Literature DB >> 30999388

PTEN-deficient prostate cancer is associated with an immunosuppressive tumor microenvironment mediated by increased expression of IDO1 and infiltrating FoxP3+ T regulatory cells.

Thiago Vidotto1, Fabiano P Saggioro2, Tamara Jamaspishvili3,4, Deise L Chesca2, Clarissa G Picanço de Albuquerque5, Rodolfo B Reis5, Charles H Graham6, David M Berman3,4, D Robert Siemens6,7, Jeremy A Squire1,3, Madhuri Koti4,6,7.   

Abstract

BACKGROUND: Accumulating evidence shows that tumor cell-specific genomic changes can influence the cross talk between cancer cells and the surrounding tumor microenvironment (TME). Loss of the PTEN tumor suppressor gene is observed in 20% to 30% of prostate cancers (PCa) when first detected and the rate increases with PCa progression and advanced disease. Recent findings implicate a role for PTEN in cellular type I interferon response and immunosuppression in PCa. However, the way that PTEN inactivation alters antitumor immune response in PCa is poorly understood.
MATERIALS AND METHODS: To investigate the changes associated with PTEN loss and an immunosuppressive TME in PCa, we used CIBERSORT to estimate the relative abundance of 22 immune-cell types from 741 primary and 96 metastatic tumors. Our in silico findings were then validated by immunohistochemical analysis of immune cells and IDO1 and PDL1 checkpoint proteins in a cohort of 94 radical prostatectomy specimens.
RESULTS: FoxP3+ T regulatory cells (Tregs) were significantly increased in PTEN-deficient PCa in all three public domain cohorts. Loss of PTEN in bone metastases was associated with lower CD8+ T-cell abundance, but in liver metastasis, FoxP3+ Tregs were present at higher levels. PTEN-deficient lymph node metastasis had a distinct profile, with high levels of CD8+ T cells. Moreover, we found that metastatic PCa presents higher abundance of FoxP3+ Treg when compared to primary lesions. Since PTEN-deficient tumors are likely to be immunosuppressed as a consequence of increased FoxP3+ Tregs, we then evaluated the localization and expression of IDO1, PDL1 immune checkpoints, and the corresponding density of FoxP3+ Treg and CD8+ T cells using our validation cohort (n = 94). We found that IDO1 protein expression and FoxP3+ Treg density were higher in neoplastic glands compared with benign adjacent tissue. Moreover, higher densities of FoxP3+ Treg cells in both stromal (P = 0.04) and tumor (P = 0.006) compartments were observed in PTEN-deficient tumors compared to tumors that retained PTEN activity. Similarly, IDO1 protein expression was significantly increased in the tumor glands of PTEN-deficient PCa (P < 0.0001). Spearman correlation analysis showed that IDO1 expression was significantly associated with FoxP3+ Treg and CD8+ T-cell density (P < 0.01).
CONCLUSIONS: Our findings imply that PTEN deficiency is linked to an immunosuppressive state in PCa with distinct changes in the frequency of immune cell types in tumors from different metastatic sites. Our data suggest that determining PTEN status may also help guide the selection of patients for future immunotherapy trials in localized and metastatic PCa.
© 2019 Wiley Periodicals, Inc.

Entities:  

Keywords:  IDO1; PTEN; T regulatory cell; immune checkpoint; prostate cancer; tumor microenvironment

Year:  2019        PMID: 30999388     DOI: 10.1002/pros.23808

Source DB:  PubMed          Journal:  Prostate        ISSN: 0270-4137            Impact factor:   4.104


  23 in total

1.  miR-338-3p blocks TGFβ-induced myofibroblast differentiation through the induction of PTEN.

Authors:  Ashley R Rackow; Jennifer L Judge; Collynn F Woeller; Patricia J Sime; Robert M Kottmann
Journal:  Am J Physiol Lung Cell Mol Physiol       Date:  2022-01-05       Impact factor: 5.464

Review 2.  Toward Systems Pathology for PTEN Diagnostics.

Authors:  Nahal Haddadi; Glena Travis; Najah T Nassif; Ann M Simpson; Deborah J Marsh
Journal:  Cold Spring Harb Perspect Med       Date:  2020-05-01       Impact factor: 6.915

3.  Phase Ib study of patients with metastatic castrate-resistant prostate cancer treated with different sequencing regimens of atezolizumab and sipuleucel-T.

Authors:  Tanya Dorff; Yosuke Hirasawa; Jared Acoba; Ian Pagano; David Tamura; Sumanta Pal; Minlu Zhang; Rebecca Waitz; Abhilash Dhal; Winston Haynes; John Shon; Mark Scholz; Hideki Furuya; Owen T M Chan; Jeffrey Huang; Charles Rosser
Journal:  J Immunother Cancer       Date:  2021-08       Impact factor: 13.751

4.  Identification of Differentially Expressed lncRNAs and mRNAs in Children with Acquired Aplastic Anemia by RNA Sequencing.

Authors:  Shuanglong Lu; Xiaoxiao Song; Jing Chen; Xiaohong Qiao
Journal:  Biomed Res Int       Date:  2020-06-28       Impact factor: 3.411

Review 5.  Emerging role of PTEN loss in evasion of the immune response to tumours.

Authors:  Thiago Vidotto; Camila Morais Melo; Erick Castelli; Madhuri Koti; Rodolfo Borges Dos Reis; Jeremy A Squire
Journal:  Br J Cancer       Date:  2020-04-24       Impact factor: 7.640

Review 6.  Acquired Resistance to Immune Checkpoint Blockade Therapies.

Authors:  Xianda Zhao; Dechen Wangmo; Matthew Robertson; Subbaya Subramanian
Journal:  Cancers (Basel)       Date:  2020-05-05       Impact factor: 6.639

Review 7.  PTEN Function at the Interface between Cancer and Tumor Microenvironment: Implications for Response to Immunotherapy.

Authors:  Fabiana Conciatori; Chiara Bazzichetto; Italia Falcone; Ludovica Ciuffreda; Gianluigi Ferretti; Sabrina Vari; Virginia Ferraresi; Francesco Cognetti; Michele Milella
Journal:  Int J Mol Sci       Date:  2020-07-27       Impact factor: 5.923

8.  Clinical and pathological associations of PTEN expression in ovarian cancer: a multicentre study from the Ovarian Tumour Tissue Analysis Consortium.

Authors:  Filipe Correia Martins; Dominique-Laurent Couturier; Anna Paterson; Anthony N Karnezis; Christine Chow; Tayyebeh M Nazeran; Adekunle Odunsi; Aleksandra Gentry-Maharaj; Aleksandra Vrvilo; Alexander Hein; Aline Talhouk; Ana Osorio; Andreas D Hartkopf; Angela Brooks-Wilson; Anna DeFazio; Anna Fischer; Arndt Hartmann; Brenda Y Hernandez; Bryan M McCauley; Chloe Karpinskyj; Christiani B de Sousa; Claus Høgdall; Daniel G Tiezzi; Esther Herpel; Florin Andrei Taran; Francesmary Modugno; Gary Keeney; Gregg Nelson; Helen Steed; Honglin Song; Hugh Luk; Javier Benitez; Jennifer Alsop; Jennifer M Koziak; Jenny Lester; Joseph H Rothstein; Jurandyr M de Andrade; Lene Lundvall; Luis Paz-Ares; Luis Robles-Díaz; Lynne R Wilkens; Maria J Garcia; Maria P Intermaggio; Marie-Lyne Alcaraz; Mary A Brett; Matthias W Beckmann; Mercedes Jimenez-Linan; Michael Anglesio; Michael E Carney; Michael Schneider; Nadia Traficante; Nadja Pejovic; Naveena Singh; Nhu Le; Peter Sinn; Prafull Ghatage; Ramona Erber; Robert Edwards; Robert Vierkant; Roberta B Ness; Samuel Leung; Sandra Orsulic; Sara Y Brucker; Scott H Kaufmann; Sian Fereday; Simon Gayther; Stacey J Winham; Stefan Kommoss; Tanja Pejovic; Teri A Longacre; Valerie McGuire; Valerie Rhenius; Weiva Sieh; Yurii B Shvetsov; Alice S Whittemore; Annette Staebler; Beth Y Karlan; Cristina Rodriguez-Antona; David D Bowtell; Ellen L Goode; Estrid Høgdall; Francisco J Candido Dos Reis; Jacek Gronwald; Jenny Chang-Claude; Kirsten B Moysich; Linda E Kelemen; Linda S Cook; Marc T Goodman; Peter A Fasching; Robin Crawford; Suha Deen; Usha Menon; David G Huntsman; Martin Köbel; Susan J Ramus; Paul D P Pharoah; James D Brenton
Journal:  Br J Cancer       Date:  2020-06-18       Impact factor: 7.640

Review 9.  Is there a causal link between PTEN deficient tumors and immunosuppressive tumor microenvironment?

Authors:  Vildan B Cetintas; Nizar N Batada
Journal:  J Transl Med       Date:  2020-01-30       Impact factor: 5.531

10.  Preoperative plasma fatty acid metabolites inform risk of prostate cancer progression and may be used for personalized patient stratification.

Authors:  Eugenio Zoni; Martina Minoli; Cédric Bovet; Anne Wehrhan; Salvatore Piscuoglio; Charlotte K Y Ng; Peter C Gray; Martin Spahn; George N Thalmann; Marianna Kruithof-de Julio
Journal:  BMC Cancer       Date:  2019-12-16       Impact factor: 4.430

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