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Asymmetrically Coordinated Dual-Atom Manganese Contrast Agents Enabling High-Efficiency T1 Enhanced MRI for Precise Tumor Visualization

  • Ding Yang
  • , Qing-Yang Li
  • , Jianli Liang*
  • , Gengyou Li
  • , Nan Sun
  • , Qianqian Song
  • , Haitao Zhu
  • , Xiaoting Li
  • , Zechuan Li
  • , Jiankai Dong
  • , Weisheng Guo
  • , Yafang Xiao*
  • , Chun-Sing Lee*
  • , Ying-Shi Sun*
  • *Corresponding author for this work

Research output: Journal Publications and ReviewsRGC 21 - Publication in refereed journalpeer-review

Abstract

Achieving atomically precise control over paramagnetic coordination environments is challenging because relaxivity's sixth power dependence on metal water distance demands sub-angstrom precision while also requiring rapid water exchange, two inherently competing requirements in conventional systems. Here, leveraging dual-atom coordination engineering as a rational material design strategy, we successfully synthesized a novel dual-atom manganese-based platform featuring a well-defined asymmetric Mn2-N3O3 geometry anchored on hierarchical boron nitride (Mn-BN). Notably, this atomic-level engineering achieves T1 relaxivity of 36.27 mM−1 s−1 at 3.0 T and 15.86 mM−1 s−1 at 7.0 T, approximately 10-fold higher than those of clinical agents. Combining advanced characterizations with theoretical calculations reveals that adjacent asymmetrically coordinated Mn centers generate cooperative electronic effects that lower water adsorption energy and shorten the Mn–H distance, thereby enhancing water exchange and optimizing dipole–dipole interactions. The Mn-BN exhibits specific magnetic resonance imaging (MRI) T1 signals for accurate tumor boundary visualization, meanwhile preferential hepatocyte uptake through specific transporters creates differential enhancement for sensitive liver metastases detection. This work positions dual-atom coordination engineering as an effective materials design strategy for precise enhancement of MRI properties, providing new opportunities for developing advanced contrast agents with tailored biological interactions and extended imaging windows. © 2026 The Author(s). Advanced Science published by Wiley-VCH GmbH.
Original languageEnglish
Article numbere75644
Number of pages13
JournalAdvanced Science
Online published29 May 2026
DOIs
Publication statusOnline published - 29 May 2026

Funding

D.Y., Q.L, and J.L. contributed equally to this work. All authors have given approval to the final version of the manuscript. We thank Dr. Li Zhitao from the Innovation Academy for Precision Measurement Science and Technology, Chinese Academy of Sciences for providing access and kind assistance to the 7T small-animal MRI scanner (Bruker BioSpec 70/20 USR, Bruker Corporation) of the high field phantom scanning. We thanks the support of the National Key R&D Program of China (2023YFC3402805), National Natural Science Foundation of China(82471958, 82271955, 32301170), the Research Grants Council of Hong Kong Special Administrative Region, General Research Fund (Project No. CityU 11318322), Beijing Hospitals Authority Clinical Medicine Development of Special Funding Support, code: ZLRK202522, Beijing Natural Science Foundation (L242038), Capital's Funds for Health Improvement and Research (2024-1-1022), and Special Fund for Basic and Applied Basic Research of the Science and Technology Bureau of Guangzhou (2024A04J3505).

Research Keywords

  • asymmetric coordination geometry
  • dual-atom manganese
  • hepatocyte-specific imaging
  • hierarchical boron nitride
  • MRI contrast agents

RGC Funding Information

  • RGC-funded

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