may be provided, similar to the 99Mo/99mTc-based radiopharmacy, still the mainstay of nuclear medicine.

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68Ga-PET放射药理学:基于发生器的18f放射药理学替代品。
正电子发射断层扫描(PET)正在成为分子成像领域的主导手段。最常用的放射性核素是加速器产生的11C和18F。标记生物分子的另一种方法是使用金属正电子发射器;其中,68Ga是最有前途的,因为它可以由固定母体放射性核素68Ge的无机或有机基质组成的发生器系统产生。锗-68的半衰期很长,为271天,这使得生产长寿命的、可能非常具有成本效益的发电系统成为可能。来自俄罗斯奥布宁斯克的一种商用发生器可用,它使用TiO2作为无机基质将68Ge固定在氧化态IV+。68Ge(IV)的化学性质与68Ga(III)完全不同,可以有效地分离。Ga3+是氧化还原惰性的;其配位化学性质主要由其硬酸性质决定。开发了多种单功能和双功能螯合剂,可以固定68Ga3+并方便地与生物分子偶联。特别是在临床前和患者研究中,针对人类肿瘤细胞上过表达的g蛋白偶联受体的肽显示出高度和特异性的肿瘤摄取和特异性定位。68ga -放射药理学可能确实是18f -放射药理学的替代品。冻干的、成套配制的前体可以连同发生器一起提供,类似于基于99Mo/ 99mtc的放射药学,仍然是核医学的支柱。
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