1.Pure drug nanomedicines - where we are?
Yaoyao LAI ; Bing XIE ; Wanting ZHANG ; Wei HE
Chinese Journal of Natural Medicines (English Ed.) 2025;23(4):385-409
Pure drug nanomedicines (PDNs) encompass active pharmaceutical ingredients (APIs), including macromolecules, biological compounds, and functional components. They overcome research barriers and conversion thresholds associated with nanocarriers, offering advantages such as high drug loading capacity, synergistic treatment effects, and environmentally friendly production methods. This review provides a comprehensive overview of the latest advancements in PDNs, focusing on their essential components, design theories, and manufacturing techniques. The physicochemical properties and in vivo behaviors of PDNs are thoroughly analyzed to gain an in-depth understanding of their systematic characteristics. The review introduces currently approved PDN products and further explores the opportunities and challenges in expanding their depth and breadth of application. Drug nanocrystals, drug-drug cocrystals (DDCs), antibody-drug conjugates (ADCs), and nanobodies represent the successful commercialization and widespread utilization of PDNs across various disease domains. Self-assembled pure drug nanoparticles (SAPDNPs), a next-generation product, still require extensive translational research. Challenges persist in transitioning from laboratory-scale production to mass manufacturing and overcoming the conversion threshold from laboratory findings to clinical applications.
Nanomedicine
;
Humans
;
Nanoparticles/chemistry*
;
Pharmaceutical Preparations/chemistry*
;
Animals
;
Drug Carriers/chemistry*
2.Advances in nanocarriers for targeted drug delivery and controlled drug release.
Yuqian WANG ; Renqi HUANG ; Shufan FENG ; Ran MO
Chinese Journal of Natural Medicines (English Ed.) 2025;23(5):513-528
Nanocarrier-based drug delivery systems (nDDSs) present significant opportunities for improving disease treatment, offering advantages in drug encapsulation, solubilization, stability enhancement, and optimized pharmacokinetics and biodistribution. nDDSs, comprising lipid, polymeric, protein, and inorganic nanovehicles, can be guided by or respond to biological cues for precise disease treatment and management. Equipping nanocarriers with tissue/cell-targeted ligands enables effective navigation in complex environments, while functionalization with stimuli-responsive moieties facilitates site-specific controlled release. These strategies enhance drug delivery efficiency, augment therapeutic efficacy, and reduce side effects. This article reviews recent strategies and ongoing advancements in nDDSs for targeted drug delivery and controlled release, examining lesion-targeted nanomedicines through surface modification with small molecules, peptides, antibodies, carbohydrates, or cell membranes, and controlled-release nanocarriers responding to endogenous signals such as pH, redox conditions, enzymes, or external triggers like light, temperature, and magnetism. The article also discusses perspectives on future developments.
Humans
;
Drug Carriers/chemistry*
;
Drug Delivery Systems/methods*
;
Delayed-Action Preparations/chemistry*
;
Nanoparticles/chemistry*
;
Animals
;
Drug Liberation
;
Nanomedicine
3.Harmonizing tradition and technology: Liposomal nanocarriers unlocking the power of natural herbs in Traditional Chinese Medicine.
Ibrahim SHAW ; Aaron Albert ARYEE ; Yimer Seid ALI ; George Frimpong BOAFO ; Jingjing TIAN ; Ronald MLAMBO ; Songwen TAN ; Chuanpin CHEN
Chinese Journal of Natural Medicines (English Ed.) 2025;23(6):700-713
Natural herbs demonstrate significant therapeutic potential in managing chronic and complex diseases; however, their clinical application faces limitations due to low bioavailability, instability, toxicity, and herb-drug interactions. Furthermore, insufficient standardized evidence and global acceptance impede their widespread adoption. Liposomes, nanocarriers consisting of a phospholipid bilayer enclosing an aqueous core, present a promising approach for enhancing the pharmacokinetics and therapeutic efficacy of herbal compounds. These adaptable systems can encapsulate both hydrophilic and hydrophobic agents, enabling targeted drug delivery and enhanced stability. Moreover, liposomes can be modified to carry diagnostic and imaging agents, enabling precise disease detection and monitoring. While liposomes offer potential as an innovative delivery technology for herbal remedies, their application in Traditional Chinese Medicine (TCM) remains relatively unexplored. TCM, with its holistic, energy-based approach to health and organ function, presents distinct challenges regarding formulation and delivery. This review examines the therapeutic potential of herbal medicines, emphasizing how liposomes address delivery challenges within the TCM framework. It also investigates the integration of TCM with Western medical practices, demonstrating how liposomal systems may bridge these approaches. The review analyzes key formulation techniques for TCM-loaded liposomes, particularly the microfluidic method, which demonstrates superior control over particle size and encapsulation efficiency compared to conventional methods. The analysis addresses barriers to integrating liposomal delivery systems with TCM, including physicochemical properties, scalability issues, and regulatory challenges. Finally, this review provides strategic recommendations for overcoming these obstacles and identifies future research directions to maximize the potential of liposomal technology in enhancing TCM therapies.
Liposomes/chemistry*
;
Drugs, Chinese Herbal/administration & dosage*
;
Humans
;
Medicine, Chinese Traditional/methods*
;
Drug Delivery Systems
;
Drug Carriers/chemistry*
;
Animals
;
Nanoparticles/chemistry*
4.Selenium nanoparticles synthesized by Streptomyces avermitilis: physical and chemical characteristics and inhibitory activity on a pathogen of Lycium barbarum.
Qi ZHANG ; Yani LI ; Rongjuan ZHOU ; Jiayuan QING ; Sijun YUE
Chinese Journal of Biotechnology 2025;41(2):693-705
Biosynthesized selenium nanoparticles (SeNPs) have attracted much attention because of their unique physical, chemical, and biological properties. The microbial reduction of selenium salts to SeNPs has great potential, while there is a lack of elite strains. In this study, we explored the reduction of Na2SeO3 by Streptomyces avermitilis into SeNPs. The colonies and hyphae of the strain and the synthesized SeNPs were characterized by optical microscopy, scanning electron microscopy (SEM), transmission electron microscope (TEM), energy dispersive spectrometry (EDS), X-ray diffraction (XRD), and Fourier transform infrared spectroscopy (FTIR). At the same time, the inhibitory activity of SeNPs on Fusarium oxysporum, the main pathogen causing root rot of Lycium barbarum, was studied. The results showed that S. avermitilis converted Na2SeO3 into SeNPs and tolerated 300 mmol/L Na2SeO3, demonstrating strong tolerance. S. avermitilis synthesized spherical SeNPs in the cytoplasm, and most of SeNPs had a diameter of about 100 nm and were released by hyphal fracture. The SeNPs synthesized by S. avermitilis were amorphous, and their surfaces were dominated by C and Se, with the existence of O, N and other elements. SeNPs had functional groups such as -OH, C=O, C-N, and C-H, which were closely related to the stability and biological activity of SeNPs. The SeNPs synthesized by S. avermitilis showcased significant inhibitory activity on F. oxysporum, and 25.0 μmol/mL SeNPs showcased the inhibition rate of 77.61% and EC50 of 0.556 μmol/mL. In conclusion, S. avermitilis can tolerate high Na2SeO3 stress and mediate the synthesis of SeNPs. The synthesized SeNPs have good stability and strong inhibitory activity, demonstrating the potential application value in the preparation of SeNPs and the control of L. barbarum root rot.
Streptomyces/metabolism*
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Fusarium/drug effects*
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Lycium/microbiology*
;
Selenium/metabolism*
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Nanoparticles/chemistry*
;
Plant Diseases/microbiology*
;
Metal Nanoparticles/chemistry*
;
Antifungal Agents/pharmacology*
5.Advances of virus-like particles as mRNA delivery vectors.
Xinyu LIN ; Shuling REN ; Tingdong LI ; Shengxiang GE
Chinese Journal of Biotechnology 2025;41(4):1268-1279
With the continuous development of messenger RNA (mRNA) technology, mRNA-based drugs have shown broad application prospects in recent years. Since mRNA is easy to be degraded and difficult to enter cells directly, the mRNA delivery vectors have always been one of the focuses in the development of mRNA-based drugs. Although lipid nanoparticles (LNPs) have been widely used for the delivery of mRNA, they tend to accumulate in the liver, and repeated administration can easily induce inflammatory response which leads to tissue damage. Compared with LNPs, virus-like particles (VLPs) have the advantages of high biocompatibility and safety, being expected to offer new solutions for mRNA delivery. Based on the practical application requirements, this review summarized the research progress in VLPs according to the mRNA delivery steps: particle assembly, delivery into cells, and intracellular release. We hope to provide a basis and design ideas for the development of new VLPs as delivery vectors, promote the application of VLPs in mRNA delivery, and provide new possibilities for the research and application of mRNA-based therapeutics.
RNA, Messenger/administration & dosage*
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Humans
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Nanoparticles/chemistry*
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Genetic Vectors
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Lipids/chemistry*
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Drug Delivery Systems/methods*
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Virion
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Animals
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Gene Transfer Techniques
;
Liposomes
6.Fabrication of chitosan/hyaluronic acid complex nanoparticles for effective siRNA delivery.
Huaiyi LIU ; Fangqian HUANG ; Baiqiu CHEN ; Yunfeng YAN
Chinese Journal of Biotechnology 2025;41(4):1340-1353
The development of safe and effective carriers is crucial for improving the in vivo stability of siRNA drugs and facilitating their clinical translation. Chitosan (CS), a natural cationic polymer, shows great potential in nucleic acid drug delivery. To optimize the physicochemical properties of CS/siRNA nanoparticles (NPs) and increase their siRNA delivery efficacy, in this study, hyaluronic acid (HA) was added into CS to form stable complex NPs through electrostatic interactions. The HA component is able to target the CD44 receptors on the surface of tumor cells, facilitating efficient siRNA delivery. First, we systematically investigated the effects of the molecular weights and mass ratio of CS and HA on the physicochemical properties of CS/HA NPs. The results showed that at HA: CS mass ratios of approximately 5:5 and 6:4, the complex NPs exhibited small particle sizes, narrow size distribution, and high storage stability. Under similar conditions, the size of CS/HA NPs increased with the increase in the molecular weights of CS and HA. Based on these findings, suitable conditions were selected to prepare CS/HA NPs for siRNA delivery. Cell experiments demonstrated that the introduction of HA effectively reduced the cytotoxicity of the CS delivery system and enhanced the NP uptake. The CS/HA/siRNA NPs achieved 50% to 60% silencing of the luciferase gene in HeLa-Luc cells. CS/HA NPs formed smaller nanoparticles with siRNA than pure CS and mediated specific interactions with tumor cells via HA, leading to efficient siRNA delivery. These findings provide valuable insights into the construction of natural polymer composite nanoparticles for application in siRNA delivery.
Hyaluronic Acid/chemistry*
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Chitosan/chemistry*
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RNA, Small Interfering/administration & dosage*
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Nanoparticles/chemistry*
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Humans
;
Particle Size
;
HeLa Cells
;
Hyaluronan Receptors
7.Preparation and antitumor activity characterization of oncolytic nanoparticles encapsulating CVA21.
Yinping WANG ; Qiying CAI ; Jingjing ZHOU ; Xiaodi ZHENG ; Linkang CAI ; Yang WANG ; Binlei LIU
Chinese Journal of Biotechnology 2025;41(4):1395-1414
This study aims to investigate the potential of oncolytic nanoparticles encapsulating Coxsackievirus A21 (CVA21) full-genome mRNA (CVA21@ONP) to resurrect CVA21 and induce apoptosis in host cells, as well as the antitumor immune effects of CVA21@ONP in immunocompetent tumor-bearing BALB/c mice. We used lipid nanoparticles (LNPs) to encapsulate CVA21 full-genome mRNA, thus preparing CVA21@ONP. The killing efficacy of CVA21@ONP was determined by the plaque assay and cell counting kit-8 (CCK-8), and the apoptosis in HT29 and CT26-iRFP cells was evaluated by flow cytometry. Mice were administrated with CVA21@ONP at high and low doses intratumorally, and the growth of tumors expressing infra-red fluorescent protein (iRFP) was monitored. Additionally, the types and changes of immune cells in the spleen were analyzed by flow cytometry. The results demonstrated that CVA21@ONP successfully resurrected CVA21 in both HT29 and U87MG cells. The plaque assay revealed robust killing effects of CVA21@ONP against both human and murine cell lines, and flow cytometry results showed increased early and late apoptotic cells. Notably, intratumoral detection revealed significantly down-regulated expression of iRFP in both high- and low-dose CVA21@ONP groups. Flow cytometry results further indicated that CVA21@ONP treatment effectively reduced the levels of immunosuppressive cells, including myeloid-derived suppressor cells (MDSCs) and regulatory T cells (Tregs), in the spleen, while enhancing T cell-dependent antitumor immune responses. These findings suggest that CVA21@ONP can replicate and survive extensively both in vitro and in vivo, activating the immune system of mice administrated with CVA21@ONP to target cells at the tumor site, thereby remodeling the tumor immune microenvironment and accelerating the suppression or even complete regression of tumors. The oncolytic performance of CVA21@ONP has been verified through intratumoral injection administration in this study, aimed at further exploring its therapeutic potential and promoting the development of the field of tumor treatment.
Animals
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Nanoparticles/chemistry*
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Mice
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Mice, Inbred BALB C
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Humans
;
Apoptosis
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Oncolytic Viruses/genetics*
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Oncolytic Virotherapy/methods*
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Cell Line, Tumor
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RNA, Messenger/genetics*
;
HT29 Cells
8.Applications of ferritin nanoparticles in biological fields.
Yue ZHANG ; Yi RU ; Rongzeng HAO ; Yajun LI ; Longhe ZHAO ; Yang YANG ; Bingzhou LU ; Huanan LIU ; Haixue ZHENG
Chinese Journal of Biotechnology 2025;41(7):2501-2518
Ferritin, a ubiquitous protein in living organisms, plays a crucial role in storing and converting iron, as well as maintaining cellular iron metabolism balance. Due to the ability of self-assembling into unique nanocage-like structures in vitro and the special physicochemical properties, ferritin has garnered extensive attention in the biomedical field. This paper provides a brief overview of the structure and cargo loading strategies of ferritin, with a specific focus on its applications in various biological fields such as nanomedicine, bioimaging, and nanoparticle vaccine carriers. The aim is to offer a valuable reference for the future research involving ferritin nanoparticles.
Ferritins/chemistry*
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Nanoparticles/chemistry*
;
Humans
;
Nanomedicine/methods*
;
Animals
9.Preparation and in vitro targeting function evaluation of UNO peptide-modified Prussian blue nanoparticles.
Wenke ZHANG ; Jiani YUAN ; Bin WU ; Yuxia YAN ; Nanjun LU ; Wen LUO
Chinese Journal of Biotechnology 2025;41(8):3187-3198
The study aims to explore the methods for preparing nanocomplexes of Prussian blue nanoparticles (PBNPs) with UNO peptide (UNO-PBNPs) and the functions of the nanocomplexes targeting M2-type macrophages in vitro. PBNPs were prepared by the hydrothermal synthesis method. Subsequently, the peptide UNO (CSPGAKVRC) targeting the mannose receptor was modified on their surface by a heterobifunctional coupling approach. The morphological characteristics of nanoparticles were observed by scanning and transmission electron microscopy. Additionally, their particle size, Zeta potential, and dispersion stability were assessed. The structural characteristics of nanoparticles were analyzed by X-ray diffraction and other techniques. The biological safety of the nanoparticles was evaluated by the CCK-8 assay and hemolysis experiments. Moreover, the targeting performance of UNO-PBNPs towards M2-type macrophages was assessed in vitro. The results showed that the synthesized UNO-PBNPs exhibited uniform cubic morphology, with an average particle size of (202.00±4.21) nm. They were negative charged, well dispersed, and stable. At concentrations ≤ 200 μg/mL, the synthesized UNO-PBNPs led to the hemolysis rate below 5%, demonstrating excellent biocompatibility. The laser confocal imaging results showed that after co-incubation with M2-type macrophages, the FITC-labeled UNO-PBNPs were effectively accumulated in the cells, presenting a distinct fluorescence signal. Quantitative analysis by flow cytometry showed that the intracellular mean fluorescence intensity (6 019.00±346.04) of UNO-PBNPs was higher than that (4 054.00±379.14) of unmodified PBNPs (P < 0.001). In summary, the UNO-PBNPs prepared in this study exhibited a targeting effect on M2-type macrophages, providing a potential method for targeted delivery of PBNPs in the tumor microenvironment and laying a foundation for the remodeling of the tumor immunosuppressive microenvironment.
Ferrocyanides/chemistry*
;
Nanoparticles/chemistry*
;
Macrophages/drug effects*
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Peptides/chemistry*
;
Particle Size
;
Animals
;
Mannose Receptor
;
Mice
;
Lectins, C-Type
;
Mannose-Binding Lectins
;
Receptors, Cell Surface
10.Mechanisms and applications of microbial synthesis of metal nanoparticles.
Xinruo WANG ; Chaoning HU ; Yangyang WANG ; Aoqi SONG ; Rui TANG ; Feng LI ; Hao SONG
Chinese Journal of Biotechnology 2025;41(9):3387-3404
The rapid growth of electronic waste has led to the accumulation of large amounts of valuable metal elements in the environment, causing serious environmental pollution and resource wastage. Compared with pyrometallurgical and hydrometallurgical processes which often result in severe environmental pollution and carbon footprints, microbial synthesis of metal nanoparticles has emerged as a green and environmentally friendly metallurgical technology for recovering valuable metals from electronic waste. This paper first reviews the mechanisms of metal nanoparticle synthesis within different structural compartments of microbial cells. It then introduces the applications of microbially synthesized metal nanoparticles in fields such as environmental remediation, energy production, biocatalysis, and biomedicine. Finally, it discusses the development prospects of microbial synthesis of metal nanoparticles, including exploration of diverse microbial resources and synthesis pathways, yield enhancement, integration of new technologies, and industrialization, aiming to promote further research and application of microbial synthesis of metal nanoparticles.
Metal Nanoparticles/chemistry*
;
Bacteria/metabolism*

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