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Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report

INTRODUCTION: As a hematopoietic carcinogen, benzene induces human leukemia through its active metabolites such as benzoquinone, which may cause oxidative damage to cancer-related nuclear genes by increasing reactive oxygen species (ROS). Mitochondrion is the main regulatory organelle of ROS, geneti...

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Autores principales: Wang, Dianpeng, Yang, Xiangli, Cai, Diya, Li, Peimao, Zhang, Zhimin, Lin, Dafeng, Zhang, Yanfang
Formato: Online Artículo Texto
Lenguaje:English
Publicado: Lippincott Williams & Wilkins 2021
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7793417/
https://www.ncbi.nlm.nih.gov/pubmed/33429764
http://dx.doi.org/10.1097/MD.0000000000024014
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author Wang, Dianpeng
Yang, Xiangli
Cai, Diya
Li, Peimao
Zhang, Zhimin
Lin, Dafeng
Zhang, Yanfang
author_facet Wang, Dianpeng
Yang, Xiangli
Cai, Diya
Li, Peimao
Zhang, Zhimin
Lin, Dafeng
Zhang, Yanfang
author_sort Wang, Dianpeng
collection PubMed
description INTRODUCTION: As a hematopoietic carcinogen, benzene induces human leukemia through its active metabolites such as benzoquinone, which may cause oxidative damage to cancer-related nuclear genes by increasing reactive oxygen species (ROS). Mitochondrion is the main regulatory organelle of ROS, genetic abnormality of mitochondrion can impede its regulation of ROS, leading to more severe oxidative damage. Mutations have been related to certain types of cancer in several mitochondrial genes, but they have never been completely analyzed genome-wide in leukemia. PATIENT CONCERNS: The patient was a 52-year-old female who had chronic exposure to benzene for several years. Her symptoms mainly included recurrent dizziness, fatigue, and they had lasted for nearly 8 years and exacerbated in recent weeks before diagnosis. DIAGNOSIS: Samples of peripheral blood were taken from the patient using evacuated tubes with EDTA anticoagulant on the second day of her hospitalization. At the same time blood routine and BCR/ABL genes of leukemic phenotype were tested. Platelets were isolated for mitochondrial DNA (mtDNA) extraction. The genetic analysis of ATP synthase Fo subunit 8 (complex V), ATP synthase Fo subunit 6 (complex V), cytochrome c oxidase subunit 1 (complex IV), cytochrome c oxidase subunit 2 (complex IV), cytochrome c oxidase subunit 3, Cytb, NADH dehydrogenase subunit 1 (complex I) (ND) 1, ND2, ND3, ND4, ND5, ND6, 12S-RNA, 16S-RNA, tRNA-Cysteine, A, N, tRNA-Leucine, E, displacement loop in platelet mtDNA were performed. All the detected gene mutations were validated using the conventional Sanger sequencing method. INTERVENTIONS: The patient received imatinib, a small molecule kinase inhibitor, and symptomatic treatments. OUTCOMES: After 3 months treatment her blood routine test indicators were restored to normal. CONCLUSION: A total of 98 mutations were found, and 25 mutations were frame shift. The ND6 gene mutation rate was the highest among all mutation points. Frame shifts were identified in benzene-induced leukemia for the first time. Many mutations in the platelet mitochondrial genome were identified and considered to be potentially pathogenic in the female patient with benzene-induced leukemia. The mutation rate of platelet mitochondrial genome in the benzene-induced leukemia patient is relatively high, and the complete genome analysis is helpful to fully comprehend the disease characteristics.
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spelling pubmed-77934172021-01-11 Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report Wang, Dianpeng Yang, Xiangli Cai, Diya Li, Peimao Zhang, Zhimin Lin, Dafeng Zhang, Yanfang Medicine (Baltimore) 3500 INTRODUCTION: As a hematopoietic carcinogen, benzene induces human leukemia through its active metabolites such as benzoquinone, which may cause oxidative damage to cancer-related nuclear genes by increasing reactive oxygen species (ROS). Mitochondrion is the main regulatory organelle of ROS, genetic abnormality of mitochondrion can impede its regulation of ROS, leading to more severe oxidative damage. Mutations have been related to certain types of cancer in several mitochondrial genes, but they have never been completely analyzed genome-wide in leukemia. PATIENT CONCERNS: The patient was a 52-year-old female who had chronic exposure to benzene for several years. Her symptoms mainly included recurrent dizziness, fatigue, and they had lasted for nearly 8 years and exacerbated in recent weeks before diagnosis. DIAGNOSIS: Samples of peripheral blood were taken from the patient using evacuated tubes with EDTA anticoagulant on the second day of her hospitalization. At the same time blood routine and BCR/ABL genes of leukemic phenotype were tested. Platelets were isolated for mitochondrial DNA (mtDNA) extraction. The genetic analysis of ATP synthase Fo subunit 8 (complex V), ATP synthase Fo subunit 6 (complex V), cytochrome c oxidase subunit 1 (complex IV), cytochrome c oxidase subunit 2 (complex IV), cytochrome c oxidase subunit 3, Cytb, NADH dehydrogenase subunit 1 (complex I) (ND) 1, ND2, ND3, ND4, ND5, ND6, 12S-RNA, 16S-RNA, tRNA-Cysteine, A, N, tRNA-Leucine, E, displacement loop in platelet mtDNA were performed. All the detected gene mutations were validated using the conventional Sanger sequencing method. INTERVENTIONS: The patient received imatinib, a small molecule kinase inhibitor, and symptomatic treatments. OUTCOMES: After 3 months treatment her blood routine test indicators were restored to normal. CONCLUSION: A total of 98 mutations were found, and 25 mutations were frame shift. The ND6 gene mutation rate was the highest among all mutation points. Frame shifts were identified in benzene-induced leukemia for the first time. Many mutations in the platelet mitochondrial genome were identified and considered to be potentially pathogenic in the female patient with benzene-induced leukemia. The mutation rate of platelet mitochondrial genome in the benzene-induced leukemia patient is relatively high, and the complete genome analysis is helpful to fully comprehend the disease characteristics. Lippincott Williams & Wilkins 2021-01-08 /pmc/articles/PMC7793417/ /pubmed/33429764 http://dx.doi.org/10.1097/MD.0000000000024014 Text en Copyright © 2021 the Author(s). Published by Wolters Kluwer Health, Inc. http://creativecommons.org/licenses/by/4.0 This is an open access article distributed under the Creative Commons Attribution License 4.0 (CCBY), which permits unrestricted use, distribution, and reproduction in any medium, provided the original work is properly cited. http://creativecommons.org/licenses/by/4.0
spellingShingle 3500
Wang, Dianpeng
Yang, Xiangli
Cai, Diya
Li, Peimao
Zhang, Zhimin
Lin, Dafeng
Zhang, Yanfang
Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report
title Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report
title_full Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report
title_fullStr Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report
title_full_unstemmed Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report
title_short Genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: A case report
title_sort genomic analysis of mutations in platelet mitochondria in a case of benzene-induced leukaemia: a case report
topic 3500
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC7793417/
https://www.ncbi.nlm.nih.gov/pubmed/33429764
http://dx.doi.org/10.1097/MD.0000000000024014
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