Literature DB >> 33657950

Combined delivery of salinomycin and docetaxel by dual-targeting gelatinase nanoparticles effectively inhibits cervical cancer cells and cancer stem cells.

Qin Wang1, Ying-Tzu Yen1, Chen Xie2, Fangcen Liu3, Qin Liu1, Jia Wei1, Lixia Yu1, Lifeng Wang1, Fanyan Meng1, Rutian Li1, Baorui Liu1.   

Abstract

Intra-tumor heterogeneity is widely accepted as one of the key factors, which hinders cancer patients from achieving full recovery. Especially, cancer stem cells (CSCs) may exhibit self-renewal capacity, which makes it harder for complete elimination of tumor. Therefore, simultaneously inhibiting CSCs and non-CSCs in tumors becomes a promising strategy to obtain sustainable anticancer efficacy. Salinomycin (Sal) was reported to be critical to inhibit CSCs. However, the poor bioavailability and catastrophic side effects brought about limitations to clinical practice. To solve this problem, we previously constructed gelatinase-stimuli nanoparticles composed of nontoxic, biocompatible polyethylene glycol-polycaprolactone (PEG-PCL) copolymer with a gelatinase-cleavable peptide Pro-Val-Gly-Leu-Iso-Gly (PVGLIG) inserted between the two blocks of the copolymer. By applying our "smart" gelatinase-responsive nanoparticles for Sal delivery, we have demonstrated specific accumulation in tumor, anti-CSCs ability and reduced toxicity of Sal-NPs in our previous study. In the present study, we synthesized Sal-Docetaxel-loaded gelatinase-stimuli nanoparticles (Sal-Doc NP) and confirmed single emulsion as the optimal method of producing Sal-Doc NPs (Sal-Doc SE-NP) in comparison with nanoprecipitation. Sal-Doc SE-NPs inhibited both CSCs and non-CSCs in mice transplanted with cervical cancer, and might be associated with enhanced restriction of epithelial-mesenchymal transition (EMT) pathway. Besides, the tumorigenic capacity and growing speed were obviously suppressed in Sal-Doc-SE-NPs-treated group in rechallenge experiment. Our results suggest that Sal-Doc-loaded gelatinase-stimuli nanoparticles could be a promising strategy to enhance antitumor efficacy and reduce side effects by simultaneously suppressing CSCs and non-CSCs.

Entities:  

Keywords:  Salinomycin; cancer cells; cancer stem cells; docetaxel; nanoparticles

Mesh:

Substances:

Year:  2021        PMID: 33657950      PMCID: PMC7935125          DOI: 10.1080/10717544.2021.1886378

Source DB:  PubMed          Journal:  Drug Deliv        ISSN: 1071-7544            Impact factor:   6.419


  53 in total

1.  The eradication of breast cancer and cancer stem cells using octreotide modified paclitaxel active targeting micelles and salinomycin passive targeting micelles.

Authors:  Yang Zhang; Hua Zhang; Xueqing Wang; Jiancheng Wang; Xuan Zhang; Qiang Zhang
Journal:  Biomaterials       Date:  2011-10-22       Impact factor: 12.479

2.  Salinomycin sensitizes antimitotic drugs-treated cancer cells by increasing apoptosis via the prevention of G2 arrest.

Authors:  Ju-Hwa Kim; Hye-In Yoo; Han Sung Kang; Jungsil Ro; Sungpil Yoon
Journal:  Biochem Biophys Res Commun       Date:  2012-01-05       Impact factor: 3.575

3.  NIR-Light-Activated Combination Therapy with a Precise Ratio of Photosensitizer and Prodrug Using a Host-Guest Strategy.

Authors:  Hongzhong Chen; Xiaowei Zeng; Huijun Phoebe Tham; Soo Zeng Fiona Phua; Wei Cheng; Wenfeng Zeng; Haoran Shi; Lin Mei; Yanli Zhao
Journal:  Angew Chem Int Ed Engl       Date:  2019-05-02       Impact factor: 15.336

4.  A double-negative feedback loop between DEAD-box protein DDX21 and Snail regulates epithelial-mesenchymal transition and metastasis in breast cancer.

Authors:  Hao Zhang; Yanqiu Zhang; Chen Chen; Xiaoyun Zhu; Chao Zhang; Yuanzheng Xia; Yucheng Zhao; Ourania M Andrisani; Lingyi Kong
Journal:  Cancer Lett       Date:  2018-08-27       Impact factor: 8.679

5.  Salinomycin induces calpain and cytochrome c-mediated neuronal cell death.

Authors:  W Boehmerle; M Endres
Journal:  Cell Death Dis       Date:  2011-06-02       Impact factor: 8.469

6.  Combined using of paclitaxel and salinomycin active targeting nanostructured lipid carriers against non-small cell lung cancer and cancer stem cells.

Authors:  Jianwen Zhou; Mingshuang Sun; Shanshan Jin; Li Fan; Wenquan Zhu; Xiaoyu Sui; Lixin Cao; Chunrong Yang; Cuiyan Han
Journal:  Drug Deliv       Date:  2019-12       Impact factor: 6.419

7.  Enhanced and Prolonged Antitumor Effect of Salinomycin-Loaded Gelatinase-Responsive Nanoparticles via Targeted Drug Delivery and Inhibition of Cervical Cancer Stem Cells.

Authors:  Qin Wang; Fangcen Liu; Lifeng Wang; Chen Xie; Puyuan Wu; Shiyao Du; Shujuan Zhou; Zhichen Sun; Qin Liu; Lixia Yu; Baorui Liu; Rutian Li
Journal:  Int J Nanomedicine       Date:  2020-02-26

8.  TSPAN1: A Novel Protein Involved in Head and Neck Squamous Cell Carcinoma Chemoresistance.

Authors:  Yoelsis Garcia-Mayea; Cristina Mir; Laia Carballo; Josep Castellvi; Jordi Temprana-Salvador; Juan Lorente; Sergi Benavente; Juana M García-Pedrero; Eva Allonca; Juan P Rodrigo; Matilde E LLeonart
Journal:  Cancers (Basel)       Date:  2020-11-05       Impact factor: 6.639

9.  Snail and Slug collaborate on EMT and tumor metastasis through miR-101-mediated EZH2 axis in oral tongue squamous cell carcinoma.

Authors:  Min Zheng; Ya-ping Jiang; Wei Chen; Kai-de Li; Xin Liu; Shi-yu Gao; Hao Feng; Sha-sha Wang; Jian Jiang; Xiang-rui Ma; Xiao Cen; Ya-jie Tang; Yu Chen; Yun-feng Lin; Ya-ling Tang; Xin-hua Liang
Journal:  Oncotarget       Date:  2015-03-30
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  8 in total

Review 1.  Breaking the niche: multidimensional nanotherapeutics for tumor microenvironment modulation.

Authors:  K Laxmi Swetha; Kavya Sree Maravajjala; Shyh-Dar Li; Manu Smriti Singh; Aniruddha Roy
Journal:  Drug Deliv Transl Res       Date:  2022-06-13       Impact factor: 4.617

2.  [Targeted killing of CD133+ lung cancer stem cells using paclitaxel-loaded PLGA-PEG nanoparticles with CD133 aptamers].

Authors:  L Pang; X Huang; L Zhu; H Xiao; M Li; H Guan; J Gao; H Jin
Journal:  Nan Fang Yi Ke Da Xue Xue Bao       Date:  2022-01-20

3.  Synthesis and Characterization of Salinomycin-Loaded High-Density Lipoprotein and Its Effects on Cervical Cancer Cells and Cervical Cancer Stem Cells.

Authors:  Xirui Yin; Yuhui Lu; Miao Zou; Liuli Wang; Xuan Zhou; Yingyu Zhang; Manman Su
Journal:  Int J Nanomedicine       Date:  2021-09-17

4.  The synergistic anticancer effect of salinomycin combined with cabazitaxel in CD44+ prostate cancer cells by downregulating wnt, NF-κB and AKT signaling.

Authors:  Suat Erdogan; Riza Serttas; Kader Turkekul; Ilker Dibirdik
Journal:  Mol Biol Rep       Date:  2022-06-15       Impact factor: 2.742

5.  In situ gelatinase-responsive and thermosensitive nanocomplex for local therapy of gastric cancer with peritoneal metastasis.

Authors:  Xinyue Wang; Jiahui Gao; Chunhua Li; Chen Xu; Xiang Li; Fanyan Meng; Qin Liu; Qin Wang; Lixia Yu; Baorui Liu; Rutian Li
Journal:  Mater Today Bio       Date:  2022-05-31

Review 6.  Cancer Stem Cells and Their Possible Implications in Cervical Cancer: A Short Review.

Authors:  Riccardo Di Fiore; Sherif Suleiman; Rosa Drago-Ferrante; Yashwanth Subbannayya; Francesca Pentimalli; Antonio Giordano; Jean Calleja-Agius
Journal:  Int J Mol Sci       Date:  2022-05-05       Impact factor: 6.208

7.  Targeted Codelivery of Prodigiosin and Simvastatin Using Smart BioMOF: Functionalization by Recombinant Anti-VEGFR1 scFv.

Authors:  Somayyeh Mirzaeinia; Sedighe Zeinali; Nediljko Budisa; Hamid Reza Karbalaei-Heidari
Journal:  Front Bioeng Biotechnol       Date:  2022-03-24

Review 8.  Natural Products-Based Nanoformulations: A New Approach Targeting CSCs to Cancer Therapy.

Authors:  Wenhao Liao; Yuchen Li; Jing Wang; Maoyuan Zhao; Nianzhi Chen; Qiao Zheng; Lina Wan; Yu Mou; Jianyuan Tang; Zhilei Wang
Journal:  Int J Nanomedicine       Date:  2022-09-14
  8 in total

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