quantum dots

量子点
  • 文章类型: Journal Article
    自从纳米科学和纳米技术开始以来,碳点(CD)一直是基本的想法,并主导了纳米领域的增长。CD是生物学应用的一个有趣的平台,技术,催化作用,和其他领域由于其众多独特的结构,物理化学,和光化学特性。由于已经产生了几个碳点,他们已经根据他们的合成过程进行了评估,和发光特性。由于它们的生物相容性,毒性作用较小,与其他碳纳米结构相比,它们的荧光特征最为显著,CD有几个好处。这篇综述集中在表征的最新进展,应用程序,以及用于天然来源的CD的合成技术。它还将指导科学家创造一种更实用的可调节碳点合成技术,有效,和环境良性。具有低毒性和低成本,CD满足了新时代对各种事物的检测和传感中更多选择性和灵敏度的要求,如生物材料传感,酶,化学污染,和温度传感。它的各种属性,如光学性质,化学发光,和形态学分析,使其成为生物成像的好选择,药物输送,生物传感器,和癌症诊断。
    Since the beginning of nanoscience and nanotechnology, carbon dots (CDs) have been the foundational idea and have dominated the growth of the nano-field. CDs are an intriguing platform for utilization in biology, technology, catalysis, and other fields thanks to their numerous distinctive structural, physicochemical, and photochemical characteristics. Since several carbon dots have already been created, they have been assessed based on their synthesis process, and luminescence characteristics. Due to their biocompatibility, less toxic effects, and most significantly their fluorescent features in contrast to other carbon nanostructures, CDs have several benefits. This review focuses on the most recent advancements in the characterization, applications, and synthesis techniques used for CDs made from natural sources. It will also direct scientists in the creation of a synthesis technique for adjustable carbon dots that is more practical, effective, and environmentally benign. With low toxicity and low cost, CDs are meeting the new era\'s requirements for more selectivity and sensitivity in the detection and sensing of various things, such as biomaterial sensing, enzymes, chemical contamination, and temperature sensing. Its variety of properties, such as optical properties, chemiluminescence, and morphological analysis, make it a good option to use in bioimaging, drug delivery, biosensors, and cancer diagnosis.
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  • 文章类型: Journal Article
    量子点(QDs)具有特殊的物理化学和生物学特性,使它们在癌症治疗中具有广泛的应用。量子点的关键特征之一是其独特的电子结构,这给了他们功能属性。值得注意的是,它们的光致发光可以是强大和可调的,允许它们有效地用于基于荧光的诊断,如生物传感和生物成像。此外,量子点展示了令人印象深刻的装载货物的能力,使他们理想的药物输送应用。此外,它们吸收入射辐射的能力使量子点成为光动力疗法等癌症杀伤技术的有希望的候选者。本全面综述的目的是对利用量子点作为多功能和创新生物材料的最新进展进行当前和全面的概述。这篇综述的重点是阐明生物,电子,和量子点的物理化学性质,同时讨论了量子点合成的技术进步。此外,它彻底探索了在利用量子点进行基于生物传感的诊断方面取得的进展,生物成像,和治疗应用,包括药物递送和坏死,突出了他们在癌症治疗领域的巨大潜力。此外,该综述解决了目前与QD在癌症治疗中相关的局限性,并提供了对未来方向的宝贵见解,从而促进该领域的进一步发展。通过全面和结构良好的概述,这篇综述是一个权威和信息丰富的资源,可以指导未来的研究工作,并促进QD在癌症治疗领域的持续进展。 .
    Quantum dots (QDs) are with exceptional physicochemical and biological properties, making them highly versatile for a wide range of applications in cancer therapy. One of the key features of QDs is their unique electronic structure, which gives them functional attributes. Notably, their photoluminescence can be strong and adjustable, allowing them to be effectively used in fluorescence based diagnosis such as biosensing and bioimaging. In addition, QDs demonstrate an impressive capacity for loading cargo, making them ideal for drug delivery applications. Moreover, their ability to absorb incident radiation positions QDs as promising candidates for cancer-killing techniques like photodynamic therapy. The objective of this comprehensive review is to present a current and comprehensive overview of the recent advancements in utilizing QDs as multifunctional and innovative biomaterials. This review focuses on elucidating the biological, electronic, and physicochemical properties of QDs, along with discussing the technical advancements in QD synthesis. Furthermore, it thoroughly explores the progress made in utilizing QDs for diagnosis based on biosensing, bioimaging, and therapy applications including drug delivery and necrosis, highlighting their significant potential in the field of cancer treatment. Furthermore, the review addresses the current limitations associated with QDs in cancer therapy and provides valuable insights into future directions, thereby facilitating further advancements in this field. By presenting a comprehensive and well-structured overview, this review serves as an authoritative and informative resource that can guide future research endeavors and foster continued progress in the field of QDs for cancer therapy.
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  • 文章类型: Journal Article
    当前范围审查的目标是概述现有应用程序,最近的突破,和量子点在口腔鳞状细胞癌成像中的适用性。量子点是纳米半导体晶体,具有可定制的光学特性和强烈的,稳定的荧光适合生物成像和标记。我们使用首选报告项目进行系统评价和荟萃分析(PRISMA)建议,以进行我们的系统搜索。本研究分析了量子点在口腔鳞状细胞癌非侵入性检测中的特性和应用。全面探索现有证据。在PubMed数据库中进行搜索后,OvidSP,和Cochrane使用搜索词量子点和口腔鳞状细胞癌,本综述选择了55种已出版的出版物。审查确定了总共八篇符合标准的论文。在口腔鳞状细胞癌的非侵入性检测中,量子点具有提供一系列治疗和诊断应用的潜力。此外,量子点发射近红外和可见光,这在生物成像中是有利的,因为它减少了组织的光色散和吸收。未来可能会看到量子点成为一种流行的口腔鳞状细胞癌的非侵入性成像技术。可获得的研究数量相当有限,需要进一步的研究。
    UNASSIGNED: The current scoping review\'s objective was to outline existing applications, recent breakthroughs, and quantum dots\' applicability in imaging of oral squamous cell cancer. Quantum dots are nanometric semiconductor crystals with customizable optical characteristics and intense, stable fluorescence suited for bioimaging and labeling. We used the Preferred reporting items for systematic reviews and meta-analyses (PRISMA) recommendations for conducting our systematic search. An analysis of the properties and applications of quantum dots in noninvasive detection of oral squamous cell cancer is presented in this study, which comprehensively explores the available evidence. Following searches in the databases PubMed, Ovid SP, and Cochrane using the search terms quantum dots AND oral squamous cell cancer, 55 published publications were chosen for this review. The review identified a total of eight papers that met the criteria. In noninvasive detection of oral squamous cell carcinoma, quantum dots have the potential to offer an array of therapeutic and diagnostic applications. Furthermore, quantum dots emit near-infrared and visible light, which is advantageous in biological imaging since it reduces light dispersion and absorption of tissue. The future may see quantum dots become a popular noninvasive imaging technique for oral squamous cell cancer. The number of studies accessible is quite limited, and further research is required.
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  • 文章类型: Journal Article
    碳点(CD),包括碳量子点,石墨烯量子点,碳纳米点,和聚合物点,由于其独特的结构和荧光特性而获得了广泛的关注。这篇综述全面概述了分类,结构特征,和CD的荧光特性,随后探索了各种荧光传感机制及其在基因检测中的应用,核仁成像,和基因传递。此外,CD与不同的表面配体分子的官能化,包括染料分子,核酸探针,和金属衍生物,对于灵敏的核酸检测进行了系统检查。细胞核仁的荧光成像在检查细胞内过程和亚细胞结构的动力学中起着至关重要的作用。通过分析CD固有的荧光机理和结构-功能关系,已经讨论了CD在各种细胞系中的核仁靶向能力。此外,还强调了诸如CD的细胞器特异性不足和核仁靶向机制不一致等挑战。CD独特的物理和化学性质,特别是它们对脱氧核糖核酸(DNA)的强烈亲和力,激发了人们对基因递送应用的兴趣。核靶向肽的用途,聚合物,和配体与CD结合用于改进基因递送应用的系统综述。通过综合分析,本综述旨在有助于更深入地了解CD在生物医学应用中的潜力和挑战.
    Carbon dots (CDs), including carbon quantum dots, graphene quantum dots, carbon nanodots, and polymer dots, have gained significant attention due to their unique structural and fluorescence characteristics. This review provides a comprehensive overview of the classification, structural characteristics, and fluorescence properties of CDs, followed by an exploration of various fluorescence sensing mechanisms and their applications in gene detection, nucleolus imaging, and gene delivery. Furthermore, the functionalization of CDs with diverse surface ligand molecules, including dye molecules, nucleic acid probes, and metal derivatives, for sensitive nucleic acid detection is systematically examined. Fluorescence imaging of the cell nucleolus plays a vital role in examining intracellular processes and the dynamics of subcellular structures. By analyzing the mechanism of fluorescence and structure-function relationships inherent in CDs, the nucleolus targeting abilities of CDs in various cell lines have been discussed. Additionally, challenges such as the insufficient organelle specificity of CDs and the inconsistent mechanisms underlying nucleolus targeting have also been highlighted. The unique physical and chemical properties of CDs, particularly their strong affinity toward deoxyribonucleic acid (DNA), have spurred interest in gene delivery applications. The use of nuclear-targeting peptides, polymers, and ligands in conjunction with CDs for improved gene delivery applications have been systematically reviewed. Through a comprehensive analysis, the review aims to contribute to a deeper understanding of the potential and challenges associated with CDs in biomedical applications.
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  • 文章类型: Journal Article
    碳点(CD)是准球形碳纳米颗粒,具有优异的光致发光,良好的生物相容性,良好的光稳定性,和易于修改的表面。CD,作为荧光探针,由于其出色的发光性能和可调的表面特性,已成为细胞分化的理想工具。在这次审查中,本文综述了近年来CDs在癌/正常细胞分化中的研究进展,革兰氏阳性/革兰氏阴性细菌,和活/死细胞,以及用于分化的细胞差异。此外,我们总结了制备方法,原材料,以及用于细胞识别的CD的特性。还介绍了分化机制和分化方法的优点或局限性。最后,我们提出了该领域的几个研究挑战和未来需要广泛调查的研究方向。希望这篇综述将有助于研究人员设计新型CD作为实现多种细胞分化应用的理想荧光探针。
    Carbon dots (CDs) are quasi-spherical carbon nanoparticles with excellent photoluminescence, good biocompatibility, favorable photostability, and easily modifiable surfaces. CDs, serving as fluorescent probes, have emerged as an ideal tool for cellular differentiation owing to their outstanding luminescence performance and tunable surface properties. In this review, we summarize the recent research progress with CDs in the differentiation of cancer/normal cells, Gram-positive/Gram-negative bacteria, and live/dead cells, as well as the cellular differences used for differentiation. Additionally, we summarize the preparation methods, raw materials, and properties of the CDs used for cell discrimination. The differentiation mechanisms and the advantages or limitations of the differentiation methods are also introduced. Finally, we propose several research challenges in this field and future research directions that require extensive investigation. It is hoped that this review will help researchers in the design of new CDs as ideal fluorescent probes for realizing diverse cell differentiation applications.
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  • 文章类型: Journal Article
    一种新型的0维碳基材料,称为石墨烯量子点(GQDs),作为一种无毒且环保的纳米材料,正在受到广泛关注。GQDs是由sp2杂化的碳结构域和官能团组成的纳米材料,其横向尺寸小于10纳米。独特而特殊的身体,化学,由于其纳米尺寸,石墨烯结构和量子限制效应的结合所产生的光学特性使GQD比其他纳米材料更吸引人。特别是,由碳核和丰富的边缘官能团衍生的低毒性和高溶解性为GQDs在生物医学领域的应用提供了显著的优势。在这次审查中,我们总结了制备GQDs的各种合成方法和影响物理的重要因素,化学,光学,和GQDs的生物学特性。此外,GQDs在生物医学领域的最新应用,包括生物传感器,生物成像,药物输送,讨论了治疗方法。通过这个,我们简要介绍了GQDs在生物医学应用中的巨大潜力以及未来需要克服的挑战。
    A new type of 0-dimensional carbon-based materials called graphene quantum dots (GQDs) is gaining significant attention as a non-toxic and eco-friendly nanomaterial. GQDs are nanomaterials composed of sp2hybridized carbon domains and functional groups, with their lateral size less than 10 nm. The unique and exceptional physical, chemical, and optical properties arising from the combination of graphene structure and quantum confinement effect due to their nano-size make GQDs more intriguing than other nanomaterials. Particularly, the low toxicity and high solubility derived from the carbon core and abundant edge functional groups offer significant advantages for the application of GQDs in the biomedical field. In this review, we summarize various synthetic methods for preparing GQDs and important factors influencing the physical, chemical, optical, and biological properties of GQDs. Furthermore, the recent application of GQDs in the biomedical field, including biosensor, bioimaging, drug delivery, and therapeutics are discussed. Through this, we provide a brief insight on the tremendous potential of GQDs in biomedical applications and the challenges that need to be overcome in the future.
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  • 文章类型: Journal Article
    新鲜农产品由于其易腐性质而在收获后变质并变质。质量随着时间的推移而恶化已成为食品工业的主要问题,给经济和农业带来不适当的负担。食品科学家已经开发了各种方法和技术来防止水果和蔬菜在储存和物流过程中变质。以活性包装和涂层的形式利用碳量子点(CQD)是最近流行的策略。CQD作为可持续和功能性纳米材料最近引起了人们的关注。CQDs由于其简单而经济的合成而在食品科学家中很受欢迎,可持续性无毒性,生物相容性,可食性,防紫外线,以及抗菌和抗氧化活性。尽管已经对CQDs在柔性活性包装材料制造中的应用进行了许多研究和综述,相对较少的研究研究了CQDs在新鲜农产品的可食用包衣配方中的应用。其主要原因是担心如果将CQDs直接涂覆在新鲜农产品上,则CQDs的潜在毒性和可食性。因此,这篇综述旨在通过从食品包装的角度研究可持续CQDs的剂量依赖性无毒性和生物相容性以及其他重要特性来解决这些问题.此外,这篇综述的重点是迄今为止在新鲜和鲜切水果和蔬菜上直接涂覆基于CQD的配方的研究,并讨论了CQD对涂覆农产品质量的重要影响。这篇综述旨在为食品包装研究人员提供在食品直接涂层配方中利用可持续CQD的信心和前景。
    Fresh produce deteriorates and spoils after harvest due to its perishable nature. Deterioration in quality over time has become a major problem for the food industry, placing an undue burden on the economy and agriculture. Food scientists have developed various methods and technologies to prevent spoilage of fruits and vegetables during storage and logistics. Utilizing carbon quantum dots (CQDs) in the form of active packaging and coatings has been a popular strategy recently. CQDs have recently attracted attention as sustainable and functional nanomaterials. CQDs are popular among food scientists due to their easy and economical synthesis, sustainability, non-toxicity, biocompatibility, edibility, UV protection, and antibacterial and antioxidant activities. Although many studies have been conducted and reviewed on the utilization of CQDs in the manufacture of flexible active packaging materials, relatively few studies have investigated the use of CQDs in edible coating formulations for fresh produce. The main reasons for this are concerns about the potential toxicity and edibility of CQDs if they are coated directly on fresh produce. Therefore, this review aims to address these issues by investigating the dose-dependent non-toxicity and biocompatibility of sustainable CQDs along with other important properties from a food packaging perspective. Additionally, this review focuses on the studies performed so far on the direct coating of CQD-based formulations on fresh and fresh-cut fruits and vegetables and discusses the important impact of CQDs on the quality of coated agricultural products. This review is intended to provide food packaging researchers with confidence and prospects for utilizing sustainable CQDs in direct coating formulations for food.
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  • 文章类型: Journal Article
    荧光量子点(FL量子点)的利用在抗生素检测领域获得了显著的牵引力,由于其特殊的FL性能和多功能性。各种类型的QD已被定制以表现出优异的FL特性,采用不同的封端剂,如金属,表面活性剂,聚合物,和生物质来保护和稳定它们的表面。在他们的进化中,FLQD已经证明了响应分析物存在的“关闭”和“打开”机制,为生物传感应用提供了有希望的途径。这篇综述文章全面概述了利用FLQDs作为生物传感器进行抗生素检测的最新进展。它包括对不同类型的FLQD的广泛检查,包括碳,金属,和核壳量子点,部署用于检测抗生素。此外,阐明了用于制造各种FLQD的合成方法,阐明在准备工作中采用的各种方法。此外,这篇综述探讨了基于FLQDs的抗生素检测的复杂传感机制。各种机制,如光诱导电子转移,电子转移,电荷转移,福斯特共振能量转移,静态淬火,动态淬火,内部过滤效果,氢键,和聚集诱导的排放,详细讨论。这些机制为使用FLQD检测抗生素提供了强有力的科学依据,展示了他们的敏感和选择性传感应用的潜力。最后,该综述解决了当前的挑战,并提出了未来FLQD在传感应用中的改进观点。提供了克服现有限制和利用新兴技术的见解,为基于FLQDs的生物传感平台在抗生素检测领域的持续发展制定了路线。
    The utilization of fluorescent quantum dots (FL QDs) has gained significant traction in the realm of antibiotic detection, owing to their exceptional FL properties and versatility. Various types of QDs have been tailored to exhibit superior FL characteristics, employing diverse capping agents such as metals, surfactants, polymers, and biomass to protect and stabilize their surfaces. In their evolution, FL QDs have demonstrated both \"turn-off\" and \"turn-on\" mechanisms in response to the presence of analytes, offering promising avenues for biosensing applications. This review article provides a comprehensive overview of the recent advancements in antibiotic detection utilizing FL QDs as biosensors. It encompasses an extensive examination of different types of FL QDs, including carbon, metal, and core-shell QDs, deployed for the detection of antibiotics. Furthermore, the synthesis methods employed for the fabrication of various FL QDs are elucidated, shedding light on the diverse approaches adopted in their preparation. Moreover, this review delves into the intricate sensing mechanisms underlying FL QDs-based antibiotic detection. Various mechanisms, such as photoinduced electron transfer, electron transfer, charge transfer, Forster resonance energy transfer, static quenching, dynamic quenching, inner filter effect, hydrogen bonding, and aggregation-induced emission, are discussed in detail. These mechanisms provide a robust scientific rationale for the detection of antibiotics using FL QDs, showcasing their potential for sensitive and selective sensing applications. Finally, the review addresses current challenges and offers perspectives on the future improvement of FL QDs in sensing applications. Insights into overcoming existing limitations and harnessing emerging technologies are provided, charting a course for the continued advancement of FL QDs-based biosensing platforms in the field of antibiotic detection.
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  • 文章类型: Journal Article
    阿尔茨海默病(AD),一种以认知能力下降为特征的神经退行性疾病,在全球范围内构成了重大的医疗保健挑战。淀粉样β(Aβ)斑块和过度磷酸化tau蛋白的积累驱动神经元变性和神经炎症,延续疾病进展。尽管在理解细胞和分子机制方面取得了进展,治疗障碍仍然存在,强调创新干预策略的必要性。量子点(QDs)作为具有独特光物理性质的纳米技术工具出现,提供优于传统成像方式的优势。本系统综述试图通过综合临床前和临床证据来阐明QDs在AD中的治疗潜力。对电子数据库的全面搜索产生了20项符合条件的研究,调查了这种诊断,治疗性的,或各种量子点在AD中的联合治疗应用。这些发现揭示了量子点的不同作用,包括抑制Aβ和tau聚集,调节淀粉样蛋白生成途径,恢复膜的流动性,并能够同时检测AD生物标志物。该综述强调了量子点靶向多种病理标志的潜力,通过血脑屏障提供治疗有效载荷,并促进实时成像和高通量筛查。虽然有希望,生物相容性等挑战,表面改性,和临床翻译需要进一步调查。这篇系统综述提供了AD中QDs的治疗潜力的全面综合,为转化研究和临床实施铺平了道路。
    Alzheimer\'s disease (AD), a neurodegenerative disorder characterized by cognitive decline, poses a significant healthcare challenge worldwide. The accumulation of amyloid-beta (Aβ) plaques and hyperphosphorylated tau protein drives neuronal degeneration and neuroinflammation, perpetuating disease progression. Despite advancements in understanding the cellular and molecular mechanisms, treatment hurdles persist, emphasizing the need for innovative intervention strategies. Quantum dots (QDs) emerge as promising nanotechnological tools with unique photo-physical properties, offering advantages over conventional imaging modalities. This systematic review endeavors to elucidate the theranostic potential of QDs in AD by synthesizing preclinical and clinical evidence. A comprehensive search across electronic databases yielded 20 eligible studies investigating the diagnostic, therapeutic, or combined theranostic applications of various QDs in AD. The findings unveil the diverse roles of QDs, including inhibiting Aβ and tau aggregation, modulating amyloidogenesis pathways, restoring membrane fluidity, and enabling simultaneous detection of AD biomarkers. The review highlights the potential of QDs in targeting multiple pathological hallmarks, delivering therapeutic payloads across the blood-brain barrier, and facilitating real-time imaging and high-throughput screening. While promising, challenges such as biocompatibility, surface modifications, and clinical translation warrant further investigation. This systematic review provides a comprehensive synthesis of the theranostic potential of QDs in AD, paving the way for translational research and clinical implementation.
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  • 文章类型: Journal Article
    早期疾病检测至关重要,因为它提高了治疗的可能性并大大降低了治疗成本。因此,人类生活和健康的改善有赖于快速发展,高效,和可靠的生物传感方法。为了提高生物传感器的质量,已经研究了不同的纳米结构;其中,碳点因其出色的性能而获得了极大的兴趣。碳点,荧光纳米粒子的重要组成部分,具有突出的化学特性,极好的生物相容性,化学惰性,低毒性和潜在的光学特性吸引了来自全球各个角落的研究人员。近十年来,已经对几种碳点应用进行了彻底的研究,从光电子学到生物医学研究。这篇综述研究主要强调了生物质衍生碳点药物递送领域的最新进展,基因传递和生物成像,并强调了两个主要领域的成就:涉及斑马鱼和小鼠体内碳点吸收的体内应用,肿瘤治疗,和成像引导的药物输送。此外,可能的优势,困难,还探索了将碳点用于生物应用的未来可能性。
    Early disease detection is crucial since it raises the likelihood of treatment and considerably lowers the cost of therapy. Therefore, the improvement of human life and health depends on the development of quick, efficient, and credible biosensing methods. For improving the quality of biosensors, distinct nanostructures have been investigated; among these, carbon dots have gained much interest because of their great performance. Carbon dots, the essential component of fluorescence nanoparticles, having outstanding chemical characteristics, superb biocompatibility, chemical inertness, low toxicity and potential optical characteristics have attracted the researchers from every corner of the globe. Several carbon dots applications have been thoroughly investigated in recent decade, from optoelectronics to biomedical investigations. This review study primarily emphasizes the recent advancements in the field of biomass-derived carbon dots-based drug delivery, gene delivery and bioimaging, and highlights achievements in two major areas: in vivo applications that involve carbon dots absorption in zebrafish and mice, tumour therapeutics, and imaging-guided drug delivery. Additionally, the possible advantages, difficulties, and future possibilities of using carbon dots for biological applications are also explored.
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