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一种用于蛋白质治疗药物包封的新型3D打印颗粒制造技术:喷雾多吸附液滴静置技术(SMART)。

A Novel 3D Printing Particulate Manufacturing Technology for Encapsulation of Protein Therapeutics: Sprayed Multi Adsorbed-Droplet Reposing Technology (SMART).

作者信息

Heshmati Aghda Niloofar, Zhang Yu, Wang Jiawei, Lu Anqi, Pillai Amit Raviraj, Maniruzzaman Mohammed

机构信息

Pharmaceutical Engineering and 3D Printing (PharmE3D) Labs, Division of Molecular Pharmaceutics and Drug Delivery, College of Pharmacy, The University of Texas at Austin, Austin, TX 78705, USA.

出版信息

Bioengineering (Basel). 2022 Nov 5;9(11):653. doi: 10.3390/bioengineering9110653.

Abstract

Recently, various innovative technologies have been developed for the enhanced delivery of biologics as attractive formulation targets including polymeric micro and nanoparticles. Combined with personalized medicine, this area can offer a great opportunity for the improvement of therapeutics efficiency and the treatment outcome. Herein, a novel manufacturing method has been introduced to produce protein-loaded chitosan particles with controlled size. This method is based on an additive manufacturing technology that allows for the designing and production of personalized particulate based therapeutic formulations with a precise control over the shape, size, and potentially the geometry. Sprayed multi adsorbed-droplet reposing technology (SMART) consists of the high-pressure extrusion of an ink with a well determined composition using a pneumatic 3D bioprinting approach and flash freezing the extrudate at the printing bed, optionally followed by freeze drying. In the present study, we attempted to manufacture trypsin-loaded chitosan particles using SMART. The ink and products were thoroughly characterized by dynamic light scattering, rheometer, Scanning Electron Microscopy (SEM), and Fourier Transform Infra-Red (FTIR) and Circular Dichroism (CD) spectroscopy. These characterizations confirmed the shape morphology as well as the protein integrity over the process. Further, the effect of various factors on the production were investigated. Our results showed that the concentration of the carrier, chitosan, and the lyoprotectant concentration as well as the extrusion pressure have a significant effect on the particle size. According to CD spectra, SMART ensured Trypsin's secondary structure remained intact regardless of the ink composition and pressure. However, our study revealed that the presence of 5% () lyoprotectant is essential to maintain the trypsin's proteolytic activity. This study demonstrates, for the first time, the viability of SMART as a single-step efficient process to produce biologics-based stable formulations with a precise control over the particulate morphology which can further be expanded across numerous therapeutic modalities including vaccines and cell/gene therapies.

摘要

最近,为了更有效地递送生物制剂,人们开发了各种创新技术,将聚合物微纳米颗粒作为有吸引力的制剂靶点。结合个性化医疗,该领域可为提高治疗效率和治疗效果提供巨大机遇。在此,我们介绍了一种新型制造方法,用于生产尺寸可控的载蛋白壳聚糖颗粒。该方法基于增材制造技术,能够设计和生产个性化的基于颗粒的治疗制剂,精确控制其形状、尺寸以及潜在的几何结构。喷雾多吸附液滴静置技术(SMART)包括使用气动3D生物打印方法对具有确定组成的墨水进行高压挤出,并在打印床上对挤出物进行快速冷冻,随后可选择进行冷冻干燥。在本研究中,我们尝试使用SMART制造载胰蛋白酶的壳聚糖颗粒。通过动态光散射、流变仪、扫描电子显微镜(SEM)、傅里叶变换红外(FTIR)光谱和圆二色性(CD)光谱对墨水和产物进行了全面表征。这些表征证实了整个过程中的形状形态以及蛋白质完整性。此外,还研究了各种因素对生产的影响。我们的结果表明,载体壳聚糖的浓度、冻干保护剂浓度以及挤出压力对颗粒尺寸有显著影响。根据CD光谱,无论墨水组成和压力如何,SMART都能确保胰蛋白酶的二级结构保持完整。然而,我们的研究表明,5%()的冻干保护剂的存在对于维持胰蛋白酶的蛋白水解活性至关重要。本研究首次证明了SMART作为一种单步高效工艺生产基于生物制剂的稳定制剂并精确控制颗粒形态的可行性,这一工艺可进一步扩展到包括疫苗和细胞/基因治疗在内的多种治疗方式。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/391d/9687125/12caa0589aff/bioengineering-09-00653-g001.jpg

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