Conventional and microfluidic methods: Design and optimization of lipid-polymeric hybrid nanoparticles for gene therapy.

IF 5.7 3区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Drug Delivery and Translational Research Pub Date : 2025-03-01 Epub Date: 2024-06-13 DOI:10.1007/s13346-024-01644-4
Daniel González-García, Olga Tapia, Carmen Évora, Patricia García-García, Araceli Delgado
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Abstract

Gene therapy holds significant promise as a therapeutic approach for addressing a diverse range of diseases through the suppression of overexpressed proteins and the restoration of impaired cell functions. Developing a nanocarrier that can efficiently load and release genetic material into cells remains a challenge. The primary goal of this study is to develop formulations aimed to enhance the therapeutic potential of GapmeRs through technological approaches. To this end, lipid-polymeric hybrid nanoparticles (LPHNPs) with PLGA, DC-cholesterol, and DOPE-mPEG2000 were produced by conventional single-step nanoprecipitation (SSN) and microfluidic (MF) methods. The optimized nanoparticles by SSN have a size of 149.9 ± 18.07 nm, a polydispersity index (PdI) of 0.23 ± 0.02, and a zeta potential of (ZP) of 29.34 ± 2.44 mV, while by MF the size was 179.8 ± 6.3, a PdI of 0.24 ± 0.01, and a ZP of 32.25 ± 1.36 mV. Furthermore, LPHNPs prepared with GapmeR-protamine by both methods exhibit a high encapsulation efficiency of approximately 90%. The encapsulated GapmeR is completely released in 24 h. The LPHNP suspensions are stable for up to 6 h in 10% FBS at pH 5.4 and 7.4. By contrast, LPHNPs remain stable in suspension in 4.5% albumin at pH 7.4 for 24 h. Additionally, LPHNPs were successfully freeze-dried using trehalose in the range of 2.5-5% as cryoprotectant The LPHNPs produced by MF and SSN increase, 6 and 12 fold respectively, GapmeR cell uptake, and both of them reduce by 60-70% expression of Tob1 in 48 h.Our study demonstrates the efficacy of the developed LPHNPs as carriers for oligonucleotide delivery, offering valuable insights for their scale up production from a conventional bulk methodology to a high-throughput microfluidic technology.

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传统方法和微流体方法:设计和优化用于基因治疗的脂质-聚合物混合纳米颗粒。
基因疗法作为一种治疗方法,通过抑制过度表达的蛋白质和恢复受损的细胞功能,在治疗各种疾病方面大有可为。开发一种能将遗传物质有效装载并释放到细胞中的纳米载体仍然是一项挑战。本研究的主要目标是开发制剂,旨在通过技术方法提高 GapmeRs 的治疗潜力。为此,研究人员采用传统的单步纳米沉淀法(SSN)和微流控法(MF)制备了含有 PLGA、DC-胆固醇和 DOPE-mPEG2000 的脂质聚合物混合纳米颗粒(LPHNPs)。采用 SSN 法制备的优化纳米粒子的尺寸为 149.9 ± 18.07 nm,多分散指数(PdI)为 0.23 ± 0.02,Zeta 电位(ZP)为 29.34 ± 2.44 mV;而采用 MF 法制备的优化纳米粒子的尺寸为 179.8 ± 6.3 nm,多分散指数(PdI)为 0.24 ± 0.01,Zeta 电位(ZP)为 32.25 ± 1.36 mV。此外,用这两种方法制备的含有 GapmeR-普罗胺的 LPHNPs 封装效率高达约 90%。在 pH 值为 5.4 和 7.4 的 10% FBS 溶液中,LPHNP 悬浮液可稳定长达 6 小时。相比之下,LPHNPs 在 pH 值为 7.4 的 4.5%白蛋白悬浮液中可保持稳定 24 小时。此外,LPHNPs 还成功地用 2.5-5% 的三卤糖作为冷冻保护剂进行了冷冻干燥。我们的研究证明了所开发的 LPHNPs 作为寡核苷酸递送载体的功效,为将其从传统的散装方法升级为高通量微流控技术提供了宝贵的见解。
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来源期刊
Drug Delivery and Translational Research
Drug Delivery and Translational Research MEDICINE, RESEARCH & EXPERIMENTALPHARMACOL-PHARMACOLOGY & PHARMACY
CiteScore
11.70
自引率
1.90%
发文量
160
期刊介绍: The journal provides a unique forum for scientific publication of high-quality research that is exclusively focused on translational aspects of drug delivery. Rationally developed, effective delivery systems can potentially affect clinical outcome in different disease conditions. Research focused on the following areas of translational drug delivery research will be considered for publication in the journal. Designing and developing novel drug delivery systems, with a focus on their application to disease conditions; Preclinical and clinical data related to drug delivery systems; Drug distribution, pharmacokinetics, clearance, with drug delivery systems as compared to traditional dosing to demonstrate beneficial outcomes Short-term and long-term biocompatibility of drug delivery systems, host response; Biomaterials with growth factors for stem-cell differentiation in regenerative medicine and tissue engineering; Image-guided drug therapy, Nanomedicine; Devices for drug delivery and drug/device combination products. In addition to original full-length papers, communications, and reviews, the journal includes editorials, reports of future meetings, research highlights, and announcements pertaining to the activities of the Controlled Release Society.
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3D printed needleless injector based on thermocavitation: analysis of impact and penetration depth in skin phantoms in a repetitive regime. Multifunctional polymeric nanofibrous scaffolds enriched with azilsartan medoxomil for enhanced wound healing. Topical gel formulations as potential dermal delivery carriers for green-synthesized zinc oxide nanoparticles. Conventional and microfluidic methods: Design and optimization of lipid-polymeric hybrid nanoparticles for gene therapy. In-situ gel injection of poloxamer-based metamizole provides long-acting antipyretic effects.
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