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de Souza TA, Pereira LHA, Alves AF, Dourado D, Lins JDS, Scotti MT, Scotti L, Abreu LS, Tavares JF, Silva MS. Jatropha Diterpenes: An Updated Review Concerning Their Structural Diversity, Therapeutic Performance, and Future Pharmaceutical Applications. Pharmaceuticals (Basel) 2024; 17:1399. [PMID: 39459038 PMCID: PMC11510188 DOI: 10.3390/ph17101399] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 09/20/2024] [Revised: 10/11/2024] [Accepted: 10/11/2024] [Indexed: 10/28/2024] Open
Abstract
The Euphorbiaceae family is a rich source of bioactive terpenoids. Among its genera, Jatropha is a conspicuous producer of diterpenes and includes approximately 175 species, many of which have medicinal uses. To date, 140 diterpenes from Jatropha (JTDs) have been reported. Given their structural diversity and notable biological activities, this work aims to highlight the pharmaceutical potential of JTDs. To achieve this goal, an extensive literature review was conducted, encompassing studies on structural elucidation through NMR and pharmacological assays, both in vitro and in vivo. Based on 132 selected papers, a thorough discussion is presented on the biosynthesis, extraction, isolation, and structural characterization of JTDs, including a compilation of their 13C NMR chemical shifts. The review also covers their synthetic production and biological effects. Additionally, an in silico analysis predicting the drug-likeness of 141 JTDs was carried out. Notably, the occurrence of macrocyclic diterpenes has doubled in the past decade, and the summary of their NMR data provides a useful resource for future research. Furthermore, 21 distinct pharmacological activities were identified, with potent cytotoxic effects targeting new molecular pathways being particularly significant. Recent advances highlight the contributions of modern approaches in organic synthesis and the pharmacological evaluation of natural products. The drug-likeness analysis identified JTD classes and compounds with favorable physicochemical and ADMET features for pharmaceutical development. In light of these findings, the use of nanotechnology is proposed as a future direction for continued research on JTDs, a fascinating class of natural compounds. This work opens up new avenues for the study of Euphorbiaceae species, particularly the Jatropha genus and its bioactive compounds.
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Affiliation(s)
- Thalisson A. de Souza
- Multi-User Characterization and Analysis Laboratory, Research Institute for Drugs and Medicines (IpeFarM), Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (T.A.d.S.); (L.H.A.P.); (J.d.S.L.); (J.F.T.)
| | - Luiz H. A. Pereira
- Multi-User Characterization and Analysis Laboratory, Research Institute for Drugs and Medicines (IpeFarM), Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (T.A.d.S.); (L.H.A.P.); (J.d.S.L.); (J.F.T.)
| | - Alan F. Alves
- Laboratory of Cheminformatics, Program of Post-Graduation on Natural and Synthetic Bioactive Products (PgPNSB), Health Sciences Center, Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (A.F.A.); (M.T.S.); (L.S.)
| | - Douglas Dourado
- Department of Immunology, Instituto Aggeu Magalhães, Fiocruz, Recife 50670-420, Brazil;
| | - Jociano da S. Lins
- Multi-User Characterization and Analysis Laboratory, Research Institute for Drugs and Medicines (IpeFarM), Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (T.A.d.S.); (L.H.A.P.); (J.d.S.L.); (J.F.T.)
| | - Marcus T. Scotti
- Laboratory of Cheminformatics, Program of Post-Graduation on Natural and Synthetic Bioactive Products (PgPNSB), Health Sciences Center, Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (A.F.A.); (M.T.S.); (L.S.)
| | - Luciana Scotti
- Laboratory of Cheminformatics, Program of Post-Graduation on Natural and Synthetic Bioactive Products (PgPNSB), Health Sciences Center, Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (A.F.A.); (M.T.S.); (L.S.)
| | - Lucas S. Abreu
- Department of Organic Chemistry, Universidade Federal Fluminense, Niterói 24220-900, Brazil;
| | - Josean F. Tavares
- Multi-User Characterization and Analysis Laboratory, Research Institute for Drugs and Medicines (IpeFarM), Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (T.A.d.S.); (L.H.A.P.); (J.d.S.L.); (J.F.T.)
| | - Marcelo S. Silva
- Multi-User Characterization and Analysis Laboratory, Research Institute for Drugs and Medicines (IpeFarM), Universidade Federal da Paraíba, João Pessoa 58051-900, Brazil; (T.A.d.S.); (L.H.A.P.); (J.d.S.L.); (J.F.T.)
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Brankiewicz-Kopcinska W, Kallingal A, Krzemieniecki R, Baginski M. Targeting shelterin proteins for cancer therapy. Drug Discov Today 2024; 29:104056. [PMID: 38844065 DOI: 10.1016/j.drudis.2024.104056] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/19/2024] [Revised: 05/17/2024] [Accepted: 05/31/2024] [Indexed: 06/12/2024]
Abstract
As a global health challenge, cancer prompts continuous exploration for innovative therapies that are also based on new targets. One promising avenue is targeting the shelterin protein complex, a safeguard for telomeres crucial in preventing DNA damage. The role of shelterin in modulating ataxia-telangiectasia mutated (ATM) and ataxia-telangiectasia and Rad3-related (ATR) kinases, key players in the DNA damage response (DDR), establishes its significance in cancer cells. Disrupting these defence mechanisms of shelterins, especially in cancer cells, renders telomeres vulnerable, potentially leading to genomic instability and hindering cancer cell survival. In this review, we outline recent approaches exploring shelterins as potential anticancer targets, highlighting the prospect of developing selective molecules to exploit telomere vulnerabilities toward new innovative cancer treatments.
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Affiliation(s)
- Wioletta Brankiewicz-Kopcinska
- Department of Pharmaceutical Technology and Biochemistry, Gdansk University of Technology, G. Narutowicza St 11/12, 80-233 Gdansk, Poland; Department of Medical Genetics, Institute of Clinical Medicine, University of Oslo, Kirkeveien 166, 0450 Oslo, Norway.
| | - Anoop Kallingal
- Department of Pharmaceutical Technology and Biochemistry, Gdansk University of Technology, G. Narutowicza St 11/12, 80-233 Gdansk, Poland
| | - Radoslaw Krzemieniecki
- Department of Pharmaceutical Technology and Biochemistry, Gdansk University of Technology, G. Narutowicza St 11/12, 80-233 Gdansk, Poland
| | - Maciej Baginski
- Department of Pharmaceutical Technology and Biochemistry, Gdansk University of Technology, G. Narutowicza St 11/12, 80-233 Gdansk, Poland.
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Ng YB, Akincilar SC. Shaping DNA damage responses: Therapeutic potential of targeting telomeric proteins and DNA repair factors in cancer. Curr Opin Pharmacol 2024; 76:102460. [PMID: 38776747 DOI: 10.1016/j.coph.2024.102460] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [MESH Headings] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 12/10/2022] [Revised: 10/06/2023] [Accepted: 10/11/2023] [Indexed: 05/25/2024]
Abstract
Shelterin proteins regulate genomic stability by preventing inappropriate DNA damage responses (DDRs) at telomeres. Unprotected telomeres lead to persistent DDR causing cell cycle inhibition, growth arrest, and apoptosis. Cancer cells rely on DDR to protect themselves from DNA lesions and exogenous DNA-damaging agents such as chemotherapy and radiotherapy. Therefore, targeting DDR machinery is a promising strategy to increase the sensitivity of cancer cells to existing cancer therapies. However, the success of these DDR inhibitors depends on other mutations, and over time, patients develop resistance to these therapies. This suggests the need for alternative approaches. One promising strategy is co-inhibiting shelterin proteins with DDR molecules, which would offset cellular fitness in DNA repair in a mutation-independent manner. This review highlights the associations and dependencies of the shelterin complex with the DDR proteins and discusses potential co-inhibition strategies that might improve the therapeutic potential of current inhibitors.
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Affiliation(s)
- Yu Bin Ng
- Laboratory of NFκB Signalling, Institute of Molecular and Cell Biology (IMCB), Agency for Science, Technology and Research (A∗STAR), 61 Biopolis Drive, Proteos, Singapore 138673, Republic of Singapore
| | - Semih Can Akincilar
- Laboratory of NFκB Signalling, Institute of Molecular and Cell Biology (IMCB), Agency for Science, Technology and Research (A∗STAR), 61 Biopolis Drive, Proteos, Singapore 138673, Republic of Singapore.
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Huang L, Ma B, Zhang C, Shi J, Shen R, Zhang E, Lian C, Wang C, Liu J. Unveiling poly(rC)-binding protein 2 as the target protein for curcusone C against prostate cancer: mechanism validation through click chemistry-activity based proteomics profiling approach. BMC Cancer 2023; 23:957. [PMID: 37814239 PMCID: PMC10563230 DOI: 10.1186/s12885-023-11467-0] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Grants] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 04/20/2023] [Accepted: 10/01/2023] [Indexed: 10/11/2023] Open
Abstract
BACKGROUND Prostate cancer is a disease that seriously troubles men. However, there are some inevitable limitations in interventional therapy for prostate cancer patients at present, most of which are caused by low selectivity and high toxic side effects due to unclear drug targets. In this study, we identified the target protein of Curcusone C with anti-prostate cancer potential activity and verified its target and mechanism of action. METHODS Click chemistry-activity based proteomics profiling (CC-ABPP) method was used to find target protein of Curcusone C against prostate cancer. Competitive CC-ABPP, drug affinity responsive target stability (DARTS) and surface plasmon resonance (SPR) methods were used to verifying the target protein. Moreover, potential mechanism was validated by western blot in vitro and by hematoxylin-eosin (HE) staining, detection of apoptosis in tumor tissue (TUNEL), and immunohistochemical (IHC) in vivo. RESULTS We found that poly(rC)-binding protein 2 (PCBP2) was the target protein of Curcusone C. In addition, Curcusone C might disrupt the Bax/Bcl-2 balance in PC-3 cells by inhibiting the expression of the target protein PCBP2, thereby inducing mitochondrial damage and activation of the mitochondrial apoptosis pathway, and ultimately inducing apoptosis of prostate cancer cells. CONCLUSIONS Curcusone C is a potential compound with anti-prostate cancer activity, and this effect occurs by targeting the PCBP2 protein, which in turn may affect the TGF/Smad signaling pathway and Bax/Bcl-2 balance. Our results laid a material and theoretical foundation for Curcusone C, to be widely used in anti-prostate cancer.
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Affiliation(s)
- Lan Huang
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Buqing Ma
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Chong Zhang
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Jiaqi Shi
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Rui Shen
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Erci Zhang
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Chenlei Lian
- School of medicine, Huaqiao University, Quanzhou, 362021, China
| | - Cuifang Wang
- Quanzhou Normal University, Quanzhou, 362000, China.
| | - Jieqing Liu
- School of medicine, Huaqiao University, Quanzhou, 362021, China.
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Yang Q, Nie Z, Zhu Y, Hao M, Liu S, Ding X, Wang F, Wang F, Geng X. Inhibition of TRF2 Leads to Ferroptosis, Autophagic Death, and Apoptosis by Causing Telomere Dysfunction. OXIDATIVE MEDICINE AND CELLULAR LONGEVITY 2023; 2023:6897268. [PMID: 37113742 PMCID: PMC10129434 DOI: 10.1155/2023/6897268] [Citation(s) in RCA: 0] [Impact Index Per Article: 0] [Reference Citation Analysis] [Abstract] [Track Full Text] [Figures] [Subscribe] [Scholar Register] [Received: 09/25/2022] [Revised: 10/23/2022] [Accepted: 02/04/2023] [Indexed: 04/29/2023]
Abstract
Background Gastric cancer (GC) is an aggressive malignancy with a high mortality rate and poor prognosis. Telomeric repeat-binding factor 2 (TRF2) is a critical telomere protection protein. Emerging evidence indicates that TRF2 may be an essential treatment option for GC; however, the exact mechanism remains largely unknown. Objective We aimed to explore the role of TRF2 in GC cells. The function and molecular mechanisms of TRF2 in the pathogenesis of GC were mainly discussed in this study. Methods Relevant data from GEPIA and TCGA databases regarding TRF2 gene expression and its prognostic significance in GC samples were analyzed. Analysis of 53BP1 foci at telomeres by immunofluorescence, metaphase spreads, and telomere-specific FISH analysis was carried out to explore telomere damage and dysfunction after TRF2 depletion. CCK8 cell proliferation, trypan blue staining, and colony formation assay were performed to evaluate cell survival. Apoptosis and cell migration were determined with flow cytometry and scratch-wound healing assay, respectively. qRT-PCR and Western blotting were carried out to analyze the mRNA and protein expression levels after TRF2 depletion on apoptosis, autophagic death, and ferroptosis. Results By searching with GEPIA and TCGA databases, the results showed that the expression levels of TRF2 were obviously elevated in the samples of GC patients, which was associated with adverse prognosis. Knockdown of TRF2 suppressed the cell growth, proliferation, and migration in GC cells, causing significant telomere dysfunction. Apoptosis, autophagic death, and ferroptosis were also triggered in this process. The pretreatment of chloroquine (autophagy inhibitor) and ferrostatin-1 (ferroptosis inhibitor) improved the survival phenotypes of GC cells. Conclusion Our data suggest that TRF2 depletion can inhibit cell growth, proliferation, and migration through the combined action of ferroptosis, autophagic death, and apoptosis in GC cells. The results indicate that TRF2 might be used as a potential target to develop therapeutic strategies for treating GC.
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Affiliation(s)
- Qiuhui Yang
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
| | - Ziyang Nie
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
- School of Life Sciences, Central China Normal University, Hubei Province, China
| | - Yukun Zhu
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
- Fuyang Hospital Affiliated to Anhui Medical University, Anhui Province 236000, China
| | - Mingying Hao
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
| | - Siqi Liu
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
| | - Xuelu Ding
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
- Department of Neurology, Tianjin Neurological Institute, Tianjin Medical University, General Hospital, Tianjin 300052, China
| | - Feng Wang
- Department of Genetics, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
| | - Fei Wang
- Department of Neurology, General Hospital, Tianjin Medical University, Tianjin 300052, China
| | - Xin Geng
- Department of Biochemistry and Molecular Biology, School of Basic Medical Sciences, Tianjin Medical University, Tianjin 300070, China
- Key Laboratory of Immune Microenvironment and Disease (Ministry of Education), Tianjin Medical University, Tianjin 300070, China
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Vertecchi E, Rizzo A, Salvati E. Telomere Targeting Approaches in Cancer: Beyond Length Maintenance. Int J Mol Sci 2022; 23:ijms23073784. [PMID: 35409143 PMCID: PMC8998427 DOI: 10.3390/ijms23073784] [Citation(s) in RCA: 10] [Impact Index Per Article: 3.3] [Reference Citation Analysis] [Abstract] [Key Words] [MESH Headings] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/04/2022] [Revised: 03/25/2022] [Accepted: 03/26/2022] [Indexed: 12/19/2022] Open
Abstract
Telomeres are crucial structures that preserve genome stability. Their progressive erosion over numerous DNA duplications determines the senescence of cells and organisms. As telomere length homeostasis is critical for cancer development, nowadays, telomere maintenance mechanisms are established targets in cancer treatment. Besides telomere elongation, telomere dysfunction impinges on intracellular signaling pathways, in particular DNA damage signaling and repair, affecting cancer cell survival and proliferation. This review summarizes and discusses recent findings in anticancer drug development targeting different “telosome” components.
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Affiliation(s)
- Eleonora Vertecchi
- Institute of Molecular Biology and Pathology, National Research Council, Rome, Italy, c/o Department of Biology and Biotechnology, Sapienza University of Rome, Via degli Apuli 4, 00185 Rome, Italy;
| | - Angela Rizzo
- Oncogenomic and Epigenetic Unit, IRCCS Regina Elena National Cancer Institute, Via Elio Chianesi 53, 00144 Rome, Italy;
| | - Erica Salvati
- Institute of Molecular Biology and Pathology, National Research Council, Rome, Italy, c/o Department of Biology and Biotechnology, Sapienza University of Rome, Via degli Apuli 4, 00185 Rome, Italy;
- Correspondence:
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Wang Z, Wu X. Abnormal function of telomere protein TRF2 induces cell mutation and the effects of environmental tumor‑promoting factors (Review). Oncol Rep 2021; 46:184. [PMID: 34278498 PMCID: PMC8273685 DOI: 10.3892/or.2021.8135] [Citation(s) in RCA: 15] [Impact Index Per Article: 3.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 03/24/2021] [Accepted: 06/14/2021] [Indexed: 01/30/2023] Open
Abstract
Recent studies have found that somatic gene mutations and environmental tumor-promoting factors are both indispensable for tumor formation. Telomeric repeat-binding factor (TRF)2 is the core component of the telomere shelterin complex, which plays an important role in chromosome stability and the maintenance of normal cell physiological states. In recent years, TRF2 and its role in tumor formation have gradually become a research hot topic, which has promoted in-depth discussions into tumorigenesis and treatment strategies, and has achieved promising results. Some cells bypass elimination, due to either aging, apoptosis via mutations or abnormal prolongation of the mitotic cycle, and enter the telomere crisis period, where large-scale DNA reorganization occurs repeatedly, which manifests as the precancerous cell cycle. Finally, at the end of the crisis cycle, the mutation activates either the expression level of telomerase or activates the alternative lengthening of telomere mechanism to extend the local telomeres. Under the protection of TRF2, chromosomes are gradually stabilized, immortal cells are formed and the stagewise mutation-driven transformation of normal cells to cancer cells is completed. In addition, TRF2 also shares the characteristics of environmental tumor-promoting factors. It acts on multiple signal transduction pathway-related proteins associated with cell proliferation, and affects peripheral angiogenesis, inhibits the immune recognition and killing ability of the microenvironment, and maintains the stemness characteristics of tumor cells. TRF2 levels are abnormally elevated by a variety of tumor control proteins, which are more conducive to the protection of telomeres and the survival of tumor cells. In brief, the various regulatory mechanisms which tumor cells rely on to survive are organically integrated around TRF2, forming a regulatory network, which is conducive to the optimization of the survival direction of heterogeneous tumor cells, and promotes their survival and adaptability. In terms of clinical application, TRF2 is expected to become a new type of cancer prognostic marker and a new tumor treatment target. Inhibition of TRF2 overexpression could effectively cut off the core network regulating tumor cell survival, reduce drug resistance, or bypass the mutation under the pressure of tumor treatment selection, which may represent a promising therapeutic strategy for the complete eradication of tumors in the clinical setting. Based on recent research, the aim of the present review was to systematically elaborate on the basic structure and functional characteristics of TRF2 and its role in tumor formation, and to analyze the findings indicating that TRF2 deficiency or overexpression could cause severe damage to telomere function and telomere shortening, and induce DNA damage response and chromosomal instability.
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Affiliation(s)
- Zhengyi Wang
- Good Clinical Practice Center, Sichuan Academy of Medical Sciences and Sichuan Provincial People's Hospital, Chengdu, Sichuan 610071, P.R. China
| | - Xiaoying Wu
- Ministry of Education and Training, Chengdu Second People's Hospital, Chengdu, Sichuan 610000, P.R. China
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Curcusone C induces apoptosis in endometrial cancer cells via mitochondria-dependent apoptotic and ERK pathway. Biotechnol Lett 2020; 43:329-338. [PMID: 33108571 DOI: 10.1007/s10529-020-03027-4] [Citation(s) in RCA: 9] [Impact Index Per Article: 1.8] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/09/2020] [Accepted: 10/09/2020] [Indexed: 01/11/2023]
Abstract
OBJECTIVE Jatropha curcashas been used in traditional medicine in Africa to treat cancer for thousands of years. This study aimed to examine the anti-endometrial cancer effect of Curcusone C, a naturally occurring rhamnofolane diterpene, isolated from J. curcas and reveal its molecular mechanism of action. RESULTS Curcusone C treatment caused significant anti-proliferative and apoptotic effects in human endometrial cancer (EC) Ishikawa and HEC-1A cells in a dose-dependent manner. Exposure of EC cells to Curcusone C resulted in apoptosis, which was associated with cytochrome c release, caspase-3 and caspase-9 activation, Bcl-xL/Bax dysregulation, and decreased expression of inhibitors of apoptosis proteins, such as XIAP and survivin. The inhibitory effect induced by Curcusone C was greatly impaired by the overexpression of survivin or Bax-/- MEFs or the knockdown of Bim expression. Moreover, Curcusone C activated mitogen-activated protein kinases, and the ERK inhibitor U0126 significantly attenuated the growth-inhibitory and apoptotic effects of Curcusone C in Ishikawa cells. CONCLUSION Taken together, the results demonstrate the anti-endometrial cancer potential of Curcusone C for the treatment of endometrial cancer.
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Ma Q, Liao H, Xu L, Li Q, Zou J, Sun R, Xiao D, Liu C, Pu W, Cheng J, Zhou X, Huang G, Yao L, Zhong X, Guo X. Autophagy-dependent cell cycle arrest in esophageal cancer cells exposed to dihydroartemisinin. Chin Med 2020; 15:37. [PMID: 32351616 PMCID: PMC7183693 DOI: 10.1186/s13020-020-00318-w] [Citation(s) in RCA: 13] [Impact Index Per Article: 2.6] [Reference Citation Analysis] [Abstract] [Key Words] [Track Full Text] [Download PDF] [Figures] [Journal Information] [Subscribe] [Scholar Register] [Received: 02/05/2020] [Accepted: 04/14/2020] [Indexed: 12/19/2022] Open
Abstract
Background Dihydroartemisinin (DHA), a derivate of artemisinin, is an effective antimalarial agent. DHA has been shown to exert anticancer activities to numerous cancer cells in the past few years, while the exact molecular mechanisms remain to be elucidated, especially in esophageal cancer. Methods Crystal violet assay was conducted to determine the cell viability of human esophageal cancer cell line Eca109 treated with DHA. Tumor-bearing nude mice were employed to evaluate the anticancer effect of DHA in vivo. Soft agar and crystal violet assays were used to measure the tumorigenicity of Eca109 cells. Flow cytometry was performed to evaluate ROS or cell cycle distribution. GFP-LC3 plasmids were delivered into Eca109 cells to visualize autophagy induced by DHA under a fluorescence microscope. The mRNA and protein levels of each gene were tested by qRT-PCR and western blot, respectively. Results Our results proved that DHA significantly reduced the viability of Eca109 cells in a dose- and time-dependent manner. Further investigation showed that DHA evidently induced cell cycle arrest at the G2/M phase in Eca109 cells. Mechanistically, DHA induced intracellular ROS generation and autophagy in Eca109 cells, while blocking ROS by an antioxidant NAC obviously inhibited autophagy. Furthermore, we found that telomere shelterin component TRF2 was down-regulated in Eca109 cells exposed to DHA through autophagy-dependent degradation, which could be rescued after autophagy was blocked by ROS inhibition. Moreover, the DNA damage response (DDR) was induced obviously in DHA treated cells. To further explore whether ROS or autophagy played a vital role in DHA induced cell cycle arrest, the cell cycle distribution of Eca109 cells was evaluated after ROS or autophagy blocking, and the results showed that autophagy, but not ROS, was essential for cell cycle arrest in DHA treated cells. Conclusion Taken together, DHA showed anticancer effect on esophageal cancer cells through autophagy-dependent cell cycle arrest at the G2/M phase, which unveiled a novel mechanism of DHA as a chemotherapeutic agent, and the degradation of TRF2 followed by DDR might be responsible for this cell phenotype.
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Affiliation(s)
- Qiang Ma
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Hebin Liao
- 2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Lei Xu
- 2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Qingrong Li
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Jiang Zou
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Ru Sun
- 3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,4Department of Blood Transfusion, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Dan Xiao
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Chang Liu
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Wenjie Pu
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Jibing Cheng
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Xi Zhou
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Guangcheng Huang
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Lihua Yao
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Xiaowu Zhong
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
| | - Xiaolan Guo
- 1Department of Clinical Laboratory, Affiliated Hospital of North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,2Translational Medicine Research Center, North Sichuan Medical College, Nanchong, 637000 People's Republic of China.,3Department of Laboratory Medicine, North Sichuan Medical College, Nanchong, 637000 People's Republic of China
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Novel combination of tanshinone I and lenalidomide induces chemo-sensitivity in myeloma cells by modulating telomerase activity and expression of shelterin complex and its associated molecules. Mol Biol Rep 2018; 45:2429-2439. [DOI: 10.1007/s11033-018-4409-z] [Citation(s) in RCA: 5] [Impact Index Per Article: 0.7] [Reference Citation Analysis] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Received: 08/01/2018] [Accepted: 09/26/2018] [Indexed: 12/24/2022]
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11
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Liu JQ, Xu Y, Xiao Q, Huang JD, Ma JJ, Lian CL, Huang MY, Du ZB, Wang CF. Dimericursones A and B: two unprecedented hexacyclic dimeric diterpenoids from the root barks of Jatropha curcas. Org Biomol Chem 2018; 16:8305-8310. [DOI: 10.1039/c8ob02082e] [Citation(s) in RCA: 6] [Impact Index Per Article: 0.9] [Reference Citation Analysis] [Abstract] [Track Full Text] [Journal Information] [Subscribe] [Scholar Register] [Indexed: 01/31/2023]
Abstract
Two unprecedented hexacyclic dimeric diterpenoids from Jatropha curcas and 2 showed significant NO inhibitory activity with IC50 values of 5.65 μM.
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Affiliation(s)
- Jie-Qing Liu
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Ying Xu
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Qin Xiao
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Jin-Di Huang
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Jun-Jie Ma
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Chen-Lei Lian
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Mei-Ying Huang
- School of Medicine
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Zhen-bo Du
- School of Materials Science and Engeering
- Huaqiao University
- Quanzhou 362021
- P. R. China
| | - Cui-Fang Wang
- College of Oceanology and Food Science
- Quanzhou Normal University
- Quanzhou 362000
- P. R. China
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