Very large pores mesoporous silica as new candidate for delivery of big therapeutics molecules, such as pharmaceutical peptides
Articolo
Data di Pubblicazione:
2023
Citazione:
Very large pores mesoporous silica as new candidate for delivery of big therapeutics molecules, such as pharmaceutical peptides / Carrozza, Debora; Malavasi, Gianluca; Ferrari, Erika. - In: MATERIALS. - ISSN 1996-1944. - 16:11(2023), pp. 1-21. [10.3390/ma16114151]
Abstract:
The synthesis of a scaffold that can accommodate big molecules with a pharmaceutical role
is important to shield them and maintain their biological activity. In this field, silica particles with
large pores (LPMS) are innovative supports. Large pores allow for the loading of bioactive molecules
inside the structure and contemporarily their stabilization and protection. These purposes cannot be
achieved using classical mesoporous silica (MS, pore size 2–5 nm), because their pores are not big
enough and pore blocking occurs. LPMSs with different porous structures are synthesized starting
from an acidic water solution of tetraethyl orthosilicate reacting with pore agents (Pluronic® F127
and mesitylene), performing hydrothermal and microwave-assisted reactions. Time and surfactant
optimization were performed. Loading tests were conducted using Nisin as a reference molecule
(polycyclic antibacterial peptide, with dimensions of 4–6 nm); UV-Vis analyses on loading solutions
were performed. For LPMSs, a significantly higher loading efficiency (LE%) was registered. Other
analyses (Elemental Analysis, Thermogravimetric Analysis and UV-Vis) confirmed the presence of
Nisin in all the structures and its stability when loaded on them. LPMSs showed a lower decrease
in specific surface area if compared to MS; in terms of the difference in LE% between samples, it is
explained considering the filling of pores for LPMSs, a phenomenon that is not allowed for MSs.
Release studies in simulated body fluid highlight, only for LPMSs, a controlled release, considering
the longer time scale of release. Scanning Electron Microscopy images acquired before and after
release tests shows the LPMSs’ maintenance of the structure, demonstrating strength and mechanical
resistance of structures. In conclusion, LPMSs were synthesized, performing time and surfactant
optimization. LPMSs showed better loading and releasing properties with respect to classical MS. All collected data confirm a pore blocking for MS and an in-pore loading for LPMS.
Tipologia CRIS:
Articolo su rivista
Keywords:
large pores’ mesoporous silica; Nisin; pharmaceutical peptides; porous biomaterials
Elenco autori:
Carrozza, Debora; Malavasi, Gianluca; Ferrari, Erika
Link alla scheda completa:
Link al Full Text:
Pubblicato in: