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In Vitro and In Vivo Assessment of T, B and Myeloid Cells Suppressive Activity and Humoral Responses from Transplant Recipients
Published on: August 12, 2017
Suppression of Myeloid Cell Arginase Activity leads to Therapeutic Response in a NSCLC Mouse Model by Activating
Juan J Miret1, Paul Kirschmeier1, Shohei Koyama2
1Dana Farber Cancer Institute, Belfer Institute of Cancer Science, Boston, MA, USA.
Background:
Tumor orchestrated metabolic changes in the microenvironment limit generation of anti-tumor immune responses. Availability of arginine, a semi-essential amino acid, is critical for lymphocyte proliferation and function. Levels of arginine are regulated by the enzymes arginase 1,2 and nitric oxide synthase (NOS). However, the role of arginase activity in lung tumor maintenance has not been investigated in clinically relevant orthotopic tumor models.
Methods:
RNA sequencing (RNA-seq) of sorted cell populations from mouse lung adenocarcinomas derived from immunocompetent genetically engineered mouse models (GEMM)s was performed. To complement mouse studies, a patient tissue microarray consisting of 150 lung adenocarcinomas, 103 squamous tumors, and 54 matched normal tissue were stained for arginase, CD3, and CD66b by multiplex immunohistochemistry. Efficacy of a novel arginase inhibitor compound 9 in reversing arginase mediated T cell suppression was determined in splenocyte ex vivo assays. Additionally, the anti-tumor activity of this compound was determined in vitro and in an autochthonous immunocompetent KrasG12D GEMM of lung adenocarcinoma model.
Results:
Analysis of RNA-seq of sorted myeloid cells suggested that arginase expression is elevated in myeloid cells in the tumor as compared to the normal lung tissue. Accordingly, in the patient samples arginase 1 expression was mainly localized in the granulocytic myeloid cells and significantly elevated in both lung adenocarcinoma and squamous tumors as compared to the controls. Our ex vivo analysis demonstrated that myeloid derived suppressor cell (MDSC)s cause T cell suppression by arginine depletion, and suppression of arginase activity by a novel ARG1/2 inhibitor, compound 9, led to restoration of T cell function by increasing arginine. Treatment of KrasG12D GEMM of lung cancer model with compound 9 led to a significant tumor regression associated with increased T cell numbers and function, while it had no activity across several murine and human non-small cell (NSCLC) lung cancer lines in vitro.
Conclusions:
We show that arginase expression is elevated in mouse and patient lung tumors. In a KRASG12D GEMM arginase inhibition diminished growth of established tumors. Our data suggest arginase as an immunomodulatory target that should further be investigated in lung tumors with high arginase activity.
Insights
Arginase enzyme activity fuels lung tumor growth by suppressing anti-tumor immunity. Inhibiting arginase in a KrasG12D mouse model reduced tumor growth and enhanced T cell function, suggesting arginase as a therapeutic target.
Area of Science:
- Immunology
- Oncology
- Biochemistry
Background:
- Tumor microenvironments exhibit metabolic changes that hinder anti-tumor immune responses.
- Arginine availability is crucial for lymphocyte function, regulated by arginase enzymes.
- The role of arginase activity in lung tumor progression remains understudied in relevant models.
Purpose of the Study:
- To investigate the role of arginase activity in lung tumor maintenance.
- To evaluate the efficacy of a novel arginase inhibitor in preclinical lung cancer models.
- To explore arginase as a potential immunomodulatory target in lung cancer.
Main Methods:
- RNA sequencing of mouse lung adenocarcinomas and multiplex immunohistochemistry on patient tumor samples.
- Ex vivo assessment of T cell suppression by myeloid-derived suppressor cells and the effect of arginase inhibition.
- In vitro and in vivo evaluation of a novel arginase inhibitor (compound 9) in a KrasG12D genetically engineered mouse model (GEMM) of lung adenocarcinoma.
Main Results:
- Arginase expression is significantly elevated in myeloid cells within mouse and patient lung tumors compared to normal tissues.
- Myeloid-derived suppressor cells suppress T cell function via arginine depletion; arginase inhibition restores T cell function.
- Compound 9 treatment led to significant tumor regression in the KrasG12D GEMM, accompanied by increased T cell numbers and function.
Conclusions:
- Arginase expression is upregulated in both mouse and human lung tumors.
- Arginase inhibition demonstrates anti-tumor activity by restoring immune function in a KrasG12D lung cancer model.
- Arginase represents a promising immunomodulatory target for lung tumors with high arginase activity.
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