Atomically Precise Trehalose-Capped Au25 Nanoclusters: Synthesis and Tunable Antimicrobial Activity

Mohammad Bodiuzzaman , Harini A. Perera , Dang Truong , Jia Tu , William Ndugire , Wendy E. Gavin , Kithma Sajini , Jerome Delhommelle , Mingdi Yan

Aggregate ›› 2026, Vol. 7 ›› Issue (7) : e70396

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Aggregate ›› 2026, Vol. 7 ›› Issue (7) :e70396 DOI: 10.1002/agt2.70396
RESEARCH ARTICLE
Atomically Precise Trehalose-Capped Au25 Nanoclusters: Synthesis and Tunable Antimicrobial Activity
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Abstract

The ability to synthesize well-defined and atomically precise nanoclusters is important both in advancing fundamental understanding of structure–property relationships of nanomaterials and for materials, energy, and biomedical applications. Nonetheless, incorporating bioactive ligands into the nanoclusters poses a significant challenge, mostly due to complex metallophilic interactions and incompatibility with typical synthetic conditions. In this work, we developed a straightforward method for the synthesis of an atomically precise gold nanocluster capped with a carbohydrate ligand, trehalose, Au25Tre18, in one step and in 55% yield. The formation of the nanocluster was enabled by using a mild reducing agent, t-butylamine borane, in a biphasic condition. The structure was confirmed by high-resolution mass spectrometry, optical absorption spectroscopy, and nuclear magnetic resonance (NMR) spectroscopy. 2D DOSY NMR gave a diffusion coefficient of 1.9 × 10−10 m2s−1 and the hydrodynamic diameter of 1.6 nm for Au25Tre18. The CD spectrum of Au25Tre18 indicated chirality, having features differing from other chiral Au25 nanoclusters. The aqueous solution of Au25Tre18 was stable and showed no degradation during a heating and cooling cycle from room temperature to 80°C. In a thiourea (TU)-triggered release assay, Au25Tre18 exhibited enhanced antimicrobial activity against Mycobacterium smegmatis, showing a minimal inhibitory concentration (MIC) four times lower than that of Au25 nanocluster capped with glutathione, Au25SG18. Treating the bacteria at 1 × MIC of Au25Tre18/TU resulted in complete eradication of bacteria, whereas bacteria treated with Au25SG18/TU at the same concentration continued to grow.

Keywords

antimicrobial / Au25 / glyconanocluster / nanocluster / trehalose

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Mohammad Bodiuzzaman, Harini A. Perera, Dang Truong, Jia Tu, William Ndugire, Wendy E. Gavin, Kithma Sajini, Jerome Delhommelle, Mingdi Yan. Atomically Precise Trehalose-Capped Au25 Nanoclusters: Synthesis and Tunable Antimicrobial Activity. Aggregate, 2026, 7 (7) : e70396 DOI:10.1002/agt2.70396

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