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"IL-12"

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IL-12 and IL-23 Production in Toxoplasma gondii- or LPS Treated Jurkat T Cells via PI3K and MAPK Signaling Pathways
Hassan Ahmed Hassan Ahmed Ismail, Byung-Hun Kang, Jae-Su Kim, Jae-Hyung Lee, In-Wook Choi, Guang-Ho Cha, Jae-Min Yuk, Young-Ha Lee
Korean J Parasitol 2017;55(6):613-622.
Published online December 31, 2017
DOI: https://doi.org/10.3347/kjp.2017.55.6.613
IL-12 and IL-23 are closely related in structure, and have been shown to play crucial roles in regulation of immune responses. However, little is known about the regulation of these cytokines in T cells. Here, we investigated the roles of PI3K and MAPK pathways in IL-12 and IL-23 production in human Jurkat T cells in response to Toxoplasma gondii and LPS. IL-12 and IL-23 production was significantly increased in T cells after stimulation with T. gondii or LPS. T. gondii and LPS increased the phosphorylation of AKT, ERK1/2, p38 MAPK, and JNK1/2 in T cells from 10 min post-stimulation, and peaked at 30-60 min. Inhibition of the PI3K pathway reduced IL-12 and IL-23 production in T. gondii-infected cells, but increased in LPS-stimulated cells. IL-12 and IL-23 production was significantly reduced by ERK1/2 and p38 MAPK inhibitors in T. gondii- and LPS-stimulated cells, but not in cells treated with a JNK1/2 inhibitor. Collectively, IL-12 and IL-23 production was positively regulated by PI3K and JNK1/2 in T. gondii-infected Jurkat cells, but negatively regulated in LPS-stimulated cells. And ERK1/2 and p38 MAPK positively regulated IL-12 and IL-23 production in Jurkat T cells. These data indicate that T. gondii and LPS induced IL-12 and IL-23 production in Jurkat T cells through the regulation of the PI3K and MAPK pathways; however, the mechanism underlying the stimulation of IL-12 and IL-23 production by T. gondii in Jurkat T cells is different from that of LPS.

Citations

Citations to this article as recorded by  Crossref logo
  • Protective Effect of Low 2-O, 3-O Desulfated Heparin (ODSH) Against LPS-Induced Acute Lung Injury in Mice
    Joyce Gonzales, Rahul S. Patil, Thomas P. Kennedy, Nagavedi S. Umapathy, Rudolf Lucas, Alexander D. Verin
    Biomolecules.2025; 15(9): 1232.     CrossRef
  • BC and 1,4NQ-BC up-regulate the cytokines and enhance IL-33 expression in LPS pretreatment of human bronchial epithelial cells☆
    Jianhong Ge, Hongqian Chu, Qianqian Xiao, Weidong Hao, Jing Shang, Tong Zhu, Zhaogang Sun, Xuetao Wei
    Environmental Pollution.2021; 273: 116452.     CrossRef
  • Toxoplasma gondiiModulates the Host Cell Responses: An Overview of Apoptosis Pathways
    Nour Mammari, Mohamad Adnan Halabi, Souha Yaacoub, Hilda Chlala, Marie-Laure Dardé, Bertrand Courtioux
    BioMed Research International.2019; 2019: 1.     CrossRef
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  • 2 Web of Science
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Prominent IL-12 Production and Tumor Reduction in Athymic Nude Mice after Toxoplasma gondii Lysate Antigen Treatment
Kyoung-Ho Pyo, Bong-Kwang Jung, Chun-Feng Xin, You-Won Lee, Jong-Yil Chai, Eun-Hee Shin
Korean J Parasitol 2014;52(6):605-612.
Published online December 23, 2014
DOI: https://doi.org/10.3347/kjp.2014.52.6.605

Toxoplasma gondii is an intracellular protozoan parasite that causes a Th1 cellular immunity. Our previous study showed that T. gondii lysate antigen (TLA) treatment in S180 tumor-bearing mice resulted in tumor reduction by suppressing CD31 expression, a marker of angiogenesis. In the present study, to investigate tumor suppressive effect of TLA under the absence of T lymphocytes, athymic nude mice were compared with euthymic mice in the anti-tumorigenic effect triggered by TLA in CT26 tumors. According to the results, intratumorally injected TLA reduced tumor growth and TIMP-1 level, a metastatic marker, in both euthymic and athymic mice. TLA treatment led to a sharp increase in IL-12 expression in serum cytokine profiling of athymic mice, and increased MyD88 signals in macrophages derived from the bone marrow, implying the activation of innate immunity. The selective induction of IL-12 by TLA treatment had an anti-tumorigenic effect.

Citations

Citations to this article as recorded by  Crossref logo
  • An Overview of the Dichotomous Role of Microbiota in Cancer Progression and Management
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    Current Cancer Drug Targets.2025; 25(1): 38.     CrossRef
  • Bug as a drug: Unveiling anti-cancer properties of Toxoplasma gondii and its therapeutic prospects in cancer immunotherapy
    Yie Wei Chua, Sek Chuen Chow
    Acta Tropica.2025; 267: 107684.     CrossRef
  • From pathogen to cure: exploring the antitumor potential of Toxoplasma gondii
    Parisa Alipanahi, Arezou Khosrojerdi, Abdol Satar Pagheh, Kareem Hatam-Nahavandi, Ehsan Ahmadpour
    Infectious Agents and Cancer.2025;[Epub]     CrossRef
  • Bridging the gap for diverse applications of parasites as advanced cancer therapeutics: current progress and future directions
    Maha M. Eissa, Marwa H. El-Faham, Nahla El Skhawy
    Infectious Agents and Cancer.2025;[Epub]     CrossRef
  • Evaluation of Antitumor Effects of Toxoplasma gondii Different Antigens on Ehrlich Solid Carcinoma in Mice
    Salwa S. Younis, Basma M. Elmansory, Hend A. Elrefaey, Nahla A. Nasef, Sara H. Elakshar, Radwa A. Awad, Ghada A. Gamea
    Parasite Immunology.2025;[Epub]     CrossRef
  • A novel enemy of cancer: recent investigations into protozoan anti-tumor properties
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    Frontiers in Cellular and Infection Microbiology.2024;[Epub]     CrossRef
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    Cell Communication and Signaling.2024;[Epub]     CrossRef
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    Maha M. Eissa, Ahmed Ebada Salem, Nahla El Skhawy
    European Journal of Medical Research.2024;[Epub]     CrossRef
  • Toxoplasma gondii-Derived Exosomes: A Potential Immunostimulant and Delivery System for Tumor Immunotherapy Superior to Toxoplasma gondii
    Lai-Xi Zhao, Qiong Sun, Chong Wang, Jia-Jia Liu, Xiao-Rong Yan, Meng-Ci Shao, Li Yu, Wen-Hua Xu, Rui Xu
    International Journal of Nanomedicine.2024; Volume 19: 12421.     CrossRef
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    Víctor Alberto Maravelez Acosta, Maria de Lourdes Caballero Garcia, Genaro Patiño López, María del Pilar Crisóstomo Vázquez, Luz Ofelia Franco Sandoval, Leticia Eligio García
    International Journal of Molecular Sciences.2024; 25(24): 13577.     CrossRef
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    Environmental Science and Pollution Research.2022; 29(22): 32383.     CrossRef
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    Jiating Chen, Wenzhong Liao, HongJuan Peng
    Frontiers in Cellular and Infection Microbiology.2022;[Epub]     CrossRef
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    Parasites & Vectors.2022;[Epub]     CrossRef
  • Exploiting the Macrophage Production of IL-12 in Improvement of Vaccine Development against Toxoplasma gondii and Neospora caninum Infections
    Ragab M. Fereig, Mosaab A. Omar, Abdullah F. Alsayeqh
    Vaccines.2022; 10(12): 2082.     CrossRef
  • Toxoplasma GRA16 Inhibits NF-κB Activation through PP2A-B55 Upregulation in Non-Small-Cell Lung Carcinoma Cells
    Seung-Hwan Seo, Sang-Gyun Kim, Ji-Hun Shin, Do-Won Ham, Eun-Hee Shin
    International Journal of Molecular Sciences.2020; 21(18): 6642.     CrossRef
  • Increase in the nuclear localization of PTEN by the Toxoplasma GRA16 protein and subsequent induction of p53‐dependent apoptosis and anticancer effect
    Sang‐Gyun Kim, Seung‐Hwan Seo, Ji‐Hun Shin, Jung‐Pyo Yang, Sang Hyung Lee, Eun‐Hee Shin
    Journal of Cellular and Molecular Medicine.2019; 23(5): 3234.     CrossRef
  • Characteristics of Infection Immunity Regulated by Toxoplasma gondii to Maintain Chronic Infection in the Brain
    Young Sang Hwang, Ji-Hun Shin, Jung-Pyo Yang, Bong-Kwang Jung, Sang Hyung Lee, Eun-Hee Shin
    Frontiers in Immunology.2018;[Epub]     CrossRef
  • Microorganisms in the Treatment of Cancer: Advantages and Limitations
    Klaudia Łukasiewicz, Marek Fol
    Journal of Immunology Research.2018; 2018: 1.     CrossRef
  • The Neurotropic Parasite Toxoplasma gondii Induces Sustained Neuroinflammation with Microvascular Dysfunction in Infected Mice
    Vanessa Estato, Joice Stipursky, Fabiana Gomes, Tally C. Mergener, Edwards Frazão-Teixeira, Silvana Allodi, Eduardo Tibiriçá, Helene S. Barbosa, Daniel Adesse
    The American Journal of Pathology.2018; 188(11): 2674.     CrossRef
  • Puzzling and ambivalent roles of malarial infections in cancer development and progression
    ERIC FAURE
    Parasitology.2016; 143(14): 1811.     CrossRef
  • NaHCO3 enhances the antitumor activities of cytokine-induced killer cells against hepatocellular carcinoma HepG2 cells
    Ya Hong Yuan, Chun Fang Zhou, Jiang Yuan, Li Liu, Xing Rong Guo, Xiao Li Wang, Yan Ding, Xiao Nan Wang, Dong Sheng Li, Han Jun Tu
    Oncology Letters.2016; 12(5): 3167.     CrossRef
  • Immune adjuvant effect of aToxoplasma gondiiprofilin-like protein in autologous whole-tumor-cell vaccination in mice
    Kyoung-Ho Pyo, You-Won Lee, Sun Min Lim, Eun-Hee Shin
    Oncotarget.2016; 7(45): 74107.     CrossRef
  • 14,302 View
  • 87 Download
  • 23 Web of Science
  • Crossref
Kinetics of IL-23 and IL-12 Secretion in Response to Toxoplasma gondii Antigens from THP-1 Monocytic Cells
Juan-Hua Quan, Wei Zhou, Guang-Ho Cha, In-Wook Choi, Dae-Whan Shin, Young-Ha Lee
Korean J Parasitol 2013;51(1):85-92.
Published online February 18, 2013
DOI: https://doi.org/10.3347/kjp.2013.51.1.85

IL-23 and IL-12 are structurally similar and critical for the generation of efficient cellular immune responses. Toxoplasma gondii induces a strong cell-mediated immune response. However, little is known about IL-23 secretion profiles in T. gondii-infected immune cells in connection with IL-12. We compared the patterns of IL-23 and IL-12 production by THP-1 human monocytic cells in response to stimulation with live or heat-killed T. gondii tachyzoites, or with equivalent quantities of either T. gondii excretory/secretory proteins (ESP) or soluble tachyzoite antigen (STAg). IL-23 and IL-12 were significantly increased from 6 hr after stimulation with T. gondii antigens, and their secretions were increased with parasite dose-dependent manner. IL-23 concentrations were significantly higher than those of IL-12 at the same multiplicity of infection. IL-23 secretion induced by live parasites was significantly higher than that by heat-killed parasites, ESP, or STAg, whereas IL-12 secretion by live parasite was similar to those of ESP or STAg. However, the lowest levels of both cytokines were at stimulation with heat-killed parasites. These data indicate that IL-23 secretion patterns by stimulation with various kinds of T. gondii antigens at THP-1 monocytic cells are similar to those of IL-12, even though the levels of IL-23 induction were significantly higher than those of IL-12. The detailed kinetics induced by each T. gondii antigen were different from each other.

Citations

Citations to this article as recorded by  Crossref logo
  • Differential detection of chicken heterodimeric cytokines, interleukin 12 and 23 using their subunit-specific mouse monoclonal antibodies
    Youngsub Lee, Woo H. Kim, Hyoyoun Nam, Hyun S. Lillehoj
    Poultry Science.2024; 103(8): 103872.     CrossRef
  • T. gondii excretory proteins promote the osteogenic differentiation of human bone mesenchymal stem cells via the BMP/Smad signaling pathway
    Mingzhu Deng, Feifei Gao, Tianfeng Liu, Weiqiang Zhan, Juanhua Quan, Ziquan Zhao, Xuyang Wu, Zhuolan Zhong, Hong Zheng, Jiaqi Chu
    Journal of Orthopaedic Surgery and Research.2024;[Epub]     CrossRef
  • IL-12 and IL-23 Production in Toxoplasma gondii- or LPS Treated Jurkat T Cells via PI3K and MAPK Signaling Pathways
    Hassan Ahmed Hassan Ahmed Ismail, Byung-Hun Kang, Jae-Su Kim, Jae-Hyung Lee, In-Wook Choi, Guang-Ho Cha, Jae-Min Yuk, Young-Ha Lee
    The Korean Journal of Parasitology.2017; 55(6): 613.     CrossRef
  • Cytokine response of human THP-1 macrophages to Trichomonas tenax
    Emily J. Govro, Melissa K. Stuart
    Experimental Parasitology.2016; 169: 77.     CrossRef
  • Far beyond Phagocytosis: Phagocyte-Derived Extracellular Traps Act Efficiently against Protozoan ParasitesIn VitroandIn Vivo
    Liliana M. R. Silva, Tamara Muñoz-Caro, Rafael A. Burgos, Maria A. Hidalgo, Anja Taubert, Carlos Hermosilla
    Mediators of Inflammation.2016; 2016: 1.     CrossRef
  • Eimeria ninakohlyakimovae induces NADPH oxidase-dependent monocyte extracellular trap formation and upregulates IL-12 and TNF-α, IL-6 and CCL2 gene transcription
    D. Pérez, M.C. Muñoz, J.M. Molina, T. Muñoz-Caro, L.M.R. Silva, A. Taubert, C. Hermosilla, A. Ruiz
    Veterinary Parasitology.2016; 227: 143.     CrossRef
  • Secretion of Rhoptry and Dense Granule Effector Proteins by Nonreplicating Toxoplasma gondii Uracil Auxotrophs Controls the Development of Antitumor Immunity
    Barbara A. Fox, Kiah L. Sanders, Leah M. Rommereim, Rebekah B. Guevara, David J. Bzik, Imtiaz A Khan
    PLOS Genetics.2016; 12(7): e1006189.     CrossRef
  • Levels of Transforming Growth Factor-Beta After Immunization of Mice With Toxoplasma gondii prepared Excretory/Secretory Proteins
    Seyed Hossein Abdollahi, Fateme Ayoobi, Hossein Khorramdelazad, Behzad Nasiri Ahmadabadi, Mohammadtaghi Rezayati, Mohammad Kazemi Arababadi, Mohammad Zare-Bidaki
    Jundishapur Journal of Microbiology.2015;[Epub]     CrossRef
  • Intracellular Networks of the PI3K/AKT and MAPK Pathways for Regulating Toxoplasma gondii-Induced IL-23 and IL-12 Production in Human THP-1 Cells
    Juan-Hua Quan, Jia-Qi Chu, Jaeyul Kwon, In-Wook Choi, Hassan Ahmed Hassan Ahmed Ismail, Wei Zhou, Guang-Ho Cha, Yu Zhou, Jae-Min Yuk, Eun-Kyeong Jo, Young-Ha Lee, Salvatore V Pizzo
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  • Besnoitia besnoiti tachyzoites induce monocyte extracellular trap formation
    Tamara Muñoz-Caro, Liliana M. R. Silva, Christin Ritter, Anja Taubert, Carlos Hermosilla
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  • 12,568 View
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