纳米结构生物活性眼镜:癌症治疗的鸟瞰图。

IF 6.9 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL
Saeid Kargozar, Amirhossein Moghanian, Ali Rashvand, Amir K Miri, Sepideh Hamzehlou, Francesco Baino, Masoud Mozafari, Andrew Z Wang
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引用次数: 2

摘要

生物活性玻璃(BGs)因其在组织工程和再生医学中的成功应用而闻名。最近的实验研究表明,它们在肿瘤学中的潜在可用性,无论是单独使用还是与其他生物相容性材料(如生物聚合物)结合使用。在体外实验中,直接接触BG颗粒可引起特定癌细胞(骨源性肿瘤基质细胞)的毒性和死亡。纳米结构的BGs (NBGs)可以掺杂抗癌元素,如镓,以增强其对肿瘤细胞的毒性作用。然而,NBGs抗癌成分的分子机制和细胞内靶点需要进一步阐明。NBGs已被成功评估用于各种成熟的癌症治疗策略,包括癌症热疗、光疗和抗癌药物输送。现有的研究结果表明,NBGs不仅可以促进癌细胞的死亡,还可以参与失去的健康组织的再生。然而,NBGs在肿瘤学中的应用仍处于早期阶段,许多尚未解决的问题必须解决。例如,NBGs的组成、生物降解、大小和形态对其抗癌功效的影响应该针对每种类型的癌症和治疗策略进行定义。此外,应该更清楚地评估NBGs是否可以缩小肿瘤,减缓/阻止癌症进展,或完全治愈癌症。在这方面,强烈建议使用计算研究(计算机方法)来设计最有效的癌症治疗方法的玻璃配方,并在一定程度上预测相关的性质、功效和结果。本文分类为:可植入材料和外科技术;纳米材料和植入物;可植入材料和外科技术;b1组织修复和替代的纳米技术;治疗方法和药物发现;b2肿瘤疾病的纳米医学。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Nanostructured bioactive glasses: A bird's eye view on cancer therapy.

Nanostructured bioactive glasses: A bird's eye view on cancer therapy.

Bioactive glasses (BGs) arewell known for their successful applications in tissue engineering and regenerative medicine. Recent experimental studies have shown their potential usability in oncology, either alone or in combination with other biocompatible materials, such as biopolymers. Direct contact with BG particles has been found to cause toxicity and death in specific cancer cells (bone-derived neoplastic stromal cells) in vitro. Nanostructured BGs (NBGs) can be doped with anticancer elements, such as gallium, to enhance their toxic effects against tumor cells. However, the molecular mechanisms and intracellular targets for anticancer compositions of NBGs require further clarification. NBGs have been successfully evaluated for use in various well-established cancer treatment strategies, including cancer hyperthermia, phototherapy, and anticancer drug delivery. Existing results indicate that NBGs not only enhance cancer cell death, but can also participate in the regeneration of lost healthy tissues. However, the application of NBGs in oncology is still in its early stages, and numerous unanswered questions must be addressed. For example, the impact of the composition, biodegradation, size, and morphology of NBGs on their anticancer efficacy should be defined for each type of cancer and treatment strategy. Moreover, it should be more clearly assessed whether NBGs can shrink tumors, slow/stop cancer progression, or cure cancer completely. In this regard, the use of computational studies (in silico methods) is highly recommended to design the most effective glass formulations for cancer therapy approaches and to predict, to some extent, the relevant properties, efficacy, and outcomes. This article is categorized under: Implantable Materials and Surgical Technologies > Nanomaterials and Implants Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Therapeutic Approaches and Drug Discovery > Nanomedicine for Oncologic Disease.

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来源期刊
Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology
Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology NANOSCIENCE & NANOTECHNOLOGY-MEDICINE, RESEARCH & EXPERIMENTAL
CiteScore
16.60
自引率
2.30%
发文量
93
期刊介绍: Nanotechnology stands as one of the pivotal scientific domains of the twenty-first century, recognized universally for its transformative potential. Within the biomedical realm, nanotechnology finds crucial applications in nanobiotechnology and nanomedicine, highlighted as one of seven emerging research areas under the NIH Roadmap for Medical Research. The advancement of this field hinges upon collaborative efforts across diverse disciplines, including clinicians, biomedical engineers, materials scientists, applied physicists, and toxicologists. Recognizing the imperative for a high-caliber interdisciplinary review platform, WIREs Nanomedicine and Nanobiotechnology emerges to fulfill this critical need. Our topical coverage spans a wide spectrum, encompassing areas such as toxicology and regulatory issues, implantable materials and surgical technologies, diagnostic tools, nanotechnology approaches to biology, therapeutic approaches and drug discovery, and biology-inspired nanomaterials. Join us in exploring the frontiers of nanotechnology and its profound impact on biomedical research and healthcare.
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