NP, nanoparticle

NP,纳米粒子
  • 文章类型: Journal Article
    由二氧化硅和钛等元素组成的工程纳米粒子(NPs),直径小于100纳米及其聚集体,在化妆品等消费品中发现,食物,抗菌药物和药物输送系统,以及牙膏和牙科材料等口腔保健产品。它们也可能意外地与肠道和口腔中的上皮组织相互作用,它们可以聚集成更大的颗粒,并通过炎症体激活等途径诱导炎症。持续的炎症可导致癌前病变。颗粒和病变都很难在活检中检测到,尤其是在筛查大量患者的临床环境中。因为对疾病早期阶段的诊断可以挽救生命,人们对更好地理解NPs与上皮之间的相互作用以及开发能够检测上皮组织中外来颗粒和炎症标志物的快速成像技术越来越感兴趣.NP可以用荧光或放射性同位素标记,但是用常规成像技术检测未标记的NP是具有挑战性的。本文讨论了当前不同的成像技术,例如同步加速器辐射X射线荧光光谱法。成像技术的改进,加上机器学习工具的使用,在通过自动成像诊断活检中的颗粒可以有效地进入临床之前需要。
    Engineered nanoparticles (NPs) composed of elements such as silica and titanium, smaller than 100 nm in diameter and their aggregates, are found in consumer products such as cosmetics, food, antimicrobials and drug delivery systems, and oral health products such as toothpaste and dental materials. They may also interact accidently with epithelial tissues in the intestines and oral cavity, where they can aggregate into larger particles and induce inflammation through pathways such as inflammasome activation. Persistent inflammation can lead to precancerous lesions. Both the particles and lesions are difficult to detect in biopsies, especially in clinical settings that screen large numbers of patients. As diagnosis of early stages of disease can be lifesaving, there is growing interest in better understanding interactions between NPs and epithelium and developing rapid imaging techniques that could detect foreign particles and markers of inflammation in epithelial tissues. NPs can be labelled with fluorescence or radioactive isotopes, but it is challenging to detect unlabeled NPs with conventional imaging techniques. Different current imaging techniques such as synchrotron radiation X-ray fluorescence spectroscopy are discussed here. Improvements in imaging techniques, coupled with the use of machine learning tools, are needed before diagnosis of particles in biopsies by automated imaging could move usefully into the clinic.
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  • 文章类型: Journal Article
    细菌感染会损害人类的物理和生物功能,并给感染患者带来巨大的经济和心理负担。一氧化氮(NO)是一种广谱抗微生物剂,其作用机制不受细菌耐药性的影响。S-亚硝基谷胱甘肽(GSNO),NO的内源性供体和载体,由于其有效的抗菌活性和高效的生物相容性而受到越来越多的关注。GSNO在生物材料中的应用取得了重大突破。本文在已有证据的基础上,对GSNO抗感染性能方面的应用进展进行了综述,潜在的抗菌机制,以及在抗感染生物材料中的应用。我们提供了GSNO在抗菌生物材料中的作用和应用的准确概述,并为未来的研究提供了新的思路。
    Bacterial infections can compromise the physical and biological functionalities of humans and pose a huge economical and psychological burden on infected patients. Nitric oxide (NO) is a broad-spectrum antimicrobial agent, whose mechanism of action is not affected by bacterial resistance. S-nitrosoglutathione (GSNO), an endogenous donor and carrier of NO, has gained increasing attention because of its potent antibacterial activity and efficient biocompatibility. Significant breakthroughs have been made in the application of GSNO in biomaterials. This review is based on the existing evidence that comprehensively summarizes the progress of antimicrobial GSNO applications focusing on their anti-infective performance, underlying antibacterial mechanisms, and application in anti-infective biomaterials. We provide an accurate overview of the roles and applications of GSNO in antibacterial biomaterials and shed new light on the avenues for future studies.
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  • 文章类型: Journal Article
    中风是导致死亡和残疾的主要原因。目前,这种疾病没有有效的药物治疗方法,这可以部分归因于无法有效地向大脑提供治疗。在这里,我们报告了天然化合物衍生的纳米颗粒(NPs)的发展,它既可以作为中风治疗的有效治疗剂,又可以作为向缺血性大脑输送药物的有效载体。首先,我们筛选了一组天然纳米材料,并确定了桦木酸(BA)是治疗中风最有效的抗氧化剂之一.接下来,我们设计了BANP,通过将BA化学转化为桦木胺(BAM),在酸性缺血组织中优先释放药物,并通过CXCR4拮抗剂AMD3100的表面缀合进行靶向药物递送。所得的AMD3100-共轭BAMNP,或A-BAMNP,然后被评估为用于中风治疗的治疗剂和作为用于递送神经保护肽NA1的载体。我们表明,A-BAMNP的静脉给药有效地改善了中风的恢复,并且当NA1被封装时,其功效进一步增强。由于它们的多功能性和显著的功效,我们预计,A-BAMNP有可能同时作为治疗药物和药物载体来改善卒中的治疗.
    Stroke is the leading cause of death and disability. Currently, there is no effective pharmacological treatment for this disease, which can be partially attributed to the inability to efficiently deliver therapeutics to the brain. Here we report the development of natural compound-derived nanoparticles (NPs), which function both as a potent therapeutic agent for stroke treatment and as an efficient carrier for drug delivery to the ischemic brain. First, we screened a collection of natural nanomaterials and identified betulinic acid (BA) as one of the most potent antioxidants for stroke treatment. Next, we engineered BA NPs for preferential drug release in acidic ischemic tissue through chemically converting BA to betulinic amine (BAM) and for targeted drug delivery through surface conjugation of AMD3100, a CXCR4 antagonist. The resulting AMD3100-conjugated BAM NPs, or A-BAM NPs, were then assessed as a therapeutic agent for stroke treatment and as a carrier for delivery of NA1, a neuroprotective peptide. We show that intravenous administration of A-BAM NPs effectively improved recovery from stroke and its efficacy was further enhanced when NA1 was encapsulated. Due to their multifunctionality and significant efficacy, we anticipate that A-BAM NPs have the potential to be translated both as a therapeutic agent and as a drug carrier to improve the treatment of stroke.
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  • 文章类型: Journal Article
    炎症性关节炎是老年人致残的主要原因。这种情况会导致关节疼痛,功能丧失,生活质量下降,主要是由于骨关节炎(OA)和类风湿性关节炎(RA)。目前,炎性关节炎的可用治疗选择包括口服抗炎药,topic,或关节内路线,手术,和身体康复。治疗炎症性关节炎的新替代方法,到目前为止,由于灾难性的经济负担和微不足道的治疗益处,仍然是巨大的挑战。鉴于非靶向的全身细胞毒性和药物治疗的生物利用度有限,一个主要关注的问题是使用纳米材料建立刺激响应性药物递送系统,在生物医学应用中具有开关潜力.这篇综述总结了取决于各种内部刺激(包括还原-氧化(氧化还原),pH值,和酶)和外部刺激(包括温度,超声(美国),磁性,照片,电压,和机械摩擦)。该综述还探讨了基于病理变化使用刺激响应性纳米材料来管理炎症性关节炎的进展和挑战。包括软骨退化,滑膜炎,软骨下骨破坏.暴露于由这种组织病理学改变引起的适当刺激可以触发治疗药物的释放。在炎性关节炎的关节靶向治疗中势在必行。
    Inflammatory arthritis is a major cause of disability in the elderly. This condition causes joint pain, loss of function, and deterioration of quality of life, mainly due to osteoarthritis (OA) and rheumatoid arthritis (RA). Currently, available treatment options for inflammatory arthritis include anti-inflammatory medications administered via oral, topical, or intra-articular routes, surgery, and physical rehabilitation. Novel alternative approaches to managing inflammatory arthritis, so far, remain the grand challenge owing to catastrophic financial burden and insignificant therapeutic benefit. In the view of non-targeted systemic cytotoxicity and limited bioavailability of drug therapies, a major concern is to establish stimuli-responsive drug delivery systems using nanomaterials with on-off switching potential for biomedical applications. This review summarizes the advanced applications of triggerable nanomaterials dependent on various internal stimuli (including reduction-oxidation (redox), pH, and enzymes) and external stimuli (including temperature, ultrasound (US), magnetic, photo, voltage, and mechanical friction). The review also explores the progress and challenges with the use of stimuli-responsive nanomaterials to manage inflammatory arthritis based on pathological changes, including cartilage degeneration, synovitis, and subchondral bone destruction. Exposure to appropriate stimuli induced by such histopathological alterations can trigger the release of therapeutic medications, imperative in the joint-targeted treatment of inflammatory arthritis.
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  • 文章类型: Journal Article
    免疫检查点阻断疗法已经深刻地彻底改变了癌症免疫治疗领域。然而,尽管对各种癌症有很大的希望,免疫检查点抑制剂在结直肠癌(CRC)中的疗效仍然较低.这主要是由于肿瘤微环境(TME)的免疫抑制特征。新的证据表明,某些化疗药物诱导免疫原性细胞死亡(ICD),显示出重塑免疫抑制TME的巨大潜力。在这项研究中,使用体外和体内实验方法证实了人参皂苷Rg3(Rg3)作为针对CRC细胞的ICD诱导物的潜力。槲皮素(QTN)可引起活性氧(ROS),从而显着增强Rg3的ICD功效。为了改善与化疗药物相关的体内递送障碍,开发了叶酸(FA)靶向的聚乙二醇(PEG)修饰的两亲性环糊精纳米颗粒(NP)用于Rg3和QTN的共封装。得到的纳米制剂(CD-PEG-FA.Rg3.QTN)在原位CRC小鼠模型中显着延长了血液循环并增强了肿瘤靶向,导致免疫抑制TME的转化。此外,CD-PEG-FA。Rg3.QTN与抗PD-L1组合实现了动物的显著更长的存活。该研究为CRC的治疗提供了有希望的策略。
    The immune checkpoint blockade therapy has profoundly revolutionized the field of cancer immunotherapy. However, despite great promise for a variety of cancers, the efficacy of immune checkpoint inhibitors is still low in colorectal cancer (CRC). This is mainly due to the immunosuppressive feature of the tumor microenvironment (TME). Emerging evidence reveals that certain chemotherapeutic drugs induce immunogenic cell death (ICD), demonstrating great potential for remodeling the immunosuppressive TME. In this study, the potential of ginsenoside Rg3 (Rg3) as an ICD inducer against CRC cells was confirmed using in vitro and in vivo experimental approaches. The ICD efficacy of Rg3 could be significantly enhanced by quercetin (QTN) that elicited reactive oxygen species (ROS). To ameliorate in vivo delivery barriers associated with chemotherapeutic drugs, a folate (FA)-targeted polyethylene glycol (PEG)-modified amphiphilic cyclodextrin nanoparticle (NP) was developed for co-encapsulation of Rg3 and QTN. The resultant nanoformulation (CD-PEG-FA.Rg3.QTN) significantly prolonged blood circulation and enhanced tumor targeting in an orthotopic CRC mouse model, resulting in the conversion of immunosuppressive TME. Furthermore, the CD-PEG-FA.Rg3.QTN achieved significantly longer survival of animals in combination with Anti-PD-L1. The study provides a promising strategy for the treatment of CRC.
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  • 文章类型: Journal Article
    Drug transportation is impeded by various barriers in the hypoxic solid tumor, resulting in compromised anticancer efficacy. Herein, a solid lipid monostearin (MS)-coated CaO2/MnO2 nanocarrier was designed to optimize doxorubicin (DOX) transportation comprehensively for chemotherapy enhancement. The MS shell of nanoparticles could be destroyed selectively by highly-expressed lipase within cancer cells, exposing water-sensitive cores to release DOX and produce O2. After the cancer cell death, the core-exposed nanoparticles could be further liberated and continue to react with water in the tumor extracellular matrix (ECM) and thoroughly release O2 and DOX, which exhibited cytotoxicity to neighboring cells. Small DOX molecules could readily diffuse through ECM, in which the collagen deposition was decreased by O2-mediated hypoxia-inducible factor-1 inhibition, leading to synergistically improved drug penetration. Concurrently, DOX-efflux-associated P-glycoprotein was also inhibited by O2, prolonging drug retention in cancer cells. Overall, the DOX transporting processes from nanoparticles to deep tumor cells including drug release, penetration, and retention were optimized comprehensively, which significantly boosted antitumor benefits.
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  • 文章类型: Journal Article
    作为一种典型的人类病原真菌,新生隐球菌是一种威胁生命的侵袭性真菌病原体,在全球范围内分布,每年导致约700,000人死亡。隐球菌病不仅仅是多器官受累的感染,真菌的细胞内存活和细胞外增殖在新生梭菌感染的发病机理中也起重要作用。因为药物在靶器官和细胞的充分积累仍然难以实现,迫切需要有效的输送策略来治疗这些感染。这里,我们报道了一种生物响应微纳米(MTN)系统,该系统可有效清除体内的新型梭菌。该策略基于我们对感染微环境(IME)中基质金属蛋白酶3(MMP-3)的过表达以及几种相关靶细胞中酸性且富含半胱氨酸的分泌蛋白(SPARC)的深入研究。在这个MTN系统中,牛血清白蛋白(BSA,SPARC的天然配体)用于制备纳米颗粒(NP),然后通过与一个特殊的接头结合构建微球,主要由BSA结合肽和MMP-3反应肽组成。这种MTN系统在静脉注射后被肺部最小的毛细血管机械捕获,然后在IME中通过MMP-3水解为BSANP。NP进一步靶向肺组织,基于SPARC过表达的大脑和感染的巨噬细胞,达到多个目标,实现有效治疗。我们已经开发了一种尺寸可调的策略,其中微球“收缩”到IME中的NP,它有效地结合了主动和被动靶向,并且在对抗复杂的真菌感染方面可能特别强大。
    As a typical human pathogenic fungus, Cryptococcus neoformans is a life-threatening invasive fungal pathogen with a worldwide distribution causing ∼700,000 deaths annually. Cryptococcosis is not just an infection with multi-organ involvement, intracellular survival and extracellular multiplication of the fungus also play important roles in the pathogenesis of C. neoformans infections. Because adequate accumulation of drugs at target organs and cells is still difficult to achieve, an effective delivery strategy is desperately required to treat these infections. Here, we report a bioresponsive micro-to-nano (MTN) system that effectively clears the C. neoformans in vivo. This strategy is based on our in-depth study of the overexpression of matrix metalloproteinase 3 (MMP-3) in infectious microenvironments (IMEs) and secreted protein acidic and rich in cysteine (SPARC) in several associated target cells. In this MTN system, bovine serum albumin (BSA, a natural ligand of SPARC) was used for the preparation of nanoparticles (NPs), and then microspheres were constructed by conjugation with a special linker, which mainly consisted of a BSA-binding peptide and an MMP-3-responsive peptide. This MTN system was mechanically captured by the smallest capillaries of the lungs after intravenous injection, and then hydrolyzed into BSA NPs by MMP-3 in the IMEs. The NPs further targeted the lung tissue, brain and infected macrophages based on the overexpression of SPARC, reaching multiple targets and achieving efficient treatment. We have developed a size-tunable strategy where microspheres \"shrink\" to NPs in IMEs, which effectively combines active and passive targeting and may be especially powerful in the fight against complex fungal infections.
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  • 文章类型: Journal Article
    新的中风患者的绝对数量每年都在增加,并且仍然只有少数食品和药物管理局(FDA)批准的治疗方法对患者有效。丹参酮IIA(TanIIA)是缺血性中风的有希望的潜在治疗剂,在临床前啮齿动物研究中已显示出成功,但在人类患者中导致不一致的疗效结果。Tan-IIA的物理性质,包括短半衰期和低溶解度,提示聚(乳酸-共-乙醇酸)(PLGA)纳米颗粒辅助递送可导致改善生物利用度和治疗功效。这项研究的目的是开发负载TanIIA的纳米颗粒(TanIIA-NP),并评估其对猪缺血性中风模型中脑病理变化和随之而来的运动功能缺陷的治疗作用。
    TanIIA-NP处理的神经干细胞在证明抗氧化作用的体外测定中显示SOD活性降低。与仅用载体处理的猪相比,用TanIIA-NP处理的缺血性中风猪显示出减少的半球肿胀(7.85±1.41vs.16.83±0.62%),随之而来的中线偏移(MLS)(1.72±0.07vs.2.91±0.36mm),和缺血性病变体积(9.54±5.06vs.12.01±0.17cm3),与仅用载体处理的猪相比。治疗还导致扩散率降低(-37.30±3.67vs.-46.33±0.73%)和白质完整性(-19.66±5.58vs.-30.11±1.19%)以及缺血性中风后24小时出血减少(0.85±0.15vs2.91±0.84cm3)。此外,TanIIA-NP导致12岁时循环带中性粒细胞百分比降低(7.75±1.93vs.14.00±1.73%)和卒中后24小时(4.25±0.48vs5.75±0.85%)提示炎症反应减轻。此外,时空步态缺陷,包括节奏,周期时间,步进时间,周期的摆动百分比,步幅长度,与对照猪相比,TanIIA-NP治疗的猪中风后相对平均压力变化较轻。
    这一概念验证研究的结果强烈表明,在卒中后急性期施用TanIIA-NP可能通过限制自由基形成来减轻神经损伤,从而在转化猪缺血性卒中模型中导致不太严重的步态缺陷。中风是美国功能性残疾的主要原因之一,步态缺陷是一个主要组成部分,这些有前景的结果表明,TanIIA-NP急性给药可能改善许多未来卒中患者的功能结局和生活质量.
    UNASSIGNED: The absolute number of new stroke patients is annually increasing and there still remains only a few Food and Drug Administration (FDA) approved treatments with significant limitations available to patients. Tanshinone IIA (Tan IIA) is a promising potential therapeutic for ischemic stroke that has shown success in pre-clinical rodent studies but lead to inconsistent efficacy results in human patients. The physical properties of Tan-IIA, including short half-life and low solubility, suggests that Poly (lactic-co-glycolic acid) (PLGA) nanoparticle-assisted delivery may lead to improve bioavailability and therapeutic efficacy. The objective of this study was to develop Tan IIA-loaded nanoparticles (Tan IIA-NPs) and to evaluate their therapeutic effects on cerebral pathological changes and consequent motor function deficits in a pig ischemic stroke model.
    UNASSIGNED: Tan IIA-NP treated neural stem cells showed a reduction in SOD activity in in vitro assays demonstrating antioxidative effects. Ischemic stroke pigs treated with Tan IIA-NPs showed reduced hemispheric swelling when compared to vehicle only treated pigs (7.85 ± 1.41 vs. 16.83 ± 0.62%), consequent midline shift (MLS) (1.72 ± 0.07 vs. 2.91 ± 0.36 mm), and ischemic lesion volumes (9.54 ± 5.06 vs. 12.01 ± 0.17 cm3) when compared to vehicle-only treated pigs. Treatment also lead to lower reductions in diffusivity (-37.30 ± 3.67 vs. -46.33 ± 0.73%) and white matter integrity (-19.66 ± 5.58 vs. -30.11 ± 1.19%) as well as reduced hemorrhage (0.85 ± 0.15 vs 2.91 ± 0.84 cm3) 24 h post-ischemic stroke. In addition, Tan IIA-NPs led to a reduced percentage of circulating band neutrophils at 12 (7.75 ± 1.93 vs. 14.00 ± 1.73%) and 24 (4.25 ± 0.48 vs 5.75 ± 0.85%) hours post-stroke suggesting a mitigated inflammatory response. Moreover, spatiotemporal gait deficits including cadence, cycle time, step time, swing percent of cycle, stride length, and changes in relative mean pressure were less severe post-stroke in Tan IIA-NP treated pigs relative to control pigs.
    UNASSIGNED: The findings of this proof of concept study strongly suggest that administration of Tan IIA-NPs in the acute phase post-stroke mitigates neural injury likely through limiting free radical formation, thus leading to less severe gait deficits in a translational pig ischemic stroke model. With stroke as one of the leading causes of functional disability in the United States, and gait deficits being a major component, these promising results suggest that acute Tan IIA-NP administration may improve functional outcomes and the quality of life of many future stroke patients.
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  • 文章类型: Journal Article
    Intravenously injected ONO-1301-containing nanoparticles (ONO-1301NPs), unlike an ONO-1301 solution, selectively accumulated in the ischemia/reperfusion (I/R)-injured myocardium of rats and contributed to the prolonged retention of ONO-1301 in the targeted myocardial tissue. In the ischemic area, proangiogenic cytokines were up-regulated and inflammatory cytokines were down-regulated upon ONO-1301NP administration. Consequently, ONO-1301NP-injected rats exhibited a smaller infarct size, better-preserved capillary networks, and a better-preserved myocardial blood flow at 24 h after I/R injury, compared with those in vehicle-injected or ONO-1301 solution-injected rats. ONO-1301NPs attenuate the myocardial I/R injury via proangiogenic and anti-inflammatory effects of the drug.
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  • 文章类型: Journal Article
    最优选的药物给药方式是通过口服途径,但生理障碍如pH,酶降解等.限制此路由的绝对使用。纳米技术在纳米医学领域有着广泛的应用,特别是在药物输送系统中。独特的特性,特别是小尺寸和高表面积(可以根据需要进行修改),这些纳米颗粒所表现出的这些结构更适合于药物递送的目的。各种纳米结构,像脂质体一样,树枝状聚合物,介孔二氧化硅纳米颗粒,等。是为上述目的而设计的。这些纳米结构相对于传统的药物给药具有若干优点。除了克服许多潜在治疗分子的药代动力学和药效学限制外,它们也可能用于先进的药物递送目的,如靶向药物递送,控释,增强的渗透性和保留(EPR)效果。在这次审查中,我们试图描述有关各种战略性设计的纳米结构的最新知识,以克服与口服药物相关的问题。
    The most preferable mode of drugs administration is via the oral route but physiological barriers such as pH, enzymatic degradation etc. limit the absolute use of this route. Herein lies the importance of nanotechnology having a wide range of applications in the field of nano-medicine, particularly in drug delivery systems. The exclusive properties particularly small size and high surface area (which can be modified as required), exhibited by these nanoparticlesrender these structures more suitable for the purpose of drug delivery. Various nanostructures, like liposomes, dendrimers, mesoporous silica nanoparticles, etc. have been designed for the said purpose. These nanostructures have several advantages over traditional administration of medicine. Apart from overcoming the pharmacokinetic and pharmacodynamics limitations of many potential therapeutic molecules, they may also be useful for advanced drug delivery purposes like targeted drug delivery, controlled release, enhanced permeability and retention (EPR) effect. In this review, we attempt to describe an up-to-date knowledge on various strategically devised nanostructures to overcome the problems related to oral drug administration.
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