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将免疫治疗性 PLGA 纳米颗粒的制造从实验室规模转化到工业规模:工艺转移与体外测试

英文原题:Translating the Manufacture of Immunotherapeutic PLGA Nanoparticles from Lab to Industrial Scale: Process Transfer and In Vitro Testing.

PubMed 2022/08/13(内容时间) Pharmaceutics Q1 · IF 6.9(JCR 2025)

研究概要

聚乳酸-羟基乙酸共聚物(PLGA)纳米颗粒药物递送系统已知可提供众多潜在的治疗益处。

中文摘要

聚乳酸-羟基乙酸共聚物(PLGA)纳米颗粒药物递送系统已知可提供大量潜在的治疗益处。然而,与大规模生产相关的挑战,例如难以重现复杂配方和高制造成本,阻碍了其临床和商业开发。在此背景下,迫切需要一种可靠的生产技术,适用于纳米制剂的放大生产,同时不改变其疗效和安全性特征。在本文中,我们开发了一种在线超声工艺,并将其应用于工业规模生产免疫调节PLGA纳米疫苗,该疫苗最初是在实验室规模下采用批次超声方法开发的。所研究的配方包含三种源自致癌抗原纽约食管鳞状细胞癌-1(NY-ESO-1)的不同合成肽,以及一种恒定自然杀伤T细胞(iNKT)激活剂——苏糖醇神经酰胺-6(IMM60)。对工艺参数进行了优化,以获得平均直径为150 ± 50 nm且多分散指数<0.2的聚合物纳米疫苗配方。对每种配方的制剂特征进行了评估和统计学比较,包括包封率、释放曲线以及体外功能和毒理学特征。总体而言,通过在线超声方法获得的放大配方能够重现实验室规模下采用批次超声开发的纳米疫苗的胶体和功能特性。两种类型的配方在体外均诱导了特异性T细胞和iNKT细胞反应,且无任何毒性,突显了在线超声方法在疗效和安全性方面适用于纳米药物配方的连续放大生产。

展开英文摘要原文

Poly(lactic-co-glycolic acid) (PLGA) nanoparticle-based drug delivery systems are known to offer a plethora of potential therapeutic benefits. However, challenges related to large-scale manufacturing, such as the difficulty of reproducing complex formulations and high manufacturing costs, hinder their clinical and commercial development. In this context, a reliable manufacturing technique suitable for the scale-up production of nanoformulations without altering efficacy and safety profiles is highly needed. In this paper, we develop an inline sonication process and adapt it to the industrial scale production of immunomodulating PLGA nanovaccines developed using a batch sonication method at the laboratory scale. The investigated formulations contain three distinct synthetic peptides derived from the carcinogenic antigen New York Esophageal Squamous Cell Carcinoma-1 (NY-ESO-1) together with an invariant natural killer T-cell (iNKT) activator, threitolceramide-6 (IMM60). Process parameters were optimized to obtain polymeric nanovaccine formulations with a mean diameter of 150 ± 50 nm and a polydispersity index <0.2. Formulation characteristics, including encapsulation efficiencies, release profiles and in vitro functional and toxicological profiles, are assessed and statistically compared for each formulation. Overall, scale-up formulations obtained by inline sonication method could replicate the colloidal and functional properties of the nanovaccines developed using batch sonication at the laboratory scale. Both types of formulations induced specific T-cell and iNKT cell responses in vitro without any toxicity, highlighting the suitability of the inline sonication method for the continuous scale-up of nanomedicine formulations in terms of efficacy and safety.

论文信息

作者
Operti MC、Bernhardt A、Pots J、Sincari V、Jager E、Grimm S、Engel A、Benedikt A
单位
Department of Tumor Immunology, Radboud Institute for Molecular Life Sciences, Radboud University Medical Center, 6500 HB Nijmegen, The Netherlands.Netherlands
期刊
Pharmaceutics2022 Aug 13
原文标识
PubMed 36015316 · DOI 10.3390/pharmaceutics14081690