Literature DB >> 26554829

Imaging, Biodistribution, and Dosimetry of Radionuclide-Labeled PD-L1 Antibody in an Immunocompetent Mouse Model of Breast Cancer.

Anders Josefsson1, Jessie R Nedrow1, Sunju Park1, Sangeeta Ray Banerjee1, Andrew Rittenbach1, Fabien Jammes1, Benjamin Tsui1, George Sgouros2.   

Abstract

The programmed cell death ligand 1 (PD-L1) participates in an immune checkpoint system involved in preventing autoimmunity. PD-L1 is expressed on tumor cells, tumor-associated macrophages, and other cells in the tumor microenvironment. Anti-PD-L1 antibodies are active against a variety of cancers, and combined anti-PD-L1 therapy with external beam radiotherapy has been shown to increase therapeutic efficacy. PD-L1 expression status is an important indicator of prognosis and therapy responsiveness, but methods to precisely capture the dynamics of PD-L1 expression in the tumor microenvironment are still limited. In this study, we developed a murine anti-PD-L1 antibody conjugated to the radionuclide Indium-111 ((111)In) for imaging and biodistribution studies in an immune-intact mouse model of breast cancer. The distribution of (111)In-DTPA-anti-PD-L1 in tumors as well as the spleen, liver, thymus, heart, and lungs peaked 72 hours after injection. Coinjection of labeled and 100-fold unlabeled antibody significantly reduced spleen uptake at 24 hours, indicating that an excess of unlabeled antibody effectively blocked PD-L1 sites in the spleen, thus shifting the concentration of (111)In-DTPA-anti-PD-L1 into the blood stream and potentially increasing tumor uptake. Clearance of (111)In-DTPA-anti-PD-L1 from all organs occurred at 144 hours. Moreover, dosimetry calculations revealed that radionuclide-labeled anti-PD-L1 antibody yielded tolerable projected marrow doses, further supporting its use for radiopharmaceutical therapy. Taken together, these studies demonstrate the feasibility of using anti-PD-L1 antibody for radionuclide imaging and radioimmunotherapy and highlight a new opportunity to optimize and monitor the efficacy of immune checkpoint inhibition therapy. ©2015 American Association for Cancer Research.

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Year:  2015        PMID: 26554829      PMCID: PMC4715915          DOI: 10.1158/0008-5472.CAN-15-2141

Source DB:  PubMed          Journal:  Cancer Res        ISSN: 0008-5472            Impact factor:   12.701


  32 in total

1.  B7-H1, a third member of the B7 family, co-stimulates T-cell proliferation and interleukin-10 secretion.

Authors:  H Dong; G Zhu; K Tamada; L Chen
Journal:  Nat Med       Date:  1999-12       Impact factor: 53.440

2.  Regulation of PD-1, PD-L1, and PD-L2 expression during normal and autoimmune responses.

Authors:  Spencer C Liang; Yvette E Latchman; Janet E Buhlmann; Michal F Tomczak; Bruce H Horwitz; Gordon J Freeman; Arlene H Sharpe
Journal:  Eur J Immunol       Date:  2003-10       Impact factor: 5.532

3.  Noninvasive Imaging of Tumor PD-L1 Expression Using Radiolabeled Anti-PD-L1 Antibodies.

Authors:  Sandra Heskamp; Willemijn Hobo; Janneke D M Molkenboer-Kuenen; Daniel Olive; Wim J G Oyen; Harry Dolstra; Otto C Boerman
Journal:  Cancer Res       Date:  2015-05-14       Impact factor: 12.701

4.  Bone marrow dosimetry for radioimmunotherapy: theoretical considerations.

Authors:  G Sgouros
Journal:  J Nucl Med       Date:  1993-04       Impact factor: 10.057

5.  The collaboration of both humoral and cellular HER-2/neu-targeted immune responses is required for the complete eradication of HER-2/neu-expressing tumors.

Authors:  R T Reilly; J P Machiels; L A Emens; A M Ercolini; F I Okoye; R Y Lei; D Weintraub; E M Jaffee
Journal:  Cancer Res       Date:  2001-02-01       Impact factor: 12.701

6.  PD-1:PD-L inhibitory pathway affects both CD4(+) and CD8(+) T cells and is overcome by IL-2.

Authors:  LauraL Carter; Lynette A Fouser; Jason Jussif; Lori Fitz; Bija Deng; Clive R Wood; Mary Collins; Tasuku Honjo; Gordon J Freeman; Beatriz M Carreno
Journal:  Eur J Immunol       Date:  2002-03       Impact factor: 5.532

7.  Radioimmunotherapy of B-cell lymphoma with [131I]anti-B1 (anti-CD20) antibody.

Authors:  M S Kaminski; K R Zasadny; I R Francis; A W Milik; C W Ross; S D Moon; S M Crawford; J M Burgess; N A Petry; G M Butchko
Journal:  N Engl J Med       Date:  1993-08-12       Impact factor: 91.245

8.  B7-H1 blockade augments adoptive T-cell immunotherapy for squamous cell carcinoma.

Authors:  Scott E Strome; Haidong Dong; Hideto Tamura; Stephen G Voss; Dallas B Flies; Koji Tamada; Diva Salomao; John Cheville; Fumiya Hirano; Wei Lin; Jan L Kasperbauer; Karla V Ballman; Lieping Chen
Journal:  Cancer Res       Date:  2003-10-01       Impact factor: 12.701

9.  Expression of the neu protooncogene in the mammary epithelium of transgenic mice induces metastatic disease.

Authors:  C T Guy; M A Webster; M Schaller; T J Parsons; R D Cardiff; W J Muller
Journal:  Proc Natl Acad Sci U S A       Date:  1992-11-15       Impact factor: 11.205

10.  Improved delivery of radiolabeled anti-B1 monoclonal antibody to Raji lymphoma xenografts by predosing with unlabeled anti-B1 monoclonal antibody.

Authors:  D J Buchsbaum; R L Wahl; S D Glenn; D P Normolle; M S Kaminski
Journal:  Cancer Res       Date:  1992-02-01       Impact factor: 12.701

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  68 in total

Review 1.  Microbiome, bile acids, and obesity: How microbially modified metabolites shape anti-tumor immunity.

Authors:  Laura M Sipe; Mehdi Chaib; Ajeeth K Pingili; Joseph F Pierre; Liza Makowski
Journal:  Immunol Rev       Date:  2020-05       Impact factor: 12.988

2.  Constrained Combinatorial Libraries of Gp2 Proteins Enhance Discovery of PD-L1 Binders.

Authors:  Max A Kruziki; Vidur Sarma; Benjamin J Hackel
Journal:  ACS Comb Sci       Date:  2018-06-05       Impact factor: 3.784

Review 3.  The Immunoimaging Toolbox.

Authors:  Aaron T Mayer; Sanjiv S Gambhir
Journal:  J Nucl Med       Date:  2018-05-24       Impact factor: 10.057

Review 4.  Immune Checkpoint Imaging in Oncology: A Game Changer Toward Personalized Immunotherapy?

Authors:  Susanne Lütje; Georg Feldmann; Markus Essler; Peter Brossart; Ralph A Bundschuh
Journal:  J Nucl Med       Date:  2020-01-10       Impact factor: 10.057

5.  Practical Immuno-PET Radiotracer Design Considerations for Human Immune Checkpoint Imaging.

Authors:  Aaron T Mayer; Arutselvan Natarajan; Sydney R Gordon; Roy L Maute; Melissa N McCracken; Aaron M Ring; Irving L Weissman; Sanjiv S Gambhir
Journal:  J Nucl Med       Date:  2016-12-15       Impact factor: 10.057

6.  Pharmacokinetics, microscale distribution, and dosimetry of alpha-emitter-labeled anti-PD-L1 antibodies in an immune competent transgenic breast cancer model.

Authors:  Jessie R Nedrow; Anders Josefsson; Sunju Park; Tom Bäck; Robert F Hobbs; Cory Brayton; Frank Bruchertseifer; Alfred Morgenstern; George Sgouros
Journal:  EJNMMI Res       Date:  2017-07-18       Impact factor: 3.138

7.  Peptide-based PET quantifies target engagement of PD-L1 therapeutics.

Authors:  Dhiraj Kumar; Ala Lisok; Elyes Dahmane; Matthew McCoy; Sagar Shelake; Samit Chatterjee; Viola Allaj; Polina Sysa-Shah; Bryan Wharram; Wojciech G Lesniak; Ellen Tully; Edward Gabrielson; Elizabeth M Jaffee; John T Poirier; Charles M Rudin; Jogarao Vs Gobburu; Martin G Pomper; Sridhar Nimmagadda
Journal:  J Clin Invest       Date:  2019-01-07       Impact factor: 14.808

Review 8.  Imaging of Cancer Immunotherapy: Current Approaches and Future Directions.

Authors:  Mizuki Nishino; Hiroto Hatabu; F Stephen Hodi
Journal:  Radiology       Date:  2018-11-20       Impact factor: 11.105

Review 9.  Molecular Imaging of Immunotherapy Targets in Cancer.

Authors:  Emily B Ehlerding; Christopher G England; Douglas G McNeel; Weibo Cai
Journal:  J Nucl Med       Date:  2016-07-28       Impact factor: 10.057

10.  PD-L1 Detection in Tumors Using [(64)Cu]Atezolizumab with PET.

Authors:  Wojciech G Lesniak; Samit Chatterjee; Matthew Gabrielson; Ala Lisok; Bryan Wharram; Martin G Pomper; Sridhar Nimmagadda
Journal:  Bioconjug Chem       Date:  2016-08-09       Impact factor: 4.774

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