College of Chemistry, Zhengzhou University, Zhengzhou, China.
School of Materials Science and Engineering, Zhengzhou University, Zhengzhou, China.
J Biomater Sci Polym Ed. 2021 Apr;32(6):763-778. doi: 10.1080/09205063.2020.1866350. Epub 2021 Feb 9.
pH-responsive core-shell structured composite hydrogel beads, composed of a alginate (ALG) core coated with carboxymethyl cellulose (CMC) shell (ALG@CMC), were prepared by using in-situ gel preparation technology as a drug delivery system. An anti-inflammatory drug, indomethacin was loaded into the formed hydrogels as a model drug. The resulting gel samples were characterized by Fourier transforms infrared (FTIR) spectroscopy, thermo-gravimetric (TG) analysis, and scanning electron microscopy (SEM). The mechanical stability of all samples in phosphate buffered solution (PBS, pH 7.4) was approximately measured through oscillation experiments. Swelling and controlled drug release behaviors of ALG@CMC beads compared with ALG were studied in simulating gastric fluid of pH 1.2 or intestinal fluid of pH 7.4 at 37 °C. Oscillation experiments proved that the mechanical stability of ALG@CMC beads could be significantly improved by the CMC shell layer. The swelling and drug release behaviors revealed that the swelling and drug release rate of ALG@CMC beads were obviously slower than that of simple-ALG and both have significant pH responsiveness. The cumulative drug release from ALG, ALG@CMC-1, ALG@CMC-2 and ALG@CMC-3 was about 100%, 67%, 46% and 37% in simulated intestinal fluid of pH 7.4, respectively, while the drug release reached only about 2.0% in simulating gastric fluid of pH 1.2 within 720 min. These developed materials could potentially be employed as a pH-responsive drug delivery device .[Formula: see text].
pH 响应核壳结构复合水凝胶珠,由海藻酸钠(ALG)核包被羧甲基纤维素(CMC)壳(ALG@CMC)组成,采用原位凝胶制备技术作为药物传递系统。将抗炎药物吲哚美辛作为模型药物载入形成的水凝胶中。通过傅里叶变换红外(FTIR)光谱、热重(TG)分析和扫描电子显微镜(SEM)对所得凝胶样品进行了表征。通过振荡实验大致测量了所有样品在磷酸盐缓冲溶液(PBS,pH7.4)中的机械稳定性。在 37°C 时,研究了 ALG@CMC 珠与 ALG 的模拟胃液(pH1.2)或模拟肠液(pH7.4)中的溶胀和控释药物行为。振荡实验证明,CMC 壳层可以显著提高 ALG@CMC 珠的机械稳定性。溶胀和药物释放行为表明,ALG@CMC 珠的溶胀和药物释放速率明显慢于简单-ALG,并且都具有明显的 pH 响应性。ALG、ALG@CMC-1、ALG@CMC-2 和 ALG@CMC-3 在模拟肠液(pH7.4)中的累积药物释放量分别约为 100%、67%、46%和 37%,而在模拟胃液(pH1.2)中 720min 内仅释放约 2.0%的药物。这些开发的材料有可能作为 pH 响应性药物递送装置使用。