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pH-responsive high stability polymeric nanoparticles for targeted delivery of anticancer therapeutics

机译:pH-响应高稳定性聚合物纳米颗粒,用于靶向抗癌治疗剂的靶向递送

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The practical application of nanoparticles (NPs) as chemotherapeutic drug delivery systems is often hampered by issues such as poor circulation stability and targeting inefficiency. Here, we have utilized a simple approach to prepare biocompatible and biodegradable pH-responsive hybrid NPs that overcome these issues. The NPs consist of a drug-loaded polylactic-co-glycolic acid (PLGA) core covalently ‘wrapped’ with a crosslinked bovine serum albumin (BSA) shell designed to minimize interactions with serum proteins and macrophages that inhibit target recognition. The shell is functionalized with the acidity-triggered rational membrane (ATRAM) peptide to facilitate internalization specifically into cancer cells within the acidic tumor microenvironment. Following uptake, the unique intracellular conditions of cancer cells degrade the NPs, thereby releasing the chemotherapeutic cargo. The drug-loaded NPs showed potent anticancer activity in vitro and in vivo while exhibiting no toxicity to healthy tissue. Our results demonstrate that the ATRAM-BSA-PLGA NPs are a promising targeted cancer drug delivery platform. Palanikumar et al. prepare pH-responsive nanoparticles with drug-loaded PLGA core, cross-linked BSA corona to avoid opsonisation, and functionalised with ATRAM peptide that binds the cell membrane at low pH such as tumour microenvironment. The nanoparticles display both in vitro and in vivo efficacy while evading recognition by macrophages.
机译:纳米颗粒(NPS)作为化学治疗药物递送系统的实际应用经常受到循环稳定性差和靶向低效率的问题的阻碍。在这里,我们利用了一种简单的方法来制备生物相容性和可生物降解的pH响应混合NP,克服这些问题。 NPS由具有交联牛血清白蛋白(BSA)壳共价“包裹”的药物负载的聚乳酸 - 共乙醇酸(PLGA)核心,该壳体均设计成最大限度地减少与抑制目标识别的血清蛋白和巨噬细胞的相互作用。用酸性触发的Rational膜(Atram)肽官能化壳,以促进在酸性肿瘤微环境中的癌细胞中的内化。接受后,癌细胞的独特细胞内条件降解了NPS,从而释放化学治疗货物。载药的NPS在体外和体内显示有效的抗癌活性,同时表现出对健康组织的毒性。我们的结果表明,ATRAM-BSA-PLGA NPS是一个有前途的靶向癌症药物递送平台。 Palanikumar等。用负载药物的PLGA核心制备pH-响应纳米颗粒,交联的BSA电晕,以避免Ophsonisation,并用Atram肽官能化,其在低pH下与肿瘤微环境结合细胞膜。纳米颗粒在体外显示,同时患有巨噬细胞识别的同时呈现。

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