Integrated analysis of concomitant medications and oncological outcomes from PD-1/PD-L1 checkpoint inhibitors in clinical practice.


Journal

Journal for immunotherapy of cancer
ISSN: 2051-1426
Titre abrégé: J Immunother Cancer
Pays: England
ID NLM: 101620585

Informations de publication

Date de publication:
11 2020
Historique:
accepted: 28 08 2020
entrez: 6 11 2020
pubmed: 7 11 2020
medline: 18 9 2021
Statut: ppublish

Résumé

Concomitant medications, such as steroids, proton pump inhibitors (PPI) and antibiotics, might affect clinical outcomes with immune checkpoint inhibitors. We conducted a multicenter observational retrospective study aimed at evaluating the impact of concomitant medications on clinical outcomes, by weighing their associations with baseline clinical characteristics (including performance status, burden of disease and body mass index) and the underlying causes for their prescription. This analysis included consecutive stage IV patients with cancer, who underwent treatment with single agent antiprogrammed death-1/programmed death ligand-1 (PD-1/PD-L1) with standard doses and schedules at the medical oncology departments of 20 Italian institutions. Each medication taken at the immunotherapy initiation was screened and collected into key categories as follows: corticosteroids, antibiotics, gastric acid suppressants (including proton pump inhibitors - PPIs), statins and other lipid-lowering agents, aspirin, anticoagulants, non-steroidal anti-inflammatory drugs (NSAIDs), ACE inhibitors/Angiotensin II receptor blockers, calcium antagonists, β-blockers, metformin and other oral antidiabetics, opioids. From June 2014 to March 2020, 1012 patients were included in the analysis. Primary tumors were: non-small cell lung cancer (52.2%), melanoma (26%), renal cell carcinoma (18.3%) and others (3.6%). Baseline statins (HR 1.60 (95% CI 1.14 to 2.25), p=0.0064), aspirin (HR 1.47 (95% CI 1.04 to 2.08, p=0.0267) and β-blockers (HR 1.76 (95% CI 1.16 to 2.69), p=0.0080) were confirmed to be independently related to an increased objective response rate. Patients receiving cancer-related steroids (HR 1.72 (95% CI 1.43 to 2.07), p<0.0001), prophylactic systemic antibiotics (HR 1.85 (95% CI 1.23 to 2.78), p=0.0030), prophylactic gastric acid suppressants (HR 1.29 (95% CI 1.09 to 1.53), p=0.0021), PPIs (HR 1.26 (95% CI 1.07 to 1.48), p=0.0050), anticoagulants (HR 1.43 (95% CI: 1.16 to 1.77), p=0.0007) and opioids (HR 1.71 (95% CI 1.28 to 2.28), p=0.0002) were confirmed to have a significantly higher risk of disease progression. Patients receiving cancer-related steroids (HR 2.16 (95% CI 1.76 to 2.65), p<0.0001), prophylactic systemic antibiotics (HR 1.93 (95% CI 1.25 to 2.98), p=0.0030), prophylactic gastric acid suppressants (HR 1.29 (95% CI 1.06 to 1.57), p=0.0091), PPI (HR 1.26 (95% CI 1.04 to 1.52), p=0.0172), anticoagulants (HR 1.45 (95% CI 1.14 to 1.84), p=0.0024) and opioids (HR 1.53 (95% CI 1.11 to 2.11), p=0.0098) were confirmed to have a significantly higher risk of death. We confirmed the association between baseline steroids administered for cancer-related indication, systemic antibiotics, PPIs and worse clinical outcomes with PD-1/PD-L1 checkpoint inhibitors, which can be assumed to have immune-modulating detrimental effects.

Sections du résumé

BACKGROUND
Concomitant medications, such as steroids, proton pump inhibitors (PPI) and antibiotics, might affect clinical outcomes with immune checkpoint inhibitors.
METHODS
We conducted a multicenter observational retrospective study aimed at evaluating the impact of concomitant medications on clinical outcomes, by weighing their associations with baseline clinical characteristics (including performance status, burden of disease and body mass index) and the underlying causes for their prescription. This analysis included consecutive stage IV patients with cancer, who underwent treatment with single agent antiprogrammed death-1/programmed death ligand-1 (PD-1/PD-L1) with standard doses and schedules at the medical oncology departments of 20 Italian institutions. Each medication taken at the immunotherapy initiation was screened and collected into key categories as follows: corticosteroids, antibiotics, gastric acid suppressants (including proton pump inhibitors - PPIs), statins and other lipid-lowering agents, aspirin, anticoagulants, non-steroidal anti-inflammatory drugs (NSAIDs), ACE inhibitors/Angiotensin II receptor blockers, calcium antagonists, β-blockers, metformin and other oral antidiabetics, opioids.
RESULTS
From June 2014 to March 2020, 1012 patients were included in the analysis. Primary tumors were: non-small cell lung cancer (52.2%), melanoma (26%), renal cell carcinoma (18.3%) and others (3.6%). Baseline statins (HR 1.60 (95% CI 1.14 to 2.25), p=0.0064), aspirin (HR 1.47 (95% CI 1.04 to 2.08, p=0.0267) and β-blockers (HR 1.76 (95% CI 1.16 to 2.69), p=0.0080) were confirmed to be independently related to an increased objective response rate. Patients receiving cancer-related steroids (HR 1.72 (95% CI 1.43 to 2.07), p<0.0001), prophylactic systemic antibiotics (HR 1.85 (95% CI 1.23 to 2.78), p=0.0030), prophylactic gastric acid suppressants (HR 1.29 (95% CI 1.09 to 1.53), p=0.0021), PPIs (HR 1.26 (95% CI 1.07 to 1.48), p=0.0050), anticoagulants (HR 1.43 (95% CI: 1.16 to 1.77), p=0.0007) and opioids (HR 1.71 (95% CI 1.28 to 2.28), p=0.0002) were confirmed to have a significantly higher risk of disease progression. Patients receiving cancer-related steroids (HR 2.16 (95% CI 1.76 to 2.65), p<0.0001), prophylactic systemic antibiotics (HR 1.93 (95% CI 1.25 to 2.98), p=0.0030), prophylactic gastric acid suppressants (HR 1.29 (95% CI 1.06 to 1.57), p=0.0091), PPI (HR 1.26 (95% CI 1.04 to 1.52), p=0.0172), anticoagulants (HR 1.45 (95% CI 1.14 to 1.84), p=0.0024) and opioids (HR 1.53 (95% CI 1.11 to 2.11), p=0.0098) were confirmed to have a significantly higher risk of death.
CONCLUSION
We confirmed the association between baseline steroids administered for cancer-related indication, systemic antibiotics, PPIs and worse clinical outcomes with PD-1/PD-L1 checkpoint inhibitors, which can be assumed to have immune-modulating detrimental effects.

Identifiants

pubmed: 33154150
pii: jitc-2020-001361
doi: 10.1136/jitc-2020-001361
pmc: PMC7646355
pii:
doi:

Substances chimiques

Immune Checkpoint Inhibitors 0

Types de publication

Journal Article Multicenter Study Research Support, Non-U.S. Gov't

Langues

eng

Sous-ensembles de citation

IM

Subventions

Organisme : Wellcome Trust
ID : PS3416
Pays : United Kingdom
Organisme : Department of Health
Pays : United Kingdom

Informations de copyright

© Author(s) (or their employer(s)) 2020. Re-use permitted under CC BY-NC. No commercial re-use. See rights and permissions. Published by BMJ.

Déclaration de conflit d'intérêts

Competing interests: AC received speaker fees and grant consultancies from Roche, MSD, BMS, AstraZeneca, Novartis, Astellas. RG received speaker fees and grant consultancies from AstraZeneca and Roche. MGV received speaker fees, grant consultancies and travel support from BMS, Ipsen, Novartis, Pfizer, Astellas, Jansen and Pierre-Fabre. AR received grant consultancies from AstraZeneca and MSD. RM received grant consultancies from Pierre-Fabre, MSD, Incyte, BMS, and Roche. FS received speaker fees and grant consultancies from Roche, Novartis, BMS, MSD, Pierre-Fabre, Sanofi, Merck and Sunpharma. DP received lecture fees from ViiV Healthcare, Bayer Healthcare and travel expenses from BMS and Bayer Healthcare; consulting fees for Mina Therapeutics, EISAI, Roche, Astra Zeneca; received research funding (to institution) from MSD, BMS. PAA received speaker fees and grant consultancies from BMS, Roche-Genentech, MSD, Dohme, Array, Novartis, Merck-Serono, Pierre-Fabre, Incyte, New Link Genetics, Genmab, Medimmune, AstraZeneca, Syndax, SunPharma, Sanofi, Idera, Ultimovacs, Sandoz, Immunocore, 4SC, Alkermes, Italfarmaco, Nektar, Boehringer-Ingelheim; he also received research funds from BMS, Roche-Genentech, Array.

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Auteurs

Alessio Cortellini (A)

Department of Biotechnology and Applied Clinical Sciences, University of L'Aquila, L'Aquila, Italy alessiocortellini@gmail.com.
Medical Oncology, St. Salvatore Hospital, L'Aquila, Italy.

Marco Tucci (M)

Medical Oncology Unit, Department of Biomedical Sciences and Human Oncology, University of Bari, Bary, Italy.
National Cancer Research Center, Tumori Institute IRCCS Giovanni Paolo II, Bari, Italy.

Vincenzo Adamo (V)

Medical Oncology, Department of Human Pathology, A.O. Papardo, University of Messina, Messina, Italy.

Luigia Stefania Stucci (LS)

Medical Oncology Unit, Department of Biomedical Sciences and Human Oncology, University of Bari, Bary, Italy.

Alessandro Russo (A)

Medical Oncology, Department of Human Pathology, A.O. Papardo, University of Messina, Messina, Italy.

Enrica Teresa Tanda (ET)

IRCCS Ospedale Policlinico San Martino, Genova, Italy.

Francesco Spagnolo (F)

IRCCS Ospedale Policlinico San Martino, Genova, Italy.

Francesca Rastelli (F)

Medical Oncology, ASUR District Area 4 Fermo, Fermo, Italy.

Renato Bisonni (R)

Medical Oncology, ASUR District Area 4 Fermo, Fermo, Italy.

Daniele Santini (D)

Medical Oncology, Campus Bio-Medico University, Rome, Italy.

Marco Russano (M)

Medical Oncology, Campus Bio-Medico University, Rome, Italy.

Cecilia Anesi (C)

Medical Oncology, Campus Bio-Medico University, Rome, Italy.

Raffaele Giusti (R)

Medical Oncology Unit, Sant'Andrea Hospital of Rome, Rome, Italy.

Marco Filetti (M)

Medical Oncology Unit, Sant'Andrea Hospital of Rome, Rome, Italy.

Paolo Marchetti (P)

Medical Oncology Unit, Sant'Andrea Hospital of Rome, Rome, Italy.
Department of Clinical and Molecular Medicine, Sapienza University of Rome, Rome, Italy.
Medical Oncology Unit B, Policlinico Umberto I, Sapienza University of Rome, Roma, Italy.

Andrea Botticelli (A)

Department of Clinical and Molecular Medicine, Sapienza University of Rome, Rome, Italy.

Alain Gelibter (A)

Medical Oncology Unit B, Policlinico Umberto I, Sapienza University of Rome, Roma, Italy.

Mario Alberto Occhipinti (MA)

Medical Oncology Unit B, Policlinico Umberto I, Sapienza University of Rome, Roma, Italy.

Riccardo Marconcini (R)

Medical Oncology, Azienda Ospedaliero-Universitaria Pisana, Pisa, Italy.

Maria Giuseppa Vitale (MG)

Medical Oncology, University Hospital Modena, Modena, Italy.

Linda Nicolardi (L)

UOC Oncologia Padova Sud, Azienda ULSS 6 Euganea, Padova, Italy.

Rita Chiari (R)

UOC Oncologia Padova Sud, Azienda ULSS 6 Euganea, Padova, Italy.

Claudia Bareggi (C)

Medical Oncology Unit, Fondazione IRCCS Ca' Granda Ospedale Maggiore di Milano Policlinico, Milano, Italy.

Olga Nigro (O)

Medical Oncology, ASST Sette Laghi, Ospedale di Circolo e Fondazione Macchi, Varese, Italy.

Alessandro Tuzi (A)

Medical Oncology, ASST Sette Laghi, Ospedale di Circolo e Fondazione Macchi, Varese, Italy.

Michele De Tursi (M)

Department of Medical, Oral and Biotechnological Sciences, Gabriele d'Annunzio University of Chieti and Pescara, Chieti, Italy.

Nicola Petragnani (N)

Department of Psychological, Health and Territorial Sciences, University G. D'Annunzio of Chieti and Pescara, Chieti, Italy.

Laura Pala (L)

Division of Medical Oncology for Melanoma, Sarcoma and Rare Tumors, IEO European Institute of Oncology IRCCS, Milan, Italy.

Sergio Bracarda (S)

Medical Oncology, Azienda Ospedaliera S. Maria, Terni, Italy.

Serena Macrini (S)

Medical Oncology, Azienda Ospedaliera S. Maria, Terni, Italy.

Alessandro Inno (A)

Oncology Unit, IRCCS Ospedale Sacro Cuore Don Calabria, Negrar, Italy.

Federica Zoratto (F)

Medical Oncology, Santa Maria Goretti Hospital, Latina, Italy.

Enzo Veltri (E)

Medical Oncology, Santa Maria Goretti Hospital, Latina, Italy.

Barbara Di Cocco (B)

Medical Oncology, Santa Maria Goretti Hospital, Latina, Italy.

Domenico Mallardo (D)

Melanoma, Cancer Immunotherapy and Development Therapeutics Unit, Istituto Nazionale Tumori IRCCS Fondazione "G. Pascale", Napoli, Italy.

Maria Grazia Vitale (MG)

Melanoma, Cancer Immunotherapy and Development Therapeutics Unit, Istituto Nazionale Tumori IRCCS Fondazione "G. Pascale", Napoli, Italy.

David James Pinato (DJ)

Division of Cancer, Department of Surgery and Cancer, Imperial College London, Hammersmith Hospital, London, UK.

Giampiero Porzio (G)

Medical Oncology, St. Salvatore Hospital, L'Aquila, Italy.

Corrado Ficorella (C)

Department of Biotechnology and Applied Clinical Sciences, University of L'Aquila, L'Aquila, Italy.
Medical Oncology, St. Salvatore Hospital, L'Aquila, Italy.

Paolo Antonio Ascierto (PA)

Melanoma, Cancer Immunotherapy and Development Therapeutics Unit, Istituto Nazionale Tumori IRCCS Fondazione "G. Pascale", Napoli, Italy.

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