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Amphiphilic tri- and tetra-block co-polymers combining versatile functionality with facile assembly into cytocompatible nanoparticles

机译:两亲的三块和四嵌段共聚物将多功能官能团组合成细胞组装成细胞势型纳米粒子

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摘要

In order for synthetic polymers to find widespread practical application as biomaterials, their syntheses must be easy to perform, utilising freely available building blocks, and should generate products which have no adverse effects on cells or tissue. In addition, it is highly desirable that the synthesis platform for the biomaterials can be adapted to generate polymers with a range of physical properties and macromolecular architectures, and with multiple functional handles to allow derivatisation with 'actives' for sensing or therapy. Here we describe the syntheses of amphiphilic tri- and tetra-block copolymers, using diazabicyclo[5.4.0]undec-5-ene (DBU) as a metal-free catalyst for ring-opening polymerisations of the widely-utilised monomer lactide combined with a functionalised protected cyclic carbonate. These syntheses employed PEGylated macroinitiators with varying chain lengths and architectures, as well as a labile-ester methacrylate initiator, and produced block copolymers with good control over monomer incorporation, molar masses, side-chain and terminal functionality and physico-chemical properties. Regardless of the nature of the initiators, the fidelity of the hydroxyl end group was maintained as confirmed by a second ROP chain extension step, and polymers with acryloyl/methacryloyl termini were able to undergo a second tandem reaction step, in particular thiol-ene click and RAFT polymerisations for the production of hyperbranched materials. Furthermore, the polymer side-chain functionalities could be easily deprotected to yield an active amine which could be subsequently coupled to a drug molecule in good yields. The resultant amphiphilic copolymers formed a range of unimolecular or kinetically-trapped micellar-like nanoparticles in aqueous environments, and the non-cationic polymers were all well-tolerated by MCF-7 breast cancer cells. The rapid and facile route to such highly adaptable polymers, as demonstrated here, offers promise for a range of bio materials applications.
机译:为了为合成聚合物发现广泛的实际应用作为生物材料,它们的合成必须易于使用自由可用的构建块,并且应该产生对细胞或组织没有不利影响的产品。此外,非常希望生物材料的合成平台可以适于产生具有一系列物理性质和大分子架构的聚合物,并且具有多个功能手柄,以允许衍生化与“活性”进行传感或治疗。在这里,我们描述了使用DiazabiciClo [5.4.0] UNDEC-5-ENE-5-ENE(DBU)作为无金属催化剂的两亲性三嵌段共聚物的合成,用于与之广泛利用单体丙交酯的开环聚合官能化的保护循环碳酸酯。这些合成利用具有不同链长和架构的聚乙二醇化的大胆,以及不稳定的酯甲基丙烯酸酯引发剂,并产生嵌段共聚物,并对单体掺入,摩尔质量,侧链和末端功能和物理化学性能良好控制。无论引发剂的性质如何,保持羟基端基的保真度,如第二个ROP链延伸步骤所证实,并且用丙烯酰/甲基丙烯酰末端的聚合物能够经历第二串联反应步骤,特别是硫醇-NE点击和筏聚合用于生产超支化材料。此外,可以容易地剥夺聚合物侧链官能团,得到活性胺,其随后可以以良好的产率与药物分子偶联。得到的两亲性共聚物在水性环境中形成一系列单分子或动力学夹层的米粉,并且非阳离子聚合物被MCF-7乳腺癌细胞均可妥善耐受。如此证明,如此高适应性聚合物的快速和容易的途径提供了一系列生物材料应用的承诺。

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