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Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling

To increase the imaging resolution and detection capability, the field strength of static magnetic fields (SMFs) in magnetic resonance imaging (MRI) has significantly increased in the past few decades. However, research on the side effects of high magnetic field is still very inadequate and the effe...

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Autores principales: Gu, Heng, Fu, Yufan, Yu, Biao, Luo, Li, Kang, Danqing, Xie, Miaomiao, Jing, Yukai, Chen, Qiuyue, Zhang, Xin, Lai, Juan, Guan, Fei, Forsman, Huamei, Shi, Junming, Yang, Lu, Lei, Jiahui, Du, Xingrong, Liu, Chaohong
Formato: Online Artículo Texto
Lenguaje:English
Publicado: John Wiley and Sons Inc. 2023
Materias:
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10542999/
https://www.ncbi.nlm.nih.gov/pubmed/37789963
http://dx.doi.org/10.1002/mco2.379
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author Gu, Heng
Fu, Yufan
Yu, Biao
Luo, Li
Kang, Danqing
Xie, Miaomiao
Jing, Yukai
Chen, Qiuyue
Zhang, Xin
Lai, Juan
Guan, Fei
Forsman, Huamei
Shi, Junming
Yang, Lu
Lei, Jiahui
Du, Xingrong
Zhang, Xin
Liu, Chaohong
author_facet Gu, Heng
Fu, Yufan
Yu, Biao
Luo, Li
Kang, Danqing
Xie, Miaomiao
Jing, Yukai
Chen, Qiuyue
Zhang, Xin
Lai, Juan
Guan, Fei
Forsman, Huamei
Shi, Junming
Yang, Lu
Lei, Jiahui
Du, Xingrong
Zhang, Xin
Liu, Chaohong
author_sort Gu, Heng
collection PubMed
description To increase the imaging resolution and detection capability, the field strength of static magnetic fields (SMFs) in magnetic resonance imaging (MRI) has significantly increased in the past few decades. However, research on the side effects of high magnetic field is still very inadequate and the effects of SMF above 1 T (Tesla) on B cells have never been reported. Here, we show that 33.0 T ultra‐high SMF exposure causes immunosuppression and disrupts B cell differentiation and signaling. 33.0 T SMF treatment resulted in disturbance of B cell peripheral differentiation and antibody secretion and reduced the expression of IgM on B cell membrane, and these might be intensity dependent. In addition, mice exposed to 33.0 T SMF showed inhibition on early activation of B cells, including B cell spreading, B cell receptor clustering and signalosome recruitment, and depression of both positive and negative molecules in the proximal BCR signaling, as well as impaired actin reorganization. Sequencing and gene enrichment analysis showed that SMF stimulation also affects splenic B cells' transcriptome and metabolic pathways. Therefore, in the clinical application of MRI, we should consider the influence of SMF on the immune system and choose the optimal intensity for treatment.
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spelling pubmed-105429992023-10-03 Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling Gu, Heng Fu, Yufan Yu, Biao Luo, Li Kang, Danqing Xie, Miaomiao Jing, Yukai Chen, Qiuyue Zhang, Xin Lai, Juan Guan, Fei Forsman, Huamei Shi, Junming Yang, Lu Lei, Jiahui Du, Xingrong Zhang, Xin Liu, Chaohong MedComm (2020) Original Articles To increase the imaging resolution and detection capability, the field strength of static magnetic fields (SMFs) in magnetic resonance imaging (MRI) has significantly increased in the past few decades. However, research on the side effects of high magnetic field is still very inadequate and the effects of SMF above 1 T (Tesla) on B cells have never been reported. Here, we show that 33.0 T ultra‐high SMF exposure causes immunosuppression and disrupts B cell differentiation and signaling. 33.0 T SMF treatment resulted in disturbance of B cell peripheral differentiation and antibody secretion and reduced the expression of IgM on B cell membrane, and these might be intensity dependent. In addition, mice exposed to 33.0 T SMF showed inhibition on early activation of B cells, including B cell spreading, B cell receptor clustering and signalosome recruitment, and depression of both positive and negative molecules in the proximal BCR signaling, as well as impaired actin reorganization. Sequencing and gene enrichment analysis showed that SMF stimulation also affects splenic B cells' transcriptome and metabolic pathways. Therefore, in the clinical application of MRI, we should consider the influence of SMF on the immune system and choose the optimal intensity for treatment. John Wiley and Sons Inc. 2023-10-01 /pmc/articles/PMC10542999/ /pubmed/37789963 http://dx.doi.org/10.1002/mco2.379 Text en © 2023 The Authors. MedComm published by Sichuan International Medical Exchange & Promotion Association (SCIMEA) and John Wiley & Sons Australia, Ltd. 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 Original Articles
Gu, Heng
Fu, Yufan
Yu, Biao
Luo, Li
Kang, Danqing
Xie, Miaomiao
Jing, Yukai
Chen, Qiuyue
Zhang, Xin
Lai, Juan
Guan, Fei
Forsman, Huamei
Shi, Junming
Yang, Lu
Lei, Jiahui
Du, Xingrong
Zhang, Xin
Liu, Chaohong
Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling
title Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling
title_full Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling
title_fullStr Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling
title_full_unstemmed Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling
title_short Ultra‐high static magnetic fields cause immunosuppression through disrupting B‐cell peripheral differentiation and negatively regulating BCR signaling
title_sort ultra‐high static magnetic fields cause immunosuppression through disrupting b‐cell peripheral differentiation and negatively regulating bcr signaling
topic Original Articles
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC10542999/
https://www.ncbi.nlm.nih.gov/pubmed/37789963
http://dx.doi.org/10.1002/mco2.379
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