Department of Pharmaceutical Sciences, Dr. Harisingh Gour Vishwavidyalaya, Sagar, MP, India.
Department of Pharmaceutical Sciences, Dr. Harisingh Gour Vishwavidyalaya, Sagar, MP, India; Amity Institute of Pharmacy, Amity University Madhya Pradesh, Gwalior 474005, MP, India.
Adv Colloid Interface Sci. 2024 May;327:103160. doi: 10.1016/j.cis.2024.103160. Epub 2024 Apr 22.
Cancer, a widespread and lethal disease, necessitates precise therapeutic interventions to mitigate its devastating impact. While conventional chemotherapy remains a cornerstone of cancer treatment, its lack of specificity towards cancer cells results in collateral damage to healthy tissues, leading to adverse effects. Thus, the quest for targeted strategies has emerged as a critical focus in cancer research. This review explores the development of innovative targeting methods utilizing novel drug delivery systems tailored to recognize and effectively engage cancer cells. Cancer cells exhibit morphological and metabolic traits, including irregular morphology, unchecked proliferation, metabolic shifts, genetic instability, and a higher negative charge, which serve as effective targeting cues. Central to these strategies is the exploitation of the unique negative charge characteristic of cancer cells, attributed to alterations in phospholipid composition and the Warburg effect. Leveraging this distinct feature, researchers have devised cationic carrier systems capable of enhancing the specificity of therapeutic agents towards cancer cells. The review delineates the underlying causes of the negative charge in cancer cells and elucidates various targeting approaches employing cationic compounds for drug delivery systems. Furthermore, it delves into the methods employed for the preparation of these systems. Beyond cancer treatment, the review also underscores the multifaceted applications of cationic carrier systems, encompassing protein and peptide delivery, imaging, photodynamic therapy, gene delivery, and antimicrobial applications. This comprehensive exploration underscores the potential of cationic carrier systems as versatile tools in the fight against cancer and beyond.
癌症是一种广泛存在且致命的疾病,需要精确的治疗干预措施来减轻其破坏性影响。虽然传统的化疗仍然是癌症治疗的基石,但它对癌细胞缺乏特异性,导致对健康组织的附带损伤,从而产生不良反应。因此,针对癌症的靶向治疗策略已经成为癌症研究的一个关键焦点。
本篇综述探讨了利用新型药物输送系统开发创新靶向方法的进展,这些系统旨在识别并有效靶向癌细胞。癌细胞表现出形态和代谢特征,包括不规则形态、不受控制的增殖、代谢转变、遗传不稳定性和更高的负电荷,这些特征可作为有效的靶向线索。这些策略的核心是利用癌细胞独特的负电荷特性,这归因于磷脂组成的改变和瓦博格效应。利用这一独特特征,研究人员设计了阳离子载体系统,能够增强治疗剂对癌细胞的特异性。
本综述详细阐述了癌细胞负电荷的潜在原因,并阐明了利用阳离子化合物作为药物输送系统的各种靶向方法。此外,还探讨了制备这些系统的方法。
除了癌症治疗,本综述还强调了阳离子载体系统在蛋白质和肽输送、成像、光动力疗法、基因输送和抗菌应用等多方面的应用。这种全面的探索强调了阳离子载体系统作为对抗癌症和其他疾病的多功能工具的潜力。