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NIR light-facilitated bone tissue engineering. 近红外光促进骨组织工程。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2024-01-01 Epub Date: 2023-08-26 DOI: 10.1002/wnan.1925
Qian Feng, Xiaojun Zhou, Chuanglong He

In the last decades, near-infrared (NIR) light has attracted considerable attention due to its unique properties and numerous potential applications in bioimaging and disease treatment. Bone tissue engineering for bone regeneration with the help of biomaterials is currently an effective means of treating bone defects. As a controlled light source with deeper tissue penetration, NIR light can provide real-time feedback of key information on bone regeneration in vivo utilizing fluorescence imaging and be used for bone disease treatment. This review provides a comprehensive overview of NIR light-facilitated bone tissue engineering, from the introduction of NIR probes as well as NIR light-responsive materials, and the visualization of bone regeneration to the treatment of bone-related diseases. Furthermore, the existing challenges and future development directions of NIR light-based bone tissue engineering are also discussed. This article is categorized under: Diagnostic Tools > In Vivo Nanodiagnostics and Imaging Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement.

在过去的几十年里,近红外光由于其独特的特性和在生物成像和疾病治疗中的许多潜在应用而引起了人们的极大关注。利用生物材料进行骨组织工程骨再生是目前治疗骨缺损的有效手段。作为一种具有更深组织穿透力的受控光源,近红外光可以利用荧光成像提供体内骨再生关键信息的实时反馈,并可用于骨病治疗。这篇综述对近红外光促进的骨组织工程进行了全面的综述,从近红外探针和近红外光响应材料的引入,到骨再生的可视化,再到骨相关疾病的治疗。此外,还讨论了基于近红外光的骨组织工程存在的挑战和未来的发展方向。本文分类如下:诊断工具>体内纳米诊断和成像植入材料和外科技术>组织修复和置换中的纳米技术。
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引用次数: 0
Design and synthesis of bioinspired nanomaterials for biomedical application. 用于生物医学应用的仿生纳米材料的设计和合成。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2024-01-01 Epub Date: 2023-07-02 DOI: 10.1002/wnan.1914
Kai Tang, Jianmin Xue, Yufang Zhu, Chengtie Wu

Natural materials and bioprocesses provide abundant inspirations for the design and synthesis of high-performance nanomaterials. In the past several decades, bioinspired nanomaterials have shown great potential in the application of biomedical fields, such as tissue engineering, drug delivery, and cancer therapy, and so on. In this review, three types of bioinspired strategies for biomedical nanomaterials, that is, inspired by the natural structures, biomolecules, and bioprocesses, are mainly introduced. We summarize and discuss the design concepts and synthesis approaches of various bioinspired nanomaterials along with their specific roles in biomedical applications. Additionally, we discuss the challenges for the development of bioinspired biomedical nanomaterials, such as mechanical failure in wet environment, limitation in scale-up fabrication, and lack of deep understanding of biological properties. It is expected that the development and clinical translation of bioinspired biomedical nanomaterials will be further promoted under the cooperation of interdisciplinary subjects in future. This article is categorized under: Implantable Materials and Surgical Technologies > Nanomaterials and Implants Therapeutic Approaches and Drug Discovery > Emerging Technologies.

天然材料和生物工艺为高性能纳米材料的设计和合成提供了丰富的灵感。近几十年来,生物激励纳米材料在组织工程、药物输送、癌症治疗等生物医学领域显示出巨大的应用潜力。我们总结和讨论了各种仿生纳米材料的设计概念和合成方法,以及它们在生物医学应用中的具体作用。此外,我们还讨论了生物仿生生物医学纳米材料开发面临的挑战,如潮湿环境中的机械故障、放大制造的局限性以及对生物特性缺乏深入了解。预计未来在跨学科合作下,将进一步推动生物仿生生物医学纳米材料的开发和临床转化。本文分类为:植入材料和外科技术>纳米材料和植入物治疗方法和药物发现>新兴技术。
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引用次数: 0
DNA nanostructures as biomolecular scaffolds for antigen display. DNA纳米结构作为抗原展示的生物分子支架。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2024-01-01 Epub Date: 2023-08-10 DOI: 10.1002/wnan.1921
Kun Chen, Ming Jiang, Jin Liu, Deli Huang, Yuhe R Yang

Nanoparticle-based vaccines offer a multivalent approach for antigen display, efficiently activating T and B cells in the lymph nodes. Among various nanoparticle design strategies, DNA nanotechnology offers an innovative alternative platform, featuring high modularity, spatial addressing, nanoscale regulation, high functional group density, and lower self-antigenicity. This review delves into the potential of DNA nanostructures as biomolecular scaffolds for antigen display, addressing: (1) immunological mechanisms behind nanovaccines and commonly used nanoparticles in their design, (2) techniques for characterizing protein NP-antigen complexes, (3) advancements in DNA nanotechnology and DNA-protein assembly approach, (4) strategies for precise antigen presentation on DNA scaffolds, and (5) current applications and future possibilities of DNA scaffolds in antigen display. This analysis aims to highlight the transformative potential of DNA nanoscaffolds in immunology and vaccinology. This article is categorized under: Biology-Inspired Nanomaterials > Nucleic Acid-Based Structures Biology-Inspired Nanomaterials > Protein and Virus-Based Structures.

基于纳米粒子的疫苗提供了一种多价抗原展示方法,有效激活淋巴结中的T和B细胞。在各种纳米颗粒设计策略中,DNA纳米技术提供了一个创新的替代平台,具有高模块性、空间寻址、纳米级调控、高官能团密度和较低的自身抗原性。这篇综述深入探讨了DNA纳米结构作为抗原展示的生物分子支架的潜力,涉及:(1)纳米疫苗背后的免疫机制及其设计中常用的纳米颗粒,(2)表征蛋白质-NP-抗原复合物的技术,(3)DNA纳米技术和DNA-蛋白质组装方法的进展,(4)在DNA支架上精确呈递抗原的策略,以及(5)DNA支架在抗原展示中的当前应用和未来可能性。该分析旨在强调DNA纳米支架在免疫学和疫苗学中的变革潜力。本文分类为:生物学启发的纳米材料>基于核酸的结构生物学启发的纳材料>基于蛋白质和病毒的结构。
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引用次数: 0
Nanotechnology-enhanced radiotherapy and the abscopal effect: Current status and challenges of nanomaterial-based radio-immunotherapy. 纳米技术增强的放射治疗和腹水效应:基于纳米材料的放射免疫疗法的现状与挑战。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2024-01-01 Epub Date: 2023-08-25 DOI: 10.1002/wnan.1924
Dhushyanth Viswanath, Jeehun Park, Rahul Misra, Vincenzo J Pizzuti, Sung-Ho Shin, Junsang Doh, You-Yeon Won

Rare but consistent reports of abscopal remission in patients challenge the notion that radiotherapy (RT) is a local treatment; radiation-induced cancer cell death can trigger activation and recruitment of dendritic cells to the primary tumor site, which subsequently initiates systemic immune responses against metastatic lesions. Although this abscopal effect was initially considered an anomaly, combining RT with immune checkpoint inhibitor therapies has been shown to greatly improve the incidence of abscopal responses via modulation of the immunosuppressive tumor microenvironment. Preclinical studies have demonstrated that nanomaterials can further improve the reliability and potency of the abscopal effect for various different types of cancer by (1) altering the cell death process to be more immunogenic, (2) facilitating the capture and transfer of tumor antigens from the site of cancer cell death to antigen-presenting cells, and (3) co-delivering immune checkpoint inhibitors along with radio-enhancing agents. Several unanswered questions remain concerning the exact mechanisms of action for nanomaterial-enhanced RT and for its combination with immune checkpoint inhibition and other immunostimulatory treatments in clinically relevant settings. The purpose of this article is to summarize key recent developments in this field and also highlight knowledge gaps that exist in this field. An improved mechanistic understanding will be critical for clinical translation of nanomaterials for advanced radio-immunotherapy. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Oncologic Disease.

罕见但一致的患者脱落缓解报告挑战了放疗(RT)是一种局部治疗的观点;放射诱导的癌细胞死亡可引发原发肿瘤部位树突状细胞的激活和招募,随后启动针对转移病灶的全身免疫反应。虽然这种缺席效应最初被认为是一种反常现象,但通过调节免疫抑制性肿瘤微环境,将 RT 与免疫检查点抑制剂疗法相结合已被证明可大大提高缺席反应的发生率。临床前研究表明,纳米材料可以通过以下方式进一步提高对各种不同类型癌症的脱落效应的可靠性和有效性:(1)改变细胞死亡过程,使其更具免疫原性;(2)促进肿瘤抗原从癌细胞死亡部位捕获并转移到抗原递呈细胞;(3)与放射增强剂一起联合递送免疫检查点抑制剂。关于纳米材料增强 RT 的确切作用机制及其与免疫检查点抑制剂和其他免疫刺激疗法在临床相关环境中的结合,仍有几个问题尚未解决。本文旨在总结该领域的主要最新进展,同时强调该领域存在的知识空白。加深对机理的理解对于将纳米材料用于高级放射免疫疗法的临床转化至关重要。本文归类于治疗方法与药物发现 > 用于肿瘤疾病的纳米药物。
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引用次数: 0
Intranasal delivery of stem cells labeled by nanoparticles in neurodegenerative disorders: Challenges and opportunities. 神经退行性疾病中纳米颗粒标记干细胞的鼻内递送:挑战和机遇。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2023-11-01 Epub Date: 2023-07-06 DOI: 10.1002/wnan.1915
Rafieh Alizadeh, Alimohamad Asghari, Farzad Taghizadeh-Hesary, Salah Moradi, Mohammad Farhadi, Mehdi Mehdizadeh, Sara Simorgh, Alireza Nourazarian, Behrouz Shademan, Alireza Susanabadi, Kamran Kamrava

Neurodegenerative disorders occur through progressive loss of function or structure of neurons, with loss of sensation and cognition values. The lack of successful therapeutic approaches to solve neurologic disorders causes physical disability and paralysis and has a significant socioeconomic impact on patients. In recent years, nanocarriers and stem cells have attracted tremendous attention as a reliable approach to treating neurodegenerative disorders. In this regard, nanoparticle-based labeling combined with imaging technologies has enabled researchers to survey transplanted stem cells and fully understand their fate by monitoring their survival, migration, and differentiation. For the practical implementation of stem cell therapies in the clinical setting, it is necessary to accurately label and follow stem cells after administration. Several approaches to labeling and tracking stem cells using nanotechnology have been proposed as potential treatment strategies for neurological diseases. Considering the limitations of intravenous or direct stem cell administration, intranasal delivery of nanoparticle-labeled stem cells in neurological disorders is a new method of delivering stem cells to the central nervous system (CNS). This review describes the challenges and limitations of stem cell-based nanotechnology methods for labeling/tracking, intranasal delivery of cells, and cell fate regulation as theragnostic labeling. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Neurological Disease.

神经退行性疾病是通过神经元功能或结构的逐渐丧失,以及感觉和认知价值的丧失而发生的。缺乏成功的治疗方法来解决神经系统疾病会导致身体残疾和瘫痪,并对患者产生重大的社会经济影响。近年来,纳米载体和干细胞作为治疗神经退行性疾病的可靠方法引起了极大的关注。在这方面,基于纳米颗粒的标记与成像技术相结合,使研究人员能够调查移植的干细胞,并通过监测其存活、迁移和分化来充分了解其命运。为了在临床环境中实际实施干细胞疗法,有必要在给药后准确标记和跟踪干细胞。已经提出了几种使用纳米技术标记和跟踪干细胞的方法,作为神经疾病的潜在治疗策略。考虑到静脉或直接给药干细胞的局限性,神经系统疾病中纳米颗粒标记的干细胞的鼻内递送是一种将干细胞递送到中枢神经系统(CNS)的新方法。这篇综述描述了基于干细胞的纳米技术方法在标记/追踪、细胞鼻内递送和细胞命运调节(作为诊断标记)方面的挑战和局限性。这篇文章分类在:治疗方法和药物发现>神经疾病的纳米医学。
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引用次数: 1
Nanostructured bioactive glasses: A bird's eye view on cancer therapy. 纳米结构生物活性眼镜:癌症治疗的鸟瞰图。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2023-11-01 Epub Date: 2023-06-01 DOI: 10.1002/wnan.1905
Saeid Kargozar, Amirhossein Moghanian, Ali Rashvand, Amir K Miri, Sepideh Hamzehlou, Francesco Baino, Masoud Mozafari, Andrew Z Wang

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.

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。
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引用次数: 2
Current challenges ahead in preparation, characterization, and pharmaceutical applications of nanoemulsions. 纳米乳剂的制备、表征和医药应用面临的挑战。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2023-11-01 Epub Date: 2023-08-09 DOI: 10.1002/wnan.1920
Yaser Yousefpoor, Seyedeh Sara Esnaashari, Hadi Baharifar, Mohsen Mehrabi, Amir Amani

Nanoemulsions (NEs) are emulsions with particle size of less than around 100 nm. Reviewing the literature, several reports are available on NEs, including preparation, characterization, and applications of them. This review aims to brief challenges that researchers or formulators may encounter when working with NEs. For instance, when selecting NE components and identifying their concentrations, stability and safety of the preparation should be evaluated. When preparing an NE, issues over scale-up of the preparation as well as possible effects of the preparation process on the active ingredient need to be considered. When characterizing the NEs, the two major concerns are accuracy of the method and accessibility of the characterizing instrument. Also a highly efficient NE for clinical use to deliver the active ingredient to the target tissue with maximum safety profile is commonly sought. Throughout the review we also have tried to suggest approaches to overcome the challenges. This article is categorized under: Therapeutic Approaches and Drug Discovery > Emerging Technologies.

纳米乳剂(NEs)是粒径小于100纳米的乳剂。回顾文献,对网元的制备、表征和应用进行了综述。这篇综述的目的是简要介绍研究人员或配方制定者在使用新物质时可能遇到的挑战。例如,在选择NE组分并确定其浓度时,应评估制剂的稳定性和安全性。在制备NE时,需要考虑制剂的放大问题以及制剂过程对活性成分可能产生的影响。在表征新能源网时,两个主要问题是方法的准确性和表征工具的可及性。此外,人们通常寻求一种用于临床的高效NE,以最大的安全性将活性成分输送到目标组织。在整个审查过程中,我们还试图提出克服这些挑战的办法。本文分类如下:治疗方法和药物发现>新兴技术。
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引用次数: 1
Recent advances in nano-scaffolds for tissue engineering applications: Toward natural therapeutics. 纳米支架在组织工程中的应用进展:走向自然疗法。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2023-11-01 Epub Date: 2023-02-22 DOI: 10.1002/wnan.1882
Azizeh Rahmani Del Bakhshayesh, Solmaz Saghebasl, Nahideh Asadi, Elmira Kashani, Ahmad Mehdipour, Amir Nezami Asl, Abolfazl Akbarzadeh

Among the promising methods for repairing or replacing tissue defects in the human body and the hottest research topics in medical science today are regenerative medicine and tissue engineering. On the other hand, nanotechnology has been expanded into different areas of regenerative medicine and tissue engineering due to its essential benefits in improving performance in various fields. Nanotechnology, a helpful strategy in tissue engineering, offers new solutions to unsolved problems. Especially considering the excellent physicochemical properties of nanoscale structures, their application in regenerative medicine has been gradually developed, and a lot of research has been conducted in this field. In this regard, various nanoscale structures, including nanofibers, nanosheets, nanofilms, nano-clays, hollow spheres, and different nanoparticles, have been developed to advance nanotechnology strategies with tissue repair goals. Here, we comprehensively review the application of the mentioned nanostructures in constructing nanocomposite scaffolds for regenerative medicine and tissue engineering. This article is categorized under: Nanotechnology Approaches to Biology > Nanoscale Systems in Biology Implantable Materials and Surgical Technologies > Nanotechnology in Tissue Repair and Replacement Diagnostic Tools > Biosensing.

再生医学和组织工程是修复或替代人体组织缺陷的最有前途的方法之一,也是当今医学领域最热门的研究课题。另一方面,纳米技术已经扩展到再生医学和组织工程的不同领域,因为它在提高各个领域的性能方面具有重要的好处。纳米技术在组织工程中是一种有用的策略,为未解决的问题提供了新的解决方案。特别是考虑到纳米结构优异的物理化学性质,其在再生医学中的应用逐渐得到发展,并在该领域进行了大量的研究。在这方面,各种纳米级结构,包括纳米纤维、纳米片、纳米膜、纳米粘土、空心球和不同的纳米颗粒,已经被开发出来,以推进具有组织修复目标的纳米技术策略。本文综述了上述纳米结构在构建再生医学和组织工程纳米复合材料支架中的应用。本文分类如下:纳米技术在生物学中的应用;纳米系统在生物学中的应用;可植入材料和外科技术;纳米技术在组织修复和替代诊断工具中的应用;纳米技术在生物传感中的应用。
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引用次数: 6
Implantable smart hyperthermia nanofibers for cancer therapy: Challenges and opportunities. 用于癌症治疗的可植入智能热疗纳米纤维:挑战与机遇。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2023-11-01 Epub Date: 2023-05-31 DOI: 10.1002/wnan.1909
Amir Valizadeh, Samira Asghari, Saleheh Abbaspoor, Abbas Jafari, Mortaza Raeisi, Younes Pilehvar

Nanofibers (NFs) with practical drug-loading capacities, high stability, and controllable release have caught the attention of investigators due to their potential applications in on-demand drug delivery devices. Developing novel and efficient multidisciplinary management of locoregional cancer treatment through the design of smart NF-based systems integrated with combined chemotherapy and hyperthermia could provide stronger therapeutic advantages. On the other hand, implanting directly at the tumor area is a remarkable benefit of hyperthermia NF-based drug delivery approaches. Hence, implantable smart hyperthermia NFs might be very hopeful for tumor treatment in the future and provide new avenues for developing highly efficient localized drug delivery systems. Indeed, features of the smart NFs lead to the construction of a reversibly flexible nanostructure that enables hyperthermia and facile switchable release of antitumor agents to eradicate cancer cells. Accordingly, this study covers recent updates on applications of implantable smart hyperthermia NFs regarding their current scope and future outlook. This article is categorized under: Implantable Materials and Surgical Technologies > Nanomaterials and Implants.

纳米纤维具有实用的载药能力、高稳定性和释放可控等特点,在按需给药装置中具有潜在的应用前景,引起了研究人员的广泛关注。通过设计基于智能nf的系统与联合化疗和热疗相结合,开发局部区域癌症治疗的新型高效多学科管理可以提供更强的治疗优势。另一方面,直接植入肿瘤区域是基于热疗nf的给药方法的显著优点。因此,植入式智能热疗NFs可能在未来的肿瘤治疗中非常有希望,并为开发高效的局部药物输送系统提供了新的途径。事实上,智能NFs的特性导致了可逆柔性纳米结构的构建,使得热疗和抗肿瘤药物的快速切换释放能够根除癌细胞。因此,本研究涵盖了植入式智能热疗NFs应用的最新进展,包括其当前范围和未来前景。本文分类为:植入材料与外科技术、纳米材料与植入物。
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引用次数: 3
Multifunctional plant virus nanoparticles: An emerging strategy for therapy of cancer. 多功能植物病毒纳米颗粒:一种治疗癌症的新策略。
IF 8.6 2区 医学 Q1 MEDICINE, RESEARCH & EXPERIMENTAL Pub Date : 2023-11-01 Epub Date: 2022-11-30 DOI: 10.1002/wnan.1872
Mehdi Azizi, Mehdi Shahgolzari, Sonia Fathi-Karkan, Maryam Ghasemi, Hadi Samadian

Cancer therapy requires sophisticated treatment strategies to obtain the highest success. Nanotechnology is enabling, revolutionizing, and multidisciplinary concepts to improve conventional cancer treatment modalities. Nanomaterials have a central role in this scenario, explaining why various nanomaterials are currently being developed for cancer therapy. Viral nanoparticles (VNPs) have shown promising performance in cancer therapy due to their unique features. VNPs possess morphological homogeneity, ease of functionalization, biocompatibility, biodegradability, water solubility, and high absorption efficiency that are beneficial for cancer therapy applications. In the current review paper, we highlight state-of-the-art properties and potentials of plant viruses, strategies for multifunctional plant VNPs formulations, potential applications and challenges in VNPs-based cancer therapy, and finally practical solutions to bring potential cancer therapy one step closer to real applications. This article is categorized under: Therapeutic Approaches and Drug Discovery > Nanomedicine for Oncologic Disease Nanotechnology Approaches to Biology > Nanoscale Systems in Biology Biology-Inspired Nanomaterials > Protein and Virus-Based Structures.

癌症治疗需要复杂的治疗策略才能获得最大的成功。纳米技术正在推动、革新和多学科的概念,以改善传统的癌症治疗方式。纳米材料在这种情况下发挥着核心作用,这解释了为什么目前正在开发用于癌症治疗的各种纳米材料。病毒纳米颗粒(VNPs)由于其独特的特性在癌症治疗中显示出良好的应用前景。VNPs具有形态同质性、易于功能化、生物相容性、可生物降解性、水溶性和高吸收效率,有利于癌症治疗应用。本文综述了植物病毒的最新特性和潜力,多功能植物VNPs制剂的策略,基于VNPs的癌症治疗中的潜在应用和挑战,以及使潜在癌症治疗更接近实际应用的实际解决方案。本文分类为:治疗方法和药物发现;肿瘤疾病的纳米药物;生物学的纳米方法;生物学的纳米尺度系统;生物学启发的纳米材料;>蛋白质和基于病毒的结构。
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引用次数: 6
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Wiley interdisciplinary reviews. Nanomedicine and nanobiotechnology
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