微环境响应型自组装生物纳米材料的表/界面调控及肿瘤治疗研究

项目来源

国(略)研(略)((略)D(略)

项目主持人

聂(略)

项目受资助机构

清(略)

项目编号

2(略)Y(略)2(略)0(略)

立项年度

2(略)

立项时间

未(略)

研究期限

未(略) (略)

项目级别

国(略)

受资助金额

6(略)0(略)

学科

纳(略)

学科代码

未(略)

基金类别

“纳(略)”重点专项

关键词

肿(略)境(略)表(略) (略)分(略)物(略)含(略)体(略)核(略) (略)o(略)i(略)e(略)r(略)n(略) (略)f(略)/(略)e(略)c(略) (略)r(略)l(略)l(略)c(略)l(略);(略)l(略)u(略)o(略)i(略)g(略)s(略)l(略) (略)u(略)i(略)c(略)

参与者

刘(略)许(略)徐(略)丁(略)易(略)亚(略)

参与机构

国家纳米科学中心;清(略)化学系

项目标书摘要:课题(略)料对肿瘤基质微环境(略)的构效关系这一关键(略)境基质和血管的病理(略)复合物、含硒组装体(略)设计构筑具有微环境(略)自组装纳米药物系统(略)的活性药物输运和释(略)杂性优化药物组合,(略)靶标联合调控的新策(略)材料影响肿瘤微环境(略)材料的“表/界面性(略)。_x000D_课(略)超分子自由基二聚体(略)疗新策略、基于含硒(略)、放疗和化疗联合治(略)装策略制备类细胞膜(略)酸自组装结构的基因(略)进展。

Applicati(略): Aiming (略)scientifi(略)f the str(略)tion rela(略) self-ass(略)nanomater(略)or matrix(略)onment an(略)cular sur(略)ace respo(略)n the pat(略)ical char(略) of tumor(略)onment ma(略)ood vesse(略)ned self-(略)ano-drug (略)h micro-e(略)multi-tar(略)c recogni(略)sponse by(略)supramole(略)exes,sele(略)ning asse(略)ides and (略)ds as car(略)can trans(略)lease act(略)n a site (略)ime selec(略)antitativ(略)timize dr(略)ions acco(略)mor heter(略)d complex(略)elop new (略)for multi(略)ngle targ(略)-target j(略)tion;clar(略)ects and (略)e impact (略)embled bi(略)ials on t(略)nvironmen(略)l the rel(略)f"surface(略)propertie(略)y functio(略)terials._(略)D

项目受资助省

北(略)

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  • 1.From bench to bedside: Platelet biomimetic nanoparticles as a promising carriers for personalized drug delivery

    • 关键词:
    • Platelet membrane coating; Nanomedicines; Targeted delivery; Cancer;Atherosclerosis; Bacterial infections; Thrombosis;MEMBRANE-COATED NANOPARTICLES; VON-WILLEBRAND-FACTOR; CELL-ADHESION;CAMOUFLAGED NANOPARTICLES; GLYCOPROTEIN IB; CANCER-CELLS; RECEPTOR;NANOCARRIERS; ACTIVATION; EXPRESSION

    In recent decades, there has been a burgeoning interest in cell membrane coating strategies as innovative approach for targeted delivery systems in biomedical applications. Platelet membrane-coated nanoparticles (PNPs), in particular, are gaining interest as a new route for targeted therapy due to their advantages over conventional drug therapies. Their stepwise approach blends the capabilities of the natural platelet membrane (PM) with the adaptable nature of manufactured nanomaterials, resulting in a synergistic combination that enhances drug delivery and enables the development of innovative therapeutics. In this context, we present an overview of the latest advancements in designing PNPs with various structures tailored for precise drug delivery. Initially, we describe the types, preparation methods, delivery mechanisms, and specific advantages of PNPs. Next, we focus on three critical applications of PNPs in diseases: vascular disease therapy, cancer treatment, and management of infectious diseases. This review presents our knowledge of PNPs, summarizes their advancements in targeted therapies and discusses the promising potential for clinical translation of PNPs.

    ...
  • 2. Efficient nucleic acid delivery to murine regulatory T cells by gold nanoparticle conjugates.“.Sci Rep.2016

  • 3.DNA-based enzymatic systems and their applications

    • 关键词:
    • DNAZYME; RNA; DEOXYRIBOZYME; FLUORESCENT; CLEAVAGE; APTAMER; INSIGHT;ADENINE; SHAPES; IONS

    DNA strands with unique secondary structures can catalyze various chemical reactions and mimic natural enzymes with the assistance of cofactors, which have attracted much research attention. At the same time, the emerging DNA nanotechnology provides an efficient platform to organize functional components of the enzymatic systems and regulate their catalytic performances. In this review, we summarize the recent progress of DNA-based enzymatic systems. First, DNAzymes (Dzs) are introduced, and their versatile utilities are summarized. Then, G-quadruplex/hemin (G4/hemin) Dzs with unique oxidase/peroxidase-mimicking activities and representative examples where these Dzs served as biosensors are explicitly elaborated. Next, the DNA-based enzymatic cascade systems fabricated by the structural DNA nanotechnology are depicted. In addition, the applications of catalytic DNA nanostructures in biosensing and biomedicine are included. At last, the challenges and the perspectives of the DNA-based enzymatic systems for practical applications are also discussed.

    ...
  • 4. PresynthesisofBoundedChoice-FreeorFork-Attributionnets.Inf.Comput.,271:104482,2020

  • 5. Ternarynanoswitchesrealizedwithmulti-responsivePMMA-b-PNIPMAMfilmsinmixedwater/acetonevaporatmospheres.Adv.Eng.Mater.(2021)23,[2100191]1-12

  • 6.Understanding the versatile roles and applications of EpCAM in cancers: from bench to bedside

    • 关键词:
    • EpCAM; Cancer; Cell signaling; Extracellular vesicles; Immune; Therapy;CELL-ADHESION MOLECULE; HEPATOCELLULAR-CARCINOMA CELLS; EPITHELIALOVARIAN-CANCER; STEM-LIKE CELLS; EP-CAM; BISPECIFIC ANTIBODY; TUMORPROGRESSION; MESENCHYMAL TRANSITION; SIGNALING PATHWAY; DNA METHYLATION

    Epithelial cell adhesion molecule (EpCAM) functions not only in physiological processes but also participates in the development and progression of cancer. In recent decades, extensive efforts have been made to decipher the role of EpCAM in cancers. Great advances have been achieved in elucidating its structure, molecular functions, pathophysiological mechanisms, and clinical applications. Beyond its well-recognized role as a biomarker of cancer stem cells (CSCs) or circulating tumor cells (CTCs), EpCAM exhibits novel and promising value in targeted therapy. At the same time, the roles of EpCAM in cancer progression are found to be highly context-dependent and even contradictory in some cases. The versatile functional modules of EpCAM and its communication with other signaling pathways complicate the study of this molecule. In this review, we start from the structure of EpCAM and focus on communication with other signaling pathways. The impacts on the biology of cancers and the up-to-date clinical applications of EpCAM are also introduced and summarized, aiming to shed light on the translational prospects of EpCAM.

    ...
  • 7.The dynamic role of platelets in cancer progression and their therapeutic implications

    • 关键词:
    • HEMATOGENOUS TUMOR-METASTASIS; GROWTH-FACTOR; ACTIVATED PLATELETS;PARANEOPLASTIC THROMBOCYTOSIS; PODOPLANIN EXPRESSION; COLON-CARCINOMA;GLYCOPROTEIN-VI; CELL-GROWTH; P-SELECTIN; T-CELLS

    Systemic antiplatelet treatment represents a promising option to improve the therapeutic outcomes and therapeutic efficacy of chemotherapy and immunotherapy due to the critical contribution of platelets to tumour progression. However, until recently, targeting platelets as a cancer therapeutic has been hampered by the elevated risk of haemorrhagic and thrombocytopenic (low platelet count) complications owing to the lack of specificity for tumour-associated platelets. Recent work has advanced our understanding of the molecular mechanisms responsible for the contribution of platelets to tumour progression and metastasis. This has led to the identification of the biological changes in platelets in the presence of tumours, the complex interactions between platelets and tumour cells during tumour progression, and the effects of platelets on antitumour therapeutic response. In this Review, we present a detailed picture of the dynamic roles of platelets in tumour development and progression as well as their use in diagnosis, prognosis and monitoring response to therapy. We also provide our view on how to overcome challenges faced by the development of precise antiplatelet strategies for safe and efficient clinical cancer therapy.Targeting platelets represents a promising approach to improve the therapeutic efficacy of chemotherapy and cancer immunotherapy. Here, Li and colleagues highlight the dynamic role of platelets in tumour development, progression, and response to therapy, and underscore the utility of tumour-educated platelets for precise tumour diagnosis and treatment.

    ...
  • 8.Modulating tumor mechanics with nanomedicine for cancer therapy

    • 关键词:
    • INTERSTITIAL FLUID PRESSURE; MAGNETIC-RESONANCE ELASTOGRAPHY;ATOMIC-FORCE MICROSCOPY; SOLID STRESS; PHOTODYNAMIC THERAPY;HYPERBARIC-OXYGEN; NANOMECHANICAL SIGNATURE; ULTRASOUND ELASTOGRAPHY;DRUG-DELIVERY; BLOOD-VESSELS

    Over the past several decades, the importance of the tumor mechanical microenvironment (TMME) in cancer progression or cancer therapy has been recognized by researchers worldwide. The abnormal mechanical properties of tumor tissues include high mechanical stiffness, high solid stress, and high interstitial fluid pressure (IFP), which form physical barriers resulting in suboptimal treatment efficacy and resistance to different types of therapy by preventing drugs infiltrating the tumor parenchyma. Therefore, preventing or reversing the establishment of the abnormal TMME is critical for cancer therapy. Nanomedicines can enhance drug delivery by exploiting the enhanced permeability and retention (EPR) effect, so nanomedicines that target and modulate the TMME can further boost antitumor efficacy. Herein, we mainly discuss the nanomedicines that can regulate mechanical stiffness, solid stress, and IFP, with a focus on how nanomedicines change abnormal mechanical properties and facilitate drug delivery. We first introduce the formation, characterizing methods and biological effects of tumor mechanical properties. Conventional TMME modulation strategies will be briefly summarized. Then, we highlight representative nanomedicines capable of modulating the TMME for augmented cancer therapy. Finally, current challenges and future opportunities for regulating the TMME with nanomedicines will be provided.

    ...
  • 9.Probiotic-Inspired Nanomedicine Restores Intestinal Homeostasis in Colitis by Regulating Redox Balance, Immune Responses, and the Gut Microbiome.

    • 关键词:
    • 9042-14-2 / Dextran Sulfate;

    Microbiota-based therapeutics offer innovative strategies to treat inflammatory bowel diseases (IBDs). However, the poor clinical outcome so far and the limited flexibility of the bacterial approach call for improvement. Inspired by the health benefits of probiotics in alleviating symptoms of bowel diseases, bioartificial probiotics are designed to restore the intestinal microenvironment in colitis by regulating redox balance, immune responses, and the gut microbiome. The bioartificial probiotic comprises two components: an E. coli Nissle 1917-derived membrane (EM) as the surface and the biodegradable diselenide-bridged mesoporous silica nanoparticles (SeM) as the core. When orally administered, the probiotic-inspired nanomedicine (SeM@EM) adheres strongly to the mucus layer and restored intestinal redox balance and immune regulation homeostasis in a murine model of acute colitis induced by dextran sodium sulfate. In addition, the respective properties of the EM and SeM synergistically alter the gut microbiome to a favorable state by increasing the bacterial diversity and shifting the microbiome profile to an anti-inflammatory phenotype. This work suggests a safe and effective nanomedicine that can restore intestinal homeostasis for IBDs therapy. © 2022 Wiley-VCH GmbH.

    ...
  • 10. Effectiveness of a Guided Web-Based Self-help Intervention to Prevent Depression in Patients With Persistent Back Pain:The PROD-BP Randomized Clinical Trial.JAMA Psychiatry 2020

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