Hyaluronan (HA) is among the most used biopolymers for viscosupplementation and dermo-cosmetic applications. However, the current injectable HA-based formulations present relevant limitations: I) unmodified HA is quickly degraded by endogenous hyaluronidases (HAase), resulting in short lasting properties; II) cross-linked HA, although shows enhanced stability against HAase, often contains toxic chemical cross-linkers. As such, herein, we present biocompatible self-assembled hyaluronan-cholesterol nanohydrogels (HA-CH NHs) able to bind to HAase and inhibit the enzyme activity in vitro, more efficiently than currently marketed HA-based cross-linked formulations (e.g. JonexaTM). HA-CH NHs inhibit HAase through a mixed mechanism, by which NHs bind to HAase with an affinity constant 7-fold higher than that of native HA. Similar NHs, based on gellan-cholesterol, evidenced no binding to HAase, neither inhibition of the enzyme activity, suggesting this effect might be due to the specific binding of HA-CH to the active site of the enzyme. Therefore, HA-CH NHs were engineered into injectable hybrid HA mixtures or physical hydrogels, able to halt the enzymatic degradation of HA.

Montanari, E., Zoratto, N., Mosca, L., Cervoni, L., Lallana, E., Angelini, R., et al. (2019). Halting hyaluronidase activity with hyaluronan-based nanohydrogels: development of versatile injectable formulations. CARBOHYDRATE POLYMERS, 221, 209-220 [10.1016/j.carbpol.2019.06.004].

Halting hyaluronidase activity with hyaluronan-based nanohydrogels: development of versatile injectable formulations

Zoratto, N.;Matricardi, P.
2019-01-01

Abstract

Hyaluronan (HA) is among the most used biopolymers for viscosupplementation and dermo-cosmetic applications. However, the current injectable HA-based formulations present relevant limitations: I) unmodified HA is quickly degraded by endogenous hyaluronidases (HAase), resulting in short lasting properties; II) cross-linked HA, although shows enhanced stability against HAase, often contains toxic chemical cross-linkers. As such, herein, we present biocompatible self-assembled hyaluronan-cholesterol nanohydrogels (HA-CH NHs) able to bind to HAase and inhibit the enzyme activity in vitro, more efficiently than currently marketed HA-based cross-linked formulations (e.g. JonexaTM). HA-CH NHs inhibit HAase through a mixed mechanism, by which NHs bind to HAase with an affinity constant 7-fold higher than that of native HA. Similar NHs, based on gellan-cholesterol, evidenced no binding to HAase, neither inhibition of the enzyme activity, suggesting this effect might be due to the specific binding of HA-CH to the active site of the enzyme. Therefore, HA-CH NHs were engineered into injectable hybrid HA mixtures or physical hydrogels, able to halt the enzymatic degradation of HA.
2019
Pubblicato
Rilevanza internazionale
Articolo
Esperti anonimi
Settore CHEM-08/A - Tecnologia, socioeconomia e normativa dei medicinali e dei prodotti per il benessere e per la salute
English
Con Impact Factor ISI
Nanohydrogels
hyaluronidase inhibitor
hyaluronan-cholesterol
viscosupplementation dermal filler
Montanari, E., Zoratto, N., Mosca, L., Cervoni, L., Lallana, E., Angelini, R., et al. (2019). Halting hyaluronidase activity with hyaluronan-based nanohydrogels: development of versatile injectable formulations. CARBOHYDRATE POLYMERS, 221, 209-220 [10.1016/j.carbpol.2019.06.004].
Montanari, E; Zoratto, N; Mosca, L; Cervoni, L; Lallana, E; Angelini, R; Matassa, R; Coviello, T; Di Meo, C; Matricardi, P
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Utilizza questo identificativo per citare o creare un link a questo documento: https://hdl.handle.net/2108/429828
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