Abstract
Programmed death-1 (PD-1), an inhibitory receptor expressed on activated T cells, may suppress antitumor immunity. This phase I study sought to determine the safety and tolerability of anti-PD-1 blockade in patients with treatment-refractory solid tumors and to preliminarily assess antitumor activity, pharmacodynamics, and immunologic correlates. Thirty-nine patients with advanced metastatic melanoma, colorectal cancer (CRC), castrate-resistant prostate cancer, non-small-cell lung cancer (NSCLC), or renal cell carcinoma (RCC) received a single intravenous infusion of anti-PD-1 (MDX-1106) in dose-escalating six-patient cohorts at 0.3, 1, 3, or 10 mg/kg, followed by a 15-patient expansion cohort at 10 mg/kg. Patients with evidence of clinical benefit at 3 months were eligible for repeated therapy. Anti-PD-1 was well tolerated: one serious adverse event, inflammatory colitis, was observed in a patient with melanoma who received five doses at 1 mg/kg. One durable complete response (CRC) and two partial responses (PRs; melanoma, RCC) were seen. Two additional patients (melanoma, NSCLC) had significant lesional tumor regressions not meeting PR criteria. The serum half-life of anti-PD-1 was 12 to 20 days. However, pharmacodynamics indicated a sustained mean occupancy of > 70% of PD-1 molecules on circulating T cells > or = 2 months following infusion, regardless of dose. In nine patients examined, tumor cell surface B7-H1 expression appeared to correlate with the likelihood of response to treatment. Blocking the PD-1 immune checkpoint with intermittent antibody dosing is well tolerated and associated with evidence of antitumor activity. Exploration of alternative dosing regimens and combinatorial therapies with vaccines, targeted therapies, and/or other checkpoint inhibitors is warranted.
MeSH Terms
Adult
Aged
Aged, 80 and over
Antibodies, Monoclonal/adverse effects,pharmacokinetics,therapeutic use
Antigens, CD/immunology
Apoptosis Regulatory Proteins/immunology
Carcinoma, Non-Small-Cell Lung/drug therapy,pathology
Carcinoma, Renal Cell/drug therapy,pathology
Colorectal Neoplasms/drug therapy,pathology
Dose-Response Relationship, Drug
Fatigue/chemically induced
Female
Humans
Kidney Neoplasms/drug therapy,pathology
Lung Neoplasms/drug therapy,pathology
Lymphopenia/chemically induced
Male
Melanoma/drug therapy,pathology
Middle Aged
Neoplasms/drug therapy,pathology
Nivolumab
Programmed Cell Death 1 Receptor
Prostatic Neoplasms/drug therapy,pathology
Treatment Outcome
Chemicals
Antibodies, Monoclonal
Antigens, CD
Apoptosis Regulatory Proteins
PDCD1 protein, human
Programmed Cell Death 1 Receptor
Nivolumab
Authors & Affiliations
20 authors, click to expand affiliations / ORCID
Brahmer Julie R
Johns Hopkins University School of Medicine, and the Sidney Kimmel Comprehensive Cancer Center, Baltimore, MD, USA.
Drake Charles G
Wollner Ira
Powderly John D
Picus Joel
Sharfman William H
Stankevich Elizabeth
Pons Alice
Salay Theresa M
McMiller Tracee L
Gilson Marta M
Wang Changyu
Selby Mark
Taube Janis M
Anders Robert
Chen Lieping
Korman Alan J
Pardoll Drew M
Lowy Israel
Topalian Suzanne L
References (18)
18 references, click to expand
-
Role of PD-1 and its ligand, B7-H1, in early fate decisions of CD8 T cells.
Blood. 2007 Jul 1;110(1):186-92
PMID: 17392506
-
PD-L1/B7H-1 inhibits the effector phase of tumor rejection by T cell receptor (TCR) transgenic CD8+ T cells.
Cancer Res. 2004 Feb 1;64(3):1140-5
PMID: 14871849
-
PD-1 and its ligands in tolerance and immunity.
Annu Rev Immunol. 2008;26:677-704
PMID: 18173375
-
Involvement of PD-L1 on tumor cells in the escape from host immune system and tumor immunotherapy by PD-L1 blockade.
Proc Natl Acad Sci U S A. 2002 Sep 17;99(19):12293-7
PMID: 12218188
-
Development of lupus-like autoimmune diseases by disruption of the PD-1 gene encoding an ITIM motif-carrying immunoreceptor.
Immunity. 1999 Aug;11(2):141-51
PMID: 10485649
-
Anti-programmed death-1 synergizes with granulocyte macrophage colony-stimulating factor--secreting tumor cell immunotherapy providing therapeutic benefit to mice with established tumors.
Clin Cancer Res. 2009 Mar 1;15(5):1623-34
PMID: 19208793
-
Tumor B7-H1 is associated with poor prognosis in renal cell carcinoma patients with long-term follow-up.
Cancer Res. 2006 Apr 1;66(7):3381-5
PMID: 16585157
-
Autoimmune dilated cardiomyopathy in PD-1 receptor-deficient mice.
Science. 2001 Jan 12;291(5502):319-22
PMID: 11209085
-
Cancer immunosurveillance and immunoediting: the roles of immunity in suppressing tumor development and shaping tumor immunogenicity.
Adv Immunol. 2006;90:1-50
PMID: 16730260
-
Lymphoproliferative disorders with early lethality in mice deficient in Ctla-4.
Science. 1995 Nov 10;270(5238):985-8
PMID: 7481803
-
Autoimmunity correlates with tumor regression in patients with metastatic melanoma treated with anti-cytotoxic T-lymphocyte antigen-4.
J Clin Oncol. 2005 Sep 1;23(25):6043-53
PMID: 16087944
-
Epitope landscape in breast and colorectal cancer.
Cancer Res. 2008 Feb 1;68(3):889-92
PMID: 18245491
-
Programmed death-1 blockade enhances expansion and functional capacity of human melanoma antigen-specific CTLs.
Int Immunol. 2007 Oct;19(10):1223-34
PMID: 17898045
-
Phase I safety and pharmacokinetic study of CT-011, a humanized antibody interacting with PD-1, in patients with advanced hematologic malignancies.
Clin Cancer Res. 2008 May 15;14(10):3044-51
PMID: 18483370
-
Tumor-associated B7-H1 promotes T-cell apoptosis: a potential mechanism of immune evasion.
Nat Med. 2002 Aug;8(8):793-800
PMID: 12091876
-
Programmed cell death 1 ligand 1 and tumor-infiltrating CD8+ T lymphocytes are prognostic factors of human ovarian cancer.
Proc Natl Acad Sci U S A. 2007 Feb 27;104(9):3360-5
PMID: 17360651
-
B7-H1 blockade augments adoptive T-cell immunotherapy for squamous cell carcinoma.
Cancer Res. 2003 Oct 1;63(19):6501-5
PMID: 14559843
-
Interaction between B7-H1 and PD-1 determines initiation and reversal of T-cell anergy.
Blood. 2007 Jul 1;110(1):180-5
PMID: 17289811