To prepare peptide-modified chitosan tetramethylprazine nanoparticles(FGF-CS-TMP-NPS) and investigate its reversal effect on multidrug resistance in tumor cells. The pEGF-CS-TMP-NPs were prepared by ion crosslinking method, and their physicochemical properties were investigated. Western blot was used to detect the expression levels of epidermal growth factor receptor(EGFR)(MCF-7, MCF-7/ADR, K562 and K562/ADR) and drug-resistant related protein P-gp. MCF-7/ADR and K562/ADR were selected as cell models. The cytotoxicity of pEGF-CS-TMP-NPs, the multiple of cell resistance to adriamycin, the reversal resistance index of pEGF-CS-TMP-NPs to doxorubicin and the sensitization of pEGF-CS-TMP-NPs to doxorubicin were detected by MTT assay. After MCF-7/ADR and K562/ADR were treated with pEGF-CS-TMP-NPs, the expression changes of P-gp were detected by Western blot. The encapsulation efficiency and drug loading of pEGF-CS-TMP-NPs were 37.66%± 0.53% and 3.25%± 0.34% respectively in HPLC. The nanoparticles showed an average particle size of(150.50±9.3) nm, polymer dispersity index of(0.059±0.007) and Zeta potential of(19.30±2.02) mV as detected by laser particle size analyzer. The nanoparticles were spherical and well dispersed under transmission electron microscope. Western blot results showed that EGFR was positively expressed in MCF-7 and MCF-7/ADR cells, while negatively expressed in K562 and K562/ADR cells. P-gp was highly expressed in MCF-7/ADR and K562/ADR, while negatively expressed in MCF-7 and K562. pEGF-CS-TMP-NPs had a weak effect on MCF-7/ADR and K562/ADR. The adriamycin resistance of MCF-7/ADR cells was 108.36 times, and that of K562/ADR cells was more than 100 times. When IC_(85) of pEGF-CS-TMP-NPs was used as the administration concentration, the reversion index of MCF-7/ADR and K562/ADR cells was 3.68 and 1.87, respectively. pEGF-CS-TMP-NPs could enhance the sensitivity of adriamycin to MCF-7/ADR cells in a positive correlation with the concentration, and the sensitivity was significantly higher than that of K562/ADR cells. Western blot results showed that the expression level of P-gp in MCF-7/ADR cells decreased significantly after treatment with pEGF-CS-TMP-NPs, while the expression level of P-gp in K562/ADR cells did not change significantly. Experimental results show that pEGF-CS-TMP-NPs have an active targeting effect on MCF-7/ADR cells with high EGFR expression, and can effectively reverse the multidrug resistance of MCF-7/ADR cells. Active targeting effect is related to the peptides modification of nanoparticles, and the mechanism of reversing tumor MDR may be achieved by down-regulating the expression level of P-gp.
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http://dx.doi.org/10.19540/j.cnki.cjcmm.20200820.301 | DOI Listing |
Phytomedicine
December 2024
Jiangsu Key Laboratory for Pharmacology and Safety Evaluation of Chinese Materia Medica, School of Pharmacy, Nanjing University of Chinese Medicine, Nanjing 210023, PR China; Jiangsu Joint International Research Laboratory of Chinese Medicine and Regenerative Medicine, Nanjing University of Chinese Medicine, Nanjing 210023, PR China; Jiangsu Collaborative Innovation Center of Traditional Chinese Medicine (TCM) Prevention and Treatment of Tumor, Nanjing University of Chinese Medicine, Nanjing 210023, PR China. Electronic address:
Background: Tetramethylpyrazine (TMP), a key bioactive constituent derived from Ligusticum wallichii Franchat, has demonstrated efficacy in mitigating multidrug resistance (MDR) in human breast cancer (BC) cells. However, the precise mechanisms underlying its action remain poorly understood.
Purpose: Cancer stem cells (CSCs) are widely recognized as the primary contributors to MDR.
Front Pharmacol
December 2024
Department of Biochemistry, Faculty of Medicine, Umm Al-Qura University, Makkah, Saudi Arabia.
Background: Multidrug resistance (MDR), mainly caused by ATP-binding cassette transporters (ABCTs) efflux, makes it difficult for many anticancer drugs to treat breast cancer (BC). Phytochemicals can reverse cancer's MDR by modifying ABC transporter expression and function, as well as working synergistically with anticancer drugs to target other molecules. The reversal effect of the isoquinoline alkaloid coptisine (COP) was assessed on four breast cell lines; Two sensitive MCF-7 cell lines with positive estrogen, androgen, progesterone, and glucocorticoid receptors, as well as MDB-MB-231 cells with negative estrogen, progesterone, and HER2 receptors, and two doxorubicin-resistant cell lines, MCF-7/ADR and MDB-MB-231/ADR.
View Article and Find Full Text PDFBiomol Ther (Seoul)
January 2025
School of Pharmacy, Sungkyunkwan University, Suwon 16419, Republic of Korea.
Bioeng Transl Med
September 2024
School of Biomedical Engineering, Shanghai Jiao Tong University Shanghai People's Republic of China.
Chemotherapy treatment outcomes are severely restricted by multidrug resistance (MDR), in which tumors develop a multiple cross-resistance toward drug involving the pump and nonpump resistance mechanisms, resulting in drug efflux and defending against drug toxicity. Herein, we constructed a pH and near infrared (NIR) light responsive nanomedicine DOX@FG based on gold nanorods (GNRs) that demonstrated the potential to improve chemotherapy outcomes by overcoming MDR. DOX@FG was constructed by conjugating folic acid (FA) and doxorubicin (DOX) derivatives onto GNRs, where the DOX derivatives possessed an acid-labile hydrazone bond.
View Article and Find Full Text PDFFront Oncol
October 2024
Department of Laboratory Medicine, Affiliated Kunshan Hospital of Jiangsu University, Kunshan, Jiangsu, China.
Ferroptosis is considered an effective method to overcome drug-resistant tumors. This study aims to use three FDA-approved biological materials, human serum albumin, D-α-tocopherol succinate, and indocyanine green, to construct a novel biocompatible nanomaterial named HTI-NPs, exploring its effect in drug-resistant breast cancer (MCF-7/ADR cells). The research results indicate that HTI-NPs can selectively inhibit the proliferation of MCF-7/ADR cells , accompanied by upregulating transferrin receptor, generating reactive oxygen species, and downregulating glutathione peroxidase 4.
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