Non-viral nanoparticles

非病毒纳米颗粒
  • 文章类型: Journal Article
    核糖核酸干扰(RNAi)是一种针对多种适应症的创新治疗策略。非病毒合成纳米粒子(NPs)作为RNAi的载体因其潜在的优势而受到广泛关注。包括提高安全性,输送效率高,经济可行性强。然而,RNAi的复杂自然过程和寡核苷酸的易感性质使得NP服从于特定的设计原则和实际制造的要求。这里,我们总结了制造有效RNAi的非病毒纳米载体的要求和障碍。为了应对交付挑战,我们讨论了材料选择和NP合成的实用指南,以最大限度地提高RNA封装效率和防止降解,并促进寡核苷酸的胞浆释放。还回顾了基于RNAi的疗法的临床翻译的现状以及减少潜在副作用的进一步观点。
    Ribonucleic acid interference (RNAi) is an innovative treatment strategy for a myriad of indications. Non-viral synthetic nanoparticles (NPs) have drawn extensive attention as vectors for RNAi due to their potential advantages, including improved safety, high delivery efficiency and economic feasibility. However, the complex natural process of RNAi and the susceptible nature of oligonucleotides render the NPs subject to particular design principles and requirements for practical fabrication. Here, we summarize the requirements and obstacles for fabricating non-viral nano-vectors for efficient RNAi. To address the delivery challenges, we discuss practical guidelines for materials selection and NP synthesis in order to maximize RNA encapsulation efficiency and protection against degradation, and to facilitate the cytosolic release of oligonucleotides. The current status of clinical translation of RNAi-based therapies and further perspectives for reducing the potential side effects are also reviewed.
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  • 文章类型: Journal Article
    Hepatocellular carcinoma (HCC) causes significant morbidity and high fatal outcome globally. Conventional therapeutic strategies for HCC have achieved significant improvements, but they have limitations and are far from ideal. Novel nanoparticulate drug delivery systems have recently presented great therapeutic potential for cancer therapeutics. Appropriate and accurate animal models (main mice) are the basis of preclinical and translational research of nanoparticulate drug formulations in HCC. This review will provide an overview of different animal models of HCC, with a particular emphasis on those applied to assess the clinical potential for drug nanopharmaceutics.
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  • 文章类型: Journal Article
    Leukaemia is a bone marrow cancer occurring in acute and chronic subtypes. Acute leukaemia is a rapidly fatal cancer potentially causing death within a few weeks, if untreated. Leukaemia arises as a result of disruption to haematopoietic precursors, caused either by acquired gene fusions, gene mutations or inappropriate expression of the relevant oncogenes. Current treatment options have made significant progress, but the 5 year survival for acute leukaemia remains under 10% in elderly patients, and less than 50% for some types of acute leukaemia in younger adults. For chronic leukaemias longer survival is generally expected and for chronic myeloid leukaemia patients on tyrosine kinase inhibitors the median survival is not yet reached and is expected to exceed 10 years. Chemotherapy and haematopoietic stem cell transplantation (HSCT) for acute leukaemia provide the mainstay of therapy for patients under 65 and both carry significant morbidity and mortality. Alternative and superior therapeutic strategies for acute leukaemias are urgently required. Recent molecular-based knowledge of recurring chromosome rearrangements, in particular translocations and inversions, has resulted in significant advances in understanding the molecular pathogenesis of leukaemia. Identification of a number of unique fusion genes has facilitated the development of highly specific small interfering RNAs (siRNA). Although delivery of siRNA using multifunctional nanoparticles has been investigated to treat solid cancers, the application of this approach to blood cancers is at an early stage. This review describes current treatments for leukaemia and highlights the potential of leukaemic fusion genes as therapeutic targets for RNA interference (RNAi). In addition, the design of biomimetic nanoparticles which are capable of responding to the physiological environment of leukaemia and their potential to advance RNAi therapeutics to the clinic will be critically evaluated.
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