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An immobilization system constituted by coated microcapsules was developed aiming at immobilizing probiotic bacteria capable of producing folate and release it in a sustained manner into the intestine. Despite no probiotic folate-producers have been immobilized so far, the system has been developed with this goal and this work reports its stability and ability to release folate under gastro-intestinal conditions. Microcapsules were made of alginate with three consecutive coatings of poly-l-lysine, sodium alginate and chitosan. Turbidity experiments showed a strong electrostatic interaction between these polymers. Fourier transform infrared spectroscopy (FTIR) and confocal analysis showed the stability of the coating materials when applied on the microcapsules, even after they were immersed in solutions simulating conditions in the stomach and small intestine (i.e. pH2, 60min and pH7.2, 120min, respectively). Coated microcapsules have an average diameter size ranged from 20 and 40μm, and swelled upon exposure to a neutral medium, without dissolution as showed by microscopy analyses. Release experiments proved the ability of the coated microcapsules to release folic acid, at different rates, depending on the applied coating. Release experiments showed that the first coating (Ɛ-PLL) is characterized by Fickian diffusion as the main release mechanism of folic acid. Fickian rate constant (k) decreased with the number of consequent coatings, reflecting the decrease of predominance of Fick's behavior. Results showed that the developed coated microcapsules have suitable characteristics for encapsulation of folic acid aiming in situ release in the intestine.
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http://dx.doi.org/10.1016/j.foodres.2016.10.050 | DOI Listing |
Chem Asian J
September 2025
Department of Chemistry, Indian Institute of Technology Bhilai, Durg, Chhattisgarh, 491001, India.
Self-healing polymeric coatings represent a transformative class of smart materials capable of autonomously or stimuli-responsively repairing mechanical or environmental damage, thereby significantly extending the operational lifespan of protected substrates. This review systematically elucidates the underlying mechanisms and chemistries enabling self-healing behavior, encompassing both extrinsic strategies such as microcapsules, microvascular networks, and corrosion inhibitor reservoirs and intrinsic approaches based on dynamic covalent (e.g.
View Article and Find Full Text PDFSpectrochim Acta A Mol Biomol Spectrosc
August 2025
Department of Advanced Organic Materials Engineering, Chungnam National University, Yuseong-gu, Daejeon 34134, South Korea. Electronic address:
A new colorimetric and fluorimetric probe PBT, for the efficient recognition of cyanide ion was synthesized and characterized; the sensing properties were analyzed and used for various real-time applications. The probe consists of a D-π-A conception with a donor unit of phenothiazine and an acceptor unit of benzothiazole to make a molecule for the ease of charge transfer transition. The mechanism of recognition is confirmed by H NMR and HRMS spectral analysis.
View Article and Find Full Text PDFFoods
August 2025
Research School of Food Engineering, Shakarim University, 20A Glinki Street, Semey 071412, Kazakhstan.
The present study develops and optimizes a jet-cutting encapsulation method using a laboratory-scale encapsulator to incorporate herbal dietary supplements into fermented milk products. Sodium alginate and pullulan were selected as core and coating polymers, respectively, after rheological screening demonstrated that 1% alginate (η ≈ 350-450 Pa·s at 22-25 °C) and 2% pullulan (η ≈ 400 Pa·s at 25-30 °C) provide a balance between atomization, shell integrity, and fluidity. Under optimized conditions, capsules of 1.
View Article and Find Full Text PDFInt J Biol Macromol
August 2025
Poznań University of Technology, Institute of Chemical Technology and Engineering, Poznań, Poland.
Background: The aim of this study was to optimize a mucoadhesion testing protocol utilizing a vertical motorized test stand combined with a digital force gauge. The optimized protocol was applied to evaluate the mucoadhesive performance of various test materials, including lyophilized polymer matrices composed of chitosan, pectin, poly(vinyl alcohol) (PVA), and hydroxypropyl methylcellulose (HPMC); compressed pectin-only disks; and commercial enteric-coated (HPMC-based) capsules.
Methods: Optimization involved systematic evaluation of key test parameters including start speed, applied contact force, contact time, and return (detachment) speed.
Biomimetics (Basel)
August 2025
School of Textile and Clothing, Nantong University, Nantong 226019, China.
Bionic synthesis technology has made significant breakthroughs in porous functional materials by replicating and optimizing biological structures. For instance, biomimetic titanium dioxide-coated carbon multilayer materials, prepared via biological templating, exhibit a hierarchical structure, abundant nanopores, and synergistic effects. Bionic mineralization further enhances microcapsules by forming a secondary inorganic wall, granting them superior impermeability, high elastic modulus, and hardness.
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