Abstract
The selection of cross-linking techniques is essential for the development of the alginate matrix. In this study, we investigated porous sodium alginate matrices (ALG1@in, ALG3@in, ALG5@in) synthesized by internal gelation and further functionalized with polyphosphate (PP) at concentrations of 5% and 15% (ALG3@inPP5, ALG3@inPP15). Extensive characterizations were conducted, employing scanning electron microscopy coupled with energy-dispersive spectroscopy (SEM-EDS) for morphological and compositional analysis, Fourier transform infrared spectroscopy (FTIR-ATR) for structural elucidation, thermogravimetric analysis (TGA-DTG) for thermal stability, and porosimetry (ASAP) for surface area and pore size evaluation. Surface charge density (pHZPC) was determined, and Ca2⁺ release kinetics were monitored in demineralized water over 7 days and Dulbecco's phosphate-buffered saline (DPBS) over 14 days. The increase in sodium alginate concentration increases the BET surface area and pore volume, which improves adsorption and transport properties. The thermal stability of the tested matrices at 37 °C confirms their suitability for biomedical applications. The ALG3@in sample showed the best parameters, combining high BET surface area (11.02 m2/g), significant pore volume (0.08 cm3/g) and thermal stability up to 257 °C, making it a suitable candidate for applications in biology, tissue engineering and processes requiring sterilization and high temperatures. These findings underscore the potential of polyphosphate modifications to improve alginate matrices, opening avenues for future applications in areas like cell culture scaffolds or environmental chemistry solutions.
Keywords
alginates
internal cross-linking
polyphosphate
porosity
Authors & Affiliations
4 authors, click to expand affiliations / ORCID
Wawszczak Alicja
ORCID
Department of Inorganic Chemistry, Institute of Chemical Sciences, Faculty of Chemistry, Maria Curie-Skłodowska University, M. Curie Skłodowska Sq. 2, 20-031 Lublin, Poland.
Czemierska Magdalena
Institute of Biological Sciences, Maria Curie-Skłodowska University, Akademicka 19, 20-031 Lublin, Poland.
Jarosz-Wilkołazka Anna
ORCID
Institute of Biological Sciences, Maria Curie-Skłodowska University, Akademicka 19, 20-031 Lublin, Poland.
Kołodyńska Dorota
ORCID
Department of Inorganic Chemistry, Institute of Chemical Sciences, Faculty of Chemistry, Maria Curie-Skłodowska University, M. Curie Skłodowska Sq. 2, 20-031 Lublin, Poland.
References (19)
19 references, click to expand
-
3D porous chitosan-alginate scaffold stiffness promotes differential responses in prostate cancer cell lines.
Biomaterials. 2019 Oct;217:119311
PMID: 31279100
-
Effectiveness of charged noncovalent polymer coatings against protein adsorption to silica surfaces studied by evanescent-wave cavity ring-down spectroscopy and capillary electrophoresis.
Anal Chem. 2009 Dec 15;81(24):10172-8
PMID: 19921852
-
Effect of surface properties on nanoparticle-cell interactions.
Small. 2010 Jan;6(1):12-21
PMID: 19844908
-
Phosphorylation of alginate: synthesis, characterization, and evaluation of in vitro mineralization capacity.
Biomacromolecules. 2011 Apr 11;12(4):889-97
PMID: 21381703
-
Mucoadhesive Alginate/Pectin Films Crosslinked by Calcium Carbonate as Carriers of a Model Antifungal Drug-Posaconazole.
Pharmaceutics. 2023 Oct 03;15(10):
PMID: 37896175
-
In situ generation of sodium alginate/hydroxyapatite nanocomposite beads as drug-controlled release matrices.
Acta Biomater. 2010 Feb;6(2):445-54
PMID: 19596091
-
A review of sodium alginate-based hydrogels: Structure, mechanisms, applications, and perspectives.
Int J Biol Macromol. 2025 Mar;292:139151
PMID: 39725117
-
The story of Bioglass.
J Mater Sci Mater Med. 2006 Nov;17(11):967-78
PMID: 17122907
-
3D printed double-network alginate hydrogels containing polyphosphate for bioenergetics and bone regeneration.
Int J Biol Macromol. 2021 Oct 1;188:639-648
PMID: 34390746
-
Bioceramics of calcium orthophosphates.
Biomaterials. 2010 Mar;31(7):1465-85
PMID: 19969343
-
Calcium signalling: dynamics, homeostasis and remodelling.
Nat Rev Mol Cell Biol. 2003 Jul;4(7):517-29
PMID: 12838335
-
Calcium phosphate-alginate microspheres as enzyme delivery matrices.
Biomaterials. 2004 Aug;25(18):4363-73
PMID: 15046927
-
Fabrication of sodium alginate doped phosphoric acid composite hydrogel and its application of the adsorption of La (III) in wastewater.
J Chromatogr A. 2024 Nov 8;1736:465425
PMID: 39393121
-
Morphology and Thermal Properties of Calcium Alginate/Reduced Graphene Oxide Composites.
Polymers (Basel). 2018 Sep 05;10(9):
PMID: 30960915
-
From micropores to mechanical strength: Fabrication and characterization of edible corn starch-sodium alginate double network hydrogels with Ca2+ cross-linking.
Food Chem. 2025 Mar 1;467:142276
PMID: 39631354
-
Gelation and biocompatibility of injectable alginate-calcium phosphate gels for bone regeneration.
J Biomed Mater Res A. 2014 Mar;102(3):808-17
PMID: 23589413
-
Surface charge effects in protein adsorption on nanodiamonds.
Nanoscale. 2015 Mar 19;7(13):5726-36
PMID: 25743890
-
Brown algae biomass for fucoxanthin, fucoidan and alginate; update review on structure, biosynthesis, biological activities and extraction valorisation.
Int J Biol Macromol. 2024 Nov;280(Pt 2):135632
PMID: 39299435
-
Calcium phosphate cements: competitive drug carriers for the musculoskeletal system?
Biomaterials. 2006 Apr;27(10):2171-7
PMID: 16332349
Full Text / Full Text
PMC full text available locally, click to read