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Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy

BACKGROUND: Chemotherapy can significantly improve the disease‐free survival and overall survival of patients with advanced gastric cancer (GC). 5‐fluorouracil (5‐FU) is frequently applied in the clinic, acting as a first‐line chemotherapy drug of advanced GC, which could be used alone or combining...

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Autores principales: Fang, Lang, Lv, Jialun, Xuan, Zhe, Li, Bowen, Li, Zheng, He, Zhongyuan, Li, Fengyuan, Xu, Jianghao, Wang, Sen, Xia, Yiwen, Jiang, Tianlu, Zhang, Lu, Wang, Linjun, Zhang, Diancai, Xu, Hao, Yang, Li, Xu, Zekuan, Wang, Weizhi
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2022
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8787023/
https://www.ncbi.nlm.nih.gov/pubmed/35075806
http://dx.doi.org/10.1002/ctm2.708
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author Fang, Lang
Lv, Jialun
Xuan, Zhe
Li, Bowen
Li, Zheng
He, Zhongyuan
Li, Fengyuan
Xu, Jianghao
Wang, Sen
Xia, Yiwen
Jiang, Tianlu
Zhang, Lu
Wang, Linjun
Zhang, Diancai
Xu, Hao
Yang, Li
Xu, Zekuan
Wang, Weizhi
author_facet Fang, Lang
Lv, Jialun
Xuan, Zhe
Li, Bowen
Li, Zheng
He, Zhongyuan
Li, Fengyuan
Xu, Jianghao
Wang, Sen
Xia, Yiwen
Jiang, Tianlu
Zhang, Lu
Wang, Linjun
Zhang, Diancai
Xu, Hao
Yang, Li
Xu, Zekuan
Wang, Weizhi
author_sort Fang, Lang
collection PubMed
description BACKGROUND: Chemotherapy can significantly improve the disease‐free survival and overall survival of patients with advanced gastric cancer (GC). 5‐fluorouracil (5‐FU) is frequently applied in the clinic, acting as a first‐line chemotherapy drug of advanced GC, which could be used alone or combining platinum drugs. However, its efficacy is significantly attenuated by chemoresistance, which is associated with patients’ poor survival. Recently, there is evidence suggesting that dysregulation of autophagy may contribute to drug resistance in cancer, and circular RNAs (circRNAs) also take part in chemoresistance. However, whether circRNAs participate in 5‐FU chemoresistance through autophagy remains largely unknown. METHODS: RNA sequencing technologies and bioinformatics analysis were performed in GC. Sanger sequencing, Actinomycin D assay and RNase R assay confirmed the circular structure of circular CPM (circCPM). Various cell line models and animal models were used to explore related functions in vitro and in vivo. Quantitative Real‐time PCR (qRT‐PCR), fluorescence in situ hybridization, ribonucleic acid; (RNA) pulldown assays, RNA binding protein immunoprecipitation assays and Luciferase reporter assays were applied to explore involved pathways. RESULTS: circCPM was up‐regulated in 5‐FU resistant GC cell lines and tissue. Moreover, high circCPM expression is positively associated with poor survival. Silencing circCPM greatly improved chemosensitivity in vitro and in vivo. Mechanistically, it directly binds to miR‐21‐3p in the cytoplasm and therefore increases the expression of PRKAA2, contributing to the activation of autophagy and chemoresistance. CONCLUSION: Our results reveal that circCPM has a crucial role in regulating GC autophagy and 5‐FU resistance by targeting PRKAA2. It may function as a new theory basis for assessing the curative effect of GC and reversing 5‐FU chemoresistance.
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spelling pubmed-87870232022-01-31 Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy Fang, Lang Lv, Jialun Xuan, Zhe Li, Bowen Li, Zheng He, Zhongyuan Li, Fengyuan Xu, Jianghao Wang, Sen Xia, Yiwen Jiang, Tianlu Zhang, Lu Wang, Linjun Zhang, Diancai Xu, Hao Yang, Li Xu, Zekuan Wang, Weizhi Clin Transl Med Research Articles BACKGROUND: Chemotherapy can significantly improve the disease‐free survival and overall survival of patients with advanced gastric cancer (GC). 5‐fluorouracil (5‐FU) is frequently applied in the clinic, acting as a first‐line chemotherapy drug of advanced GC, which could be used alone or combining platinum drugs. However, its efficacy is significantly attenuated by chemoresistance, which is associated with patients’ poor survival. Recently, there is evidence suggesting that dysregulation of autophagy may contribute to drug resistance in cancer, and circular RNAs (circRNAs) also take part in chemoresistance. However, whether circRNAs participate in 5‐FU chemoresistance through autophagy remains largely unknown. METHODS: RNA sequencing technologies and bioinformatics analysis were performed in GC. Sanger sequencing, Actinomycin D assay and RNase R assay confirmed the circular structure of circular CPM (circCPM). Various cell line models and animal models were used to explore related functions in vitro and in vivo. Quantitative Real‐time PCR (qRT‐PCR), fluorescence in situ hybridization, ribonucleic acid; (RNA) pulldown assays, RNA binding protein immunoprecipitation assays and Luciferase reporter assays were applied to explore involved pathways. RESULTS: circCPM was up‐regulated in 5‐FU resistant GC cell lines and tissue. Moreover, high circCPM expression is positively associated with poor survival. Silencing circCPM greatly improved chemosensitivity in vitro and in vivo. Mechanistically, it directly binds to miR‐21‐3p in the cytoplasm and therefore increases the expression of PRKAA2, contributing to the activation of autophagy and chemoresistance. CONCLUSION: Our results reveal that circCPM has a crucial role in regulating GC autophagy and 5‐FU resistance by targeting PRKAA2. It may function as a new theory basis for assessing the curative effect of GC and reversing 5‐FU chemoresistance. John Wiley and Sons Inc. 2022-01-24 /pmc/articles/PMC8787023/ /pubmed/35075806 http://dx.doi.org/10.1002/ctm2.708 Text en © 2022 The Authors. Clinical and Translational Medicine published by John Wiley & Sons Australia, Ltd on behalf of Shanghai Institute of Clinical Bioinformatics https://creativecommons.org/licenses/by/4.0/This is an open access article under the terms of the http://creativecommons.org/licenses/by/4.0/ (https://creativecommons.org/licenses/by/4.0/) License, which permits use, distribution and reproduction in any medium, provided the original work is properly cited.
spellingShingle Research Articles
Fang, Lang
Lv, Jialun
Xuan, Zhe
Li, Bowen
Li, Zheng
He, Zhongyuan
Li, Fengyuan
Xu, Jianghao
Wang, Sen
Xia, Yiwen
Jiang, Tianlu
Zhang, Lu
Wang, Linjun
Zhang, Diancai
Xu, Hao
Yang, Li
Xu, Zekuan
Wang, Weizhi
Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy
title Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy
title_full Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy
title_fullStr Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy
title_full_unstemmed Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy
title_short Circular CPM promotes chemoresistance of gastric cancer via activating PRKAA2‐mediated autophagy
title_sort circular cpm promotes chemoresistance of gastric cancer via activating prkaa2‐mediated autophagy
topic Research Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8787023/
https://www.ncbi.nlm.nih.gov/pubmed/35075806
http://dx.doi.org/10.1002/ctm2.708
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