Dynamic coordination engineering of gallium biomaterials: A biological accessibility framework for therapeutic biofunction

Gallium (Ga)-based biomaterials have emerged as versatile therapeutic platforms owing to the iron-mimicking properties and broad biological activities of gallium. Coordination engineering regulates Ga speciation, stability, transport, and therapeutic activation; however, optimizing individual physicochemical properties does not necessarily improve biological performance. Excessive coordination stability may restrict ligand exchange and therapeutic activation, whereas insufficient stability may cause premature dissociation, nonspecific exposure, and reduced target delivery. In this Review, we propose Biological Accessibility as a multidimensional, time-dependent property describing the spatiotemporal availability of biologically active gallium species to relevant biological environments, cells, and molecular or tissue targets throughout the therapeutic lifecycle. We first examine ligand chemistry, coordination thermodynamics, ligand-exchange kinetics, gallium speciation under physiological conditions, and disease-responsive coordination evolution. We then review representative coordination-engineered gallium platforms and their applications in antibacterial therapy, immunomodulation, cancer treatment, bone regeneration, bioimaging, and theranostics, highlighting coordination-regulated transport, localization, cellular accessibility, activation, retention, and clearance. Building on these advances, we develop a dynamic framework linking continuous coordination evolution with Biological Accessibility across systemic, pathological, and intracellular environments. We further discuss Therapeutic and Off-target Accessibility, disease-specific accessibility windows, mechanistic attribution of biological functions, quantitative evaluation, in vivo coordination evolution, predictive modeling, artificial intelligence-assisted design, biosafety, and clinical translation. This framework provides a conceptual basis for accessibility-guided design of next-generation gallium biomaterials and broader coordination-engineered therapeutic systems.

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Journal
Bioactive Materials
Published
2026-09-17
DOI
https://doi.org/10.1016/j.bioactmat.2026.09.008
Primary Topic
Tissue Engineering and Regenerative Medicine
Type
article
Field-Weighted Citation Impact
0.00

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article

Dynamic coordination engineering of gallium biomaterials: A biological accessibility framework for therapeutic biofunction

Jingwei Shi, Zhongwei Gu, José Luís Pedraz, Yiyan He et al.
Bioactive Materials
Tissue Engineering and Regenerative Medicine
article

Dynamic coordination engineering of gallium biomaterials: A biological accessibility framework for therapeutic biofunction

Jingwei Shi, Zhongwei Gu, José Luís Pedraz, Yiyan He, Wanjia Peng, Yin Zhou
article en

Abstract

Gallium (Ga)-based biomaterials have emerged as versatile therapeutic platforms owing to the iron-mimicking properties and broad biological activities of gallium. Coordination engineering regulates Ga speciation, stability, transport, and therapeutic activation; however, optimizing individual physicochemical properties does not necessarily improve biological performance. Excessive coordination stability may restrict ligand exchange and therapeutic activation, whereas insufficient stability may cause premature dissociation, nonspecific exposure, and reduced target delivery. In this Review, we propose Biological Accessibility as a multidimensional, time-dependent property describing the spatiotemporal availability of biologically active gallium species to relevant biological environments, cells, and molecular or tissue targets throughout the therapeutic lifecycle. We first examine ligand chemistry, coordination thermodynamics, ligand-exchange kinetics, gallium speciation under physiological conditions, and disease-responsive coordination evolution. We then review representative coordination-engineered gallium platforms and their applications in antibacterial therapy, immunomodulation, cancer treatment, bone regeneration, bioimaging, and theranostics, highlighting coordination-regulated transport, localization, cellular accessibility, activation, retention, and clearance. Building on these advances, we develop a dynamic framework linking continuous coordination evolution with Biological Accessibility across systemic, pathological, and intracellular environments. We further discuss Therapeutic and Off-target Accessibility, disease-specific accessibility windows, mechanistic attribution of biological functions, quantitative evaluation, in vivo coordination evolution, predictive modeling, artificial intelligence-assisted design, biosafety, and clinical translation. This framework provides a conceptual basis for accessibility-guided design of next-generation gallium biomaterials and broader coordination-engineered therapeutic systems.

Bioactive MaterialsVol. 68
Universitat de Miguel Hernández d'Elx (ES), Nanjing Tech University (CN), University of the Basque Country (ES), Sichuan University (CN), Instituto de Salud Carlos III (ES), West China Hospital of Sichuan University (CN), Biomedical Research Networking Center in Bioengineering, Biomaterials and Nanomedicine (ES), Nanjing Drum Tower Hospital (CN)
National Natural Science Foundation of China, Priority Academic Program Development of Jiangsu Higher Education Institutions, Nanjing Drum Tower Hospital
Openalex Percentile: Top 9%
Tissue Engineering and Regenerative Medicine
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