Literature DB >> 29182441

Elimination of tumor by CD47/PD-L1 dual-targeting fusion protein that engages innate and adaptive immune responses.

Boning Liu1,2,3, Huaizu Guo4, Jin Xu4, Ting Qin1,2, Qingcheng Guo4, Nana Gu5, Dapeng Zhang1,5, Weizhu Qian1,6, Jianxin Dai4, Sheng Hou4, Hao Wang1,5, Yajun Guo1,7,6.   

Abstract

The host immune system generally serves as a barrier against tumor formation. Programmed death-ligand 1 (PD-L1) is a critical "don't find me" signal to the adaptive immune system, whereas CD47 transmits an anti-phagocytic signal, known as the "don't eat me" signal, to the innate immune system. These and similar immune checkpoints are often overexpressed on human tumors. Thus, dual targeting both innate and adaptive immune checkpoints would likely maximize anti-tumor therapeutic effect and elicit more durable responses. Herein, based on the variable region of atezolizumab and consensus variant 1 (CV1) monomer, we constructed a dual-targeting fusion protein targeting both CD47 and PD-L1 using "Knobs-into-holes" technology, denoted as IAB. It was effective in inducing phagocytosis of tumor cells, stimulating T-cell activation and mediating antibody-dependent cell-mediated cytotoxicity in vitro. No obvious sign of hematological toxicity was observed in mice administered IAB at a dose of 100 mg/kg, and IAB exhibited potent antitumor activity in an immune-competent mouse model of MC38. Additionally, the anti-tumor effect of IAB was impaired by anti-CD8 antibody or clodronate liposomes, which implied that both CD8+ T cells and macrophages were required for the anti-tumor efficacy of IAB and IAB plays an essential role in the engagement of innate and adaptive immune responses. Collectively, these results demonstrate the capacity of an elicited endogenous immune response against tumors and elucidate essential characteristics of synergistic innate and adaptive immune response, and indicate dual blockade of CD47 and PD-L1 by IAB may be a synergistic therapy that activates both innate and adaptive immune response against tumors.

Entities:  

Keywords:  CD47; PD-L1; adaptive immunity; dual-targeting fusion protein; immune checkpoint; innate immunity

Mesh:

Substances:

Year:  2017        PMID: 29182441      PMCID: PMC5825205          DOI: 10.1080/19420862.2017.1409319

Source DB:  PubMed          Journal:  MAbs        ISSN: 1942-0862            Impact factor:   5.857


  47 in total

1.  Anti-CD47 antibodies promote phagocytosis and inhibit the growth of human myeloma cells.

Authors:  D Kim; J Wang; S B Willingham; R Martin; G Wernig; I L Weissman
Journal:  Leukemia       Date:  2012-05-30       Impact factor: 11.528

Review 2.  The CD47-SIRPα pathway in cancer immune evasion and potential therapeutic implications.

Authors:  Mark P Chao; Irving L Weissman; Ravindra Majeti
Journal:  Curr Opin Immunol       Date:  2012-02-04       Impact factor: 7.486

3.  'Knobs-into-holes' engineering of antibody CH3 domains for heavy chain heterodimerization.

Authors:  J B Ridgway; L G Presta; P Carter
Journal:  Protein Eng       Date:  1996-07

Review 4.  Immune checkpoint blockade: a common denominator approach to cancer therapy.

Authors:  Suzanne L Topalian; Charles G Drake; Drew M Pardoll
Journal:  Cancer Cell       Date:  2015-04-06       Impact factor: 31.743

5.  FcγRs Modulate the Anti-tumor Activity of Antibodies Targeting the PD-1/PD-L1 Axis.

Authors:  Rony Dahan; Emanuela Sega; John Engelhardt; Mark Selby; Alan J Korman; Jeffrey V Ravetch
Journal:  Cancer Cell       Date:  2015-09-14       Impact factor: 31.743

Review 6.  Immune checkpoint targeting in cancer therapy: toward combination strategies with curative potential.

Authors:  Padmanee Sharma; James P Allison
Journal:  Cell       Date:  2015-04-09       Impact factor: 41.582

7.  The therapeutic effect of anti-HER2/neu antibody depends on both innate and adaptive immunity.

Authors:  SaeGwang Park; Zhujun Jiang; Eric D Mortenson; Liufu Deng; Olga Radkevich-Brown; Xuanming Yang; Husain Sattar; Yang Wang; Nicholas K Brown; Mark Greene; Yang Liu; Jie Tang; Shengdian Wang; Yang-Xin Fu
Journal:  Cancer Cell       Date:  2010-08-09       Impact factor: 31.743

Review 8.  Dual antibody therapy to harness the innate anti-tumor immune response to enhance antibody targeting of tumors.

Authors:  Cariad Chester; Aurelien Marabelle; Roch Houot; Holbrook E Kohrt
Journal:  Curr Opin Immunol       Date:  2015-01-07       Impact factor: 7.486

9.  Nivolumab plus ipilimumab in advanced melanoma.

Authors:  Jedd D Wolchok; Harriet Kluger; Margaret K Callahan; Michael A Postow; Naiyer A Rizvi; Alexander M Lesokhin; Neil H Segal; Charlotte E Ariyan; Ruth-Ann Gordon; Kathleen Reed; Matthew M Burke; Anne Caldwell; Stephanie A Kronenberg; Blessing U Agunwamba; Xiaoling Zhang; Israel Lowy; Hector David Inzunza; William Feely; Christine E Horak; Quan Hong; Alan J Korman; Jon M Wigginton; Ashok Gupta; Mario Sznol
Journal:  N Engl J Med       Date:  2013-06-02       Impact factor: 91.245

10.  Knobs-into-holes antibody production in mammalian cell lines reveals that asymmetric afucosylation is sufficient for full antibody-dependent cellular cytotoxicity.

Authors:  Whitney Shatz; Shan Chung; Bing Li; Brett Marshall; Max Tejada; Wilson Phung; Wendy Sandoval; Robert F Kelley; Justin M Scheer
Journal:  MAbs       Date:  2013-08-29       Impact factor: 5.857

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  31 in total

1.  Selective CD47 targeting with a bispecific antibody.

Authors:  Walter Ferlin; Krzysztof Masternak; Limin Shang
Journal:  Cancer Immunol Immunother       Date:  2021-01-02       Impact factor: 6.968

Review 2.  Tumor microenvironmental influences on dendritic cell and T cell function: A focus on clinically relevant immunologic and metabolic checkpoints.

Authors:  Kristian M Hargadon
Journal:  Clin Transl Med       Date:  2020-01

3.  PD-L1 and CD47 co-expression in pulmonary sarcomatoid carcinoma: a predictor of poor prognosis and potential targets of future combined immunotherapy.

Authors:  Zhenlin Yang; Jiachen Xu; Renda Li; Yibo Gao; Jie He
Journal:  J Cancer Res Clin Oncol       Date:  2019-09-14       Impact factor: 4.553

4.  CD47 is associated with the up-regulation of the PD-1 oncogenic signaling pathway.

Authors:  Danzhen Yao; Jinying Xia; Jianhui Li; Jun Xu
Journal:  Int J Clin Exp Pathol       Date:  2018-12-01

Review 5.  Insights into CD47/SIRPα axis-targeting tumor immunotherapy.

Authors:  Xuyao Zhang; Jiajun Fan; Dianwen Ju
Journal:  Antib Ther       Date:  2018-08-28

Review 6.  Potential Role of CD47-Directed Bispecific Antibodies in Cancer Immunotherapy.

Authors:  Yan Yang; Zheng Yang; Yun Yang
Journal:  Front Immunol       Date:  2021-07-08       Impact factor: 7.561

7.  Macrophage-Mediated Tumor Cell Phagocytosis: Opportunity for Nanomedicine Intervention.

Authors:  Xuefei Zhou; Xiangrui Liu; Leaf Huang
Journal:  Adv Funct Mater       Date:  2020-11-10       Impact factor: 18.808

8.  Repositioning Azelnidipine as a Dual Inhibitor Targeting CD47/SIRPα and TIGIT/PVR Pathways for Cancer Immuno-Therapy.

Authors:  Xiuman Zhou; Ling Jiao; Yuzhen Qian; Qingyu Dong; Yixuan Sun; Wei V Zheng; Wenshan Zhao; Wenjie Zhai; Lu Qiu; Yahong Wu; Hongfei Wang; Yanfeng Gao; Junhui Chen
Journal:  Biomolecules       Date:  2021-05-10

Review 9.  Cancer-Associated Fibroblasts and Tumor-Associated Macrophages in Cancer and Cancer Immunotherapy.

Authors:  Hans Raskov; Adile Orhan; Shruti Gaggar; Ismail Gögenur
Journal:  Front Oncol       Date:  2021-05-20       Impact factor: 6.244

Review 10.  Biology and Molecular Pathogenesis of Mature T-Cell Lymphomas.

Authors:  José R Cortés; Teresa Palomero
Journal:  Cold Spring Harb Perspect Med       Date:  2021-05-03       Impact factor: 6.915

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