TEM, transmission electron microscopy

TEM,
  • 文章类型: Journal Article
    眼科手术和COVID-19患者中最常见的疾病是真菌性眼部感染,这可能会导致炎症和干眼症,并可能导致眼部发病。两性霉素B滴眼液通常用于治疗眼部真菌感染。乳铁蛋白是一种具有广谱抗微生物活性的铁结合糖蛋白,用于治疗干眼症,结膜炎,和眼部炎症。然而,不良的房水稳定性和过度的鼻泪管引流阻碍了这些药物的效率。这项研究的目的是检查两性霉素B的作用,作为抗白色念珠菌的抗真菌药,镰刀菌,还有黄曲霉,和乳铁蛋白,作为抗炎和抗干眼症,当共负载三嵌段聚合物PLGA-PEG-PEI纳米颗粒包埋在P188-P407眼科热敏凝胶中时。通过双乳液溶剂蒸发法制备纳米颗粒。优化后的配方显示粒径(177.0±0.3nm),多分散指数(0.011±0.01),ζ电位(31.9±0.3mV),和包封%(90.9±0.5),改善了离体药代动力学参数和离体角膜穿透性,与药物溶液相比。共聚焦激光扫描显示了氟标记的纳米颗粒的有价值的渗透。刺激试验(Draize试验),原子力显微镜,细胞培养和动物试验,包括组织病理学分析,揭示了纳米颗粒在减少炎症迹象和根除兔真菌感染方面的优越性。不会对兔子的眼球造成任何伤害。纳米颗粒表现出良好的药效学特征和持续释放曲线,并且在体外或体内既无细胞毒性也无刺激性。开发的配方可能为治疗眼部问题提供一种新的安全的纳米技术,比如炎症和真菌感染.
    The most prevalent conditions among ocular surgery and COVID-19 patients are fungal eye infections, which may cause inflammation and dry eye, and may cause ocular morbidity. Amphotericin-B eye drops are commonly used in the treatment of ocular fungal infections. Lactoferrin is an iron-binding glycoprotein with broad-spectrum antimicrobial activity and is used for the treatment of dry eye, conjunctivitis, and ocular inflammation. However, poor aqueous stability and excessive nasolacrimal duct draining impede these agens\' efficiency. The aim of this study was to examine the effect of Amphotericin-B, as an antifungal against Candida albicans, Fusarium, and Aspergillus flavus, and Lactoferrin, as an anti-inflammatory and anti-dry eye, when co-loaded in triblock polymers PLGA-PEG-PEI nanoparticles embedded in P188-P407 ophthalmic thermosensitive gel. The nanoparticles were prepared by a double emulsion solvent evaporation method. The optimized formula showed particle size (177.0 ± 0.3 nm), poly-dispersity index (0.011 ± 0.01), zeta-potential (31.9 ± 0.3 mV), and entrapment% (90.9 ± 0.5) with improved ex-vivo pharmacokinetic parameters and ex-vivo trans-corneal penetrability, compared with drug solution. Confocal laser scanning revealed valuable penetration of fluoro-labeled nanoparticles. Irritation tests (Draize Test), Atomic force microscopy, cell culture and animal tests including histopathological analysis revealed superiority of the nanoparticles in reducing signs of inflammation and eradication of fungal infection in rabbits, without causing any damage to rabbit eyeballs. The nanoparticles exhibited favorable pharmacodynamic features with sustained release profile, and is neither cytotoxic nor irritating in-vitro or in-vivo. The developed formulation might provide a new and safe nanotechnology for treating eye problems, like inflammation and fungal infections.
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  • 文章类型: Journal Article
    角膜移植术是临床治疗角膜疾病的有效方法,which,然而,受到供体角膜的限制。开发具有“透明”和“上皮和基质生成”功能的生物粘附性角膜补片具有重要的临床价值,以及“无情”和“坚韧”。同时满足\"T.E.S.T.“要求,基于甲基丙烯酰化明胶(GelMA)设计了一种光固化水凝胶,PluronicF127二丙烯酸酯(F127DA)和醛化PluronicF127(AF127)共组装双功能胶束和I型胶原蛋白(COLI),结合临床应用的角膜交联(CXL)技术修复受损角膜。紫外线照射5分钟后形成的贴片具有透明,非常艰难,和强大的生物粘合性能。多次交联使贴片承受近600%的变形,并表现出大于400mmHg的爆裂压力,显著高于正常眼压(10-21mmHg)。此外,与无COLI的GelMA-F127DA和AF127水凝胶相比,降解速度较慢,使水凝胶贴片在体内基质床上稳定,支持角膜上皮和基质的再生。水凝胶贴剂可在4周内替代角膜深层基质缺损,并能很好地生物整合到兔模型的角膜组织中,联合CXL在圆锥角膜和其他角膜疾病的手术中显示出巨大的潜力。
    Corneal transplantation is an effective clinical treatment for corneal diseases, which, however, is limited by donor corneas. It is of great clinical value to develop bioadhesive corneal patches with functions of \"Transparency\" and \"Epithelium & Stroma generation\", as well as \"Suturelessness\" and \"Toughness\". To simultaneously meet the \"T.E.S.T.\" requirements, a light-curable hydrogel is designed based on methacryloylated gelatin (GelMA), Pluronic F127 diacrylate (F127DA) & Aldehyded Pluronic F127 (AF127) co-assembled bi-functional micelles and collagen type I (COL I), combined with clinically applied corneal cross-linking (CXL) technology for repairing damaged cornea. The patch formed after 5 min of ultraviolet irradiation possesses transparent, highly tough, and strongly bio-adhesive performance. Multiple cross-linking makes the patch withstand deformation near 600% and exhibit a burst pressure larger than 400 mmHg, significantly higher than normal intraocular pressure (10-21 mmHg). Besides, the slower degradation than GelMA-F127DA&AF127 hydrogel without COL I makes hydrogel patch stable on stromal beds in vivo, supporting the regrowth of corneal epithelium and stroma. The hydrogel patch can replace deep corneal stromal defects and well bio-integrate into the corneal tissue in rabbit models within 4 weeks, showing great potential in surgeries for keratoconus and other corneal diseases by combining with CXL.
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  • 文章类型: Journal Article
    呼吸道合胞病毒(RSV)是全球儿童病毒性细支气管炎的最常见原因,目前还没有针对RSV疾病的疫苗。这项研究调查了在体外和体内存在RSV感染的情况下,立方体和球形氧化铈纳米颗粒(CNP)调节活性氧(ROS)和氮(RNS)物种和免疫细胞表型的潜力。通过水热和超声方法合成了立方体和球形CNP,分别。物理化学表征证实了球形和立方体CNP的形状以及各种参数对其粒度分布和ζ电位的影响。体外结果表明,球形和立方体CNP差异调节J774巨噬细胞中的ROS和RNS水平。具体来说,立方体CNP显着降低RSV诱导的ROS水平而不影响RNS水平,而球体CNP增加RSV诱导的RNS水平,对ROS水平的影响最小。CubeCNP通过增加CD80和CD86的巨噬细胞表面表达并伴随TNFα和IL-12p70的增加,同时降低M2CD206表达,在体外驱动了RSV感染的巨噬细胞的M1表型。在BALB/c小鼠中,鼻内施用球体和立方体-CNP是良好耐受的,没有观察到毒性。值得注意的是,立方CNP优先积累在鼠肺泡巨噬细胞中并诱导其激活,避免其他炎症细胞如嗜中性粒细胞的摄取和活化增强,与RSV介导的炎症相关。总之,我们报道了球形和立方体CNP在RSV感染期间调节巨噬细胞极化和先天细胞反应。
    Respiratory syncytial virus (RSV) is the most common cause of viral bronchiolitis among children worldwide, yet there is no vaccine for RSV disease. This study investigates the potential of cube and sphere-shaped cerium oxide nanoparticles (CNP) to modulate reactive oxygen (ROS) and nitrogen (RNS) species and immune cell phenotypes in the presence of RSV infection in vitro and in vivo. Cube and sphere-shaped CNP were synthesized by hydrothermal and ultrasonication methods, respectively. Physico-chemical characterization confirmed the shape of sphere and cube CNP and effect of various parameters on their particle size distribution and zeta potential. In vitro results revealed that sphere and cube CNP differentially modulated ROS and RNS levels in J774 macrophages. Specifically, cube CNP significantly reduced RSV-induced ROS levels without affecting RNS levels while sphere CNP increased RSV-induced RNS levels with minimal effect on ROS levels. Cube CNP drove an M1 phenotype in RSV-infected macrophages in vitro by increasing macrophage surface expression of CD80 and CD86 with a concomitant increase in TNFα and IL-12p70, while simultaneously decreasing M2 CD206 expression. Intranasal administration of sphere and cube-CNP were well-tolerated with no observed toxicity in BALB/c mice. Notably, cube CNP preferentially accumulated in murine alveolar macrophages and induced their activation, avoiding enhanced uptake and activation of other inflammatory cells such as neutrophils, which are associated with RSV-mediated inflammation. In conclusion, we report that sphere and cube CNP modulate macrophage polarization and innate cellular responses during RSV infection.
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  • 文章类型: Journal Article
    细胞外囊泡(EV)是由发挥重要生物学作用的细胞分泌的纳米级或微米级囊泡的统称。间充质干细胞是一类具有自我修复和多向分化潜能的细胞。近年来,大量研究表明,电动汽车,尤其是那些由间充质干细胞分泌的细胞,能促进各种组织的修复和再生,因此,在再生医学中具有巨大的潜力。然而,由于循环系统的快速清除能力,电动汽车几乎无法在特定部位持续发挥作用,以修复目标组织。水凝胶具有良好的生物相容性和松散和多孔结构特性,使其能够作为电动汽车载体,从而延长在某些特定区域的保留时间并减缓电动汽车的释放。当需要电动汽车在特定地点运行时,EV负载的水凝胶可以作为一种极好的方法。在这次审查中,我们首先介绍来源,角色,以及电动汽车的提取和表征方法,并描述其应用现状。然后,我们回顾了不同类型的水凝胶,并讨论了影响其携带和释放电动汽车能力的因素。我们总结了将EV加载到水凝胶中并表征EV加载水凝胶的几种策略。此外,我们讨论了EV负载水凝胶的应用策略,并回顾了它们在组织再生和修复中的具体应用。本文最后总结了电动汽车水凝胶的研究现状,并对未来的研究方向进行了展望,我们希望这将为研究人员提供有希望的想法。
    Extracellular vesicles (EVs) are a collective term for nanoscale or microscale vesicles secreted by cells that play important biological roles. Mesenchymal stem cells are a class of cells with the potential for self-healing and multidirectional differentiation. In recent years, numerous studies have shown that EVs, especially those secreted by mesenchymal stem cells, can promote the repair and regeneration of various tissues and, thus, have significant potential in regenerative medicine. However, due to the rapid clearance capacity of the circulatory system, EVs are barely able to act persistently at specific sites for repair of target tissues. Hydrogels have good biocompatibility and loose and porous structural properties that allow them to serve as EV carriers, thereby prolonging the retention in certain specific areas and slowing the release of EVs. When EVs are needed to function at specific sites, the EV-loaded hydrogels can stand as an excellent approach. In this review, we first introduce the sources, roles, and extraction and characterization methods of EVs and describe their current application status. We then review the different types of hydrogels and discuss factors influencing their abilities to carry and release EVs. We summarize several strategies for loading EVs into hydrogels and characterizing EV-loaded hydrogels. Furthermore, we discuss application strategies for EV-loaded hydrogels and review their specific applications in tissue regeneration and repair. This article concludes with a summary of the current state of research on EV-loaded hydrogels and an outlook on future research directions, which we hope will provide promising ideas for researchers.
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  • 文章类型: Journal Article
    骨膜素,最初命名为成骨细胞特异性因子2(OSF-2)已被鉴定为主要富含胶原蛋白,生物力学活性组织,其作用与维持细胞外基质(ECM)的机制有关,包括胶原原纤维形成和交联。有据可查,骨膜素在创伤愈合和伤后瘢痕形成中起作用,在某种程度上,通过促进细胞增殖,肌成纤维细胞分化,和/或胶原原纤维形成。鉴于骨膜素在其他瘢痕形成模型中的重要性,我们假设骨膜素将通过调节ECM产生影响跟腱愈合。因此,本研究的目的是使用骨膜素纯合(Postn-/-)和杂合(Postn/-)小鼠模型阐明骨膜素在跟腱愈合过程中的作用。包括第二个实验,以使用完整的背尾肌腱进一步检查骨膜素对胶原蛋白组成和功能的影响。总的来说,Postn-/-和Postn+/-跟腱表现出愈合受损,如伤口闭合延迟所示,增加III型胶原蛋白的产生,细胞增殖减少,和降低抗拉强度。骨膜素消融也降低了抗拉强度和刚度,并改变了完整的背尾肌腱中的胶原纤维分布。跟腱结果支持我们的假设,骨膜素影响愈合,而尾肌腱结果表明骨膜素也影响小鼠肌腱的ECM形态和行为。
    Periostin, originally named osteoblast-specific factor 2 (OSF-2) has been identified primarily in collagen rich, biomechanically active tissues where its role has been implicated in mechanisms to maintain the extracellular matrix (ECM), including collagen fibrillogenesis and crosslinking. It is well documented that periostin plays a role in wound healing and scar formation after injury, in part, by promoting cell proliferation, myofibroblast differentiation, and/or collagen fibrillogenesis. Given the significance of periostin in other scar forming models, we hypothesized that periostin will influence Achilles tendon healing by modulating ECM production. Therefore, the objective of this study was to elucidate the effects of periostin during Achilles tendon healing using periostin homozygous (Postn -/-) and heterozygous (Postn +/-) mouse models. A second experiment was included to further examine the influence of periostin on collagen composition and function using intact dorsal tail tendons. Overall, Postn -/- and Postn +/- Achilles tendons exhibited impaired healing as demonstrated by delayed wound closure, increased type III collagen production, decreased cell proliferation, and reduced tensile strength. Periostin ablation also reduced tensile strength and stiffness, and altered collagen fibril distribution in the intact dorsal tail tendons. Achilles tendon outcomes support our hypothesis that periostin influences healing, while tail tendon results indicate that periostin also affects ECM morphology and behavior in mouse tendons.
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  • 文章类型: Journal Article
    弓形虫是一种常见的人畜共患原生动物病原体,适用于多种生物的许多宿主细胞中的细胞内寄生。我们以前的工作已经确定了18个由寄生虫基因组编码的环核苷酸磷酸二酯酶(PDE)蛋白,其中11在人类细胞中急性感染速殖子阶段的裂解周期中表达。这里,我们发现这些酶中的十种是混杂的双特异性磷酸二酯酶,水解cAMP和cGMP。TgPDE1和TgPDE9,Km为18μM和31μM,分别,准备水解cGMP,而TgPDE2对cAMP具有高度特异性(Km,14μM)。免疫电子显微镜显示TgPDE1,2和9的各种亚细胞分布,包括在内膜复合物中,顶极,质膜,胞质溶胶,致密颗粒,和rhoptry,指示速殖子内信号的空间控制。值得注意的是,尽管共同的顶端位置和双重催化,TgPDE8和TgPDE9对于裂解周期是完全可有可无的,并且不显示功能冗余。相比之下,TgPDE1和TgPDE2是最佳生长所必需的,它们的集体损失对寄生虫来说是致命的。这些突变体的体外表型分析揭示了TgPDE1和TgPDE2在增殖中的作用,滑翔运动,速殖子的入侵和出口。此外,我们的酶抑制试验与化学遗传表型相结合,支持TgPDE1作为常用PDE抑制剂的靶标,BIPPO和zaprinast。最后,我们鉴定了TgPDE1和TgPDE2相互作用激酶和磷酸酶的随从,可能调节酶的活性。总之,我们关于催化功能的数据集,生理相关性,关键磷酸二酯酶的亚细胞定位和药物抑制突出了弓形虫环核苷酸信号的先前未预期的可塑性和治疗潜力。
    Toxoplasma gondii is a common zoonotic protozoan pathogen adapted to intracellular parasitism in many host cells of diverse organisms. Our previous work has identified 18 cyclic nucleotide phosphodiesterase (PDE) proteins encoded by the parasite genome, of which 11 are expressed during the lytic cycle of its acutely-infectious tachyzoite stage in human cells. Here, we show that ten of these enzymes are promiscuous dual-specific phosphodiesterases, hydrolyzing cAMP and cGMP. TgPDE1 and TgPDE9, with a Km of 18 μM and 31 μM, respectively, are primed to hydrolyze cGMP, whereas TgPDE2 is highly specific to cAMP (Km, 14 μM). Immuno-electron microscopy revealed various subcellular distributions of TgPDE1, 2, and 9, including in the inner membrane complex, apical pole, plasma membrane, cytosol, dense granule, and rhoptry, indicating spatial control of signaling within tachyzoites. Notably, despite shared apical location and dual-catalysis, TgPDE8 and TgPDE9 are fully dispensable for the lytic cycle and show no functional redundancy. In contrast, TgPDE1 and TgPDE2 are individually required for optimal growth, and their collective loss is lethal to the parasite. In vitro phenotyping of these mutants revealed the roles of TgPDE1 and TgPDE2 in proliferation, gliding motility, invasion and egress of tachyzoites. Moreover, our enzyme inhibition assays in conjunction with chemogenetic phenotyping underpin TgPDE1 as a target of commonly-used PDE inhibitors, BIPPO and zaprinast. Finally, we identified a retinue of TgPDE1 and TgPDE2-interacting kinases and phosphatases, possibly regulating the enzymatic activity. In conclusion, our datasets on the catalytic function, physiological relevance, subcellular localization and drug inhibition of key phosphodiesterases highlight the previously-unanticipated plasticity and therapeutic potential of cyclic nucleotide signaling in T. gondii.
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  • 文章类型: Journal Article
    紧密连接蛋白(Cldns)定义了跨膜蛋白家族,它们是紧密连接完整性和组织选择性的主要决定因素。它们促进在两个面对的细胞之间的界面处形成屏障或离子选择性通道,穿过细胞旁空间。多个Cldn亚基形成复合物,其包括沿着单个细胞的膜的顺式(细胞内)相互作用和跨相邻细胞的跨(细胞间)相互作用。Cldn组件的第一个描述是通过电子显微镜提供的,而电生理学,诱变和细胞生物学实验解决了不同Cldn同源物的功能作用。然而,Cldn亚基和复合物的分子细节的研究受到缺乏实验天然结构的阻碍,目前仅限于Cldn15。基于计算机的技术的最新实现极大地促进了Cldn属性的阐明。分子动力学模拟和对接计算被广泛用于完善从Cldn15的晶体结构假设的第一个Cldn多聚体模型,并有助于引入新的,另类,安排。虽然发现这两种多聚体组件都可以解释某些家族成员的生理特性,他们为他人提供了相互矛盾的结果。在这次审查中,我们说明了通过使用最先进的计算方法实现的基于Cldn的系统的主要发现。这些结果提供的信息可能有助于改善Cldn特性的表征,并有助于设计新的有效策略来控制药物或其他分子的细胞旁转运。
    Claudins (Cldns) define a family of transmembrane proteins that are the major determinants of the tight junction integrity and tissue selectivity. They promote the formation of either barriers or ion-selective channels at the interface between two facing cells, across the paracellular space. Multiple Cldn subunits form complexes that include cis- (intracellular) interactions along the membrane of a single cell and trans- (intercellular) interactions across adjacent cells. The first description of Cldn assemblies was provided by electron microscopy, while electrophysiology, mutagenesis and cell biology experiments addressed the functional role of different Cldn homologs. However, the investigation of the molecular details of Cldn subunits and complexes are hampered by the lack of experimental native structures, currently limited to Cldn15. The recent implementation of computer-based techniques greatly contributed to the elucidation of Cldn properties. Molecular dynamics simulations and docking calculations were extensively used to refine the first Cldn multimeric model postulated from the crystal structure of Cldn15, and contributed to the introduction of a novel, alternative, arrangement. While both these multimeric assemblies were found to account for the physiological properties of some family members, they gave conflicting results for others. In this review, we illustrate the major findings on Cldn-based systems that were achieved by using state-of-the-art computational methodologies. The information provided by these results could be useful to improve the characterization of the Cldn properties and help the design of new efficient strategies to control the paracellular transport of drugs or other molecules.
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  • 文章类型: Journal Article
    NFL-TBS.40-63肽是最近发现的源自轻神经丝链(NFL)的肽。在这项研究中,我们证明了生物素化-NFL-肽(BIOT-NFL)可以自发地在几种溶液中自我组装成组织良好的纳米纤维(大约5nm宽度和几微米长)。而典型的自组装没有系统地观察到其他肽有或没有偶联。通过表面张力测量在10-4mol/L下确定允许BIOT-NFL-肽聚集和自动缔合的临界聚集浓度。BIOT-NFL-肽的X射线散射也证明了其β-折叠结构,其可以促进参与自组装过程的分子间相互作用。通过透析膜研究检查了自组装BIOT-NFL-肽-纳米纤维的可能分解。我们进一步研究了由BIOT-NFL-肽形成的纳米纤维与金纳米颗粒之间的相互作用。有趣的是,在这些纳米颗粒和BIOT-NFL-肽之间证明了强烈的相互作用,从而形成了被金纳米颗粒隆重装饰的BIOT-NFL-肽-纳米纤维.最后,我们研究了与BIOT-NFL纳米纤维偶联的金纳米颗粒内化到F98大鼠胶质母细胞瘤细胞中,与非偶联对照金纳米颗粒相比增加了。所有这些结果表明该肽可以是用于靶向递送的有希望的治疗剂。
    NFL-TBS.40-63 peptide is a recently discovered peptide derived from the light neurofilament chain (NFL). In this study, we demonstrated that the Biotinylated-NFL-peptide (BIOT-NFL) can spontaneously self-assemble into well-organized nanofibers (approximately 5 nm width and several micrometers in length) in several solutions, whereas the typical self-assembly was not systematically observed from other peptides with or without coupling. The critical aggregation concentration that allows the BIOT-NFL-peptide to aggregate and auto associate was determined at 10-4 mol/L by surface tension measurements. X-ray scattering of BIOT-NFL-peptide also demonstrated its beta-sheet structure that can facilitate the intermolecular interactions involved in the self-assembly process. The possible disassembly of self-assembled BIOT-NFL-peptide-nanofibers was examined via a dialysis membrane study. We further investigated the interaction between nanofibers formed by BIOT-NFL-peptide and gold nanoparticles. Interestingly, a strong interaction was demonstrated between these nanoparticles and BIOT-NFL-peptide resulted in the formation of BIOT-NFL-peptide-nanofibers grandly decorated by gold nanoparticles. Finally, we investigated the internalization of gold nanoparticles coupled with BIOT-NFL-nanofibers into F98 rat glioblastoma cells, which was increased compared to the non-coupled control gold nanoparticles. All these results indicate that this peptide could be a promising therapeutic agent for targeted delivery.
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  • 文章类型: Journal Article
    先前的几项研究表明,NFL-TBS.40-63肽(NFL肽)能够特异性穿透几种胶质母细胞瘤细胞系(大鼠,鼠标,人)并抑制其体外细胞分裂和体内肿瘤发展。当脂质纳米胶囊(LNC)用NFL肽功能化时,它们的吸收在体外和体内都靶向于胶质母细胞瘤细胞。在本研究中,我们通过使用几种显微镜技术(透射电子显微镜,低温电子显微镜,和低温电子层析成像)。我们还使用高效液相色谱(UPLC)技术来评估LNC与肽之间的相互作用。这项工作表明,NFL肽形成稳定的长细丝,沿着这些细丝,脂质纳米胶囊强烈相互作用,形成某种纳米分子手镯。这种由NFL肽和脂质纳米胶囊组成的新结构在大鼠胶质母细胞瘤细胞(F98细胞)中显示出比单独的脂质纳米胶囊更好的内在化。
    Several studies previously showed that the NFL-TBS.40-63 peptide (NFL-peptide) is capable to specifically penetrating several glioblastoma cell lines (rat, mouse, human) and inhibiting their cell division in vitro and their tumor development in vivo. When lipid nanocapsules (LNCs) are functionalized with the NFL-peptide, their absorption is targeted in glioblastoma cells both in vitro and in vivo. In the present study, we investigated the molecular architecture of these nanovectors (LNC-NFL) by using several microscopy techniques (transmission electron microscopy, cryo-electron microscopy, and cryo-electron tomography). We also used high-performance liquid chromatography (UPLC) technique to evaluate the interaction between LNCs and peptides. The work shows that the NFL-peptide forms stable long filaments along which the lipid nanocapsules interact strongly to form some sort of nanomolecular bracelets. This new construction composed of the NFL-peptide and lipid nanocapsules shows a better internalization in rat glioblastoma cells (F98 cells) than lipid nanocapsules alone.
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  • 文章类型: Journal Article
    瞄准,检测,选择性破坏癌细胞或特定细胞器是纳米医学的主要挑战。最近,设想了一种新的方法来合成与具有C末端生物素的肽(BIOT-NFL-肽)结合的金纳米颗粒。这种称为“方法IN”的方法允许BIOT-NFL肽之间的特定相互作用,聚乙二醇二酸(PEG-COOH)和金盐(AuIII)产生称为BIOT-NFL-PEG-AuNP的多功能混合纳米载体。这里,我们表明,可以使用这种策略与其他细胞穿透肽(包括TAT和Vim肽)合成多功能混合纳米载体。对F98大鼠胶质母细胞瘤细胞的离体研究表明,这些新的纳米载体获得了肽的细胞进入功能,金颗粒可以通过电子显微镜观察它们在细胞器中的定位。因此,这些新的多功能纳米载体为癌症领域提供了有希望的可能性,包括肽的细胞穿透特性,金颗粒的细胞器内定位及其可能的热塑性性质,以及PEG的隐身特性。
    Targeting, detecting, and destroying selectively cancer cells or specific organelles is a major challenge of nanomedicine. Recently, a new methodology was conceived to synthesize gold nanoparticles combined with a peptide having a C-terminal biotin (BIOT-NFL-peptide). This methodology called \"Method IN\" allows specific interactions between the BIOT-NFL-peptide, the polyethylene glycol diacid (PEG-COOH) and the gold salt (Au III) to produce multifunctional hybrid nano-carriers called BIOT-NFL-PEG-AuNPs. Here, we show that it is possible to use this strategy to synthesize multifunctional hybrid nano-carriers with other cell-penetrating peptides including TAT and Vim-peptides. Ex-vivo studies on F98 rat glioblastoma cells show that these new nanovectors acquire the cellular entry function of peptides and the gold particles make it possible to visualize by electron microscopy their localization in organelles. Thus, these new multifunctional nanovectors offer promising possibilities for the theranostic field, including the cell-penetrating property of the peptide, the intra-organelle localization of gold particles and their possible thermoplasmonic properties, as well as the stealth property of PEG.
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