DOI QR코드

DOI QR Code

Expression of COX-2 and IDO by Uteroglobin Transduction in NSCLC Cell Lines

비소세포폐암 세포주에서 Uteroglobin Transduction이 COX-2 및 IDO의 발현에 미치는 영향

  • Park, Gun Min (Department of Internal Medicine, Dongguk University Ilsan Hospital, Dongguk University College of Medicine) ;
  • Lee, Sang-Min (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine) ;
  • Yim, Jae-Joon (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine) ;
  • Yang, Seok-Chul (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine) ;
  • Yoo, Chul Gyu (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine) ;
  • Lee, Choon-Taek (Respiratory Center, Department of Internal Medicine, Seoul National University Bundang Hospital) ;
  • Han, Sung Koo (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine) ;
  • Sim, Young-Soo (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine) ;
  • Kim, Young Whan (Department of Internal Medicine and Lung Institute of Medical Research Center, Seoul National University College of Medicine)
  • 박근민 (동국대학교 의과대학 동국대학교 일산병원 내과) ;
  • 이상민 (서울대학교 의과대학 내과학교실 및 폐연구소) ;
  • 임재준 (서울대학교 의과대학 내과학교실 및 폐연구소) ;
  • 양석철 (서울대학교 의과대학 내과학교실 및 폐연구소) ;
  • 유철규 (서울대학교 의과대학 내과학교실 및 폐연구소) ;
  • 이춘택 (분당서울대학교병원 폐센터, 내과) ;
  • 한성구 (서울대학교 의과대학 내과학교실 및 폐연구소) ;
  • 심영수 (서울대학교 의과대학 내과학교실 및 폐연구소) ;
  • 김영환 (서울대학교 의과대학 내과학교실 및 폐연구소)
  • Received : 2009.02.11
  • Accepted : 2009.03.18
  • Published : 2009.04.30

Abstract

Background: Uteroglobin (UG) is a secretary protein that has strong immunomodulatory properties, and which is synthesized in most epithelia including lung tissue. Overexpression of UG is associated with decreased expression of cyclooxygenase (COX)-2 and suppression of cancer cell growth. Indoleamine 2,3-dioxygenase (IDO) catalyzes tryptophan along the kynurenine pathway, and both the reduction in local tryptophan and the production of tryptophan metabolites contribute to the immunosuppressive effects of IDO. Methods: In this study, we investigated the pattern of expression of COX-2 and IDO, and the effect of UG transduction in the expression of COX-2 and IDO in several non-small cell lung cancer cell lines, especially A549. Results: Both COX-2 and IDO were constitutionally expressed in A549 and H460 cells, and was reduced by UG transduction. In A549 cells, the slightly increased expression of COX-2 and IDO with the instillation of interferon-gamma (IFN-$\gamma$) was reduced by UG transduction. However, the reduced expression of COX-2 and IDO by UG transduction was not increased with IFN-$\gamma$ instillation in A549 cells. In both the A549 COX-2 sense and the A549 COX-2 anti-sense small interfering RNA (siRNA)-transfected cells, IDO was expressed; expression was reduced by UG transduction, irrespective of the expression of COX-2. Conclusion: The results suggest that the anti-proliferative function of UG may be associated with the immune tolerance pathway of IDO, which is independent of the COX-2 pathway.

연구배경: Uteroglobin (UG)은 폐를 비롯한 우리 몸의 대부분의 표피세포에서 생성되는 면역조절능을 가진 분비단백이다. UG의 과발현은 cyclooxygenase (COX)-2의 발현의 감소 및 암세포의 성장억제와 관련이 있다. Indoleamine 2,3-dioxygenase (IDO)는 kynurenine pathway를 통해 tryptophan을 이화시키는 효소로서, 국소적으로 tryptopha을 고갈시키고 tryptophan 대사물을 생성 함으로써 T 세포의 면역반응을 억제시키는 데 기여한다. 방 법: 본 연구에서는 여러 비소세포폐암 세포주, 특히 A549에서 COX-2와 IDO의 발현양상 및 UG transduction 이 COX-2 및 IDO의 발현에 미치는 영향을 살펴보았다. 결 과: A549와 H460에서 구조적으로 COX-2와 IDO가 모두 발현되었고, COX-2 및 IDO의 발현은 UG transduction에 의해 감소되었다. A549에 IFN-$\gamma$를 투여했을때 COX-2 및 IDO의 발현이 약간 증가하였고, 이는 UGtransduction 시행 후 다시 감소하였다. 그러나, A549에 UG transduction 시행하여 감소된 COX-2, IDO의 발현은 IFN-$\gamma$ 투여 후에도 증가하지 않았다. A549 COX-2 sense와 A549 COX-2 anti-sense (siRNA 감염) 세포주 모두에서 COX-2의 발현여부와 상관없이 IDO가 발현되었고, UG transduction으로 인해 IDO의 발현이 감소하였다. 결 론: 이러한 결과는 UG의 세포성장억제 기능이 COX-2를 통한 기전과는 독립적으로 IDO의 면역관용 기전과 관련될 가능성이 있음을 시사한다.

Keywords

References

  1. Mukherjee AB, Kundu GC, Mantile-Selvaggi G, Yuan CJ, Mandal AK, Chattopadhyay S, et al. Uteroglobin: a novel cytokine? Cell Mol Life Sci 1999;55:771-87 https://doi.org/10.1007/s000180050331
  2. Linnoila RI, Szabo E, DeMayo F, Witschi H, Sabourin C, Malkinson A. The role of CC10 in pulmonary carcinogenesis: from a marker to tumor suppression. Ann N Y Acad Sci 2000;923:249-67 https://doi.org/10.1111/j.1749-6632.2000.tb05534.x
  3. Szabo E, Goheer A, Witschi H, Linnoila RI. Overexpression of CC10 modifies neoplastic potential in lung cancer cells. Cell Growth Differ 1998;9:475-85
  4. Zhang Z, Kundu GC, Panda D, Mandal AK, Mantile-Selvaggi G, Peri A, et al. Loss of transformed phenotype in cancer cells by overexpression of the uteroglobin gene. Proc Natl Acad Sci USA 1999;96:3963-8 https://doi.org/10.1073/pnas.96.7.3963
  5. Kundu GC, Mandal AK, Zhang Z, Mantile-Selvaggi G, Mukherjee AB. Uteroglobin (UG) suppresses extracellular matrix invasion by normal and cancer cells that express the high affinity UG-binding proteins. J Biol Chem 1998;273:22819-24 https://doi.org/10.1074/jbc.273.35.22819
  6. Hastürk S, Kemp B, Kalapurakal SK, Kurie JM, Hong WK, Lee JS. Expression of cyclooxygenase-1 and cyclooxygenase-2 in bronchial epithelium and nonsmall cell lung carcinoma. Cancer 2002;94:1023-31 https://doi.org/10.1002/cncr.10262
  7. Yoon JM, Lim JJ, Yoo CG, Lee CT, Han SK, Shim YS, et al. The role of uteroglobin in the immunomodulation of nonsmall cell lung cancer cells. Tuberc Respir Dis 2004;57:336-44 https://doi.org/10.4046/trd.2004.57.4.336
  8. Taylor MW, Feng GS. Relationship between interferon-gamma, indoleamine 2,3-dioxygenase, and tryptophan catabolism. FASEB J 1991;5:2516-2522
  9. Burke F, Knowles RG, East N, Balkwill FR. The role of indoleamine 2,3-dioxygenase in the anti-tumour activity of human interferon-gamma in vivo. Int J Cancer 1995;60:115-22 https://doi.org/10.1002/ijc.2910600117
  10. Munn DH, Shafizadeh E, Attwood JT, Bondarev I, Pashine A, Mellor AL. Inhibition of T cell proliferation by macrophage tryptophan catabolism. J Exp Med 1999;189:1363-72 https://doi.org/10.1084/jem.189.9.1363
  11. Stone TW, Darlington LG. Endogenous kynurenines as targets for drug discovery and development. Nat Rev Drug Discov 2002;1:609-20 https://doi.org/10.1038/nrd870
  12. Blanco JC, Contursi C, Salkowski CA, DeWitt DL, Ozato K, Vogel SN. Interferon regulatory factor (IRF)-1 and IRF-2 regulate interferon gamma-dependent cyclooxygenase 2 expression. J Exp Med 2000;191:2131-44 https://doi.org/10.1084/jem.191.12.2131
  13. Marshall B, Keskin DB, Mellor AL. Regulation of prostaglandin synthesis and cell adhesion by antrytophan catabolizing enzyme. BMC Biochem 2001;2:5 https://doi.org/10.1186/1471-2091-2-5
  14. Fallarino F, Grohmann U, Vacca C, Orabona C, Spreca A, Fioretti MC, et al. T cell apoptosis by kynurenines. Adv Exp Med Biol 2003;527:183-90
  15. Munn DH, Mellor AL. Indoleamine 2,3-dioxygenase and tumor-induced tolerance. J Clin Invest 2007;117:1147-54 https://doi.org/10.1172/JCI31178
  16. Steinbrink K, Graulich E, Kubsch S, Knop J, Enk AH. CD4(+) and CD8(+) anergic T cells induced by interleukin-10-treated human dendritic cells display antigenspecific suppressor activity. Blood 2002;99:2468-76 https://doi.org/10.1182/blood.V99.7.2468
  17. Huang M, Stolina M, Sharma S, Mao JT, Zhu L, Miller PW, et al. Non-small cell lung cancer cyclooxygenase-2-dependent regulation of cytokine balance in lymphocytes and macrophages: up-regulation of interleukin 10 and down-regulation of interleukin 12 production. Cancer Res 1998;58:1208-16
  18. Stolina M, Sharma S, Lin Y, Dohadwala M, Gardner B, Luo J, et al. Specific inhibition of cyclooxygenase 2 restores antitumor reactivity by altering the balance of IL-10 and IL-12 synthesis. J Immunol 2000;164:361-70 https://doi.org/10.4049/jimmunol.164.1.361
  19. Lee JC, Park KH, Han SJ, Yoo CG, Lee CT, Han SK, et al. Inhibitory effect of adenovirus-uteroglobin transduction on the growth of lung cancer cell lines. Cancer Gene Ther 2003;10:287-93 https://doi.org/10.1038/sj.cgt.7700569
  20. Yoon JM, Lim JJ, Yoo CG, Lee CT, Bang YJ, Han SK, et al. Adenovirus-uteroglobin suppresses COX-2 expression via inhibition of NF-kappaB activity in lung cancer cells. Lung Cancer 2005;48:201-9 https://doi.org/10.1016/j.lungcan.2004.11.005
  21. Mellor AL, Munn DH. IDO expression by dendritic cells: tolerance and tryptophan catabolism. Nat Rev Immunol 2004;4:762-74 https://doi.org/10.1038/nri1457
  22. von Bergwelt-Baildon MS, Popov A, Saric T, Chemnitz J, Classen S, Stoffel MS, et al. CD25 and indoleamine 2,3-dioxygenase are up-regulated by prostaglandin E2 and expressed by tumor-associated dendritic cells in vivo: additional mechanisms of T-cell inhibition. Blood 2006;108:228-37 https://doi.org/10.1182/blood-2005-08-3507
  23. Basu GD, Tinder TL, Bradley JM, Tu T, Hattrup CL, Pockaj BA, et al. Cyclooxygenase-2 inhibitor enhances the efficacy of a breast cancer vaccine: role of IDO. J Immunol 2006;177:2391-402 https://doi.org/10.4049/jimmunol.177.4.2391

Cited by

  1. Folate receptor-mediated delivery of 1-MDT-loaded mesoporous silica magnetic nanoparticles to target breast cancer cells vol.16, pp.24, 2021, https://doi.org/10.2217/nnm-2021-0176