Nature has provided a valuable source of inspiration for developing high performance multifunctional materials. Particularly, catechol-containing amino acid l-3,4-dihydroxyphenylalanine (l-DOPA) has aroused the interest to design hybrid multifunctional materials with superior adhesive ability. DOPA oxidative polymerization mediated by either melanogenic enzymes or an alkaline environment involving catechol intermolecular cross-linking, ultimately leads to melanin oligomers. Recently, relevant studies disclosed the ability of Ti-based nanostructures to tune melanin’s supramolecular structure during its formation, starting from melanogenic precursors, thus improving both antioxidant and antimicrobial properties. In this work, we propose a novel biomimetic approach to design hybrid DOPA melanin-like nanostructures through a hydrothermal synthesis opportunely modified by using citric acid to control hydrolysis and condensation reactions of titanium alkoxide precursors. UV-Vis and Electron paramagnetic resonance (EPR) spectroscopic evidences highlighted the key role of citrate–Ti(IV) and DOPA–Ti(IV) complexes in controlling DOPA polymerization, which specifically occurred during the hydrothermal step, mediating and tuning its conversion to melanin-like oligomers. Trasmission electron microscopy (TEM) images proved the efficacy of the proposed synthesis approach in tuning the formation of nanosized globular nanostructures, with high biocide performances. The obtained findings could provide strategic guidelines to set up biomimetic processes, exploiting the catechol-metal complex to obtain hybrid melanin-like nanosystems with optimized multifunctional behavior.

Citric Acid Tunes the Formation of Antimicrobial Melanin-Like Nanostructures / Melone, Pietro; Vitiello, Giuseppe; di napoli, Michela; Zanfardino, Anna; Caso, MARIA FEDERICA; Silvestri, Brigida; Varcamonti, Mario; D'Errico, Gerardino; Luciani, Giuseppina. - In: BIOMIMETICS. - ISSN 2313-7673. - 4:2(2019), p. 40. [10.3390/biomimetics4020040]

Citric Acid Tunes the Formation of Antimicrobial Melanin-Like Nanostructures

Pietro Melone;Giuseppe Vitiello
;
Michela Di Napoli;Anna Zanfardino;Maria Federica Caso;Brigida Silvestri;Mario Varcamonti;Gerardino D’Errico;Giuseppina Luciani
2019

Abstract

Nature has provided a valuable source of inspiration for developing high performance multifunctional materials. Particularly, catechol-containing amino acid l-3,4-dihydroxyphenylalanine (l-DOPA) has aroused the interest to design hybrid multifunctional materials with superior adhesive ability. DOPA oxidative polymerization mediated by either melanogenic enzymes or an alkaline environment involving catechol intermolecular cross-linking, ultimately leads to melanin oligomers. Recently, relevant studies disclosed the ability of Ti-based nanostructures to tune melanin’s supramolecular structure during its formation, starting from melanogenic precursors, thus improving both antioxidant and antimicrobial properties. In this work, we propose a novel biomimetic approach to design hybrid DOPA melanin-like nanostructures through a hydrothermal synthesis opportunely modified by using citric acid to control hydrolysis and condensation reactions of titanium alkoxide precursors. UV-Vis and Electron paramagnetic resonance (EPR) spectroscopic evidences highlighted the key role of citrate–Ti(IV) and DOPA–Ti(IV) complexes in controlling DOPA polymerization, which specifically occurred during the hydrothermal step, mediating and tuning its conversion to melanin-like oligomers. Trasmission electron microscopy (TEM) images proved the efficacy of the proposed synthesis approach in tuning the formation of nanosized globular nanostructures, with high biocide performances. The obtained findings could provide strategic guidelines to set up biomimetic processes, exploiting the catechol-metal complex to obtain hybrid melanin-like nanosystems with optimized multifunctional behavior.
2019
Citric Acid Tunes the Formation of Antimicrobial Melanin-Like Nanostructures / Melone, Pietro; Vitiello, Giuseppe; di napoli, Michela; Zanfardino, Anna; Caso, MARIA FEDERICA; Silvestri, Brigida; Varcamonti, Mario; D'Errico, Gerardino; Luciani, Giuseppina. - In: BIOMIMETICS. - ISSN 2313-7673. - 4:2(2019), p. 40. [10.3390/biomimetics4020040]
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/11588/755524
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