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TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis

INTRODUCTION: Osteosarcoma is among the most common orthopedic neoplasms, and currently, there are no adequate biomarkers to predict its prognosis. Therefore, the present study was aimed to identify the prognostic biomarkers for autophagy-and immune-related osteosarcoma using bioinformatics tools fo...

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Autores principales: Jiang, Jie, Liu, Dachang, Xu, Guoyong, Liang, Tuo, Yu, Chaojie, Liao, Shian, Chen, Liyi, Huang, Shengsheng, Sun, Xuhua, Yi, Ming, Zhang, Zide, Lu, Zhaojun, Wang, Zequn, Chen, Jiarui, Chen, Tianyou, Li, Hao, Yao, Yuanlin, Chen, Wuhua, Guo, Hao, Liu, Chong, Zhan, Xinli
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Frontiers Media S.A. 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8101494/
https://www.ncbi.nlm.nih.gov/pubmed/33968741
http://dx.doi.org/10.3389/fonc.2021.643104
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author Jiang, Jie
Liu, Dachang
Xu, Guoyong
Liang, Tuo
Yu, Chaojie
Liao, Shian
Chen, Liyi
Huang, Shengsheng
Sun, Xuhua
Yi, Ming
Zhang, Zide
Lu, Zhaojun
Wang, Zequn
Chen, Jiarui
Chen, Tianyou
Li, Hao
Yao, Yuanlin
Chen, Wuhua
Guo, Hao
Liu, Chong
Zhan, Xinli
author_facet Jiang, Jie
Liu, Dachang
Xu, Guoyong
Liang, Tuo
Yu, Chaojie
Liao, Shian
Chen, Liyi
Huang, Shengsheng
Sun, Xuhua
Yi, Ming
Zhang, Zide
Lu, Zhaojun
Wang, Zequn
Chen, Jiarui
Chen, Tianyou
Li, Hao
Yao, Yuanlin
Chen, Wuhua
Guo, Hao
Liu, Chong
Zhan, Xinli
author_sort Jiang, Jie
collection PubMed
description INTRODUCTION: Osteosarcoma is among the most common orthopedic neoplasms, and currently, there are no adequate biomarkers to predict its prognosis. Therefore, the present study was aimed to identify the prognostic biomarkers for autophagy-and immune-related osteosarcoma using bioinformatics tools for guiding the clinical diagnosis and treatment of this disease. MATERIALS AND METHODS: The gene expression and clinical information data were downloaded from the Public database. The genes associated with autophagy were extracted, followed by the development of a logistic regression model for predicting the prognosis of osteosarcoma using univariate and multivariate COX regression analysis and LASSO regression analysis. The accuracy of the constructed model was verified through the ROC curves, calibration plots, and Nomogram plots. Next, immune cell typing was performed using CIBERSORT to analyze the expression of the immune cells in each sample. For the results obtained from the analysis, we used qRT-PCR validation in two strains of human osteosarcoma cells. RESULTS: The screening process identified a total of three genes that fulfilled all the screening criteria. The survival curves of the constructed prognostic model revealed that patients with the high risk presented significantly lower survival than the patients with low risk. Finally, the immune cell component analysis revealed that all three genes were significantly associated with the immune cells. The expressions of TRIM68, PIKFYVE, and DYNLL2 were higher in the osteosarcoma cells compared to the control cells. Finally, we used human pathological tissue sections to validate the expression of the genes modeled in osteosarcoma and paracancerous tissue. CONCLUSION: The TRIM68, PIKFYVE, and DYNLL2 genes can be used as biomarkers for predicting the prognosis of osteosarcoma.
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spelling pubmed-81014942021-05-07 TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis Jiang, Jie Liu, Dachang Xu, Guoyong Liang, Tuo Yu, Chaojie Liao, Shian Chen, Liyi Huang, Shengsheng Sun, Xuhua Yi, Ming Zhang, Zide Lu, Zhaojun Wang, Zequn Chen, Jiarui Chen, Tianyou Li, Hao Yao, Yuanlin Chen, Wuhua Guo, Hao Liu, Chong Zhan, Xinli Front Oncol Oncology INTRODUCTION: Osteosarcoma is among the most common orthopedic neoplasms, and currently, there are no adequate biomarkers to predict its prognosis. Therefore, the present study was aimed to identify the prognostic biomarkers for autophagy-and immune-related osteosarcoma using bioinformatics tools for guiding the clinical diagnosis and treatment of this disease. MATERIALS AND METHODS: The gene expression and clinical information data were downloaded from the Public database. The genes associated with autophagy were extracted, followed by the development of a logistic regression model for predicting the prognosis of osteosarcoma using univariate and multivariate COX regression analysis and LASSO regression analysis. The accuracy of the constructed model was verified through the ROC curves, calibration plots, and Nomogram plots. Next, immune cell typing was performed using CIBERSORT to analyze the expression of the immune cells in each sample. For the results obtained from the analysis, we used qRT-PCR validation in two strains of human osteosarcoma cells. RESULTS: The screening process identified a total of three genes that fulfilled all the screening criteria. The survival curves of the constructed prognostic model revealed that patients with the high risk presented significantly lower survival than the patients with low risk. Finally, the immune cell component analysis revealed that all three genes were significantly associated with the immune cells. The expressions of TRIM68, PIKFYVE, and DYNLL2 were higher in the osteosarcoma cells compared to the control cells. Finally, we used human pathological tissue sections to validate the expression of the genes modeled in osteosarcoma and paracancerous tissue. CONCLUSION: The TRIM68, PIKFYVE, and DYNLL2 genes can be used as biomarkers for predicting the prognosis of osteosarcoma. Frontiers Media S.A. 2021-04-22 /pmc/articles/PMC8101494/ /pubmed/33968741 http://dx.doi.org/10.3389/fonc.2021.643104 Text en Copyright © 2021 Jiang, Liu, Xu, Liang, Yu, Liao, Chen, Huang, Sun, Yi, Zhang, Lu, Wang, Chen, Chen, Li, Yao, Chen, Guo, Liu and Zhan https://creativecommons.org/licenses/by/4.0/This is an open-access article distributed under the terms of the Creative Commons Attribution License (CC BY). The use, distribution or reproduction in other forums is permitted, provided the original author(s) and the copyright owner(s) are credited and that the original publication in this journal is cited, in accordance with accepted academic practice. No use, distribution or reproduction is permitted which does not comply with these terms.
spellingShingle Oncology
Jiang, Jie
Liu, Dachang
Xu, Guoyong
Liang, Tuo
Yu, Chaojie
Liao, Shian
Chen, Liyi
Huang, Shengsheng
Sun, Xuhua
Yi, Ming
Zhang, Zide
Lu, Zhaojun
Wang, Zequn
Chen, Jiarui
Chen, Tianyou
Li, Hao
Yao, Yuanlin
Chen, Wuhua
Guo, Hao
Liu, Chong
Zhan, Xinli
TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis
title TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis
title_full TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis
title_fullStr TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis
title_full_unstemmed TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis
title_short TRIM68, PIKFYVE, and DYNLL2: The Possible Novel Autophagy- and Immunity-Associated Gene Biomarkers for Osteosarcoma Prognosis
title_sort trim68, pikfyve, and dynll2: the possible novel autophagy- and immunity-associated gene biomarkers for osteosarcoma prognosis
topic Oncology
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC8101494/
https://www.ncbi.nlm.nih.gov/pubmed/33968741
http://dx.doi.org/10.3389/fonc.2021.643104
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