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相似文献

1
Human Responses to Magnetic and Hypomagnetic Fields: Available Evidence and Potential Risks for Deep Space Travel.人类对磁场和低磁场的反应:现有证据及深空旅行的潜在风险
Life (Basel). 2025 Nov 18;15(11):1766. doi: 10.3390/life15111766.
2
A hypomagnetic field aggravates bone loss induced by hindlimb unloading in rat femurs.低磁场会加重大鼠股骨后肢卸载诱导的骨质流失。
PLoS One. 2014 Aug 26;9(8):e105604. doi: 10.1371/journal.pone.0105604. eCollection 2014.
3
Biological effects of weak magnetic fields: can the radical-pair mechanism provide a universal explanation?
Biol Rev Camb Philos Soc. 2026 Apr;101(2):893-910. doi: 10.1111/brv.70108. Epub 2025 Dec 2.
4
Hypomagnetic Conditions and Their Biological Action (Review).低磁场条件及其生物学作用(综述)
Biology (Basel). 2023 Dec 11;12(12):1513. doi: 10.3390/biology12121513.
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Biological effects of the hypomagnetic field: An analytical review of experiments and theories.弱磁场的生物学效应:实验与理论的分析性综述
PLoS One. 2017 Jun 27;12(6):e0179340. doi: 10.1371/journal.pone.0179340. eCollection 2017.
6
Biological Effects of Space Hypomagnetic Environment on Circadian Rhythm.空间低磁场环境对昼夜节律的生物学效应
Front Physiol. 2021 Mar 9;12:643943. doi: 10.3389/fphys.2021.643943. eCollection 2021.
7
Health care for deep space explorers.深空探索者的医疗保健。
Ann ICRP. 2020 Dec;49(1_suppl):182-184. doi: 10.1177/0146645320935288. Epub 2020 Jul 31.
8
Assembly dynamics of magnetotactic bacterial actin-like protein MamK under shielded geomagnetic fields: In vitro evidence of inhibited filament formation.
Int J Biol Macromol. 2025 Aug;320(Pt 2):145863. doi: 10.1016/j.ijbiomac.2025.145863. Epub 2025 Jul 8.
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[Embryogenesis of the Japanese quail in hypomagnetic conditions applied to deep space flights].[应用于深空飞行的低磁条件下日本鹌鹑的胚胎发育]
Radiats Biol Radioecol. 2014 Mar-Apr;54(2):179-85.
10
Biological Effects of Hypomagnetic Field: Ground-Based Data for Space Exploration.弱磁生物效应:空间探索的地基数据。
Bioelectromagnetics. 2021 Sep;42(6):516-531. doi: 10.1002/bem.22360. Epub 2021 Jul 10.

本文引用的文献

1
Systematic reviews and meta-analyses for the WHO assessment of health effects of exposure to radiofrequency electromagnetic fields, an introduction.
Environ Int. 2025 Sep;203:109751. doi: 10.1016/j.envint.2025.109751. Epub 2025 Aug 27.
2
Magnetic effects in biology: Crucial role of quantum coherence in the radical pair mechanism.
Phys Rev E. 2025 Jul;112(1-1):014409. doi: 10.1103/n3fs-fsnv.
3
Impact of geomagnetic disturbances and air pollution on total mortality in South Korea.
Sci Total Environ. 2025 Oct 1;997:180201. doi: 10.1016/j.scitotenv.2025.180201. Epub 2025 Aug 5.
4
Extremely low frequency magnetic field distracts zebrafish from a visual cognitive task.极低频磁场会使斑马鱼在视觉认知任务中分心。
Sci Rep. 2025 Mar 12;15(1):8589. doi: 10.1038/s41598-025-90194-x.
5
Static Magnetic Field Exposure Causes Small Cell Cycle Disruptions and Changes in Reactive Oxygen Species Levels in Ionizing Radiation Exposed Human Neuroblastoma Cells.
Bioelectromagnetics. 2025 Jan;46(1):e22538. doi: 10.1002/bem.22538.
6
Potential health risks of hypomagnetic field for manned deep-space explorations.低磁场对载人深空探测的潜在健康风险。
Natl Sci Rev. 2024 Nov 5;11(12):nwae395. doi: 10.1093/nsr/nwae395. eCollection 2024 Dec.
7
The Role of Oxidative Stress in Hypomagnetic Field Effects.氧化应激在低磁场效应中的作用。
Antioxidants (Basel). 2024 Aug 21;13(8):1017. doi: 10.3390/antiox13081017.
8
Hypomagnetic Conditions and Their Biological Action (Review).低磁场条件及其生物学作用(综述)
Biology (Basel). 2023 Dec 11;12(12):1513. doi: 10.3390/biology12121513.
9
Cryptochrome and quantum biology: unraveling the mysteries of plant magnetoreception.隐花色素与量子生物学:揭开植物磁受体之谜
Front Plant Sci. 2023 Oct 4;14:1266357. doi: 10.3389/fpls.2023.1266357. eCollection 2023.
10
Cryptochromes in mammals: a magnetoreception misconception?哺乳动物中的隐花色素:一种磁感受的误解?
Front Physiol. 2023 Aug 21;14:1250798. doi: 10.3389/fphys.2023.1250798. eCollection 2023.

人类对磁场和低磁场的反应:现有证据及深空旅行的潜在风险

Human Responses to Magnetic and Hypomagnetic Fields: Available Evidence and Potential Risks for Deep Space Travel.

作者信息

Kaspranski Rustem R, Binhi Vladimir N, Koshel Ivan V

机构信息

Federal Medical-Biological Agency, Federal Scientific and Clinical Center for Space Medicine and Biology, 24 Suschevskiy Val, Moscow 127018, Russia.

出版信息

Life (Basel). 2025 Nov 18;15(11):1766. doi: 10.3390/life15111766.

DOI:10.3390/life15111766
PMID:41302190
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC12653702/
Abstract

The growing body of biomedical research reveals that many biological processes are governed by quantum physical principles, including the effects of weak magnetic fields (MFs) at or below geomagnetic strength. Given that life evolved within the geomagnetic field, its significant decrease-the hypomagnetic field (hypoMF)-may disrupt fundamental biological processes. This is particularly relevant for interplanetary missions, where astronauts will encounter prolonged hypoMF conditions alongside other spaceflight stressors. This mini-review synthesizes current knowledge on hypoMF effects, comparing terrestrial and extraterrestrial MF conditions and evaluating evidence from human studies. The initial database search identified 645 records. After most were excluded for various reasons, only 44 publications on the effects of MFs on the entire human body were included in the review. An effect of the hypoMF was reported in 10 of these studies and was absent in 4. Despite some methodological limitations in the available research, the evidence suggests that the human body is not indifferent to hypoMF exposure. We also discuss leading mechanistic molecular hypotheses-particularly the radical pair mechanism. Finally, we identify urgent research priorities to elucidate hypoMF's biological role and develop countermeasures for future deep space exploration. Addressing these gaps is essential for safeguarding astronaut health and advancing magnetobiology as a frontier discipline in biophysics.

摘要

越来越多的生物医学研究表明,许多生物过程受量子物理原理支配,包括地磁强度及以下的弱磁场(MFs)的影响。鉴于生命在地磁场中进化,其显著减弱——低磁场(hypoMF)——可能会扰乱基本的生物过程。这对于星际任务尤为重要,在这些任务中,宇航员除了会遇到其他太空飞行应激源外,还将遭遇长时间的低磁场环境。这篇小型综述综合了关于低磁场效应的现有知识,比较了地球和外星的磁场条件,并评估了来自人体研究的证据。初步的数据库搜索确定了645条记录。在大多数因各种原因被排除后,该综述仅纳入了44篇关于磁场对整个人体影响的出版物。其中10项研究报告了低磁场的影响,4项研究未发现该影响。尽管现有研究存在一些方法上的局限性,但证据表明人体对低磁场暴露并非无动于衷。我们还讨论了主要的分子机制假说,特别是自由基对机制。最后,我们确定了紧迫的研究重点,以阐明低磁场的生物学作用,并为未来的深空探索制定应对措施。填补这些空白对于保障宇航员健康以及推动磁生物学成为生物物理学的前沿学科至关重要。