Ferreira Natália Noronha, Miranda Renata Rank, Moreno Natália Sanchez, Pincela Lins Paula Maria, Leite Celisnolia Morais, Leite Ana Elisa Tognoli, Machado Thales Rafael, Cataldi Thaís Regiani, Labate Carlos Alberto, Reis Rui Manuel, Zucolotto Valtencir
Nanomedicine and Nanotoxicology Group, Physics Institute of São Carlos, São Paulo University, São Carlos, Brazil.
Max Feffer Laboratory of Plant Genetics, Department of Genetics, ESALQ, University of São Paulo, Piracicaba, Brazil.
Front Bioeng Biotechnol. 2023 Feb 2;11:1120179. doi: 10.3389/fbioe.2023.1120179. eCollection 2023.
Cell membrane-covered biomimetic nanosystems have allowed the development of homologous nanostructures to bestow nanoparticles with enhanced biointerfacing capabilities. The stability of these structures, however, still represents a challenge for the scientific community. This study is aimed at developing and optimizing cell derived membrane-coated nanostructures upon applying design of experiments (DoE) to improve the therapeutic index by homotypic targeting in cancer cells. Important physicochemical features of the extracted cell membrane from tumoral cells were assessed by mass spectrometry-based proteomics. PLGA-based nanoparticles encapsulating temozolomide (TMZ NPs) were successfully developed. The coating technology applying the isolated U251 cell membrane (MB) was optimized using a fractional two-level three-factor factorial design. All the formulation runs were systematically characterized regarding their diameter, polydispersity index (PDI), and zeta potential (ZP). Experimental conditions generated by DoE were also subjected to morphological studies using negative-staining transmission electron microscopy (TEM). Its short-time stability was also assessed. MicroRaman and Fourier-Transform Infrared (FTIR) spectroscopies and Confocal microscopy were used as characterization techniques for evaluating the NP-MB nanostructures. Internalization studies were carried out to evaluate the homotypic targeting ability. The results have shown that nearly 80% of plasma membrane proteins were retained in the cell membrane vesicles after the isolation process, including key proteins to the homotypic binding. DoE analysis considering acquired TEM images reveals that condition run five should be the best-optimized procedure to produce the biomimetic cell-derived membrane-coated nanostructure (NP-MB). Storage stability for at least two weeks of the biomimetic system is expected once the original characteristics of diameter, PDI, and ZP, were maintained. Raman, FTIR, and confocal characterization results have shown the successful encapsulation of TMZ drug and provided evidence of the effective coating applying the MB. Cell internalization studies corroborate the proteomic data indicating that the optimized NP-MB achieved specific targeting of homotypic tumor cells. The structure should retain the complex biological functions of U251 natural cell membranes while exhibiting physicochemical properties suitable for effective homotypic recognition. Together, these findings provide coverage and a deeper understanding regarding the dynamics around extracted cell membrane and polymeric nanostructures interactions and an in-depth insight into the cell membrane coating technology and the development of optimized biomimetic and bioinspired nanostructured systems.
细胞膜包覆的仿生纳米系统使得同源纳米结构得以发展,赋予纳米颗粒增强的生物界面能力。然而,这些结构的稳定性对科学界来说仍是一项挑战。本研究旨在通过应用实验设计(DoE)来开发和优化细胞衍生的膜包覆纳米结构,以通过癌细胞中的同型靶向提高治疗指数。通过基于质谱的蛋白质组学评估从肿瘤细胞中提取的细胞膜的重要物理化学特征。成功开发了包裹替莫唑胺的基于聚乳酸-羟基乙酸共聚物(PLGA)的纳米颗粒(TMZ NPs)。使用分数二级三因素析因设计优化了应用分离的U251细胞膜(MB)的包覆技术。对所有配方批次的直径、多分散指数(PDI)和zeta电位(ZP)进行了系统表征。DoE产生的实验条件还使用负染色透射电子显微镜(TEM)进行了形态学研究。还评估了其短期稳定性。使用显微拉曼光谱和傅里叶变换红外(FTIR)光谱以及共聚焦显微镜作为表征技术来评估NP-MB纳米结构。进行内化研究以评估同型靶向能力。结果表明,在分离过程后,近80%的质膜蛋白保留在细胞膜囊泡中,包括同型结合的关键蛋白。考虑所获取的TEM图像的DoE分析表明,运行条件五应该是生产仿生细胞衍生膜包覆纳米结构(NP-MB)的最佳优化程序。一旦保持直径、PDI和ZP的原始特征,预计仿生系统至少可储存两周。拉曼光谱、FTIR光谱和共聚焦表征结果表明替莫唑胺药物成功封装,并提供了应用MB有效包覆的证据。细胞内化研究证实了蛋白质组学数据,表明优化后的NP-MB实现了对同型肿瘤细胞的特异性靶向。该结构应保留U251天然细胞膜的复杂生物学功能,同时展现出适合有效同型识别的物理化学性质。总之,这些发现涵盖并更深入地理解了提取的细胞膜与聚合物纳米结构相互作用的动态过程,并深入洞察了细胞膜包覆技术以及优化的仿生和受生物启发的纳米结构系统的开发。