Zaborniak Izabela, Macior Angelika, Chmielarz Paweł
Department of Physical Chemistry, Faculty of Chemistry, Rzeszow University of Technology, Al. Powstańców Warszawy 6, 35-959 Rzeszów, Poland.
Doctoral School of Engineering and Technical Sciences at the Rzeszow University of Technology, Al. Powstańców Warszawy 8, 35-959 Rzeszów, Poland.
Molecules. 2021 Mar 29;26(7):1918. doi: 10.3390/molecules26071918.
A series of troxerutin-based macromolecules with ten poly(acrylic acid) (PAA) or poly(2-dimethylaminoethyl methacrylate) (PDMAEMA) homopolymer side chains were synthesized by a supplemental activator and reducing agent atom transfer radical polymerization (SARA ATRP) approach. The prepared precisely-defined structures with low dispersity (/ < 1.09 for PAA-based, and / < 1.71 for PDMAEMA-based macromolecules) exhibited pH-responsive behavior depending on the length of the polymer grafts. The properties of the received polyelectrolytes were investigated by dynamic light scattering (DLS) measurement to determine the hydrodynamic diameter and zeta potential upon pH changes. Additionally, PDMAEMA-based polymers showed thermoresponsive properties and exhibited phase transfer at a lower critical solution temperature (LCST). Thanks to polyelectrolyte characteristics, the prepared polymers were investigated as smart materials for controlled release of quercetin. The influence of the length of the polymer grafts for the quercetin release profile was examined by UV-VIS spectroscopy. The results suggest the strong correlation between the length of the polymer chains and the efficiency of active substance release, thus, the adjustment of the composition of the macromolecules characterized by branched architecture can precisely control the properties of smart delivery systems.
通过补充活化剂和还原剂原子转移自由基聚合(SARA ATRP)方法合成了一系列具有十个聚丙烯酸(PAA)或聚甲基丙烯酸2-二甲基氨基乙酯(PDMAEMA)均聚物侧链的基于曲克芦丁的大分子。制备的具有低分散度(基于PAA的大分子/ < 1.09,基于PDMAEMA的大分子/ < 1.71)的精确确定结构根据聚合物接枝的长度表现出pH响应行为。通过动态光散射(DLS)测量研究了所得聚电解质的性质,以确定pH变化时的流体动力学直径和zeta电位。此外,基于PDMAEMA的聚合物表现出热响应性质,并在较低临界溶液温度(LCST)下发生相转移。由于聚电解质特性,研究了所制备的聚合物作为槲皮素控释的智能材料。通过紫外可见光谱研究了聚合物接枝长度对槲皮素释放曲线的影响。结果表明聚合物链长度与活性物质释放效率之间存在强相关性,因此,通过调整具有支化结构的大分子组成可以精确控制智能递送系统的性质。