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Surface modified multifunctional nanomedicines for simultaneous imaging and therapy of cancer

机译:用于癌症的同时成像和治疗的表面改性多功能纳米药物

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Introduction To date, a growing number of advanced anticancer nanomedicines (e.g., Doxil??, Lipoxal??, DepoCyte??) have entered into different phases of clinical trials. However, most of these medicaments fail to differentiate between diseased and normal cells. They also do not have capability of real time monitoring of disease status trough on-demand imaging/sensing of target molecule(s). Multifunctional nanomedicines and theranostics can resolve such limitations, while formulation of these advanced seamless systems appear to involve various sophisticated process, exploiting several bioconjugations. Methods Recent works upon multifunctional nanomedicines for simultaneous imaging and therapy of cancer have been systematically reviewed, focusing on surface modification and application of advanced nanobiomaterials. Results Ultimate therapy of malignancies, as complex systems, demands implementation of seamless nanosystems (NSs) that can specifically target the cancerous cells and smartly deliver the anticancer agent(s) into the desired target site. Engineering of such NSs requires in-situ coordination of various technologies (e.g., synthesis, surface modification and bioconjugation) in order to achieve improved pharmacokinetics and pharmacodynamics outcomes. Conclusion Seamless multimodal NSs have potential to simultaneously target and monitor the tumor cells through homing and imaging/sensing devices and deliver the therapeutic agents. However, to achieve superior pharmacokinetics with maximal efficacy and minimal side effects, these advanced NSs need to become much more intelligent to sense the disease condition and liberate therapeutics on demand.
机译:引言迄今为止,越来越多的高级抗癌纳米药物(例如,Doxil,Lipoxal,DepoCyte)已进入临床试验的不同阶段。然而,这些药物中的大多数不能区分患病细胞和正常细胞。它们还没有通过对目标分子的按需成像/传感实时监测疾病状态的能力。多功能纳米药物和治疗学疗法可以解决这些局限性,而这些先进的无缝系统的配方似乎涉及多种复杂的过程,并利用了几种生物共轭技术。方法系统综述了有关多功能纳米药物用于癌症同时成像和治疗的最新研究成果,重点是表面修饰和先进纳米生物材料的应用。结果作为复杂系统的恶性肿瘤的最终治疗方法需要无缝纳米系统(NSs)的实施,该系统可以特异性靶向癌细胞并将灵巧的抗癌剂智能地递送至所需靶位。这样的NS的工程化需要各种技术(例如,合成,表面修饰和生物缀合)的原位协调,以实现改善的药代动力学和药效学结果。结论无缝多模态NSs可能通过归巢和成像/传感设备同时靶向和监测肿瘤细胞并提供治疗药物。然而,为了获得具有最大功效和最小副作用的优异药代动力学,这些先进的NS需要变得更加智能,以感知疾病状况并按需释放治疗药物。

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