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新型生物活性聚氨酯泡沫材料的制备与表征

Preparation and characterization of new biologically active polyurethane foams.

作者信息

Savelyev Yuri, Veselov Vitali, Markovskaya Ludmila, Savelyeva Olga, Akhranovich Elena, Galatenko Natalya, Robota Ludmila, Travinskaya Tamara

机构信息

Institute of Macromolecular Chemistry, NAS of Ukraine, 48 Kharkovskoe shosse, 02160 Kiev, Ukraine.

Institute of Macromolecular Chemistry, NAS of Ukraine, 48 Kharkovskoe shosse, 02160 Kiev, Ukraine.

出版信息

Mater Sci Eng C Mater Biol Appl. 2014 Dec;45:127-35. doi: 10.1016/j.msec.2014.08.068. Epub 2014 Sep 6.

Abstract

Biologically active polyurethane foams are the fast-developed alternative to many applications of biomedical materials. Due to the polyurethane structure features and foam technology it is possible to incorporate into their structure the biologically active compounds of target purpose via structural-chemical modification of macromolecule. A series of new biologically active polyurethane foams (PUFs) was synthesized with polyethers (MM 2500-5000), polyesters MM (500-2200), 2,4(2,6) toluene diisocyanate, water as a foaming agent, catalysts, foam stabilizers and functional compounds. Different functional compounds: 1,4-di-N-oxy-2,3-bis-(oxymethyl)-quinoxaline (DOMQ), partial sodium salt of poly(acrylic acid) and 2,6-dimethyl-N,N-diethyl aminoacetatanilide hydrochloride were incorporated into the polymer structure/composition due to the chemical and/or physical bonding. Structural peculiarities of PUFs were studied by FTIR spectroscopy and X-ray scattering. Self-adhesion properties of PUFs were estimated by measuring of tensile strength at break of adhesive junction. The optical microscopy method was performed for the PUF morphology studies. Toxicological estimation of the PUFs was carried out in vitro and in vivo. The antibacterial action towards the Gram-positive and Gram-negative bacteria (Escherichia coli ATC 25922, E. coli ATC 2150, Klebsiella pneumoniae 6447, Staphylococcus aureus 180, Pseudomonas aeruginosa 8180, Proteus mirabilis F 403, P. mirabilis 6054, and Proteus vulgaris 8718) was studied by the disc method on the solid nutrient. Physic-chemical properties of the PUFs (density, tensile strength and elongation at break, water absorption and vapor permeability) showed that all studied PUFs are within the operational requirements for such materials and represent fine-cellular foams. Spectral studies confirmed the incorporation of DOMQ into the PUF's macrochain. PUFs are characterized by microheterogeneous structure. They are antibacterially active, non-toxic materials with high affinity to the tissue body, self-adhesive properties and local anesthetic effect.

摘要

生物活性聚氨酯泡沫是生物医学材料众多应用中快速发展起来的替代品。由于聚氨酯的结构特点和泡沫技术,通过大分子的结构化学改性,有可能将目标用途的生物活性化合物纳入其结构中。用聚醚(分子量2500 - 5000)、聚酯(分子量500 - 2200)、2,4(2,6)甲苯二异氰酸酯、水作为发泡剂、催化剂、泡沫稳定剂和功能化合物合成了一系列新型生物活性聚氨酯泡沫(PUF)。通过化学和/或物理键合,将不同的功能化合物:1,4 - 二 - N - 氧基 - 2,3 - 双 - (氧甲基)喹喔啉(DOMQ)、聚丙烯酸部分钠盐和2,6 - 二甲基 - N,N - 二乙氨基乙酰苯胺盐酸盐纳入聚合物结构/组成中。通过傅里叶变换红外光谱(FTIR)和X射线散射研究了PUF的结构特性。通过测量粘合剂连接处的断裂拉伸强度来评估PUF的自粘性能。采用光学显微镜方法研究PUF的形态。对PUF进行了体外和体内毒理学评估。通过固体培养基上的纸片法研究了对革兰氏阳性和革兰氏阴性细菌(大肠杆菌ATC 25922、大肠杆菌ATC 2150、肺炎克雷伯菌6447、金黄色葡萄球菌180、铜绿假单胞菌8180、奇异变形杆菌F 403、奇异变形杆菌6054和普通变形杆菌8718)的抗菌作用。PUF的物理化学性质(密度、拉伸强度和断裂伸长率、吸水性和透湿性)表明,所有研究的PUF都符合此类材料的使用要求,并且是细孔泡沫。光谱研究证实DOMQ已纳入PUF的大分子链中。PUF具有微非均相结构。它们是具有抗菌活性、无毒、对组织体具有高亲和力、自粘性能和局部麻醉作用的材料。

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