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聚乙二醇化两亲性钆-多胺多羧基大环配体键合支化聚合物作为磁共振成像造影剂

PEGylated Amphiphilic Gd-DOTA Backboned-Bound Branched Polymers as Magnetic Resonance Imaging Contrast Agents.

作者信息

Fu Shengxiang, Cai Zhongyuan, Liu Li, Fu Xiaomin, Xia Chunchao, Lui Su, Gong Qiyong, Song Bin, Ai Hua

机构信息

National Engineering Research Center for Biomaterials, Sichuan University, Chengdu 610065, China.

Huaxi MR Research Center (HMRRC), Department of Radiology, West China Hospital of Sichuan University, Chengdu 610041, China.

出版信息

Biomacromolecules. 2023 Dec 11;24(12):5998-6008. doi: 10.1021/acs.biomac.3c00987. Epub 2023 Nov 9.

Abstract

MRI contrast agents with high kinetic stability and relaxivity are the key objectives in the field. We previously reported that Gd-DOTA backboned-bound branched polymers possess high kinetic stability and significantly increased relaxivity than traditional branched polymer contrast agents. In this work, non-PEGylated and PEGylated amphiphilic Gd-DOTA backboned-bound branched polymers [P(GdDOTA-C), P(GdDOTA-C), mPEG-P(GdDOTA-C), and mPEG-P(GdDOTA-C)] were obtained by sequential introduction of rigid carbon chains (1,6-hexamethylenediamine or 1,10-diaminodecane) and mPEG into the structure of Gd-DOTA backboned-bound branched polymers. It is found that the introduction of both rigid carbon chains, especially the longer one, and mPEG can increase the kinetic stability and relaxivity of Gd-DOTA backboned-bound branched polymers. Among them, mPEG-P(GdDOTA-C) possesses the highest kinetic stability (significantly higher than those of linear Gd-DTPA and cyclic Gd-DOTA-butrol) and relaxivity (42.9 mM s, 1.5 T), 11 times that of Gd-DOTA and 1.4 times that of previously reported Gd-DOTA backboned-bound branched polymers. In addition, mPEG-P(GdDOTA-C) showed excellent MRA effect in cardiovascular and hepatic vessels at a dose (0.025 or 0.05 mmol Gd/kg BW) far below the clinical range (0.1-0.3 mmol Gd/kg BW). Overall, effective branched-polymer-based contrast agents can be obtained by a strategy in which rigid carbon chains and PEG were introduced into the structure of Gd-DOTA backbone-bound branched polymers, resulting in excellent kinetic stability and enhanced relaxivity.

摘要

具有高动力学稳定性和弛豫率的磁共振成像(MRI)造影剂是该领域的关键目标。我们之前报道过,以钆-二乙三胺五乙酸(Gd-DOTA)为骨架连接的支化聚合物具有高动力学稳定性,并且与传统的支化聚合物造影剂相比,弛豫率显著提高。在这项工作中,通过将刚性碳链(1,6-己二胺或1,10-二氨基癸烷)和甲氧基聚乙二醇(mPEG)依次引入以Gd-DOTA为骨架连接的支化聚合物结构中,获得了非聚乙二醇化和聚乙二醇化的两亲性Gd-DOTA骨架连接的支化聚合物[P(GdDOTA-C)、P(GdDOTA-C)、mPEG-P(GdDOTA-C)和mPEG-P(GdDOTA-C)]。研究发现,刚性碳链(尤其是较长的碳链)和mPEG的引入均可提高Gd-DOTA骨架连接的支化聚合物的动力学稳定性和弛豫率。其中,mPEG-P(GdDOTA-C)具有最高的动力学稳定性(显著高于线性钆-二乙烯三胺五乙酸钆(Gd-DTPA)和环状钆-二乙三胺五乙酸丁螺环酮(Gd-DOTA-butrol))和弛豫率(42.9 mM s,1.5 T),是Gd-DOTA的11倍,是先前报道的Gd-DOTA骨架连接的支化聚合物的1.4倍。此外,mPEG-P(GdDOTA-C)在剂量(0.025或0.05 mmol Gd/kg体重)远低于临床范围(0.1 - 0.3 mmol Gd/kg体重)时,在心血管和肝血管中显示出优异的磁共振血管造影(MRA)效果。总体而言,通过将刚性碳链和PEG引入Gd-DOTA骨架连接的支化聚合物结构的策略,可以获得有效的基于支化聚合物的造影剂,从而具有优异的动力学稳定性和增强的弛豫率。

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