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Nanotechnology-based bone regeneration in orthopedics: a review of recent trends. 骨科中基于纳米技术的骨再生:最新趋势综述。
Pub Date : 2024-02-01 Epub Date: 2024-01-26 DOI: 10.2217/nnm-2023-0187
Wenqing Liang, Chao Zhou, Juqin Bai, Hongwei Zhang, Hengguo Long, Bo Jiang, Lu Liu, Linying Xia, Chanyi Jiang, Hengjian Zhang, Jiayi Zhao

Nanotechnology has revolutionized the field of bone regeneration, offering innovative solutions to address the challenges associated with conventional therapies. This comprehensive review explores the diverse landscape of nanomaterials - including nanoparticles, nanocomposites and nanofibers - tailored for bone tissue engineering. We delve into the intricate design principles, structural mimicry of native bone and the crucial role of biomaterial selection, encompassing bioceramics, polymers, metals and their hybrids. Furthermore, we analyze the interface between cells and nanostructured materials and their pivotal role in engineering and regenerating bone tissue. In the concluding outlook, we highlight emerging frontiers and potential research directions in harnessing nanomaterials for bone regeneration.

纳米技术为骨再生领域带来了革命性的变化,为解决传统疗法所面临的挑战提供了创新解决方案。这篇综述探讨了纳米材料(包括纳米颗粒、纳米复合材料和纳米纤维)在骨组织工程中的多样化应用。我们深入探讨了复杂的设计原理、原生骨的结构模拟以及生物材料选择的关键作用,包括生物陶瓷、聚合物、金属及其混合物。此外,我们还分析了细胞与纳米结构材料之间的界面及其在骨组织工程和再生中的关键作用。在最后的展望中,我们强调了利用纳米材料进行骨再生的新兴前沿领域和潜在研究方向。
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引用次数: 0
Lipid-based nanomedicines for the treatment of bacterial respiratory infections: current state and new perspectives. 治疗细菌性呼吸道感染的脂基纳米药物:现状与新前景。
Pub Date : 2024-02-01 Epub Date: 2024-01-25 DOI: 10.2217/nnm-2023-0243
Eva María Arroyo-Urea, María Lázaro-Díez, Junkal Garmendia, Fernando Herranz, Ana González-Paredes

The global threat posed by antimicrobial resistance demands urgent action and the development of effective drugs. Lower respiratory tract infections remain the deadliest communicable disease worldwide, often challenging to treat due to the presence of bacteria that form recalcitrant biofilms. There is consensus that novel anti-infectives with reduced resistance compared with conventional antibiotics are needed, leading to extensive research on innovative antibacterial agents. This review explores the recent progress in lipid-based nanomedicines developed to counteract bacterial respiratory infections, especially those involving biofilm growth; focuses on improved drug bioavailability and targeting and highlights novel strategies to enhance treatment efficacy while emphasizing the importance of continued research in this dynamic field.

抗菌药耐药性对全球构成的威胁要求我们采取紧急行动,开发有效的药物。下呼吸道感染仍然是全球最致命的传染病,由于细菌形成顽固的生物膜,治疗起来往往具有挑战性。与传统抗生素相比,新型抗感染药物的耐药性更低,这一点已达成共识,从而引发了对创新抗菌剂的广泛研究。这篇综述探讨了为应对细菌呼吸道感染(尤其是涉及生物膜生长的感染)而开发的脂基纳米药物的最新进展;重点关注改进药物的生物利用度和靶向性,并着重介绍了提高治疗效果的新策略,同时强调了在这一充满活力的领域继续开展研究的重要性。
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引用次数: 0
It is the really small things: welcome to the 19th Volume of Nanomedicine. 这才是真正的小事:欢迎阅读第 19 卷《纳米医学》。
Pub Date : 2024-01-19 DOI: 10.2217/nnm-2023-0337
Louis Selwood
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引用次数: 0
Nanomaterials as protein mimics or nanologicals. 作为蛋白质模拟物或纳米技术的纳米材料。
Pub Date : 2024-01-01 Epub Date: 2024-03-26 DOI: 10.2217/nnm-2024-0064
Bengt Fadeel
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引用次数: 0
Poly(methylmethacrylate-co-dimethyl acrylamide)-silver nanocomposite prevents biofilm formation in medical devices. 聚(甲基丙烯酸甲酯-共二甲基丙烯酰胺)-银纳米复合材料可防止医疗器械中生物膜的形成。
Pub Date : 2024-01-01 Epub Date: 2024-05-09 DOI: 10.1080/17435889.2024.2345044
Fernanda B Perasoli, Luan S B Silva, Bruna I C Figueiredo, Isabelle C Pinto, Lorrane J F Amaro, Juliana C S Almeida Bastos, Simone P Carneiro, Vânia P R Araújo, Felipe R G Beato, Ana P M Barboza, Luiz F M Teixeira, Maurice P Gallagher, Mark Bradley, Seshasailam Venkateswaran, Orlando D H Dos Santos

Aim: To investigate whether medical devices coated with a synthesized nanocomposite of poly(methylmethacrylate-co-dimethyl acrylamide) (PMMDMA) and silver nanoparticles (AgNPs) could improve their antibiofilm and antimicrobial activities. We also investigated the nanocomposite's safety. Materials & methods: The nanocomposite was synthesized and characterized using analytical techniques. Medical devices coated with the nanocomposite were evaluated for bacterial adhesion and hemolytic activity in vitro. Results: The nanocomposite formation was demonstrated with the incorporation of AgNPs into the polymer matrix. The nanocomposite proved to be nonhemolytic and significantly inhibited bacterial biofilm formation. Conclusion: The PMMDMA-AgNPs nanocomposite was more effective in preventing biofilm formation than PMMDMA alone and is a promising strategy for coating medical devices and reducing mortality due to hospital-acquired infections.

目的:研究聚(甲基丙烯酸甲酯-共二甲基丙烯酰胺)(PMDMA)和银纳米粒子(AgNPs)合成的纳米复合材料涂覆在医疗器械上能否提高其抗生物膜和抗菌活性。我们还研究了纳米复合材料的安全性。材料与方法:使用分析技术合成纳米复合材料并对其进行表征。涂有纳米复合材料的医疗器械在体外进行了细菌粘附和溶血活性评估。结果:在聚合物基质中加入 AgNPs 证明了纳米复合材料的形成。事实证明,该纳米复合材料不溶血,并能显著抑制细菌生物膜的形成。结论PMMDMA-AgNPs 纳米复合材料在防止生物膜形成方面比单独使用 PMMDMA 更有效,是一种很有前景的医疗设备涂层策略,可降低医院感染导致的死亡率。
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引用次数: 0
Multi-omics exploration of biomolecular corona in nanomedicine therapeutics and diagnostics. 纳米医学治疗和诊断中生物分子电晕的多组学探索。
Pub Date : 2024-01-01 Epub Date: 2024-04-09 DOI: 10.2217/nnm-2024-0104
Amir Ata Saei, Morteza Mahmoudi
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引用次数: 0
Tailoring micellar nanocarriers for pemetrexed in breast cancer: design, fabrication and in vitro evaluation. 定制用于乳腺癌培美曲塞的胶束纳米载体:设计、制造和体外评估。
Pub Date : 2024-01-01 Epub Date: 2024-05-03 DOI: 10.2217/nnm-2024-0013
Nalla Usha Kumari, Padakanti Sandeep Chary, Ekta Pardhi, Neelesh Kumar Mehra

Aim: To investigate the pemetrexed encapsulated polymeric mixed micelles (PMMs) against breast cancer treatment.Methods: We meticulously optimized the formulation and conducted extensive characterizations, including photon correlation spectroscopy for micellization, advanced analytical techniques and in vitro cell line assessments.Results: The PMM exhibited favorable characteristics, with a spherical morphology, hydrodynamic particle size of 19.58 ± 0.89 nm, polydispersity index of 0.245 ± 0.1, and a surface charge of -9.70 ± 0.61 mV. Encapsulation efficiency and drug payload reached 96.16 ± 0.37% and 4.5 ± 0.32%, respectively. Cytotoxicity analysis indicated superior efficacy of the PMM over the drug solution.Conclusion: The PMM formulation exhibited controlled release of the drug, and demonstrated enhanced cytotoxicity against breast cancer cells, highlighting its therapeutic promise.

目的:研究培美曲塞包裹的聚合物混合胶束(PMMs)对乳腺癌的治疗作用。方法:我们精心优化了配方,并进行了广泛的表征,包括胶束化的光子相关光谱、先进的分析技术和体外细胞系评估。结果PMM 具有良好的特性,呈球形,水动力粒径为 19.58 ± 0.89 nm,多分散指数为 0.245 ± 0.1,表面电荷为 -9.70 ± 0.61 mV。封装效率和药物有效载荷分别达到 96.16 ± 0.37% 和 4.5 ± 0.32%。细胞毒性分析表明,PMM 的药效优于药物溶液。结论PMM 制剂可控制药物的释放,对乳腺癌细胞的细胞毒性也有所增强,突出了其治疗前景。
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引用次数: 0
Correction. 更正。
Pub Date : 2024-01-01 Epub Date: 2024-06-10 DOI: 10.1080/17435889.2024.2365093
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引用次数: 0
Gallic acid loaded self-nano emulsifying hydrogel-based drug delivery system against onychomycosis. 以没食子酸为载体的自纳米乳化水凝胶给药系统防治甲癣。
Pub Date : 2024-01-01 Epub Date: 2024-08-15 DOI: 10.1080/17435889.2024.2386923
Mohammad Sameer Khan, Mahak Fatima, Shadma Wahab, Mohammad Khalid, Prashant Kesharwani

Aim: To developed and investigate gallic acid (GA) loaded self-nanoemulsifying drug delivery systems (SNEDDS) for treating onychomycosis via transungual route.Materials & methods: The SNEDDS were prepared by direct dispersion technique and were evaluated for characteristics parameters using Fourier transform infrared, differential scanning calorimetry, confocal microscopy, transmission electron microscopy and zeta sizer. Furthermore, the safety of prepared formulation was evaluated via Hen's egg test-chorioallantoic membrane study and stability was confirmed using different parameters. Also, its effectiveness was evaluated against fungal strain Trichophyton mentagrophytes.Results: The SNEDDS displayed a particle size of 199.8 ± 4.21 nm and a zeta potential; of -22.75 ± 2.09 mV. Drug release study illustrated a sustained release pattern with a release of 70.34 ± 0.20% over a period of 24 h. The penetration across the nail plate was found to be 1.59 ± 0.002 µg/mg and 0.97 ± 0.001 µg/mg for GA loaded SNEDDS and GA solution respectively. An irritation score of 0.52 ± 0.005 and 3.84 ± 0.001 was reported for GA loaded SNEDDS hydrogel and GA solution, indicating a decrease in the drug's irritation potential from slightly irritating to non irritating due to its entrapment within the SNEDDS.Conclusion: GA loaded SNEDDS has potential to address limitations of conventional treatments, enhancing the drug's efficacy and reducing the likelihood of resistance in the treatment of Onychomycosis.

目的:开发并研究通过经皮途径治疗甲癣的没食子酸(GA)负载型自纳米乳化给药系统(SNEDDS)。材料与方法:采用直接分散技术制备了自纳米乳化给药系统,并使用傅立叶变换红外光谱、差示扫描量热仪、共聚焦显微镜、透射电子显微镜和 zeta 分析仪对其特性参数进行了评估。此外,还通过母鸡卵试验-绒毛膜研究评估了制备配方的安全性,并使用不同参数确认了其稳定性。此外,还评估了该制剂对真菌毛癣菌的有效性。结果SNEDDS 的粒径为 199.8 ± 4.21 nm,zeta 电位为 -22.75 ± 2.09 mV。载药 SNEDDS 和 GA 溶液在甲板上的渗透率分别为 1.59 ± 0.002 µg/mg 和 0.97 ± 0.001 µg/mg。据报告,GA负载SNEDDS水凝胶和GA溶液的刺激性评分分别为0.52 ± 0.005和3.84 ± 0.001,这表明由于药物被SNEDDS包裹,药物的刺激性从轻微刺激性降低到无刺激性。结论负载 GA 的 SNEDDS 有可能解决传统治疗方法的局限性,提高药物疗效,降低治疗甲癣的抗药性可能性。
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引用次数: 0
Lipid polymer hybrid nanoparticles against lung cancer and their application as inhalable formulation. 抗肺癌的脂质聚合物混合纳米粒子及其作为吸入制剂的应用。
Pub Date : 2024-01-01 Epub Date: 2024-08-15 DOI: 10.1080/17435889.2024.2387530
Seyedeh Negin Kassaee, Derek Richard, Godwin A Ayoko, Nazrul Islam

Lung cancer is a leading cause of global cancer mortality, often treated with chemotherapeutic agents. However, conventional approaches such as oral or intravenous administration of drugs yield low bioavailability and adverse effects. Nanotechnology has unlocked new gateways for delivering medicine to their target sites. Lipid-polymer hybrid nanoparticles (LPHNPs) are one of the nano-scaled delivery platforms that have been studied to exploit advantages of liposomes and polymers, enhancing stability, drug loading, biocompatibility and controlled release. Pulmonary administration of drug-loaded LPHNPs enables direct lung deposition, rapid onset of action and heightened efficacy at low doses of drugs. In this manuscript, we will review the potential of LPHNPs in management of lung cancer through pulmonary administration.

肺癌是全球癌症死亡的主要原因,通常采用化疗药物进行治疗。然而,口服或静脉给药等传统方法生物利用度低,且存在不良反应。纳米技术为将药物输送到靶点打开了新的大门。脂质聚合物杂化纳米颗粒(LPHNPs)是纳米级给药平台之一,研究人员利用脂质体和聚合物的优势,提高了其稳定性、药物负载、生物相容性和控释性。肺部给药 LPHNPs 可使药物在肺部直接沉积,快速起效,并在药物剂量较低时提高疗效。在本手稿中,我们将回顾 LPHNPs 通过肺部给药治疗肺癌的潜力。
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Nanomedicine (London, England)
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