用于经导管动脉栓塞实时成像的温度敏感纳米凝胶。

IF 1.8 4区 化学 Q3 POLYMER SCIENCE
Hongfu Zhou, Wenjing Xie, Anran Guo, Bin Chen, Sanming Hu, Min Zheng, Houqiang Yu, Hongan Tian, Ling Li
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引用次数: 1

摘要

临床上常用的几种血管栓塞材料均存在不同程度的应用缺陷,如术中显像差、栓塞血管易再通等,给经导管动脉栓塞(Transcatheter arterial embolization, TAE)的应用带来了挑战。因此,一种具有良好栓塞效果和生物相容性的术中可见血管栓塞材料可在一定程度上提高经导管动脉栓塞的临床疗效。我们的研究旨在合成一种新型的血管栓塞材料,即聚(n -异丙基丙烯酰胺)-共丙烯酸纳米凝胶(NIPAM-co-AA),可以实现动脉干和外周血管的完全栓塞。将碘hexol 200 mg/mL与7 wt% NIPAM-co-AA纳米凝胶共组装制成智能热敏透射线纳米凝胶(INCA),该纳米凝胶具有良好的流动性和温度敏感的溶胶-凝胶相变,可获得良好的术中成像效果,便于经导管动脉灌注。正常兔肾栓塞模型进一步证实了INCA可以有效利用数字减影血管造影(Digital subtraction angiography, DSA)实现术中成像,实时监测栓塞过程,避免误栓塞和渗漏。同时,在42天的研究中,INCA对新西兰大白兔右肾动脉的栓塞效果很好,没有血管再通,没有缺血坏死和钙化。因此,这种不透射线的热敏纳米凝胶有潜力成为一种智能热敏医用血管栓塞材料,在TAE术中成像和术后长期栓塞方面具有双重优势,同时有效解决了临床常用血管栓塞剂的缺点和挑战。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Temperature sensitive nanogels for real-time imaging during transcatheter arterial embolization.

Temperature sensitive nanogels for real-time imaging during transcatheter arterial embolization.

Temperature sensitive nanogels for real-time imaging during transcatheter arterial embolization.

Temperature sensitive nanogels for real-time imaging during transcatheter arterial embolization.

Several vascular embolization materials are commonly used in clinical practice, however, having application defects of varying degrees, such as poor intraoperative imaging and easy recanalization of embolized blood vessels, they are challenging for application during Transcatheter arterial embolization (TAE). Thus, an intraoperative visible vascular embolization material with good embolization effect and biocompatibility can improve transcatheter arterial embolization clinical efficacy to some extent. Our study aimed to synthesize a novel vascular embolization material that can achieve complete embolization of arterial trunks and peripheral vessels, namely poly (N-isopropyl acrylamide)-co-acrylic acid nanogel (NIPAM-co-AA). Iohexol 200 mg/mL was co-assembled with 7 wt% NIPAM-co-AA nanogel to create an intelligent thermosensitive radiopaque nanogel (INCA), which achieves a good intraoperative imaging effect and is convenient for transcatheter arterial bolus injection due to its good fluidity and temperature-sensitive sol-gel phase transition. The normal rabbit kidney embolism model further confirmed that INCA could effectively use Digital subtraction angiography (DSA) to achieve intraoperative imaging, and real-time monitoring of the embolization process could avoid mis-embolization and leakage. Meanwhile, in a 42-day study, INCA demonstrated an excellent embolization effect on the right renal artery of New Zealand white rabbits, with no vascular recanalization and ischemic necrosis and calcification remaining. As a result, this radiopaque thermosensitive nanogel has the potential to be an intelligent thermosensitive medical vascular embolization material, providing dual benefits in TAE intraoperative imaging and long-term postoperative embolization while effectively addressing the shortcomings and challenges of commonly used clinical vascular embolization agents.

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来源期刊
Designed Monomers and Polymers
Designed Monomers and Polymers 化学-高分子科学
CiteScore
3.30
自引率
0.00%
发文量
28
审稿时长
2.1 months
期刊介绍: Designed Monomers and Polymers ( DMP) publishes prompt peer-reviewed papers and short topical reviews on all areas of macromolecular design and applications. Emphasis is placed on the preparations of new monomers, including characterization and applications. Experiments should be presented in sufficient detail (including specific observations, precautionary notes, use of new materials, techniques, and their possible problems) that they could be reproduced by any researcher wishing to repeat the work. The journal also includes macromolecular design of polymeric materials (such as polymeric biomaterials, biomedical polymers, etc.) with medical applications. DMP provides an interface between organic and polymer chemistries and aims to bridge the gap between monomer synthesis and the design of new polymers. Submssions are invited in the areas including, but not limited to: -macromolecular science, initiators, macroinitiators for macromolecular design -kinetics, mechanism and modelling aspects of polymerization -new methods of synthesis of known monomers -new monomers (must show evidence for polymerization, e.g. polycondensation, sequential combination, oxidative coupling, radiation, plasma polymerization) -functional prepolymers of various architectures such as hyperbranched polymers, telechelic polymers, macromonomers, or dendrimers -new polymeric materials with biomedical applications
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