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用于多模态正电子发射断层扫描(PET)和光学成像的位点特异性标记免疫缀合物合成的化学酶策略。

Chemoenzymatic strategy for the synthesis of site-specifically labeled immunoconjugates for multimodal PET and optical imaging.

作者信息

Zeglis Brian M, Davis Charles B, Abdel-Atti Dalya, Carlin Sean D, Chen Aimei, Aggeler Robert, Agnew Brian J, Lewis Jason S

机构信息

Department of Radiology, Memorial Sloan Kettering Cancer Center , New York, New York 10065, United States.

出版信息

Bioconjug Chem. 2014 Dec 17;25(12):2123-8. doi: 10.1021/bc500499h. Epub 2014 Nov 26.

Abstract

The complementary nature of positron emission tomography (PET) and optical imaging (OI) has fueled increasing interest in the development of multimodal PET/OI probes that can be employed during the diagnosis, staging, and surgical treatment of cancer. Due to their high selectivity and affinity, antibodies have emerged as promising platforms for the development of hybrid PET/OI agents. However, the lack of specificity of many bioconjugation reactions can threaten immunoreactivity and lead to poorly defined constructs. To circumvent this issue, we have developed a chemoenzymatic strategy for the construction of multimodal PET/OI immunoconjugates that have been site-specifically labeled on the heavy chain glycans. The methodology consists of four steps: (1) the enzymatic removal of the terminal galactose residues on the heavy chain glycans; (2) the enzymatic incorporation of azide-bearing galactose (GalNAz) residues into the heavy chain glycans; (3) the strain-promoted click conjugation of chelator- and fluorophore-modified dibenzocyclooctynes to the azide-modified sugars; and (4) the radiolabeling of the immunoconjugate. For proof-of-concept, a model system was created using the colorectal cancer-targeting antibody huA33, the chelator desferrioxamine (DFO), the positron-emitting radiometal (89)Zr, and the near-infrared fluorescent dye Alexa Fluor 680. The bioconjugation strategy is robust and reproducible, reliably producing well-defined and immunoreactive conjugates labeled with (89)Zr, Alexa Fluor 680, or an easily and precisely tuned mixture of the two reporters. In in vivo PET and fluorescence imaging experiments, a hybrid (89)Zr- and Alexa Fluor 680-labeled huA33 conjugate displayed high levels of specific uptake (>45% ID/g) in athymic nude mice bearing A33 antigen-expressing SW1222 colorectal cancer xenografts.

摘要

正电子发射断层扫描(PET)与光学成像(OI)的互补特性激发了人们对开发多模态PET/OI探针的兴趣日益浓厚,这些探针可用于癌症的诊断、分期和手术治疗。由于抗体具有高选择性和亲和力,已成为开发PET/OI杂交剂的有前景平台。然而,许多生物共轭反应缺乏特异性可能会威胁免疫反应性,并导致构建体定义不明确。为规避这一问题,我们开发了一种化学酶促策略,用于构建在重链聚糖上进行位点特异性标记的多模态PET/OI免疫共轭物。该方法包括四个步骤:(1)酶促去除重链聚糖上的末端半乳糖残基;(2)将含叠氮基的半乳糖(GalNAz)残基酶促掺入重链聚糖;(3)螯合剂和荧光团修饰的二苯并环辛炔与叠氮基修饰的糖进行应变促进的点击共轭;(4)免疫共轭物的放射性标记。为进行概念验证,使用靶向结直肠癌的抗体huA33、螯合剂去铁胺(DFO)、发射正电子的放射性金属(89)Zr和近红外荧光染料Alexa Fluor 680创建了一个模型系统。该生物共轭策略稳健且可重复,能可靠地产生用(89)Zr、Alexa Fluor 680或这两种报告分子的易于精确调节的混合物标记的定义明确且具有免疫反应性的共轭物。在体内PET和荧光成像实验中,一种(89)Zr和Alexa Fluor 680标记的huA33杂交共轭物在携带表达A33抗原的SW1222结直肠癌异种移植瘤的无胸腺裸鼠中显示出高水平的特异性摄取(>45% ID/g)。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/4e67/4334285/f7db989cc922/bc-2014-00499h_0002.jpg

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