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同轴静电纺丝和 3D 打印相结合:用于牙周炎治疗的双层可生物降解膜的设计,具有双重药物输送能力。

Combining Coaxial Electrospinning and 3D Printing: Design of Biodegradable Bilayered Membranes with Dual Drug Delivery Capability for Periodontitis Treatment.

机构信息

Nanotechnology National Laboratory for Agriculture (LNNA), Embrapa Instrumentação, São Carlos, São Paulo 13560-970, Brazil.

UNESP - São Paulo State University, School of Pharmaceutical Sciences - Department of Clinical Analysis, Rodovia Araraquara Jaú, Km 01-s/n-Campos Ville, Araraquara, São Paulo 14801-903, Brazil.

出版信息

ACS Appl Bio Mater. 2022 Jan 17;5(1):146-159. doi: 10.1021/acsabm.1c01019. Epub 2021 Dec 10.

Abstract

Periodontitis is a chronic inflammatory disease that can lead to significant destruction of tooth-supporting tissues, compromising dental function and patient's health. Although the currently employed treatment approaches can limit the advance of the disease, the development of multifunctional and hierarchically structured materials is still in demand for achieving successful tissue regeneration. Here, we combine coaxial electrospinning and 3D printing techniques to prepare bilayered zein-based membranes as a potential dual drug delivery platform for periodontal tissue regeneration. A layer of core-sheath electrospun nanofibers consisting of poly(ethylene oxide) (PEO)/curcumin (Curc)/tetracycline hydrochloride (TH) as the core and zein/poly(ε-caprolactone)(PCL)/β-glycerolphosphate (β-GP) as the sheath was deposited over a 3D printed honeycomb PLA/zein/Curc platform in order to render a bilayered structure that can mimic the architecture of periodontal tissue. The physicochemical properties of engineered constructs as well as the release profiles of distinct drugs were mainly controlled by varying the concentration of zein (10, 20, 30%, w/w relative to dry PCL) on the sheath layer of nanofibers, which displayed average diameters ranging from 150 to 400 nm. In vitro experiments demonstrated that the bilayered constructs provided sustained release of distinct drugs over 8 days and exhibited biocompatibility toward human oral keratinocytes (Nok-si) (cell viability >80%) as well as antibacterial activity against distinct bacterial strains including those of the red complex such as and , which are recognized to elicit aggressive and chronic periodontitis. Our study reveals the potential of zein-based bilayered membranes as a dual drug delivery platform for periodontal tissue regeneration.

摘要

牙周炎是一种慢性炎症性疾病,可导致牙齿支持组织的严重破坏,影响牙齿功能和患者的健康。尽管目前采用的治疗方法可以限制疾病的进展,但仍需要开发多功能和分层结构的材料,以实现成功的组织再生。在这里,我们结合同轴静电纺丝和 3D 打印技术,制备了双层玉米醇溶蛋白基膜,作为牙周组织再生的潜在双重药物递送平台。以聚氧化乙烯(PEO)/姜黄素(Curc)/盐酸四环素(TH)为芯,玉米醇溶蛋白/聚(ε-己内酯)(PCL)/β-甘油磷酸(β-GP)为鞘的核壳结构的电纺纳米纤维层沉积在 3D 打印的 PLA/玉米醇溶蛋白/Curc 多孔支架上,形成双层结构,模拟牙周组织的结构。通过改变鞘层纳米纤维中玉米醇溶蛋白的浓度(相对于干 PCL 为 10、20、30%,w/w),可以主要控制工程化构建体的物理化学性质和不同药物的释放曲线,纳米纤维的平均直径范围为 150-400nm。体外实验表明,双层构建体在 8 天内提供了不同药物的持续释放,并表现出对人口腔角质细胞(Nok-si)(细胞活力>80%)的生物相容性以及对不同细菌菌株的抗菌活性,包括被认为引起侵袭性和慢性牙周炎的红色复合体中的细菌。我们的研究揭示了基于玉米醇溶蛋白的双层膜作为牙周组织再生的双重药物递送平台的潜力。

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