磁受体介导的细菌丝状形态多样性与磁敏感性研究
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1)中国科学院合肥物质科学研究院强磁场科学中心,合肥 230031;2)中国科学技术大学研究生院科学岛分院,合肥 230026;3)安徽省农业科学院蔬菜研究所,合肥 230001;4)皖北卫生职业学院公共基础部,宿州 234000;5.6)浙江大学量子精密测量研究院,杭州 310027;6.5)浙江大学医学院附属第一医院浙江省胰腺病研究重点实验室,杭州 310003

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国家自然科学基金(32471354,T2350005)资助项目。


The Diversity of Filamentous Morphologies and Magnetic Sensitivity Modulated by Diverse MagR Expression in Bacteria
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1)High Magnetic Field Laboratory, Hefei Institutes of Physical Science, Chinese Academy of Sciences, Hefei 230031, China;2)Science Island Branch, Graduate School of USTC, Hefei 230026, China;3)Institute of Vegetables, Anhui Academy of Agricultural Sciences, Hefei 230001, China;4)Department of General Education, North Anhui Health Vocational College, Suzhou 234000, China;5.6)Institute of Quantum Sensing, Zhejiang University, Hangzhou, 310027, China;6.5)Zhejiang Provincial Key Laboratory of Pancreatic Disease, The First Affiliated Hospital, Zhejiang University School of Medicine, Hangzhou 310003, China

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This work was supported by grants from The National Natural Science Foundation of China (32471354, T2350005).

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    摘要:

    目的 细胞形态是遗传决定的关键特征,也可通过基因改造或环境因子调控而发生改变,这一过程称为细胞形态工程。通过基因修饰构建具有特定形态且对磁场敏感的细胞,进而实现远程、无创的磁场调控生长,是细胞形态工程的重要目标之一,具有显著的应用潜力。动物磁感应依赖磁受体(magnetoreceptor,MagR)感知地磁场并指导定向导航。本研究旨在探究MagR异源表达对细菌形态及磁感应能力的影响,筛选基于MagR的磁敏感形态工程途径,并揭示其潜在分子机制。方法 系统筛选了28个物种的MagR同源基因在大肠杆菌中的表达和相应的表型效应,通过显微成像结合MagR铁硫簇辅基的铁氧化还原态分析,以及静磁场(100 mT)暴露实验,比较不同MagR重组蛋白质表达菌的磁场响应差异,从而解析其分子机制。结果 不同来源的MagR同源基因表达可诱导细菌出现不同程度的丝状化表型。从中筛选出两类典型形态:水螅来源的hyMagR偏好结合Fe2+,其表达促进细胞均一伸长与丝状化,且表现出较高的磁场敏感性(即在静磁场下丝状化显著增强);鸽子来源的clMagR偏好结合Fe3+,仅诱发低频出现的极端长度的丝状化,磁场响应较弱。表型差异主要由MagR对不同铁价态的偏好性主导,而与总铁含量无关。结论 MagR的铁硫簇价态(特别是对亚铁的偏好性)是调节细菌形态和磁敏感性的关键因素。本研究为构建磁响应细胞系统提供了理论依据,也为理解MagR介导的磁感应机制提供了新视角。

    Abstract:

    Objective Magnetoreception, the remarkable ability of diverse animals to sense and utilize the geomagnetic field for orientation and navigation, remains a molecularly unresolved mystery in sensory biology. The putative magnetoreceptor (MagR, previously known as IscA1) is a highly conserved iron-sulfur protein implicated in both magnetoreception and iron metabolism; however, the functional diversity among its cross-species homologs remains poorly understood. Cellular morphology is a key genetically determined trait that can be altered through genetic or environmental modifications—a process known as cell morphology engineering. Constructing engineered cells with specific morphological features and magnetic sensitivity to achieve remote, non-invasive magnetic modulation represents a crucial goal in this field with significant application potential. Therefore, this study aims to systematically investigate the effects of MagR heterologous expression on bacterial morphology and magnetic sensing capabilities, screen for MagR-based magnetically sensitive morphology engineering pathways, and reveal the underlying molecular mechanisms. Methods We systematically screened 28 MagR homologous genes from diverse prokaryotic and animal taxa to evaluate their expression and corresponding phenotypic effects in Escherichia coli (E. coli). To compare the differential magnetic responses among bacteria expressing various recombinant MagR proteins, we utilized high-throughput automated bright-field microscopic imaging and scanning electron microscopy (SEM). Furthermore, comprehensive biochemical and biophysical characterizations of iron and iron-sulfur cluster binding were performed using Ferrozine colorimetric assays, electron paramagnetic resonance (EPR) spectroscopy, ultraviolet-visible (UV-Vis) absorption, and circular dichroism (CD) spectroscopy. Additionally, 100 mT static magnetic field (SMF) exposure experiments were conducted to assess magnetically tunable phenotypes, while the intrinsic magnetic properties of purified MagR proteins were directly measured using a superconducting quantum interference device (SQUID) magnetometer. Results Our results demonstrated that the heterologous expression of MagR homologs induced varying degrees of bacterial filamentation. From this comprehensive screen, two distinct morphological patterns were identified: hydra (Hydra vulgaris) MagR (hyMagR) promoted uniform cell elongation and filamentation, exhibiting robust magnetic sensitivity manifested as significantly enhanced filamentation under the 100 mT SMF. In contrast, pigeon (Columba livia) MagR (clMagR) induced only low-frequency, extreme filamentation (sporadically exceeding 80 μm) with a relatively weaker magnetic morphological response. Mechanistically, our data unambiguously proved that these phenotypic differences are primarily driven by distinct iron redox preferences rather than total cellular iron accumulation. Specifically, hyMagR preferentially binds ferrous iron (Fe2+), whereas clMagR favors ferric iron (Fe3+) and forms more stable iron-sulfur clusters. Intriguingly, although SQUID magnetometry showed that purified clMagR exhibited approximately five-fold higher mass magnetic susceptibility than hyMagR, its cellular magnetic response was weaker. We hypothesize that the Fe2+-preferred intracellular environment associated with hyMagR overexpression primes the cell for enhanced generation of reactive oxygen species (ROS) via the Fenton reaction. Exposure to an SMF synergizes with this primed redox state, triggering the bacterial SOS response and upregulating cell division inhibitors to efficiently induce uniform filamentation. Conclusion Our findings identify the Fe2+/Fe3+ redox state as a critical determinant of MagR-mediated morphological remodeling and magnetic responsiveness. This discovery suggests a potential strategy for engineering magnetically responsive cellular systems for synthetic biology applications, and provides a plausible framework, which potentially combines intrinsic protein magnetism with redox-state modulation, for further investigating the evolutionary mechanisms of MagR-mediated magnetoreception.

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常娅菲,张静,章鹏,周秀娟,魏梦珂,蔡甜甜,贺培崎,王俊峰,谢灿.磁受体介导的细菌丝状形态多样性与磁敏感性研究[J].生物化学与生物物理进展,2026,53(5):1439-1456 CHANG Ya-Fei, ZHANG Jing, ZHANG Peng, ZHOU Xiu-Juan, WEI Meng-Ke, CAI Tian-Tian, HE Pei-Qi, WANG Jun-Feng, XIE Can. The Diversity of Filamentous Morphologies and Magnetic Sensitivity Modulated by Diverse MagR Expression in Bacteria[J]. Progress in Biochemistry and Biophysics,2026,53(5):1439-1456

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  • 收稿日期:2026-01-20
  • 最后修改日期:2026-04-16
  • 录用日期:2026-03-25
  • 在线发布日期: 2026-03-26
  • 出版日期: 2026-05-28
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