Faculty of Pharmacy of the University of Coimbra, University of Coimbra, Coimbra, Portugal.
REQUIMTE/LAQV, Group of Pharmaceutical Technology, Faculty of Pharmacy of the University of Coimbra, University of Coimbra, Coimbra, Portugal.
Expert Opin Drug Deliv. 2021 Oct;18(10):1395-1414. doi: 10.1080/17425247.2021.1922387. Epub 2021 Jun 6.
: Severe acute respiratory syndrome coronavirus 2 (SARS-CoV-2) is a particular coronavirus strain responsible for the coronavirus disease 2019 (COVID-19), accounting for more than 3.1 million deaths worldwide. Several health-related strategies have been successfully developed to contain the rapidly-spreading virus across the globe, toward reduction of both disease burden and infection rates. Particularly, attention has been focused on either the development of novel drugs and vaccines, or by adapting already-existing drugs for COVID-19 treatment, mobilizing huge efforts to block disease progression and to overcome the shortage of effective measures available at this point.: This perspective covers the breakthrough of multifunctional biomimetic cell membrane-based nanoparticles as next-generation nanosystems for cutting-edge COVID-19 therapeutics and vaccination, specifically cell membrane-derived nanovesicles and cell membrane-coated nanoparticles, both tailorable cell membrane-based nanosystems enriched with the surface repertoire of native cell membranes, toward maximized biointerfacing, immune evasion, cell targeting and cell-mimicking properties.: Nano-based approaches have received widespread interest regarding enhanced antigen delivery, prolonged blood circulation half-life and controlled release of drugs. Cell membrane-based nanoparticles comprise interesting antiviral multifunctional nanoplatforms for blocking SARS-CoV-2 binding to host cells, reducing inflammation through cytokine neutralization and improving drug delivery toward COVID-19 treatment.
严重急性呼吸综合征冠状病毒 2(SARS-CoV-2)是一种特殊的冠状病毒株,它是导致 2019 年冠状病毒病(COVID-19)的罪魁祸首,在全球范围内造成超过 310 万人死亡。已经成功开发了几种与健康相关的策略来控制这种在全球迅速传播的病毒,以降低疾病负担和感染率。特别是,人们关注的焦点是开发新的药物和疫苗,或者通过改造现有的药物来治疗 COVID-19,调动巨大的努力来阻止疾病的进展,并克服目前有效措施的短缺。
本文涵盖了多功能仿生细胞膜纳米粒子作为下一代 COVID-19 治疗和疫苗接种的纳米系统的突破,特别是细胞膜衍生的纳米囊泡和细胞膜包覆的纳米粒子,这两种可定制的细胞膜纳米系统富含天然细胞膜的表面组成,以实现最大化的生物界面、免疫逃逸、细胞靶向和细胞模拟特性。
基于纳米的方法在增强抗原传递、延长血液循环半衰期和控制药物释放方面受到了广泛关注。细胞膜纳米粒子包含有趣的抗病毒多功能纳米平台,可阻止 SARS-CoV-2 与宿主细胞结合,通过细胞因子中和减轻炎症,并改善 COVID-19 治疗的药物传递。