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Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment

PURPOSE: Many cancers lack argininosuccinate synthetase 1 (ASS1), the rate-limiting enzyme of arginine biosynthesis. This deficiency causes arginine auxotrophy, targetable by extracellular arginine-degrading enzymes such as ADI-PEG20. Long-term tumor resistance has thus far been attributed solely to...

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Autores principales: Rogers, Leonard C., Kremer, Jeff C., Brashears, Caitlyn B., Lin, Zongtao, Hu, Zhixian, Bastos, Alliny C.S., Baker, Adriana, Fettig, Nicole, Zhou, Dong, Shoghi, Kooresh I., Dehner, Carina A., Chrisinger, John S.A., Bomalaski, John S., Garcia, Benjamin A., Oyama, Toshinao, White, Eileen P., Van Tine, Brian A.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Association for Cancer Research 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10425734/
https://www.ncbi.nlm.nih.gov/pubmed/37339179
http://dx.doi.org/10.1158/1078-0432.CCR-22-2642
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author Rogers, Leonard C.
Kremer, Jeff C.
Brashears, Caitlyn B.
Lin, Zongtao
Hu, Zhixian
Bastos, Alliny C.S.
Baker, Adriana
Fettig, Nicole
Zhou, Dong
Shoghi, Kooresh I.
Dehner, Carina A.
Chrisinger, John S.A.
Bomalaski, John S.
Garcia, Benjamin A.
Oyama, Toshinao
White, Eileen P.
Van Tine, Brian A.
author_facet Rogers, Leonard C.
Kremer, Jeff C.
Brashears, Caitlyn B.
Lin, Zongtao
Hu, Zhixian
Bastos, Alliny C.S.
Baker, Adriana
Fettig, Nicole
Zhou, Dong
Shoghi, Kooresh I.
Dehner, Carina A.
Chrisinger, John S.A.
Bomalaski, John S.
Garcia, Benjamin A.
Oyama, Toshinao
White, Eileen P.
Van Tine, Brian A.
author_sort Rogers, Leonard C.
collection PubMed
description PURPOSE: Many cancers lack argininosuccinate synthetase 1 (ASS1), the rate-limiting enzyme of arginine biosynthesis. This deficiency causes arginine auxotrophy, targetable by extracellular arginine-degrading enzymes such as ADI-PEG20. Long-term tumor resistance has thus far been attributed solely to ASS1 reexpression. This study examines the role of ASS1 silencing on tumor growth and initiation and identifies a noncanonical mechanism of resistance, aiming to improve clinical responses to ADI-PEG20. EXPERIMENTAL DESIGN: Tumor initiation and growth rates were measured for a spontaneous Ass1 knockout (KO) murine sarcoma model. Tumor cell lines were generated, and resistance to arginine deprivation therapy was studied in vitro and in vivo. RESULTS: Conditional Ass1 KO affected neither tumor initiation nor growth rates in a sarcoma model, contradicting the prevalent idea that ASS1 silencing confers a proliferative advantage. Ass1 KO cells grew robustly through arginine starvation in vivo, while ADI-PEG20 remained completely lethal in vitro, evidence that pointed toward a novel mechanism of resistance mediated by the microenvironment. Coculture with Ass1-competent fibroblasts rescued growth through macropinocytosis of vesicles and/or cell fragments, followed by recycling of protein-bound arginine through autophagy/lysosomal degradation. Inhibition of either macropinocytosis or autophagy/lysosomal degradation abrogated this growth support effect in vitro and in vivo. CONCLUSIONS: Noncanonical, ASS1-independent tumor resistance to ADI-PEG20 is driven by the microenvironment. This mechanism can be targeted by either the macropinocytosis inhibitor imipramine or the autophagy inhibitor chloroquine. These safe, widely available drugs should be added to current clinical trials to overcome microenvironmental arginine support of tumors and improve patient outcomes.
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spelling pubmed-104257342023-08-16 Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment Rogers, Leonard C. Kremer, Jeff C. Brashears, Caitlyn B. Lin, Zongtao Hu, Zhixian Bastos, Alliny C.S. Baker, Adriana Fettig, Nicole Zhou, Dong Shoghi, Kooresh I. Dehner, Carina A. Chrisinger, John S.A. Bomalaski, John S. Garcia, Benjamin A. Oyama, Toshinao White, Eileen P. Van Tine, Brian A. Clin Cancer Res Translational Cancer Mechanisms and Therapy PURPOSE: Many cancers lack argininosuccinate synthetase 1 (ASS1), the rate-limiting enzyme of arginine biosynthesis. This deficiency causes arginine auxotrophy, targetable by extracellular arginine-degrading enzymes such as ADI-PEG20. Long-term tumor resistance has thus far been attributed solely to ASS1 reexpression. This study examines the role of ASS1 silencing on tumor growth and initiation and identifies a noncanonical mechanism of resistance, aiming to improve clinical responses to ADI-PEG20. EXPERIMENTAL DESIGN: Tumor initiation and growth rates were measured for a spontaneous Ass1 knockout (KO) murine sarcoma model. Tumor cell lines were generated, and resistance to arginine deprivation therapy was studied in vitro and in vivo. RESULTS: Conditional Ass1 KO affected neither tumor initiation nor growth rates in a sarcoma model, contradicting the prevalent idea that ASS1 silencing confers a proliferative advantage. Ass1 KO cells grew robustly through arginine starvation in vivo, while ADI-PEG20 remained completely lethal in vitro, evidence that pointed toward a novel mechanism of resistance mediated by the microenvironment. Coculture with Ass1-competent fibroblasts rescued growth through macropinocytosis of vesicles and/or cell fragments, followed by recycling of protein-bound arginine through autophagy/lysosomal degradation. Inhibition of either macropinocytosis or autophagy/lysosomal degradation abrogated this growth support effect in vitro and in vivo. CONCLUSIONS: Noncanonical, ASS1-independent tumor resistance to ADI-PEG20 is driven by the microenvironment. This mechanism can be targeted by either the macropinocytosis inhibitor imipramine or the autophagy inhibitor chloroquine. These safe, widely available drugs should be added to current clinical trials to overcome microenvironmental arginine support of tumors and improve patient outcomes. American Association for Cancer Research 2023-08-15 2023-06-20 /pmc/articles/PMC10425734/ /pubmed/37339179 http://dx.doi.org/10.1158/1078-0432.CCR-22-2642 Text en ©2023 The Authors; Published by the American Association for Cancer Research https://creativecommons.org/licenses/by-nc-nd/4.0/This open access article is distributed under the Creative Commons Attribution-NonCommercial-NoDerivatives 4.0 International (CC BY-NC-ND 4.0) license.
spellingShingle Translational Cancer Mechanisms and Therapy
Rogers, Leonard C.
Kremer, Jeff C.
Brashears, Caitlyn B.
Lin, Zongtao
Hu, Zhixian
Bastos, Alliny C.S.
Baker, Adriana
Fettig, Nicole
Zhou, Dong
Shoghi, Kooresh I.
Dehner, Carina A.
Chrisinger, John S.A.
Bomalaski, John S.
Garcia, Benjamin A.
Oyama, Toshinao
White, Eileen P.
Van Tine, Brian A.
Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment
title Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment
title_full Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment
title_fullStr Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment
title_full_unstemmed Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment
title_short Discovery and Targeting of a Noncanonical Mechanism of Sarcoma Resistance to ADI-PEG20 Mediated by the Microenvironment
title_sort discovery and targeting of a noncanonical mechanism of sarcoma resistance to adi-peg20 mediated by the microenvironment
topic Translational Cancer Mechanisms and Therapy
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10425734/
https://www.ncbi.nlm.nih.gov/pubmed/37339179
http://dx.doi.org/10.1158/1078-0432.CCR-22-2642
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