ZnO-based nanostructures at the biological interface: a review of bioreceptor coupling for healthcare diagnostics and therapeutics

Zinc oxide (ZnO) nanostructures are a highly versatile class of solid-state materials with functional utility in bio-interfacial architectures, governed by the coordination chemistry of surface Zn(II) sites. Bridging the gap between inorganic nanoplatforms and complex biological environments requires a sophisticated understanding of the coordination spheres, ligand-exchange dynamics, and interfacial bonding mechanisms at the bio-nano boundary. This review provides a comprehensive, critical evaluation of the coordination ligand chemistry that has driven ZnO surface functionalization over the last decade. We systematically analyze the chemisorption and physisorption paradigms of diverse biomolecular ligands-including amino acid sequences in peptides and proteins, thiol-bearing groups, and phosphate backbones in nucleic acids, as well as functional groups in small-molecule drugs and correlate the resulting coordination modes to explore surface-ligand chemistry, stability, and molecular recognition efficiency. Furthermore, we dissect the coordination mechanics underlying targeted therapeutic delivery, oncology-driven engineering, and antimicrobial action. By offering a molecular-level perspective on ligand-surface interactions, this review outlines the coordination-chemistry principles indispensable to designing next-generation, stable bioinorganic hybrids.

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Publication Details

Journal
Coordination Chemistry Reviews
Published
2026-09-25
DOI
https://doi.org/10.1016/j.ccr.2026.218578
Primary Topic
Metal complexes synthesis and properties
Type
article
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article

ZnO-based nanostructures at the biological interface: a review of bioreceptor coupling for healthcare diagnostics and therapeutics

Francisco Javier Gómez Montaño, Ateet Dutt, Shirlley E. Martínez Tolibia, Rafael Ángel Salinas et al.
Coordination Chemistry Reviews
Metal complexes synthesis and properties
article

ZnO-based nanostructures at the biological interface: a review of bioreceptor coupling for healthcare diagnostics and therapeutics

Francisco Javier Gómez Montaño, Ateet Dutt, Shirlley E. Martínez Tolibia, Rafael Ángel Salinas, Andrés Galdámez‐Martínez, Citlaly Gutiérrez Rodelo, Erika Armenta Jaime, Alfredo C. Benítez Rojas
article en

Abstract

Zinc oxide (ZnO) nanostructures are a highly versatile class of solid-state materials with functional utility in bio-interfacial architectures, governed by the coordination chemistry of surface Zn(II) sites. Bridging the gap between inorganic nanoplatforms and complex biological environments requires a sophisticated understanding of the coordination spheres, ligand-exchange dynamics, and interfacial bonding mechanisms at the bio-nano boundary. This review provides a comprehensive, critical evaluation of the coordination ligand chemistry that has driven ZnO surface functionalization over the last decade. We systematically analyze the chemisorption and physisorption paradigms of diverse biomolecular ligands-including amino acid sequences in peptides and proteins, thiol-bearing groups, and phosphate backbones in nucleic acids, as well as functional groups in small-molecule drugs and correlate the resulting coordination modes to explore surface-ligand chemistry, stability, and molecular recognition efficiency. Furthermore, we dissect the coordination mechanics underlying targeted therapeutic delivery, oncology-driven engineering, and antimicrobial action. By offering a molecular-level perspective on ligand-surface interactions, this review outlines the coordination-chemistry principles indispensable to designing next-generation, stable bioinorganic hybrids.

Coordination Chemistry ReviewsVol. 570
Universidad Nacional Autónoma de México (MX), University of Oulu (FI)
Industry, innovation and infrastructure
Openalex Percentile: Top 15%
Metal complexes synthesis and properties
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ZnO-based nanostructures at the biological interface: a review of bioreceptor coupling for healthcare diagnostics and therapeutics — Francisco Javier Gómez Montaño, Ateet Dutt, et al. · Coordination Chemistry Reviews (2026) | TGRS Research Map | TGRS