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Updated: Jan 26, 2026

Synthesis of Near-Infrared Emitting Gold Nanoclusters for Biological Applications
Published on: March 22, 2020
Programming the Optoelectronic Properties of Atomically Precise Gold Nanoclusters Using the Conformational Landscape
Santiago Rodriguez1, Sylvain Kumanski1, Zeineb Ayed2
1Centre De Biologie Structurale, Université de Montpellier, INSERM, CNRS, Montpellier, France.
Abstract:
The rational design of hybrid nanomaterials with precisely controlled properties remains a central challenge in materials science. While atomically precise gold nanoclusters (Au-NCs) offer molecule-like control over a metallic core, tuning their optoelectronic behavior via surface engineering is often empirically driven. Here, we establish a design principle by demonstrating that the conformational landscape of intrinsically disordered proteins (IDP) can be used as a programmable scaffold to rationally modulate the photophysical properties of a covalently bound Au-NC. We synthesized a series of bioconjugates between Au25 nanoclusters and bioengineered IDPs containing a variable number of cysteine anchoring points. A combination of mass spectrometry, small-angle X-ray scattering, and modeling on the conjugates indicates that increasing the number of covalent anchors systematically restricts the conformational ensemble, inducing a progressively more compact protein shell around nanoclusters. This structural rigidification at the interface directly translates into a 15-fold enhancement of the Au-NC near-infrared photoluminescence and a six-fold increase in its average lifetime. Our findings demonstrate that the conformational plasticity of IDPs and the capacity to engineer them can be harnessed as a molecular tuning knob, moving to a new regime of programmable soft-matter control over the properties of quantum-confined nanomaterials for tailored biotechnological applications.
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