173 research outputs found
Very Large PoreMesoporous Bioactive Silicate Glasses: Comparison of Behavior toward Classical Mesoporous Bioactive Glasses in Terms of Drug Loading/Release and Bioactivity
Abstract: Considering the increase in patients who suffer from osteoporosis and the bone defects
that occur in these patients, bone tissue regeneration is a promising option to solve this problem. To
achieve a synergistic effect between the synthesis of a proper structure and bioactive/pharmaceutical
activity, ions with a physiological effect can be added to silica structures, such as Ca2+, thanks to its
bioactive behavior, and Ga3+ for its antibacterial and anticancer action. In this work, the synthesis
of large pore mesoporous silica (LPMS), potential bioactive glasses containing Ca2+ and Ga3+, has
been studied. Corresponding structures, in terms of composition, have been synthesized following
the Sol-Gel EISA (Evaporation Induced Self-Assembly) process (obtaining Classical Mesoporous
Silica, MS). Pore structure characterization of LPMSs and MSs has been performed using N2 adsorption/
desorption and Hg-porosimetry, showing the presence of pores for LPMSs in the range of
20–60 and 200–600 nm. Nisin, a polycyclic antibacterial peptide, has been used for load tests. The
load and release tests performed highlight a higher loading and releasing, doubled for LPMSs if compared
to MSs. To confirm the maintenance of the structure of LPMSs and their mechanical strength
and resistance, scanning electron microscopy images were acquired before and after release tests. Ca
and Ga release in SBF has been studied through inductively coupled plasma—optical emission spectroscopy
(ICP-OES), showing a particularly high release of these ions performed with LPMSs. The
bioactive behavior of Ca-containing structures has been confirmed using FT-IR (Fourier-transform
infrared spectroscopy), SEM-EDS (Scanning Electron Microscope-Energy Dispersive Spectroscopy),
and X-ray powder diffraction (XRDP). In conclusion, LPMSs showed better loading and releasing
properties compared with classical MS and better release in terms of active ions. In addition, it has
also been demonstrated that LPMSs have bioactive behavior (a well-known characteristic of MSs)
Very large pores mesoporous silica as new candidate for delivery of big therapeutics molecules, such as pharmaceutical peptides
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
Alginate Beads Containing Cerium-Doped Mesoporous Glass and Curcumin: Delivery and Stabilization of Therapeutics
: Cancer is a leading cause of death worldwide, its genesis and progression are caused by homeostatic errors, and reactive oxygen species play a major role in promoting aberrant cancer homeostasis. In this scenario, curcumin could be an interesting candidate due to its versatile antioxidant, anti-inflammatory, anti-tumor, anti-HIV, and anti-infection properties. Nonetheless, the major problem related to its use is its poor oral bioavailability, which can be overcome by encapsulating it into small particles, such as hydrogel beads containing mesoporous silica. In this work, various systems have been synthesized: starting from mesoporous silica glasses (MGs), cerium-containing MGs have been produced; then, these systems have been loaded with 4 to 6% of curcumin. Finally, various MGs at different compositions have been included in alginate beads. In vitro studies showed that these hybrid materials enable the stabilization and effective delivery of curcumin and that a synergic effect can be achieved if Ce3+/Ce4+ and curcumin are both part of the beads. From swelling tests, it is possible to confirm a controlled curcumin release compartmentalized into the gastrointestinal tract. For all beads obtained, a curcumin release sufficient to achieve the antioxidant threshold has been reached, and a synergic effect of cerium and curcumin is observed. Moreover, from catalase mimetic activity tests, we confirm the well-known catalytic activity of the couple Ce3+/Ce4+. In addition, an extremely good radical scavenging effect of curcumin has been demonstrated. In conclusion, these systems, able to promote an enzymatic-like activity, can be used as drug delivery systems for curcumin-targeted dosing
An atomic-level look at the structure-property relationship of cerium-doped glasses using classical molecular dynamics
Ce-containing bioactive glasses are of great interest in biomedical field since they exert antioxidant properties
associated with low toxicity and a broad spectrum of bacteriostatic activities. The results obtained by classical
molecular dynamics simulations allow the elucidation of the correlations between the effect of the inclusion of
cerium doping ions into the structure of phosphosilicate and silicate bioactive glasses and their properties. The
addition of small quantities of Ce to the silicate bioglass favours the depolymerisation of the silicate network
with a positive effect on the ability to dissolve in body fluid. Moreover, the under coordination of both the Ce3+
and Ce4+ species in these glasses enhances their catalytic activity towards hydrogen peroxide. Conversely, the
formation of cerium phosphate domains in the phosphosilicate glasses leads to detrimental effects for both the
solubility and the catalytic activity of the glasses. Finally, a new quantitative view of the structure-activity
relationships governing the macroscopic properties of these glasses has been obtained by means of structural
descriptor that takes into account the fragmentation of the Si network and the consequent rearrangement of the
modifier ions and the network destruction per cerium unit descriptor
Cell Proliferation to Evaluate Preliminarily the Presence of Enduring Self-Regenerative Antioxidant Activity in Cerium Doped Bioactive Glasses
(1) Background: a cell evaluation focused to verify the self-regenerative antioxidant activity is performed on cerium doped bioactive glasses. (2) Methods: the glasses based on 45S5 Bioglass®, are doped with 1.2 mol%, 3.6 mol% and 5.3 mol% of CeO2 and possess a polyhedral shape (~500 µm2). Glasses with this composition inhibit oxidative stress by mimicking catalase enzyme (CAT) and superoxide dismutase (SOD) activities; moreover, our previous cytocompatibility tests (neutral red (NR), 3-(4,5-Dimethylthiazol-2-yl)-2,5-diphenyltetrazolium bromide (MTT) and Bromo-2-deoxyUridine (BrdU)) reveal that the presence of cerium promotes the absorption and vitality of the cells. The same cytocompatibility tests were performed and repeated, in two different periods (named first and second use), separated from each other by four months. (3) Results: in the first and second use, NR tests indicate that the presence of cerium promotes once again cell uptake and viability, especially after 72 h. A decrease in cell proliferation it is observed after MTT and BrdU tests only in the second use. These findings are supported by statistically significant results (4) Conclusions: these glasses show enhanced proliferation, both in the short and in the long term, and for the first time such large dimensions are studied for this kind of study. A future prospective is the implantation of these bioactive glasses as bone substitute in animal models
Bioglasses: glasses for medical applications
bioglasses for medical application
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