1.Effects of Platycodonis Radix-Curcumae Rhizoma on oral nanoparticle uptake and in vitro inhibition against breast cancer metastasis.
Jiang-Pei SHI ; Rong-Guang ZHANG ; Xiao-Yan GU ; Ying-Wei SUN ; Nian-Ping FENG ; Ying LIU
China Journal of Chinese Materia Medica 2023;48(9):2419-2425
This study combined the herbal pair Platycodonis Radix-Curcumae Rhizoma(PR-CR) possessing an inhibitory effect on tumor cell proliferation and metastasis with the active component of traditional Chinese medicine(TCM) silibinin-loaded nanoparticles(NPs) with a regulatory effect on tumor microenvironment based on the joint effect on tumor cells and tumor microenvironment to inhi-bit cell metastasis. The effects of PR-CR on the cellular uptake of NPs and in vitro inhibition against breast cancer proliferation and metastasis were investigated to provide an experimental basis for improving nanoparticle absorption and enhancing therapeutic effects. Silibinin-loaded lipid-polymer nanoparticles(LPNs) were prepared by the nanoprecipitation method and characterized by transmission electron microscopy. The NPs were spherical or quasi-spherical in shape with obvious core-shell structure. The mean particle size was 107.4 nm, Zeta potential was-27.53 mV. The cellular uptake assay was performed by in vitro Caco-2/E12 coculture cell model and confocal laser scanning microscopy(CLSM), and the results indicated that PR-CR could promote the uptake of NPs. Further, in situ intestinal absorption assay by the CLSM vertical scanning approach showed that PR-CR could promote the absorption of NPs in the enterocytes of mice. The inhibitory effect of NPs on the proliferation and migration of 4T1 cells was analyzed using 4T1 breast cancer cells and co-cultured 4T1/WML2 cells, respectively. The results of the CCK8 assay showed that PR-CR-containing NPs could enhance the inhibition against the proliferation of 4T1 breast cancer cells. The wound healing assay indicated that PR-CR-containing NPs enhanced the inhibition against the migration of 4T1 breast cancer cells. This study enriches the research on oral absorption of TCM NPs and also provides a new idea for utilizing the advantages of TCM to inhibit breast cancer metastasis.
Humans
;
Mice
;
Animals
;
Female
;
Silybin/therapeutic use*
;
Caco-2 Cells
;
Polymers/chemistry*
;
Nanoparticles/chemistry*
;
Cell Line, Tumor
;
Breast Neoplasms/pathology*
;
Tumor Microenvironment
2.Surface modification of multifunctional ferrite magnetic nanoparticles and progress in biomedicine.
Linxue ZHANG ; Nuernisha ALIFU ; Zhongwen LAN ; Zhong YU ; Qifan LI ; Xiaona JIANG ; Chuanjian WU ; Ke SUN
Journal of Biomedical Engineering 2023;40(2):378-383
Magnetic ferrite nanoparticles (MFNPs) have great application potential in biomedical fields such as magnetic resonance imaging, targeted drugs, magnetothermal therapy and gene delivery. MFNPs can migrate under the action of a magnetic field and target specific cells or tissues. However, to apply MFNPs to organisms, further modifications on the surface of MFNPs are required. In this paper, the common modification methods of MFNPs are reviewed, their applications in medical fields such as bioimaging, medical detection, and biotherapy are summarized, and the future application directions of MFNPs are further prospected.
Ferric Compounds
;
Magnetic Resonance Imaging/methods*
;
Magnetics
;
Magnetite Nanoparticles/therapeutic use*
;
Nanoparticles
3.Advances in anti-invasive fungal drug delivery systems.
Zhongyi MA ; Xinyu WANG ; Chong LI
Journal of Zhejiang University. Medical sciences 2023;52(3):318-327
Currently, the first-line drugs for invasive fungal infections (IFI), such as amphotericin B, fluconazole and itraconazole, have drawbacks including poor water solubility, low bioavailability, and severe side effects. Using drug delivery systems is a promising strategy to improve the efficacy and safety of traditional antifungal therapy. Synthetic and biomimetic carriers have greatly facilitated the development of targeted delivery systems for antifungal drugs. Synthetic carrier drug delivery systems, such as liposomes, nanoparticles, polymer micelles, and microspheres, can improve the physicochemical properties of antifungal drugs, prolong their circulation time, enhance targeting capabilities, and reduce toxic side effects. Cell membrane biomimetic drug delivery systems, such as macrophage or red blood cell membrane-coated drug delivery systems, retain the membrane structure of somatic cells and confer various biological functions and specific targeting abilities to the loaded antifungal drugs, exhibiting better biocompatibility and lower toxicity. This article reviews the development of antifungal drug delivery systems and their application in the treatment of IFI, and also discusses the prospects of novel biomimetic carriers in antifungal drug delivery.
Antifungal Agents/therapeutic use*
;
Drug Delivery Systems
;
Amphotericin B/therapeutic use*
;
Liposomes/chemistry*
;
Nanoparticles
;
Drug Carriers
4.Recent Progress of Nano-drug Combined with Chimeric Antigen Receptor T Cell Therapy in the Treatment of Soild Tumors.
Yi LIU ; Ning LI ; Wenyang JIANG ; Qing GENG
Chinese Journal of Lung Cancer 2023;26(1):59-65
Chimeric antigen receptor T cell (CAR-T) therapy has shown remarkable success in treating hematological malignancies. However, CAR-T therapy for solid tumors is still limited due to the unique solid-tumor microenvironment and heterogeneous target antigen expression, which leads to an urgent need of combining other therapies. At present, nano delivery system has become one of the most promising directions for the development of anti-tumor drugs. Based on the background of CAR-T and tumor treatment, we focus on the research progress of nanomedicine combined with CAR-T therapy, and systematically review the strategies and examples in recent years in the aspects of in vivo delivery of mRNA, regulation of tumor microenvironment, combination with photothermal therapy. And we also look forward to the future direction of this filed.
.
Humans
;
Receptors, Chimeric Antigen/therapeutic use*
;
Pharmaceutical Preparations/metabolism*
;
Antigens, Neoplasm/metabolism*
;
Lung Neoplasms/metabolism*
;
Neoplasms/metabolism*
;
T-Lymphocytes
;
Tumor Microenvironment
;
Nanoparticles/therapeutic use*
5.Research progress of new multifunctional bone cement in bone tumor therapy.
Ruilong SUN ; Yunfei LI ; Yongzheng TIAN ; Bo FAN
Chinese Journal of Reparative and Reconstructive Surgery 2023;37(11):1444-1450
OBJECTIVE:
The research progress of new multifunctional bone cement in bone tumor therapy in recent years was reviewed, in order to provide help for the future research of anti-tumor bone cement.
METHODS:
The related literature on the treatment of bone tumors with new multifunctional bone cement at home and abroad in recent years was extensively reviewed and summarized.
RESULTS:
The new multifunctional bone cements include those with the functions of photothermotherapy, magnetic thermotherapy, chemoradiotherapy, and antibacterial after operation, which are discussed from the aspects of anti-tumor, drug controlled release, and cytotoxicity. Controlled drug release has been achieved in multifunctional bone cements by adjusting heat and pH or incorporating particles such as chitosan oligosaccharides and γ-cyclodextrin. At present, multifunctional bone cement with hyperthermia, radiotherapy, and chemotherapy has effectively inhibited the local recurrence and distant metastasis of bone tumors. Broadening the application of bone cement for photothermal and magnetic thermal therapy to deeper bone tumors, investigating more precise controlled release of drug-loaded bone cement, and introducing nanoparticles with both thermal conversion and intrinsic enzymatic activities into bone cement for synergistic anti-tumor therapy are promising research directions.
CONCLUSION
The new multifunctional bone cement inhibits bone tumor cells, promotes new bone formation in bone defects, and prevents incision infection after tumor resection. Certain progress has been made in anti-tumor, antibacterial, drug-controlled release, and reduction of cytotoxicity. Expanding the deeper application range of the new multifunctional bone cement, verifying the safety in clinical application, and focusing on the individualized treatment of the new multifunctional bone cement are the problems that need to be solved in the future.
Humans
;
Bone Cements/therapeutic use*
;
Delayed-Action Preparations
;
Bone Neoplasms/therapy*
;
Anti-Bacterial Agents/therapeutic use*
;
Nanoparticles/therapeutic use*
7.Jug-PLGA-NPs, a New Form of Juglone with Enhanced Efficiency and Reduced Toxicity on Melanoma.
Wu-Heng YUE ; Lan-Qun QIN ; Juan CAI ; Rui MEI ; Han-Qing QIAN ; Zheng-Yun ZOU
Chinese journal of integrative medicine 2022;28(10):909-917
OBJECTIVE:
To verrify the anti-tumor efficacy and toxicity between juglone (Jug) and Jug-loaded PLGA nanoparticles (Jug-PLGA-NPs).
METHODS:
Jug-PLGA-NPs were prepared by ultrasonic emulsification. The anti-tumor activity of Jug (2, 3, 4 µg/mL) and Jug-PLGA-NPs (Jug: 2, 3, 4 µg/mL) in vitro was measured by MTT assay and cell apoptosis analysis. The distribution, anti-tumor effect and biological safety in vivo was evaluated on A375 nude mice.
RESULTS:
With the advantage of good penetration and targeting properties, Jug-PLGA-NPs significantly inhibited proliferation and migration of melanoma cells both in vitro and in vivo (P<0.05 or P<0.01) with acceptable biocompatibility.
CONCLUSIONS
Jug can inhibit the growth of melanoma but is highly toxic. With the advantage of sustained release, tumor targeting, anti-tumor activity and acceptable biological safety, Jug-PLGA-NPs provide a new pharmaceutical form for future application of Jug.
Animals
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Cell Line, Tumor
;
Delayed-Action Preparations/therapeutic use*
;
Drug Carriers/therapeutic use*
;
Melanoma/pathology*
;
Mice
;
Mice, Nude
;
Nanoparticles
;
Naphthoquinones
;
Particle Size
;
Polylactic Acid-Polyglycolic Acid Copolymer/therapeutic use*
8.Tetrahedral framework nucleic acid carrying angiogenic peptide prevents bisphosphonate-related osteonecrosis of the jaw by promoting angiogenesis.
Dan ZHAO ; Dexuan XIAO ; Mengting LIU ; Jiajie LI ; Shuanglin PENG ; Qing HE ; Yue SUN ; Jingang XIAO ; Yunfeng LIN
International Journal of Oral Science 2022;14(1):23-23
The significant clinical feature of bisphosphonate-related osteonecrosis of the jaw (BRONJ) is the exposure of the necrotic jaw. Other clinical manifestations include jaw pain, swelling, abscess, and skin fistula, which seriously affect the patients' life, and there is no radical cure. Thus, new methods need to be found to prevent the occurrence of BRONJ. Here, a novel nanoparticle, tFNA-KLT, was successfully synthesized by us, in which the nanoparticle tetrahedral framework nucleic acid (tFNA) was used for carrying angiogenic peptide, KLT, and then further enhanced angiogenesis. TFNA-KLT possessed the same characteristics as tFNA, such as simple synthesis, stable structure, and good biocompatibility. Meanwhile, tFNA enhanced the stability of KLT and carried more KLT to interact with endothelial cells. First, it was confirmed that tFNA-KLT had the superior angiogenic ability to tFNA and KLT both in vitro and in vivo. Then we apply tFNA-KLT to the prevention of BRONJ. The results showed that tFNA-KLT can effectively prevent the occurrence of BRONJ by accelerating angiogenesis. In summary, the prepared novel nanoparticle, tFNA-KLT, was firstly synthesized by us. It was also firstly confirmed by us that tFNA-KLT significantly enhanced angiogenesis and can effectively prevent the occurrence of BRONJ by accelerating angiogenesis, thus providing a new avenue for the prevention of BRONJ and a new choice for therapeutic angiogenesis.
Angiogenic Proteins/therapeutic use*
;
Bisphosphonate-Associated Osteonecrosis of the Jaw/prevention & control*
;
Endothelial Cells
;
Humans
;
Nanoparticles
;
Nucleic Acids/therapeutic use*
9.Progression on Multifunctional Nanoparticles Interfering with Cell Membrane Transporters-associated Drug Resistance.
Acta Academiae Medicinae Sinicae 2021;43(4):620-627
Multi-drug resistance(MDR)refers to the loss of sensitivity of tumor cells to traditional chemotherapeutics agents under the mediation of various mechanisms,resulting in the reduction of chemotherapy efficacy.Current studies suggest that a variety of factors,including cell membrane transporter-mediated efflux of anti-tumor drugs,special microenvironment in tumor tissue,DNA self-repair and anti-apoptotic process,and epithelial-mesenchymal cell transformation,may contribute to the formation of MDR.Cell membrane transporter-mediated drug efflux refers to an increase in the amount of anti-tumor drug pumped out of the cell through the up-regulation of the ATP-binding cassette transporter on tumor cell membrane,which reduces the concentration of the drug in the cell,thus forming MDR.An effective method to inhibit the efflux pump caused by overexpression of membrane transporters plays an important role in overcoming MDR.As a promising drug delivery system,multifunctional nanoparticles have demonstrated many advantages in antitumor therapy.Meanwhile,nanoparticles with tailored design are capable of overcoming MDR when combined with a variety of strategies.This paper described in detail the studies relevant to the use of multifunctional nano-sized drug delivery system combined with different strategies,such as co-delivery of agents,external responsiveness or target modification for intervention with efflux pump in order to reverse MDR.This paper provides reference for the development of nano-sized drug delivery system and the formulation of reversal strategy in the future.
Antineoplastic Agents/therapeutic use*
;
Cell Membrane
;
Drug Resistance, Multiple
;
Drug Resistance, Neoplasm
;
Humans
;
Membrane Transport Proteins/therapeutic use*
;
Multifunctional Nanoparticles
;
Nanoparticles
;
Neoplasms/drug therapy*
;
Tumor Microenvironment
10.Neuroprotective potential of cerium oxide nanoparticles for focal cerebral ischemic stroke.
Da ZHOU ; Ting FANG ; Lin-Qing LU ; Li YI
Journal of Huazhong University of Science and Technology (Medical Sciences) 2016;36(4):480-486
During the previous years, with the emerging of nanotechnology, the enormous capabilities of nanoparticles have drawn great attention from researchers in terms of their potentials in various aspects of pharmacology. Cerium oxide nanoparticles (nanoceria), considered as one of the most widely used nanomaterials, due to its tempting catalytic antioxidant properties, show a promising potential in diverse disorders, such as cerebral ischemic stroke (CIS), cancer, neurodegenerative and inflammatory diseases. Overwhelming generation of reactive oxygen species (ROS) and reactive nitrogen species (RNS) during cerebral ischemia and reperfusion periods is known to aggravate brain damage via sophisticated cellular and molecular mechanisms, and therefore exploration of the antioxidant capacities of nanoceria becomes a new approach in reducing cerebral ischemic injury. Furthermore, utilizing nanoceria as a drug carrier might display the propensity to overcome limitations or inefficacy of other conceivable neuroprotectants and exhibit synergistic effects. In this review, we emphasize on the principle features of nanoceria and current researches concerning nanoceria as a potential therapeutic agent or carrier in improving the prognosis of CIS.
Antioxidants
;
therapeutic use
;
Brain Ischemia
;
drug therapy
;
Cerium
;
chemistry
;
therapeutic use
;
Humans
;
Nanoparticles
;
chemistry
;
therapeutic use
;
Neuroprotective Agents
;
therapeutic use
;
Oxidative Stress
;
drug effects
;
Reactive Nitrogen Species
;
metabolism
;
Reactive Oxygen Species
;
Stroke
;
drug therapy
;
pathology

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