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Thermal stabilization of nucleic acid nanoparticles (NANPs) using light-assisted drying

机译:使用光辅助干燥的核酸纳米粒子(NANP)的热稳定

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Cold storage can be challenging and expensive for the transportation and storage of biologies. We are developing a new processing technique, light-assisted drying (LAD), to prepare biologics for anhydrous storage in a tre-halose amorphous solid matrix. Nucleic acid nanoparticles (NANPs) are an example of new biological products that require refrigeration. DNA and RNA have emerged as building blocks for versatile biological drugs, called therapeutic nucleic acids (TNAs). NANPs have been developed to simultaneously deliver multiple TNAs and to conditionally activate TNAs and control their immunorecognition. The structural and chemical instability of NANPs over long-term storage at ambient temperatures is a challenge that may hamper broad use of this promising technology. In this work we apply the LAD technique to NANPs. NANPs suspended in a droplet of trehalose solution are irradiated with a near-IR laser to accelerate drying. As water is removed, the tre-halose forms a protective matrix. The laser allows for careful control of sample temperature during processing. This is important as NANPs are thermally sensitive. In this study, RNA cubes (a type of NANP) were LAD processed and then stored for 1 month. Damage to LAD-processed NANPs was assessed after storage using gel electrophoresis and compared to unprocessed controls stored at 4°C. The thermal histories of samples were monitored during processing to determine the importance of temperature excursions on NANP viability after processing. The trehalose matrix was characterized using polarized light imaging to determine if crystallization occurred during storage, damaging embedded NANPs. These preliminary studies indicate that LAD processing can stabilize NANPs for dry-state storage at room temperatures.
机译:冷库可能是挑战性和昂贵的生物学运输和储存。我们正在开发一种新的加工技术,轻辅干燥(LAD),为Tre-Halose无定形固体基质中的无水储存制备生物学。核酸纳米颗粒(NANP)是需要制冷的新型生物产品的一个例子。 DNA和RNA已成为多功能生物药物的构建块,称为治疗核酸(TNA)。已经开发了纳米以同时递送多个TNA并有条件地激活TNA并控制其免疫识别。在环境温度下长期储存的NANP的结构和化学不稳定是可能妨碍广泛使用这项有前途的技术的挑战。在这项工作中,我们将LAD技术应用于纳米。用近红外激光照射悬浮在海藻糖溶液的液滴中的纳米以加速干燥。除去水,Tre-Halose形成保护基质。激光允许仔细控制加工过程中的样品温度。这是重要的,因为纳米是热敏的。在本研究中,RNA立方体(一种NANP)是LAD加工,然后储存1个月。使用凝胶电泳储存后,在储存后评估对Lad加工纳米的损伤,并与在4℃下储存的未加工的对照进行比较。在处理过程中监测样品的热历史,以确定在加工后温度偏移对NANP活力的重要性。使用偏振光成像的海藻糖基质表征,以确定在储存期间发生结晶,损坏嵌入式纳米。这些初步研究表明,LAD加工可以在室温下稳定纳米的干燥状态储存。

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