Ce6, chlorin e6

Ce6 , 三氯环己烷 e6
  • 文章类型: Journal Article
    如今,传染病作为全球危机持续存在,对世界各国的公共卫生和经济稳定造成重大破坏。尤其是由于多药耐药性(MDR)的流行和出现以及现有治疗选择的局限性,细菌感染仍然是最严重的问题。抗菌光动力疗法(APDT)是一种潜在的治疗方式,涉及光敏剂(PS)的系统给药,光,和分子氧(O2)用于应对细菌感染。尽管现有的卟啉和非卟啉PS在APDT中有效,溶解性差,对革兰氏阴性细菌的疗效有限,和非特异性分布阻碍了它们的临床应用。因此,为了提高传统PS的效率,各种聚合物驱动的改性和功能化策略已被采用来设计多功能混合光疗。这篇综述评估了为APDT应用开发的聚合物-PSs混合材料的最新进展和最新研究。Further,以下方面的关键研究成果被认为是深入的建设性讨论:i)通过各种分子相互作用的PSs集成/功能化聚合物复合材料;ii)PSs沉积在不同基材和设备上的涂层,以消除与医疗保健相关的感染;iii)PSs嵌入膜,脚手架,和用于再生医学应用的水凝胶。
    Nowadays, infectious diseases persist as a global crisis by causing significant destruction to public health and the economic stability of countries worldwide. Especially bacterial infections remain a most severe concern due to the prevalence and emergence of multi-drug resistance (MDR) and limitations with existing therapeutic options. Antibacterial photodynamic therapy (APDT) is a potential therapeutic modality that involves the systematic administration of photosensitizers (PSs), light, and molecular oxygen (O2) for coping with bacterial infections. Although the existing porphyrin and non-porphyrin PSs were effective in APDT, the poor solubility, limited efficacy against Gram-negative bacteria, and non-specific distribution hinder their clinical applications. Accordingly, to promote the efficiency of conventional PSs, various polymer-driven modification and functionalization strategies have been adopted to engineer multifunctional hybrid phototherapeutics. This review assesses recent advancements and state-of-the-art research in polymer-PSs hybrid materials developed for APDT applications. Further, the key research findings of the following aspects are considered in-depth with constructive discussions: i) PSs-integrated/functionalized polymeric composites through various molecular interactions; ii) PSs-deposited coatings on different substrates and devices to eliminate healthcare-associated infections; and iii) PSs-embedded films, scaffolds, and hydrogels for regenerative medicine applications.
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  • 文章类型: Journal Article
    化疗和免疫疗法的结合通过引发免疫原性细胞死亡(ICD)来激发强大的免疫系统,在抑制肿瘤生长和改善免疫抑制肿瘤微环境(ITM)方面显示出巨大的潜力。然而,低劣的药物生物利用度限制了治疗效果。在这里,我们报道了一种通用的生物响应性阿霉素(DOX)基纳米凝胶,可实现肿瘤特异性药物共递送。设计并选择基于DOX的甘露糖纳米凝胶(DMNG)作为示例,以阐明联合化学免疫疗法的机制。不出所料,DMNG表现出显著的胶束稳定性,选择性药物释放和延长生存时间,受益于增强肿瘤通透性和延长血液循环。我们发现由DMNG递送的DOX可以通过促进ICD来诱导强大的抗肿瘤免疫应答。同时,从DMNGs释放的甘露糖被证明在体外和体内对乳腺癌具有强大的协同治疗作用,通过破坏糖酵解和三羧酸循环中的葡萄糖代谢。总的来说,基于DOX的纳米凝胶对肿瘤微环境的调节有望成为一种有效的候选策略,以克服基于ICD的免疫治疗的当前局限性。为免疫调节纳米药物的开发提供了范例。
    The combination of chemotherapy and immunotherapy motivates a potent immune system by triggering immunogenic cell death (ICD), showing great potential in inhibiting tumor growth and improving the immunosuppressive tumor microenvironment (ITM). However, the therapeutic effectiveness has been restricted by inferior drug bioavailability. Herein, we reported a universal bioresponsive doxorubicin (DOX)-based nanogel to achieve tumor-specific co-delivery of drugs. DOX-based mannose nanogels (DM NGs) was designed and choosed as an example to elucidate the mechanism of combined chemo-immunotherapy. As expected, the DM NGs exhibited prominent micellar stability, selective drug release and prolonged survival time, benefited from the enhanced tumor permeability and prolonged blood circulation. We discovered that the DOX delivered by DM NGs could induce powerful anti-tumor immune response facilitated by promoting ICD. Meanwhile, the released mannose from DM NGs was proved as a powerful and synergetic treatment for breast cancer in vitro and in vivo, via damaging the glucose metabolism in glycolysis and the tricarboxylic acid cycle. Overall, the regulation of tumor microenvironment with DOX-based nanogel is expected to be an effectual candidate strategy to overcome the current limitations of ICD-based immunotherapy, offering a paradigm for the exploitation of immunomodulatory nanomedicines.
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  • 文章类型: Journal Article
    癌症治疗的主要挑战是如何有效消除原发性肿瘤并充分诱导免疫原性细胞死亡(ICD)以激发强大的免疫反应来控制转移。这里,开发了一种自组装的级联生物反应器,以增强肿瘤渗透和饥饿的协同治疗来改善癌症治疗,化学动力学(CDT)和光热疗法。以葡萄糖氧化酶(GOx)为模板合成超小FeS-GOx纳米点,紫杉醇(PTX)通过疏水作用诱导形成自组装FeS-GOx@PTX(FGP)。在肿瘤部位积累后,FGP分解为较小的FeS-GOx,以增强肿瘤的深层渗透。GOx维持高的酶活性以在氧的辅助下催化葡萄糖以产生过氧化氢(H2O2)作为饥饿疗法。涉及再生H2O2的Fenton反应进而产生更多的羟基自由基以增强CDT。跟随808nm的近红外激光,通过联合治疗,FGP在体外和体内显示出显著的肿瘤抑制。随之而来的钙网织蛋白暴露增加了ICD并促进了树突状细胞的成熟。结合抗CTLA4检查点封锁,由于细胞毒性T淋巴细胞的肿瘤内浸润增强,FGP可以绝对消除原发性肿瘤并积极抑制远处肿瘤。我们的工作提出了一种有希望的原发性肿瘤和转移抑制策略。
    Major challenges for cancer treatment are how to effectively eliminate primary tumor and sufficiently induce immunogenic cell death (ICD) to provoke a robust immune response for metastasis control. Here, a self-assembled cascade bioreactor was developed to improve cancer treatment with enhanced tumor penetration and synergistic therapy of starvation, chemodynamic (CDT) and photothermal therapy. Ultrasmall FeS-GOx nanodots were synthesized with glucose oxidase (GOx) as template and induced by paclitaxel (PTX) to form self-assembling FeS-GOx@PTX (FGP) via hydrophobic interaction. After accumulated at tumor sites, FGP disassembles to smaller FeS-GOx for enhanced deep tumor penetration. GOx maintains high enzymatic activity to catalyze glucose with assistant of oxygen to generate hydrogen peroxide (H2O2) as starvation therapy. Fenton reaction involving the regenerated H2O2 in turn produced more hydroxyl radicals for enhanced CDT. Following near-infrared laser at 808 nm, FGPs displayed pronounced tumor inhibition in vitro and in vivo by the combination therapy. The consequent increased exposure to calreticulin amplified ICD and promoted dendritic cells maturation. In combination with anti-CTLA4 checkpoint blockade, FGP can absolutely eliminate primary tumor and avidly inhibit distant tumors due to the enhanced intratumoral infiltration of cytotoxic T lymphocytes. Our work presents a promising strategy for primary tumor and metastasis inhibition.
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  • 文章类型: Journal Article
    缺氧,大多数实体瘤的一个显著特征,赋予侵袭性和对肿瘤细胞的抵抗力。耗氧光动力疗法(PDT)患有肿瘤局部缺氧的不良障碍。此外,PDT可进一步加重缺氧。因此,制定有效的策略来控制缺氧和提高PDT的有效性一直是抗肿瘤治疗的重点。在这次审查中,探讨了肿瘤缺氧与PDT的作用机制及相互关系。此外,我们强调了纳米药物领域的最新趋势,以调节缺氧以增强PDT,如氧气供应系统,下调耗氧量和缺氧利用。最后,为促进PDT的发展和临床转化提出了机遇和挑战。
    Hypoxia, a salient feature of most solid tumors, confers invasiveness and resistance to the tumor cells. Oxygen-consumption photodynamic therapy (PDT) suffers from the undesirable impediment of local hypoxia in tumors. Moreover, PDT could further worsen hypoxia. Therefore, developing effective strategies for manipulating hypoxia and improving the effectiveness of PDT has been a focus on antitumor treatment. In this review, the mechanism and relationship of tumor hypoxia and PDT are discussed. Moreover, we highlight recent trends in the field of nanomedicines to modulate hypoxia for enhancing PDT, such as oxygen supply systems, down-regulation of oxygen consumption and hypoxia utilization. Finally, the opportunities and challenges are put forward to facilitate the development and clinical transformation of PDT.
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