Ti3C2TX-MXene

  • 文章类型: Journal Article
    在医疗保健领域和医学科学的发展领域,高效药物递送系统的发展成为治愈多种疾病的巨大希望。尽管药物递送系统取得了相当大的进步,许多挑战依然存在,需要进一步增强以优化患者结果。智能纳米载体,例如,2D片纳米载体是最近出现的纳米片,可能会引起生物活性化合物靶向递送的关注,毒品,和杀死癌细胞的基因。在这些进步中,Ti3C2TX-MXene,特征为二维过渡金属碳化物,已经成为纳米医学中突出的智能纳米载体。其值得注意的特性使其成为癌症治疗的理想纳米载体。在药物递送研究的最新进展中,Ti3C2TX-MXene2D纳米载体被设计用于响应特定刺激释放药物,以不同的物理化学参数为指导。这篇综述强调了Ti3C2TX-MXene作为向癌细胞递送亲水性差的药物的潜在载体的多方面作用。通过各种聚合物涂层促进。此外,除了药物输送,这种智能纳米载体在光声成像和光热治疗中具有实用性,进一步强调其在细胞机制中的重要作用。
    In the realm of healthcare and the advancing field of medical sciences, the development of efficient drug delivery systems become an immense promise to cure several diseases. Despite considerable advancements in drug delivery systems, numerous challenges persist, necessitating further enhancements to optimize patient outcomes. Smart nano-carriers, for instance, 2D sheets nano-carriers are the recently emerging nanosheets that may garner attention for targeted delivery of bioactive compounds, drugs, and genes to kill cancer cells. Within these advancements, Ti3C2TX-MXene, characterized as a two-dimensional transition metal carbide, has surfaced as a prominent intelligent nanocarrier within nanomedicine. Its noteworthy characteristics facilitated it as an ideal nanocarrier for cancer therapy. In recent advancements in drug delivery research, Ti3C2TX-MXene 2D nanocarriers have been designed to release drugs in response to specific stimuli, guided by distinct physicochemical  parameters. This review emphasized the multifaceted role of Ti3C2TX-MXene as a potential carrier for delivering poorly hydrophilic drugs to cancer cells, facilitated by various polymer coatings. Furthermore, beyond drug delivery, this smart nanocarrier demonstrates utility in photoacoustic imaging and photothermal therapy, further highlighting its significant role in cellular mechanisms.
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  • 文章类型: Journal Article
    在这项工作中,通过合成MXene并在柔性电纺PVDF纳米纤维顶部沉积聚吡咯来制造复合应变传感器。所制造的传感器显示出由微裂纹网络结构的MXene和聚吡咯构成的导电网络,展示了其应变传感特性。这些微裂纹的存在是机械弱点,这导致灵敏度增强,而电纺纤维基材在大变形下充当应变载荷的缓冲垫。制备的MXene@聚吡咯PVDF传感器具有78-355的应变系数范围,传感范围在0-100%之间。除了应变变形,传感器可以在扭转变形和人体运动中运行,指示传感器作为可穿戴健康监测设备的潜力。
    In this work, a composite strain sensor is fabricated by synthesizing MXene and deposition of polypyrrole on top of the flexible electrospun PVDF nanofibers. The fabricated sensor exhibits a conductive network constructed with MXene and polypyrrole of microcracks network structure, demonstrating its strain sensing properties. The presence of these microcracks serves as mechanical weak points, which leads to sensitivity enhancement, while the electrospun fiber substrate act as a cushion for strain loading under large deformations. The as-prepared MXene@Polypyrrole PVDF sensor has a gauge factor range of 78-355 with a sensing range between 0-100%. Besides strain deformations, the sensor can operate in torsional deformation and human motion, indicating the sensor\'s potential as a wearable health monitoring device.
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  • 文章类型: Journal Article
    细胞角蛋白片段抗原21-1(CYFRA21-1)的浓度水平可作为预测非小细胞肺癌(NSCLC)的重要指标。这里,研制了一种超灵敏检测CYFRA21-1的夹心型电化学免疫传感器。基于金纳米粒子(AuNP)修饰的Ti3C2Tx-MXene(Au-Ti3C2Tx)组合的传感器作为底物增强剂,和甲苯胺蓝(TB)修饰的AuNP掺杂共价有机骨架(COF)聚合物作为信号标签(TB-Au-COF)。Au-Ti3C2Tx用于捕获许多一级抗体并加速底物的电子转移速率,而TB-Au-COF可用于提供大量信号单位TB和二级抗体。复合材料的这些特征赋予了所提出的免疫传感器对CYFRA21-1的高灵敏度和电流响应。在最佳条件下,免疫传感器为CYFRA21-1提供了0.5-1.0×104pg·mL-1的宽电流响应,检出限为0.1pg·mL-1。此外,该生物传感平台可用于CYFRA21-1检测,分析真实血清样本,为Au-Ti3C2Tx和TB-Au-COF复合材料在生物传感领域的应用提供了有效的途径。
    The concentration level of cytokeratin fragment antigen 21-1 (CYFRA21-1) can be used as an important indicator for predicting non-small cell lung cancer (NSCLC). Here, a sandwich-type electrochemical immunosensor for ultrasensitive detection of CYFRA21-1 is developed. The sensor based on a combination of gold nanoparticle (AuNPs) decorated Ti3C2Tx-MXene (Au-Ti3C2Tx) as the substrate enhancer, and toluidine blue (TB) modified AuNPs doped covalent organic framework (COF) polymer as the signal tag (TB-Au-COF). The Au-Ti3C2Tx is used to capture numerous primary antibodies and accelerate the electron transfer rate of the substrate, while the TB-Au-COF can be applied to provide a large number of signal units TB and secondary antibodies. These features of composites endow the proposed immunosensor with high sensitivity and current response to CYFRA21-1. Under optimum conditions, the immunosensor offers a wide current response for CYFRA21-1 from 0.5-1.0 × 104 pg·mL-1 with a detection limit of 0.1 pg·mL-1. Furthermore, the biosensing platform can be applied for CYFRA21-1 detection to analyze real serum samples, providing an effective and useful avenue for the applicability of Au-Ti3C2Tx and TB-Au-COF composite materials in biosensing field.
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