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Novel therapeutics and drug-delivery approaches in the modulation of glioblastoma stem cell resistance. Ther Deliv 2022; 13:249-273. [PMID: 35615860 DOI: 10.4155/tde-2021-0086] [Citation(s) in RCA: 4] [Impact Index Per Article: 2.0] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/12/2022] Open
Abstract
Glioblastoma (GBM) is a deadly malignancy with a poor prognosis. An important factor contributing to GBM recurrence is high resistance of GBM cancer stem cells (GSCs). While temozolomide (TMZ), has been shown to consistently extend survival, GSCs grow resistant to TMZ through upregulation of DNA damage repair mechanisms and avoidance of apoptosis. Since a single-drug approach has failed to significantly alter prognosis in the past 15 years, unique approaches such as multidrug combination therapy together with distinctive targeted drug-delivery approaches against cancer stem cells are needed. In this review, a rationale for multidrug therapy using a targeted nanotechnology approach that preferentially target GSCs is proposed with discussion and examples of drugs, nanomedicine delivery systems, and targeting moieties.
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Li Y, Chen X, He W, Xia S, Jiang X, Li X, Bai J, Li N, Chen L, Yang B. Apigenin Enhanced Antitumor Effect of Cisplatin in Lung Cancer via Inhibition of Cancer Stem Cells. Nutr Cancer 2020; 73:1489-1497. [PMID: 32757802 DOI: 10.1080/01635581.2020.1802494] [Citation(s) in RCA: 5] [Impact Index Per Article: 1.3] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/25/2022]
Abstract
Cancer stem cell theory has been proposed to explain tumor heterogeneity and the carcinogenesis process. Highly tumorigenic lung cancer stem cells develop resistance to cisplatin (CDDP), a common chemotherapy drug. Herein, we attempted to clarify whether apigenin (API) can improve the antitumor efficiency of CDDP in lung cancer using cancer stem cells. Lung cancer stem cells were identified as CD 133 positive cancer cells in non-small cell lung cancer (NSCLC) A549, H1299 cells and CDDP-resistant NSCLC A549R cells. The cytotoxic effect of API was measured in CDDP-treated A549, H1299, and A549R cells. API repressed CD 133 positive cells and enhanced the antitumor effect of CDDP in A549, H1299, and A549R cells. The synergistic antitumor effect of API and CDDP was blocked by addition of the p53 inhibitor Pifithrin-α, and siRNA targeting the p53 gene in A549R cells. Furthermore, API eliminates CDDP-induced CSC via p53, since A549R cells lacking p53 and Pifithrin-α addition derepressed the decrease in CD 133 positive cells after API treatment in CDDP-treated A549 and A549R cells. The findings indicate that API might eliminate cancer stem cells and enhance the antitumor effects of CDDP in NSCLC via p53.
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Affiliation(s)
- Yunxia Li
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Xin Chen
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Wei He
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Shuyue Xia
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Xiaochuan Jiang
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Xiaoyang Li
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Jiayu Bai
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Nan Li
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Lei Chen
- Department of Respiratory Medicine, Affiliated Center Hospital of Shenyang Medical College, Shenyang, P. R. China
| | - Biao Yang
- Laboratory of Microbiology, School of Basic Medical Science, Shenyang Medical College, Shenyang, P. R. China
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Transcriptional repression of cancer stem cell marker CD133 by tumor suppressor p53. Cell Death Dis 2015; 6:e1964. [PMID: 26539911 PMCID: PMC4670923 DOI: 10.1038/cddis.2015.313] [Citation(s) in RCA: 71] [Impact Index Per Article: 7.9] [Reference Citation Analysis] [Abstract] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 05/17/2015] [Revised: 09/04/2015] [Accepted: 09/21/2015] [Indexed: 12/11/2022]
Abstract
Novel therapeutic strategies are needed to overcome cancer recurrence, metastasis, and resistance to chemo- and radiotherapy. Cancer stem cells (CSCs) are major contributors to the malignant transformation of cells due to their capacity for self-renewal. Although various CSC markers have been identified in several types of tumors, they are primarily used as cancer-prediction markers and for the isolation of CSC populations. CD133, one of the best-characterized CSC markers in distinct solid tumor types, was shown to be correlated with CSC tumor-initiating capacity; however, the regulation of CD133 expression and its function in cancer are poorly understood. Here, we show that CD133 expression is negatively regulated by direct binding of the p53 tumor suppressor protein to a noncanonical p53-binding sequence in the CD133 promoter. Binding of p53 recruits Histone Deacetylase 1 (HDAC1) to the CD133 promoter and subsequently suppresses CD133 expression by reducing histone H3 acetylation. Furthermore, CD133 depletion suppresses tumor cell proliferation, colony formation, and the expression of core stemness transcription factors including NANOG, octamer-binding transcription factor 4 (OCT4), SOX2, and c-MYC. Critically, the anti-proliferative effects of p53 are antagonized by rescue of CD133 expression in a p53 overexpressing cell line, indicating that the tumor suppressive activity of p53 might be mediated by CD133 suppression. Taken together, our results suggest that p53-mediated transcriptional regulation of CD133 is a key underlying mechanism for controlling the growth and tumor-initiating capacity of CSCs and provide a novel perspective on targeting CSCs for cancer therapy.
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Caveolin-1 regulates lung cancer stem-like cell induction and p53 inactivation in carbon nanotube-driven tumorigenesis. Oncotarget 2015; 5:3541-54. [PMID: 24939878 PMCID: PMC4116501 DOI: 10.18632/oncotarget.1956] [Citation(s) in RCA: 34] [Impact Index Per Article: 3.8] [Reference Citation Analysis] [Abstract] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/19/2022] Open
Abstract
Cancer stem cells (CSCs) may represent targets for carcinogenic initiation by chemical and environmental agents. Recent studies have raised a concern over the potential carcinogenicity of carbon nanotubes (CNTs), one of the most commonly used engineered nanomaterials with asbestos-like properties. Here, we show that chronic (6-month) exposure of human lung epithelial cells to single-walled (SW) CNTs at the workplace-relevant concentration induced an emergence of lung CSCs, as indicated by the induction of CSC tumor spheres and side population (SP). These CSCs, which were found to overexpress tumor promoter caveolin-1 (Cav-1), displayed aggressive cancer phenotypes of apoptosis resistance and enhanced cell invasion and migration compared with their non-CSC counterpart. Using gene manipulation strategies, we reveal for the first time that Cav-1 plays an essential role in CSC regulation and aggressiveness of SWCNT-transformed cells partly through p53 dysregulation, consistent with their suggested role by microarray and gene ontology analysis. Cav-1 not only promoted tumorigenesis in a xenograft mouse model but also metastasis of the transformed cells to neighboring tissues. Since CSCs are crucial to the initiation and early development of carcinogenesis, our findings on CSC induction by SWCNTs and Cav-1 could aid in the early detection and risk assessment of the disease.
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Sharma B, Ma W, Adjei IM, Panyam J, Dimitrijevic S, Labhasetwar V. Nanoparticle-mediated p53 gene therapy for tumor inhibition. Drug Deliv Transl Res 2015; 1:43-52. [PMID: 22553503 DOI: 10.1007/s13346-010-0008-9] [Citation(s) in RCA: 22] [Impact Index Per Article: 2.4] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/05/2023]
Abstract
The p53 tumor suppressor gene is mutated in 50% of human cancers, resulting in more aggressive disease with greater resistance to chemotherapy and radiation therapy. Advances in gene therapy technologies offer a promising approach to restoring p53 function. We have developed polymeric nanoparticles (NPs), based on poly (lactic-co-glycolic acid), that provide sustained intracellular delivery of plasmid DNA, resulting in sustained gene expression without vector-associated toxicity. Our previous studies with p53 gene-loaded NPs (p53NPs) demonstrated sustained antiproliferative effects in cancer cells in vitro. The objective of this study was to evaluate the efficacy of p53NPs in vivo. Tumor xenografts in mice were established with human p53-null prostate cancer cells. Animals were treated with p53NPs by either local (intratumoral injection) or systemic (intravenous) administration. Controls included saline, p53 DNA alone, and control NPs. Mice treated with local injections of p53NPs demonstrated significant tumor inhibition and improved animal survival compared with controls. Tumor inhibition corresponded to sustained and greater p53 gene and protein expression in tumors treated with p53NPs than with p53 DNA alone. A single intravenous dose of p53NPs was successful in reducing tumor growth and improving animal survival, although not to the same extent as with local injections. Imaging studies showed that NPs accumulate in tumor tissue after intravenous injection; however, further improvement in tumor targeting efficiency of p53NPs may be needed for better outcome. In conclusion, the NP-mediated p53 gene therapy is effective in tumor growth inhibition. NPs may be developed as nonviral vectors for cancer and other genetic diseases.
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Affiliation(s)
- Blanka Sharma
- Department of Biomedical Engineering, Lerner Research Institute, Cleveland Clinic, 9500 Euclid Avenue, Cleveland, OH 44195, USA
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Cieślar-Pobuda A, Bäck M, Magnusson K, Jain MV, Rafat M, Ghavami S, Nilsson KPR, Łos MJ. Cell type related differences in staining with pentameric thiophene derivatives. Cytometry A 2014; 85:628-35. [DOI: 10.1002/cyto.a.22437] [Citation(s) in RCA: 22] [Impact Index Per Article: 2.2] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 11/12/2013] [Revised: 12/04/2013] [Accepted: 12/24/2013] [Indexed: 11/09/2022]
Affiliation(s)
- Artur Cieślar-Pobuda
- Department of Clinical and Experimental Medicine (IKE); Division of Cell Biology, and Integrative Regenerative Medicine Center (IGEN), Linköping University; Linköping Sweden
- Biosystems Group; Institute of Automatic Control; Silesian University of Technology; Gliwice Poland
| | - Marcus Bäck
- Department of Chemistry; IFM, Linköping University; Linköping Sweden
| | - Karin Magnusson
- Department of Chemistry; IFM, Linköping University; Linköping Sweden
| | - Mayur V. Jain
- Department of Clinical and Experimental Medicine (IKE); Division of Cell Biology, and Integrative Regenerative Medicine Center (IGEN), Linköping University; Linköping Sweden
| | - Mehrdad Rafat
- Department of Clinical and Experimental Medicine (IKE); Division of Cell Biology, and Integrative Regenerative Medicine Center (IGEN), Linköping University; Linköping Sweden
| | - Saeid Ghavami
- Department of Human Anatomy and Cell Science; Manitoba Institute of Child Health; Manitoba Canada
- Department of Physiology; St. Boniface Research Centre; University of Manitoba; Manitoba Canada
| | | | - Marek J. Łos
- Department of Clinical and Experimental Medicine (IKE); Division of Cell Biology, and Integrative Regenerative Medicine Center (IGEN), Linköping University; Linköping Sweden
- Department of Pathology; Pomeranian Medical University; Szczecin Poland
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A miR-34a-SIRT6 axis in the squamous cell differentiation network. EMBO J 2013; 32:2248-63. [PMID: 23860128 DOI: 10.1038/emboj.2013.156] [Citation(s) in RCA: 109] [Impact Index Per Article: 9.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/11/2012] [Accepted: 06/17/2013] [Indexed: 01/15/2023] Open
Abstract
Squamous cell carcinomas (SCCs) are highly heterogeneous tumours, resulting from deranged expression of genes involved in squamous cell differentiation. Here we report that microRNA-34a (miR-34a) functions as a novel node in the squamous cell differentiation network, with SIRT6 as a critical target. miR-34a expression increases with keratinocyte differentiation, while it is suppressed in skin and oral SCCs, SCC cell lines, and aberrantly differentiating primary human keratinocytes (HKCs). Expression of this miRNA is restored in SCC cells, in parallel with differentiation, by reversion of genomic DNA methylation or wild-type p53 expression. In normal HKCs, the pro-differentiation effects of increased p53 activity or UVB exposure are miR-34a-dependent, and increased miR-34a levels are sufficient to induce differentiation of these cells both in vitro and in vivo. SIRT6, a sirtuin family member not previously connected with miR-34a function, is a direct target of this miRNA in HKCs, and SIRT6 down-modulation is sufficient to reproduce the miR-34a pro-differentiation effects. The findings are of likely biological significance, as SIRT6 is oppositely expressed to miR-34a in normal keratinocytes and keratinocyte-derived tumours.
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Regulation of stem cell plasticity: mechanisms and relevance to tissue biology and cancer. Mol Ther 2012; 20:887-97. [PMID: 22314288 DOI: 10.1038/mt.2012.2] [Citation(s) in RCA: 20] [Impact Index Per Article: 1.7] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 02/07/2023] Open
Abstract
Embryonic stem cells (ESCs) are associated with a high degree of plasticity, which allows them to self-renew and differentiate into every somatic cell. During differentiation, ESCs follow a hierarchically organized pattern towards tissue specificity, which ultimately results in permanent cell cycle arrest and a loss of cellular plasticity. In contrast to their normal somatic counterparts, cancer cells retain elevated levels of plasticity that include switches between epithelial and mesenchymal phenotypes. Transitions between these cell stages have lately been linked to the reacquisition of stem cell features during cellular reprogramming and dedifferentiation in normal and neoplastic cells. In this review, we discuss the key factors and their interplay that is needed to regain a stem cell stage with a particular emphasis put on the impact of cell cycle regulation. Apart from mechanistic insights into the emerging fundamental processes of stem cell plasticity and capacity to transdifferentiate, we also highlight implications of these concepts for tissue biology, tumorigenesis, and cancer therapy.
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Abstract
AIM: To investigate the expression of the MRP, MDR1 and LRP genes in gastric cancer and to analyze their clinical significance.
METHODS: The mRNA expression of the MRP, MDR1 and LRP genes in 47 gastric cancer specimens and 17 normal gastric mucosal specimens was detected by real-time fluorescence quantitative PCR (FQ-PCR).
RESULTS: The expression of the MRP, MDR1 and LRP genes was significantly higher in gastric cancer than in normal gastric mucosal tissue. Positive expression of the MRP gene was correlated with tumor differentiation and stage, while LRP expression was correlated with lymph nodes metastasis. The expression level of the MRP gene increased by 30% in patients with progressing disease.
CONCLUSION: The expression of MRP, LRP and MDR1 genes was significantly higher in gastric cancer than in normal gastric tissue and may be associated with multi-drug resistance in gastric cancer.
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Introduction of SV40ER and hTERT into mammospheres generates breast cancer cells with stem cell properties. Oncogene 2011; 31:1896-909. [PMID: 21874052 DOI: 10.1038/onc.2011.378] [Citation(s) in RCA: 28] [Impact Index Per Article: 2.2] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 12/21/2022]
Abstract
Emerging evidence suggests that cancers arise in stem/progenitor cells. Yet, the requirements for transformation of these primitive cells remains poorly understood. In this study, we have exploited the 'mammosphere' system that selects for primitive mammary stem/progenitor cells to explore their potential and requirements for transformation. Introduction of Simian Virus 40 Early Region and hTERT into mammosphere-derived cells led to the generation of NBLE, an immortalized mammary epithelial cell line. The NBLEs largely comprised of bi-potent progenitors with long-term self-renewal and multi-lineage differentiation potential. Clonal and karyotype analyses revealed the existence of heterogeneous population within NBLEs with varied proliferation, differentiation and sphere-forming potential. Significantly, injection of NBLEs into immunocompromised mice resulted in the generation of invasive ductal adenocarcinomas. Further, these cells harbored a sub-population of CD44(+)/CD24(-) fraction that alone had sphere- and tumor-initiating potential and resembled the breast cancer stem cell gene signature. Interestingly, prolonged in vitro culturing led to their further enrichment. The NBLE cells also showed increased expression of stemness and epithelial to mesenchymal transition markers, deregulated self-renewal pathways, activated DNA-damage response and cancer-associated chromosomal aberrations-all of which are likely to have contributed to their tumorigenic transformation. Thus, unlike previous in vitro transformation studies that used adherent, more differentiated human mammary epithelial cells our study demonstrates that the mammosphere-derived, less-differentiated cells undergo tumorigenic conversion with only two genetic elements, without requiring oncogenic Ras. Moreover, the striking phenotypic and molecular resemblance of the NBLE-generated tumors with naturally arising breast adenocarcinomas supports the notion of a primitive breast cell as the origin for this subtype of breast cancer. Finally, the NBLEs represent a heterogeneous population of cells with striking plasticity, capable of differentiation, self-renewal and tumorigenicity, thus offering a unique model system to study the molecular mechanisms involved with these processes.
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Ruan XL, Li YJ, Wu Q, Liao LF, Xu H. P21 suppresses cell proliferation and down-regulates POLD1 expression in human gastric cancer cell line MGC-803. Shijie Huaren Xiaohua Zazhi 2011; 19:1990-1995. [DOI: 10.11569/wcjd.v19.i19.1990] [Citation(s) in RCA: 2] [Impact Index Per Article: 0.2] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Journal Information] [Submit a Manuscript] [Subscribe] [Scholar Register] [Indexed: 02/06/2023] Open
Abstract
AIM: To investigate whether and how P21 regulates POLD1 expression in human gastric cancer cell line MGC-803 and to find new clues to blocking the malignant proliferation of cancer cells.
METHODS: MGC-803 cells were divided into three groups: blank control group (untransfected cells), negative control group (cells transfected with an empty vector pXJ41-neo), and experimental group (cells transfected with a eukaryotic expression plasmid pXJ41-p21). After transfection, cell proliferation was detected by MTT assay; cell apoptosis was detected by flow cytometry; and the mRNA and protein expression was detected by quantitative real-time PCR and Western blot, respectively.
RESULTS: Compared to the two control groups, cell proliferation was significantly inhibited, cell apoptosis was increased (11.36 ± 0.51 vs 7.39 ± 0.17, 7.69 ± 0.47, F = 85.338, P < 0.05), and the mRNA and protein expression of POLD1 was inhibited in the experimental group. In addition, the relative expression levels of cyclin E and Rb1 increased, that of CDK2 decreased, and that of c-myc showed little change in the experimental group when compared to the two control groups.
CONCLUSION: P21 can suppress cell proliferation and promote apoptosis in human gastric cancer cell line MGC-803. P21 can also suppress POLD1 expression possibly by regulating the expression of CDK2, cyclin E, Rb1 or other cell cycle factors in MGC-803 cells.
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Abstract
Understanding the complexity of cancer depends on an elucidation of the underlying regulatory networks, at the cellular and intercellular levels and in their temporal dimension. This Opinion article focuses on the multilevel crosstalk between the Notch pathway and the p53 and p63 pathways. These two coordinated signalling modules are at the interface of external damaging signals and control of stem cell potential and differentiation. Positive or negative reciprocal regulation of the two pathways can vary with cell type and cancer stage. Therefore, selective or combined targeting of the two pathways could improve the efficacy and reduce the toxicity of cancer therapies.
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Affiliation(s)
- G Paolo Dotto
- Department of Biochemistry, University of Lausanne, Epalinges CH-1066, Switzerland.
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