Literature DB >> 25981611

Immunomodulatory Drugs: Immune Checkpoint Agents in Acute Leukemia.

Hanna A Knaus, Christopher G Kanakry, Leo Luznik, Ivana Gojo1.   

Abstract

Intrinsic immune responses to acute leukemia are inhibited by a variety of mechanisms, such as aberrant antigen expression by leukemia cells, secretion of immunosuppressive cytokines and expression of inhibitory enzymes in the tumor microenvironment, expansion of immunoregulatory cells, and activation of immune checkpoint pathways, all leading to T cell dysfunction and/or exhaustion. Leukemic cells, similar to other tumor cells, hijack these inhibitory pathways to evade immune recognition and destruction by cytotoxic T lymphocytes. Thus, blockade of immune checkpoints has emerged as a highly promising approach to augment innate anti-tumor immunity in order to treat malignancies. Most evidence for the clinical efficacy of this immunotherapeutic strategy has been seen in patients with metastatic melanoma, where anti-CTLA-4 and anti-PD-1 antibodies have recently revolutionized treatment of this lethal disease with otherwise limited treatment options. To meet the high demand for new treatment strategies in acute leukemia, clinical testing of these promising therapies is commencing. Herein, we review the biology of multiple inhibitory checkpoints (including CTLA-4, PD-1, TIM-3, LAG-3, BTLA, and CD200R) and their contribution to immune evasion by acute leukemias. In addition, we discuss the current state of preclinical and clinical studies of immune checkpoint inhibition in acute leukemia, which seek to harness the body's own immune system to fight leukemic cells. Copyright© Bentham Science Publishers; For any queries, please email at epub@benthamscience.org.

Entities:  

Keywords:  Acute lymphoblastic leukemia; T cells.; acute myeloid leukemia; co-inhibitory receptor; immunezzm321990evasion; immune checkpoint pathway; immunotherapy; monoclonal antibody

Mesh:

Substances:

Year:  2017        PMID: 25981611      PMCID: PMC4729661          DOI: 10.2174/1389450116666150518095346

Source DB:  PubMed          Journal:  Curr Drug Targets        ISSN: 1389-4501            Impact factor:   3.465


  189 in total

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Journal:  Immunity       Date:  2011-09-23       Impact factor: 31.745

2.  Tim-3 is highly expressed in T cells in acute myeloid leukemia and associated with clinicopathological prognostic stratification.

Authors:  Caixia Li; Xiaochen Chen; Xiao Yu; Yibei Zhu; Chao Ma; Rui Xia; Jinfeng Ma; Caihong Gu; Lu Ye; Depei Wu
Journal:  Int J Clin Exp Pathol       Date:  2014-09-15

3.  Expression of the PD-1 antigen on the surface of stimulated mouse T and B lymphocytes.

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Journal:  Int Immunol       Date:  1996-05       Impact factor: 4.823

4.  Nivolumab plus ipilimumab in advanced melanoma.

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Journal:  N Engl J Med       Date:  2013-06-02       Impact factor: 91.245

5.  Upregulation of CD200 is associated with Foxp3+ regulatory T cell expansion and disease progression in acute myeloid leukemia.

Authors:  Ali Memarian; Maryam Nourizadeh; Farimah Masoumi; Mina Tabrizi; Amir Hossein Emami; Kamran Alimoghaddam; Jamshid Hadjati; Mahroo Mirahmadian; Mahmood Jeddi-Tehrani
Journal:  Tumour Biol       Date:  2012-11-18

6.  Increased frequency and suppression by regulatory T cells in patients with acute myelogenous leukemia.

Authors:  Miroslaw J Szczepanski; Marta Szajnik; Malgorzata Czystowska; Magis Mandapathil; Laura Strauss; Ann Welsh; Kenneth A Foon; Theresa L Whiteside; Michael Boyiadzis
Journal:  Clin Cancer Res       Date:  2009-05-05       Impact factor: 12.531

7.  CD200 expression suppresses natural killer cell function and directly inhibits patient anti-tumor response in acute myeloid leukemia.

Authors:  S J Coles; E C Y Wang; S Man; R K Hills; A K Burnett; A Tonks; R L Darley
Journal:  Leukemia       Date:  2011-01-28       Impact factor: 11.528

8.  Tumor immune escape in acute myeloid leukemia: Class II-associated invariant chain peptide expression as result of deficient antigen presentation.

Authors:  Marvin M van Luijn; Martine E D Chamuleau; Gert J Ossenkoppele; Arjan A van de Loosdrecht; S Marieke van Ham
Journal:  Oncoimmunology       Date:  2012-03-01       Impact factor: 8.110

9.  Induced expression of PD-1, a novel member of the immunoglobulin gene superfamily, upon programmed cell death.

Authors:  Y Ishida; Y Agata; K Shibahara; T Honjo
Journal:  EMBO J       Date:  1992-11       Impact factor: 11.598

10.  A soluble form of CTLA-4 is present in paediatric patients with acute lymphoblastic leukaemia and correlates with CD1d+ expression.

Authors:  Rita Simone; Claudya Tenca; Franco Fais; Matteo Luciani; Giulio De Rossi; Giampaola Pesce; Marcello Bagnasco; Daniele Saverino
Journal:  PLoS One       Date:  2012-09-25       Impact factor: 3.240

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  19 in total

Review 1.  Immunomodulation in leukemia: cellular aspects of anti-leukemic properties.

Authors:  M Maleknia; A Valizadeh; S M S Pezeshki; N Saki
Journal:  Clin Transl Oncol       Date:  2019-05-24       Impact factor: 3.405

Review 2.  Novel Therapies for Acute Myeloid Leukemia: Are We Finally Breaking the Deadlock?

Authors:  Maximilian Stahl; Benjamin Y Lu; Tae Kon Kim; Amer M Zeidan
Journal:  Target Oncol       Date:  2017-08       Impact factor: 4.493

3.  AdAPT-001, an oncolytic adenovirus armed with a TGF-β trap, overcomes in vivo resistance to PD-L1-immunotherapy.

Authors:  Christopher Larson; Bryan Oronsky; Tony Reid
Journal:  Am J Cancer Res       Date:  2022-07-15       Impact factor: 5.942

4.  Signatures of CD8+ T cell dysfunction in AML patients and their reversibility with response to chemotherapy.

Authors:  Hanna A Knaus; Sofia Berglund; Hubert Hackl; Amanda L Blackford; Joshua F Zeidner; Raúl Montiel-Esparza; Rupkatha Mukhopadhyay; Katrina Vanura; Bruce R Blazar; Judith E Karp; Leo Luznik; Ivana Gojo
Journal:  JCI Insight       Date:  2018-11-02

Review 5.  Immune escape and immunotherapy of acute myeloid leukemia.

Authors:  Luca Vago; Ivana Gojo
Journal:  J Clin Invest       Date:  2020-04-01       Impact factor: 14.808

6.  A Multi-center Phase I Trial of Ipilimumab in Patients with Myelodysplastic Syndromes following Hypomethylating Agent Failure.

Authors:  Amer M Zeidan; Hanna A Knaus; Tara M Robinson; Andrea M H Towlerton; Edus H Warren; Joshua F Zeidner; Amanda L Blackford; Amy S Duffield; David Rizzieri; Mark G Frattini; Yair M Levy; Mark A Schroeder; Anna Ferguson; Katherine E Sheldon; Amy E DeZern; Ivana Gojo; Steven D Gore; Howard Streicher; Leo Luznik; B Douglas Smith
Journal:  Clin Cancer Res       Date:  2018-05-01       Impact factor: 12.531

7.  Targeting pediatric leukemia-propagating cells with anti-CD200 antibody therapy.

Authors:  Paraskevi Diamanti; Charlotte V Cox; Benjamin C Ede; Robert A Uger; John P Moppett; Allison Blair
Journal:  Blood Adv       Date:  2021-09-28

8.  Therapy-induced mutations drive the genomic landscape of relapsed acute lymphoblastic leukemia.

Authors:  Benshang Li; Samuel W Brady; Xiaotu Ma; Shuhong Shen; Yingchi Zhang; Yongjin Li; Karol Szlachta; Li Dong; Yu Liu; Fan Yang; Ningling Wang; Diane A Flasch; Matthew A Myers; Heather L Mulder; Lixia Ding; Yanling Liu; Liqing Tian; Kohei Hagiwara; Ke Xu; Xin Zhou; Edgar Sioson; Tianyi Wang; Liu Yang; Jie Zhao; Hui Zhang; Ying Shao; Hongye Sun; Lele Sun; Jiaoyang Cai; Hui-Ying Sun; Ting-Nien Lin; Lijuan Du; Hui Li; Michael Rusch; Michael N Edmonson; John Easton; Xiaofan Zhu; Jingliao Zhang; Cheng Cheng; Benjamin J Raphael; Jingyan Tang; James R Downing; Ludmil B Alexandrov; Bin-Bing S Zhou; Ching-Hon Pui; Jun J Yang; Jinghui Zhang
Journal:  Blood       Date:  2020-01-02       Impact factor: 25.476

Review 9.  Regulation of Natural Killer Cell Function by STAT3.

Authors:  Nicholas A Cacalano
Journal:  Front Immunol       Date:  2016-04-11       Impact factor: 7.561

10.  Risk factors and coping strategies of severe community-acquired pneumonia in chemotherapy induction period of acute leukemia.

Authors:  Ning Li; Qingcheng Duan; Weidan Zhang
Journal:  Oncol Lett       Date:  2018-01-04       Impact factor: 2.967

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