利用电纺丝生成的聚乙烯醇基聚合物纳米纤维控制溶菌酶的释放。

IF 1.5 4区 医学 Q4 CHEMISTRY, MEDICINAL Chemical & pharmaceutical bulletin Pub Date : 2024-01-01 DOI:10.1248/cpb.c24-00024
Riho Ogawa, Kouji Hara, Ayaka Kobayashi, Nobuyoshi Yoshimura, Yutaka Taniguchi, Eriko Yamazoe, Takaaki Ito, Kohei Tahara
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引用次数: 0

摘要

通过电纺丝生成的聚合物纳米纤维为药物输送系统提供了一个前景广阔的平台。本研究探讨了电纺聚乙烯醇(PVA)纳米纤维在控制溶菌酶(LZM)给药中的应用。通过使用不同等级的聚乙烯醇,如聚合度/水解度,本研究探讨了它们对纳米纤维形态和药物释放特性的影响。药物含量为 50%的 LZM 负载 PVA 单片纳米纤维表现出高效的夹持性,在 30 分钟内实现了快速溶解。随着 LZM 含量的降低,LZM 从纳米纤维中的初始迸发量也随之降低。初始溶解度在很大程度上受所选 PVA 等级的影响;由于 PVA 的水溶性降低,完全水解的 PVA 纳米纤维表现出可控释放性。此外,同轴电纺丝技术可产生以聚己内酯为控释层的核壳纳米纤维,从而实现 LZM 的长期持续释放。这项研究证实了 PVA 特性与药物控释之间的相关性,并为定制纳米纤维的制药应用特性提供了宝贵的见解。
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Controlled Release of Lysozyme Using Polyvinyl Alcohol-Based Polymeric Nanofibers Generated by Electrospinning.

Polymeric nanofibers generated via electrospinning offer a promising platform for drug delivery systems. This study examines the application of electrospun polyvinyl alcohol (PVA) nanofibers for controlled lysozyme (LZM) delivery. By using various PVA grades, such as the degree of polymerization/hydrolysis, this study investigates their influence on nanofiber morphology and drug-release characteristics. LZM-loaded PVA monolithic nanofibers having 50% drug content exhibit efficient entrapment, wherein rapid dissolution is achieved within 30 min. The initial burst of LZM from the nanofiber was reduced as the LZM content was lowered. The initial dissolution is greatly influenced by the choice of PVA grade used; fully hydrolyzed PVA nanofibers demonstrate controlled release due to the reduced water solubility of PVA. Furthermore, coaxial electrospinning, which creates core-shell nanofibers with polycaprolactone as a controlled release layer, enables sustained LZM release over an extended period. This study confirms a correlation between PVA characteristics and controlled drug release and provides valuable insights into tailoring nanofiber properties for pharmaceutical applications.

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来源期刊
CiteScore
3.20
自引率
5.90%
发文量
132
审稿时长
1.7 months
期刊介绍: The CPB covers various chemical topics in the pharmaceutical and health sciences fields dealing with biologically active compounds, natural products, and medicines, while BPB deals with a wide range of biological topics in the pharmaceutical and health sciences fields including scientific research from basic to clinical studies. For details of their respective scopes, please refer to the submission topic categories below. Topics: Organic chemistry In silico science Inorganic chemistry Pharmacognosy Health statistics Forensic science Biochemistry Pharmacology Pharmaceutical care and science Medicinal chemistry Analytical chemistry Physical pharmacy Natural product chemistry Toxicology Environmental science Molecular and cellular biology Biopharmacy and pharmacokinetics Pharmaceutical education Chemical biology Physical chemistry Pharmaceutical engineering Epidemiology Hygiene Regulatory science Immunology and microbiology Clinical pharmacy Miscellaneous.
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