Literature DB >> 14662025

Generation of mature dendritic cells fully capable of T helper type 1 polarization using OK-432 combined with prostaglandin E(2).

Marimo Sato1, Takuya Takayama, Hiroaki Tanaka, Juichiro Konishi, Toshihiro Suzuki, Teruo Kaiga, Hideaki Tahara.   

Abstract

Dendritic cell (DC) administration appears to be a very promising approach for the immunotherapy of cancer. The results of clinical studies have suggested that the nature and the magnitude of antitumor immune responses are critically affected by DC functions, including production of T helper type 1 (Th1)-inducing cytokines, activation of T cell subsets and natural killer (NK) cells, and migration from peripheral tissues to the T cell area of the draining lymph nodes. Administration of immature DCs could fail to fully stimulate antigen-specific immune responses and might induce tolerance under some conditions. In this study, we developed a method to obtain fully mature DCs, and we compared in detail the DCs thus obtained with those obtained using a maturation stimulus termed monocyte-derived medium (MCM)-mimic, which is a mixture of recombinant cytokines and prostaglandin E(2) (PGE(2)) mimicking the components of monocyte-conditioned medium. Using DCs derived from monocytes of advanced cancer patients in this study, we found that DCs stimulated with OK-432 alone showed phenotypes similar to those of mature DCs induced using MCM-mimic, though with better secretion of IL-6 and IL-12. However, these DCs were found to have poor migratory capacity associated with the marginal expression of CCR7. When OK-432 was combined with PGE(2), the CCR7 expression and migratory capacity of DCs were significantly improved without impairing other immuno-stimulatory functions. These results suggest that stimulation with the combination of OK-432 and PGE(2) could be applicable as an alternative to MCM-mimic in clinical trials which require fully matured DCs to induce Th1-type immune responses against tumor cells even in patients with advanced cancer.

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Year:  2003        PMID: 14662025     DOI: 10.1111/j.1349-7006.2003.tb01405.x

Source DB:  PubMed          Journal:  Cancer Sci        ISSN: 1347-9032            Impact factor:   6.716


  11 in total

1.  In vitro-induced response patterns of antileukemic T cells: characterization by spectratyping and immunophenotyping.

Authors:  Susanne Reuther; Helga Schmetzer; Friedhelm R Schuster; Pina Krell; Christine Grabrucker; Anja Liepert; Tanja Kroell; Hans-Jochem Kolb; Arndt Borkhardt; Raymund Buhmann
Journal:  Clin Exp Med       Date:  2012-03-23       Impact factor: 3.984

2.  Generation of mature monocyte-derived dendritic cells in the presence of heparin and monocyte conditioned medium: phenotypic and functional comparison.

Authors:  Nowruz Delirezh; Leila Majedi; Siamak Asri Rezaei; Hadi Ranjkeshzadeh
Journal:  Iran Biomed J       Date:  2011

Review 3.  Dendritic Cells of Leukemic Origin: Specialized Antigen-Presenting Cells as Potential Treatment Tools for Patients with Myeloid Leukemia.

Authors:  Daniel Christoph Amberger; Helga Maria Schmetzer
Journal:  Transfus Med Hemother       Date:  2020-11-05       Impact factor: 3.747

4.  Maturation of monocyte derived dendritic cells with OK432 boosts IL-12p70 secretion and conveys strong T-cell responses.

Authors:  Arnt-Ove Hovden; Marie Karlsen; Roland Jonsson; Hans Jørgen Aarstad; Silke Appel
Journal:  BMC Immunol       Date:  2011-01-05       Impact factor: 3.615

5.  Interferon-α-inducible Dendritic Cells Matured with OK-432 Exhibit TRAIL and Fas Ligand Pathway-mediated Killer Activity.

Authors:  Terutsugu Koya; Ryu Yanagisawa; Yumiko Higuchi; Kenji Sano; Shigetaka Shimodaira
Journal:  Sci Rep       Date:  2017-02-13       Impact factor: 4.379

6.  Staphylococcus aureus PSM Peptides Modulate Human Monocyte-Derived Dendritic Cells to Prime Regulatory T Cells.

Authors:  Jennifer R Richardson; Nicole S Armbruster; Manina Günter; Jörg Henes; Stella E Autenrieth
Journal:  Front Immunol       Date:  2018-11-13       Impact factor: 7.561

7.  PGE1-Containing Protocols Generate Mature (Leukemia-Derived) Dendritic Cells Directly from Leukemic Whole Blood.

Authors:  Daniel Christoph Amberger; Fatemeh Doraneh-Gard; Carina Gunsilius; Melanie Weinmann; Sabine Möbius; Christoph Kugler; Nicole Rogers; Corinna Böck; Uwe Ködel; Jan-Ole Werner; Doris Krämer; Britta Eiz-Vesper; Andreas Rank; Christoph Schmid; Helga Maria Schmetzer
Journal:  Int J Mol Sci       Date:  2019-09-17       Impact factor: 5.923

8.  Quality Verification with a Cluster-Controlled Manufacturing System to Generate Monocyte-Derived Dendritic Cells.

Authors:  Haruhiko Kawaguchi; Takuya Sakamoto; Terutsugu Koya; Misa Togi; Ippei Date; Asuka Watanabe; Kenichi Yoshida; Tomohisa Kato; Yuka Nakamura; Yasuhito Ishigaki; Shigetaka Shimodaira
Journal:  Vaccines (Basel)       Date:  2021-05-20

9.  Immune-maximizing (IMAX) therapy for cancer: Combination of dendritic cell vaccine and intensity-modulated radiation.

Authors:  Yuta Shibamoto; Masato Okamoto; Masanori Kobayashi; Shiho Ayakawa; Hiromitsu Iwata; Chikao Sugie; Yoko Mitsuishi; Hidenori Takahashi
Journal:  Mol Clin Oncol       Date:  2013-04-26

10.  Dendritic Cells Pre-Pulsed with Wilms' Tumor 1 in Optimized Culture for Cancer Vaccination.

Authors:  Terutsugu Koya; Ippei Date; Haruhiko Kawaguchi; Asuka Watanabe; Takuya Sakamoto; Misa Togi; Tomohisa Kato; Kenichi Yoshida; Shunsuke Kojima; Ryu Yanagisawa; Shigeo Koido; Haruo Sugiyama; Shigetaka Shimodaira
Journal:  Pharmaceutics       Date:  2020-03-28       Impact factor: 6.321

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