4.5 Review

Construction of Nanocarriers Based on Endogenous Cell Membrane and Their Application in Nanomedicine

Journal

CHINESE JOURNAL OF CHEMISTRY
Volume 40, Issue 13, Pages 1623-1640

Publisher

WILEY-V C H VERLAG GMBH
DOI: 10.1002/cjoc.202100946

Keywords

Biomimetic nanocomposite; Membranes; Nanomedicine; Antitumor agents; Drug delivery

Funding

  1. Development Plan of Youth Innovation Team in Colleges and Universities of Shandong Province [2020KJC003]

Ask authors/readers for more resources

This paper provides a comprehensive summary on the construction methods of endogenous membrane biomimetic nanocarriers (EMBNs), including a simple method for preparing membrane proteins. EMBNs are classified based on different cell membranes. The unique advantages of EMBNs in nanomedicine are introduced, providing a new approach for the development of multifunctional nanoparticles.
Comprehensive Summary Inspired by the adaptation of cells to the surrounding environment, the combination of cell membrane and nanomaterials has gradually become a new type of biomimetic nanocomposite. The construction of endogenous membrane biomimetic nanocarriers (EMBNs) not only retains the structure of membrane surface protein, but also has the properties of nanoparticles (NPs), also provides the ability of natural interaction between nanomaterials and organisms, thus overcoming the severe challenges faced by traditional nanodelivery systems in clinical application. In this paper, the construction methods of EMBNs are reviewed, focusing on a simple method to prepare membrane proteins. Secondly, EMBNs were classified according a variety of cell membranes. Finally, the unique advantages of EMBNs in nanomedicine are introduced, including improving biocompatibility, homologous targeting ability, prolonging blood circulation time and immune escape ability. In nanomedicine, such as targeted delivery, phototherapy, immunotherapy and tumor imaging, multifaceted biological interfaces through membrane masking provide a new approach for the development of multifunctional NPs.

Authors

I am an author on this paper
Click your name to claim this paper and add it to your profile.

Reviews

Primary Rating

4.5
Not enough ratings

Secondary Ratings

Novelty
-
Significance
-
Scientific rigor
-
Rate this paper

Recommended

Article Chemistry, Physical

Carrier-free programmed spherical nucleic acid for effective ischemic stroke therapy via self-delivery antisense oligonucleotide

Wenyan Yu, Cuiping Xuan, Bingbing Liu, Lei Zhou, Na Yin, Enpeng Gong, Zhenzhong Zhang, Yinchao Li, Kaixiang Zhang, Jinjin Shi

Summary: A carrier-free programmed spherical nucleic acid nanostructure has been developed, which showed efficient blood-brain barrier penetration capability and satisfactory caspase-3 silencing effect, significantly improving the therapeutic efficacy of ischemic stroke.

NANO RESEARCH (2023)

Article Chemistry, Analytical

CasSABER for Programmable In Situ Visualization of Low and Nonrepetitive Gene Loci

Yanan Li, Di Huang, Yiran Pei, Fenglei Quan, Hua Gao, Junli Zhang, Hongwei Hou, Kaixiang Zhang, Jinghong Li

Summary: Site-specific imaging of target genes using CRISPR probes is crucial for understanding gene function and developing tools for gene manipulation. The CasSABER probe allows programmable in situ imaging of low and nonrepetitive regions of a gene. It can specifically light up gene loci bound by dCas9/sgRNA, enabling high-specificity and high-signal-to-noise ratio imaging of fixed cellular gene loci. The CasSABER system also enables adjustable signal amplification, allowing simultaneous visualization of multicopy and single-copy gene loci with similar fluorescence intensity.

ANALYTICAL CHEMISTRY (2023)

Review Engineering, Biomedical

Stimuli-Responsive Self-Degradable DNA Hydrogels: Design, Synthesis, and Applications

Danyu Wang, Jie Duan, Jingwen Liu, Hua Yi, Zhenzhong Zhang, Haiwei Song, Yinchao Li, Kaixiang Zhang

Summary: DNA hydrogels are increasingly important in biomedical and bioanalysis applications. They are highly programmable, multifunctional, and biocompatible, making them effective carriers for drugs and bioactive cargoes. However, the stability of DNA hydrogels hinders rapid release of cargoes. Stimulus-responsive DNA hydrogels have been designed to meet these requirements, switching from gel to solution for precision cargo delivery and bioanalysis. This review summarizes innovative methods for designing stimuli-responsive self-degradable DNA hydrogels and discusses their applications and challenges in the fields of bioanalysis and biomedicine.

ADVANCED HEALTHCARE MATERIALS (2023)

Article Chemistry, Multidisciplinary

Highly Effective Detection of Exosomal miRNAs in Plasma Using Liposome-Mediated Transfection CRISPR/Cas13a

Junli Zhang, Mengting Guan, Chihong Ma, Yingying Liu, Min Lv, Zhenzhong Zhang, Hua Gao, Kaixiang Zhang

Summary: Exosomal miRNAs have a critical role in cancer biology and may serve as potential biomarkers for cancer diagnosis. However, detecting disease-associated exosomal miRNAs in an easy-to-operate manner is challenging due to their low abundance. In this study, a liposome-mediated membrane fusion strategy (MFS) called MFS-CRISPR was used to directly measure exosomal miRNAs in plasma. The MFS-CRISPR platform exhibited a linear detection range from 10(4) to 10(8) particles/mL and could detect exosomal miR-21 at a low concentration of 1.2 x 10(3) particles/mL. The proposed method showed promising clinical potential for cancer diagnosis and treatment monitoring due to its high sensitivity and simplicity.

ACS SENSORS (2023)

Article Chemistry, Multidisciplinary

Remodeling Collagen Microenvironment in Liver Using a Biomimetic Nano-Regulator for Reversal of Liver Fibrosis

Yan Liang, Jinjin Wang, Chenlu Xu, Wenshuai Han, Sixuan Wu, Yonghua Wu, Jingge Zhang, Junjie Liu, Zhenzhong Zhang, Jinjin Shi, Kaixiang Zhang

Summary: This study developed a biomimetic nano-regulator (P-ZIF8-cirDNAzyme) that can affect collagen synthesis and degradation in the liver to reverse liver fibrosis. Zinc (II) interference inhibits collagen synthesis by inactivating proline 4 hydroxylase and affecting fibrosis-related signaling pathways. Zinc (II)-dependent circular DNAzymes silence tissue inhibitors of metalloproteinase-1, accelerating collagen degradation. The coated P-ZIF-8-cirDNAzyme targets activated hepatic stellate cells (aHSC) with inflammatory tropism and CD62p-CD44 interaction, showing a potent anti-fibrotic effect and restoring liver function in fibrotic mice.

ADVANCED SCIENCE (2023)

Article Chemistry, Multidisciplinary

Calcium Tungstate Microgel Enhances the Delivery and Colonization of Probiotics during Colitis via Intestinal Ecological Niche Occupancy

Jiali Yang, Mengyun Peng, Shaochong Tan, Shengchan Ge, Li Xie, Tonghai Zhou, Wei Liu, Kaixiang Zhang, Zhenzhong Zhang, Junjie Liu, Jinjin Shi

Summary: Calcium tungstate microgel selectively disrupts the ecological niche occupied by abnormally expanded Enterobacteriaceae during colitis, promoting probiotic colonization. The use of a calcium tungste microgel-based oral probiotic delivery system improves the delivery and colonization of probiotics. The synergistic reduction of Enterobacteriaceae and increase in probiotic colonization results in effective treatment for colitis.

ACS CENTRAL SCIENCE (2023)

Review Chemistry, Multidisciplinary

Spatiotemporally resolved tools for analyzing gut microbiota

Xianglin Zhu, Kaixiang Zhang, Xucong Teng, Xuhan Xia, Ruijie Deng, Jinghong Li

Summary: The gut microbiota is an important hidden organ closely related to human health. Emerging techniques such as spatially resolved sequencing and in vivo imaging enable the acquisition of spatial organizations and dynamic information of the gut microbiome, providing new insights into physiological activities, symbiotic functions, and spatial organization rearrangement under different physiological and pathological conditions, which have implications for diet and clinical treatment through gut microbiota management.
Article Chemistry, Multidisciplinary

Regulating Photosensitizer Metabolism with DNAzyme-Loaded Nanoparticles for Amplified Mitochondria-Targeting Photodynamic Immunotherapy

Xiu Zhao, Hui Cheng, Qiongwei Wang, Weimin Nie, Yue Yang, Xinyuan Yang, Kaixiang Zhang, Jinjin Shi, Junjie Liu

Summary: This study reports a photosensitizer metabolism-regulating strategy using ALA/DNAzyme-co-loaded nanoparticles (ALA & Dz@ZIF-PEG) for mitochondria-targeting photodynamic immunotherapy. The nanoparticles release zinc ions (Zn2+) in tumor cells, which promotes the conversion of ALA to PpIX and enhances the accumulation of PpIX in mitochondria, leading to improved photodynamic therapy outcomes.

ACS NANO (2023)

Article Chemistry, Multidisciplinary

Photoactivated DNA Nanodrugs Damage Mitochondria to Improve Gene Therapy for Reversing Chemoresistance

Danyu Wang, Hua Yi, Shizhen Geng, Chuanmei Jiang, Jingwen Liu, Jie Duan, Zhenzhong Zhang, Jinjin Shi, Haiwei Song, Zhenzhen Guo, Kaixiang Zhang

Summary: Multidrug resistance (MDR) is a major cause of chemotherapy failure in oncology, and gene therapy is an excellent measure to reverse MDR. However, conventional gene therapy only modulates the expression of MDR-associated proteins but hardly affects their existing function, thus limiting the efficiency of tumor treatment. Therefore, we designed a photoactivated DNA nanodrug (MCD@TMPyP4@DOX) to improve tumor chemosensitivity through the downregulation of MDR-related genes and mitochondria-targeted photodynamic therapy (PDT).

ACS NANO (2023)

Article Chemistry, Multidisciplinary

Localized Imaging of Programmed Death-Ligand 1 on Individual Tumor-Derived Extracellular Vesicles for Prediction of Immunotherapy Response

Junli Zhang, Mengting Guan, Min Lv, Yingying Liu, Hongling Zhang, Zhenzhong Zhang, Kaixiang Zhang

Summary: In this study, a new method (LITIE) for localized imaging of tumor-derived EVs PD-L1 was developed, which can predict the response to immunotherapy. The method effectively distinguished breast cancer patients from healthy individuals or patients with benign tumors. The results also showed that the method could predict the effectiveness of immunotherapy before drug treatment.

ACS NANO (2023)

Article Chemistry, Multidisciplinary

Biomimetic Mineralized CRISPR/Cas RNA Nanoparticles for Efficient Tumor-Specific Multiplex Gene Editing

Yan Liang, Jingge Zhang, Chenlu Xu, Jinjin Wang, Wenshuai Han, Jiali Yang, Sixuan Wu, Jingyi An, Junjie Liu, Zhenzhong Zhang, Jinjin Shi, Kaixiang Zhang

Summary: The researchers have developed an all-in-one biomimetic mineralized CRISPR/Cas9 RNA delivery system, which achieves efficient multiplex gene editing by editing multiple genomic loci. The system allows for precise control over the coencapsulation ratio between Cas9 mRNA and multiple sgRNAs, with a high RNA loading capacity. It also enhances the storage stability of RNA at 4°C and enables precise targeting of RNA nanoparticles in vivo. The system successfully achieved significant gene editing and inhibited tumor growth without off-target effects in liver tissue.

ACS NANO (2023)

Correction Chemistry, Multidisciplinary

Nanoenabled Disruption of Multiple Barriers in Antigen Cross-Presentation of Dendritic Cells via Calcium Interference for Enhanced Chemo-Immunotherapy (vol 14, pg 7639, 2020)

Jingyi An, Kaixiang Zhang, Binghua Wang, Sixuan Wu, Yifei Wang, Hongling Zhang, Zhenzhong Zhang, Junjie Liu, Jinjin Shi

ACS NANO (2023)

Article Multidisciplinary Sciences

Enrichment and sensing tumor cells by embedded immunomodulatory DNA hydrogel to inhibit postoperative tumor recurrence

Danyu Wang, Jingwen Liu, Jie Duan, Hua Yi, Junjie Liu, Haiwei Song, Zhenzhong Zhang, Jinjin Shi, Kaixiang Zhang

Summary: The authors developed a DNA hydrogel that can monitor tumor recurrence and prevent postoperative tumor recurrence and metastasis. The hydrogel contains PDL1 aptamers to capture and enrich relapsed tumor cells, increasing local ATP concentration and providing a timely warning signal. By triggering photodynamic therapy and releasing tumor-associated antigens, as well as promoting systemic antitumor immunotherapy, the hydrogel system effectively inhibits recurrent tumors and suppresses metastasis.

NATURE COMMUNICATIONS (2023)

Article Multidisciplinary Sciences

Genotype-specific precision tumor therapy using mitochondrial DNA mutation-induced drug release system

Yanan Li, Ru Xu, Yonghua Wu, Jialing Guo, Fenglei Quan, Yiran Pei, Di Huang, Xiu Zhao, Hua Gao, Junjie Liu, Zhenzhong Zhang, Jinjin Shi, Kaixiang Zhang

Summary: This study presents a mutation-induced drug release system (MIDRS) that utilizes the single-nucleotide variation (SNV) recognition ability and trans-cleavage activity of Cas12a to convert tumor-specific mtDNA mutations into a regulatory switch for intracellular drug release, achieving precise tumor cell killing. The MIDRS system demonstrated excellent antitumor effects without affecting normal cells, leading to a stronger systemic antitumor immune response. This strategy shows promise for mutation-specific personalized tumor treatment approaches.

SCIENCE ADVANCES (2023)

Correction Chemistry, Multidisciplinary

Regulating Photosensitizer Metabolism with DNAzyme-Loaded Nanoparticles for Amplified Mitochondria-Targeting Photodynamic Immunotherapy (vol 17, pg 13746, 2023)

Xiu Zhao, Hui Cheng, Qiongwei Wang, Weimin Nie, Yue Yang, Xinyuan Yang, Kaixiang Zhang, Jinjin Shi, Junjie Liu

ACS NANO (2023)

No Data Available