tunable release
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2021 ◽  
pp. 2108046
Author(s):  
Tahira Pirzada ◽  
Mariam Sohail ◽  
Anurodh Tripathi ◽  
Barbara V. Farias ◽  
Reny Mathew ◽  
...  

2021 ◽  
Author(s):  
He Liu ◽  
Zheng Zhang ◽  
jun yang ◽  
Wanyu Zang ◽  
Qing Yang

Abstract The major challenge in utilizing pesticides lies in identifying the precise application that would improve the efficiency of these pesticides and reduce their environmental and health hazards at the same time. Such application requires the development of specific formulations that enable controlled, stimuli-responsive release of the pesticides. Gelatin is a relatively cheap material characterized by temperature-sensitivity and abundant amino acid groups, which makes it suitable for the storage and controlled release of pesticides. In this study, gelatin microspheres were prepared by emulsion and cross-linking, then they were loaded with 2,4-dichlorophenoxyacetic acid sodium (2,4-D Na) as a model herbicide. To achieve temperature-tunable release of 2,4-D Na from the microspheres, NH4HCO3 was added to the formulations at different concentrations. The prepared formulations were characterized by SEM, FTIR, and size distribution analyses, and their drug loading capacities were determined. Based on bioassay experiments, the 2,4-D Na-NH4HCO3-loaded gelatin microspheres can effectively control the spread of dicotyledonous weeds. Therefore, the strategy proposed herein can be used to develop novel, effective herbicide formulations.


Author(s):  
Lorenzo Lisuzzo ◽  
Giuseppe Cavallaro ◽  
Stefana Milioto ◽  
Giuseppe Lazzara

AbstractIn this work, we investigated the effects of the vacuum pumping on both the loading efficiencies and the release kinetics of halloysite nanotubes filled with drug molecules dissolved in ethanol. As model drugs, salicylic acid and sodium diclofenac were selected. For comparison, the loading of the drug molecules was conducted on platy kaolinite to explore the key role of the hollow tubular morphology on the filling mechanism of halloysite. The effects of the pressure conditions used in the loading protocol were interpreted and discussed on the basis of the thermodynamic results provided by Knudsen thermogravimetry, which demonstrated the ethanol confinement inside the halloysite cavity. Several techniques (TEM, FTIR spectroscopy, DLS and $$\zeta$$ ζ -potential experiments) were employed to characterize the drug filled nanoclays. Besides, release kinetics of the drugs were studied and interpreted according to the loading mechanism. This work represents a further step for the development of nanotubular carriers with tunable release feature based on the loading protocol and drug localization into the carrier. Graphic abstract The filling efficiency of halloysite nanotubes is enhanced by the reduction of the pressure conditions used in the loading protocol.


2021 ◽  
Vol 9 (9) ◽  
pp. 2189-2199
Author(s):  
Miguel Angel Lopez-Ramirez ◽  
Daniel Kupor ◽  
Leonardo Marchiori ◽  
Fernando Soto ◽  
Ricardo Rueda ◽  
...  

This manuscript introduces a combinatorial microneedle patch with variable dissolution rate and tunable release in a single application; it delivers payloads in minutes while simultaneously deliver dosages from weeks to months with constant release.


2020 ◽  
Vol 21 (9) ◽  
pp. 1906-1916
Author(s):  
U. Nisha ◽  
C. Merline ◽  
Lakshminarayanan Ragupathy ◽  
Diksha Painuly

Materials ◽  
2020 ◽  
Vol 13 (8) ◽  
pp. 1807 ◽  
Author(s):  
Concetta Di Natale ◽  
Valentina Onesto ◽  
Elena Lagreca ◽  
Raffaele Vecchione ◽  
Paolo Antonio Netti

In recent years, drug delivery systems have become some of the main topics within the biomedical field. In this scenario, polymeric microparticles (MPs) are often used as carriers to improve drug stability and drug pharmacokinetics in agreement with this kind of treatment. To avoid a mere and time-consuming empirical approach for the optimization of the pharmacokinetics of an MP-based formulation, here, we propose a simple predictive in silico-supported approach. As an example, in this study, we report the ability to predict and tune the release of curcumin (CUR), used as a model drug, from a designed combination of different poly(d,l-lactide-co-glycolide) (PLGA) MPs kinds. In detail, all CUR–PLGA MPs were synthesized by double emulsion technique and their chemical–physical properties were characterized by Mastersizer and scanning electron microscopy (SEM). Moreover, for all the MPs, CUR encapsulation efficiency and kinetic release were investigated through the UV–vis spectroscopy. This approach, based on the combination of in silico and experimental methods, could be a promising platform in several biomedical applications such as vaccinations, cancer-treatment, diabetes therapy and so on.


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