Interferon regulatory factor 1 (IRF-1) and IRF-2 regulate PD-L1 expression in hepatocellular carcinoma (HCC) cells.
Aged
Animals
B7-H1 Antigen
/ metabolism
Carcinoma, Hepatocellular
/ metabolism
Cell Line, Tumor
Down-Regulation
/ physiology
Female
Hep G2 Cells
Humans
Interferon Regulatory Factor-1
/ metabolism
Interferon Regulatory Factor-2
/ metabolism
Interferon-gamma
/ metabolism
Liver Neoplasms
/ metabolism
Male
Mice
Signal Transduction
/ physiology
Tumor Microenvironment
/ physiology
Up-Regulation
/ physiology
HCC
IFN-γ
IRF-1
IRF-2
PD-L1
Journal
Cancer immunology, immunotherapy : CII
ISSN: 1432-0851
Titre abrégé: Cancer Immunol Immunother
Pays: Germany
ID NLM: 8605732
Informations de publication
Date de publication:
Sep 2020
Sep 2020
Historique:
received:
06
01
2020
accepted:
17
04
2020
pubmed:
8
5
2020
medline:
18
8
2020
entrez:
8
5
2020
Statut:
ppublish
Résumé
The objective response rate of immune checkpoint blockade (ICB) in hepatocellular carcinoma (HCC) with anti PD-L1/PD-1 therapy is low. Discovering the signaling pathways regulating PD-L1 might help to improve ICB response rates. Here, we investigate transcription factors IRF-1 and IRF-2 signaling pathways regulating PD-L1 in HCC cells. In vivo studies show that IRF-1 and PD-L1 mRNA expression in human HCC tumors are significantly repressed compared with noncancerous background liver. IRF-1, IRF-2, and PD-L1 mRNA expression correlated positively in HCC tumors. Increased IRF-1 mRNA expression was observed in patients with well-differentiated or early stage HCC tumors. In vitro studies show that IFN-γ induces PD-L1 mRNA and protein expression through upregulation of IRF-1 in mouse and human HCC cells. IRF-1, IRF-2, and PD-L1 mRNA expression is upregulated in murine HCC by co-culture with effector T cells from spleen cells incubated with anti-CD3/CD28 antibodies. IRF-2 over-expression down-regulates IFN-γ induced PD-L1 promoter activity and protein levels in a dose-dependent manner. We identify two IRF-1 response elements (IRE1/IRE2) in the upstream 5'-flanking region of the CD274 (PD-L1) gene promoter. Site-directed mutagenesis shows both IRE1 and IRE2 are functional in transfection promoter assays. IRF-1 traditionally functions as tumor suppressor gene. However, these novel findings show a complex role for IRF-1 which upregulates PD-L1 in the inflammatory tumor microenvironment. IRF-1 antagonizes IRF-2 for binding to the IRE promoter element in PD-L1 which gives new insight to the regulation of PD-L1/PD-1 pathways in HCC ICB therapy.
Identifiants
pubmed: 32377817
doi: 10.1007/s00262-020-02586-9
pii: 10.1007/s00262-020-02586-9
pmc: PMC10112362
mid: NIHMS1880698
doi:
Substances chimiques
B7-H1 Antigen
0
CD274 protein, human
0
IRF1 protein, human
0
IRF2 protein, human
0
Interferon Regulatory Factor-1
0
Interferon Regulatory Factor-2
0
Interferon-gamma
82115-62-6
Types de publication
Journal Article
Langues
eng
Sous-ensembles de citation
IM
Pagination
1891-1903Subventions
Organisme : NIH HHS
ID : HHSN276201200017C
Pays : United States
Organisme : NIDDK NIH HHS
ID : P30 DK120531
Pays : United States
Organisme : NLM NIH HHS
ID : HHSN276201200017C
Pays : United States
Organisme : NIH HHS
ID : P30DK120531-01
Pays : United States
Références
Clin Cancer Res. 2009 Feb 1;15(3):971-9
pubmed: 19188168
J Immunol. 2015 Jun 15;194(12):6045-56
pubmed: 25964490
Nature. 2014 Nov 27;515(7528):568-71
pubmed: 25428505
Cancer Discov. 2017 Feb;7(2):188-201
pubmed: 27903500
Cancer Res. 2001 Mar 15;61(6):2609-17
pubmed: 11289138
J Immunother. 2017 Nov/Dec;40(9):323-333
pubmed: 29028787
Annu Rev Immunol. 2008;26:535-84
pubmed: 18303999
Toxicology. 2002 Dec 27;181-182:43-7
pubmed: 12505283
Hepatology. 2016 Dec;64(6):1847-1849
pubmed: 27618225
Cell. 1989 Aug 25;58(4):729-39
pubmed: 2475256
Cell. 2017 Feb 9;168(4):707-723
pubmed: 28187290
J Immunother Cancer. 2017 Mar 21;5:25
pubmed: 28331615
Science. 2016 Jul 22;353(6297):399-403
pubmed: 27463676
Front Oncol. 2019 Mar 19;9:156
pubmed: 30941308
Oncogene. 2007 Apr 2;26(15):2166-76
pubmed: 17401425
Hepatology. 2016 Dec;64(6):2038-2046
pubmed: 27359084
Clin Cancer Res. 2014 Oct 1;20(19):5064-74
pubmed: 24714771
Br J Cancer. 2018 Jan;118(1):62-71
pubmed: 29112686
Hepatology. 2010 May;51(5):1692-701
pubmed: 20131404
Immunity. 2018 Mar 20;48(3):434-452
pubmed: 29562194
J Immunother Cancer. 2019 Sep 18;7(1):254
pubmed: 31533832
Cancer Cell. 2019 Apr 15;35(4):559-572.e7
pubmed: 30905761
Cancer Res. 2015 Mar 15;75(6):1046-55
pubmed: 25576084
Neoplasia. 2017 Aug;19(8):649-658
pubmed: 28732212
J Hepatol. 2014 Apr;60(4):855-65
pubmed: 24308993
Sci Transl Med. 2019 Feb 6;11(478):
pubmed: 30728286
Cancer Immunol Res. 2019 Aug;7(8):1258-1266
pubmed: 31239318
Cancer Discov. 2019 May;9(5):646-661
pubmed: 30777870
Cancer Discov. 2012 May;2(5):401-4
pubmed: 22588877
Hepatology. 2015 Oct;62(4):1160-73
pubmed: 26154152
Nat Rev Immunol. 2005 May;5(5):375-86
pubmed: 15864272
Am J Physiol Gastrointest Liver Physiol. 2012 Sep 1;303(5):G666-73
pubmed: 22744333
Cancer Lett. 2012 Jan 28;314(2):213-22
pubmed: 22056812
Nat Commun. 2017 Nov 24;8(1):1751
pubmed: 29170499
Cell Rep. 2017 May 9;19(6):1189-1201
pubmed: 28494868
CA Cancer J Clin. 2015 Mar;65(2):87-108
pubmed: 25651787
Sci Signal. 2013 Apr 02;6(269):pl1
pubmed: 23550210
Immunity. 2017 Dec 19;47(6):1083-1099.e6
pubmed: 29246442
Science. 2018 Mar 23;359(6382):1350-1355
pubmed: 29567705
Oncogene. 2004 Feb 5;23(5):1125-35
pubmed: 14762441
Oncogene. 2019 Jun;38(23):4452-4466
pubmed: 30755733