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Keywords = alginate sponge

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21 pages, 5592 KB  
Article
A Three-Dimensional Porous Ag/C/Sodium Alginate@Polyurethane Sponge for Efficient Solar-Driven Seawater Desalination
by Yingying Yue, Rou Zeng, Yingfei Wang, Jiaqi Hu, Chengxin Zhang, Yu Li, Weijie Wei, Wubo Wan, Zaoxi Li and Yaqin Shi
Nanomaterials 2026, 16(14), 864; https://doi.org/10.3390/nano16140864 - 14 Jul 2026
Viewed by 491
Abstract
Carbonized coffee grounds exhibit excellent light absorption properties, while sodium alginate hydrogel is characterized by good biocompatibility, low toxicity, and low cost, rendering it suitable for the fabrication of multi-functional photothermal materials. In this study, polyurethane (PU) sponge and sodium alginate were used [...] Read more.
Carbonized coffee grounds exhibit excellent light absorption properties, while sodium alginate hydrogel is characterized by good biocompatibility, low toxicity, and low cost, rendering it suitable for the fabrication of multi-functional photothermal materials. In this study, polyurethane (PU) sponge and sodium alginate were used as the matrix, onto which coffee ground-derived carbon and silver nanoparticles (AgNPs) were loaded to construct a three-dimensional (3D) porous network. A high-performance, recyclable photothermal-steam conversion composite hydrogel sponge was successfully prepared via a simple drying method. The microstructure, physicochemical stability, mechanical properties, and photothermal performance of the composite sponge were systematically characterized, and the interfacial interaction mechanism between the components was clarified. The results showed that stable interactions were formed between coffee ground-derived carbon and sodium alginate, which regulated the water evaporation rate during the photothermal process. The introduction of AgNPs not only enhanced the mechanical strength of the composite material but also achieved a high photothermal conversion efficiency of up to 92.32%. This study broadens the application prospects of waste coffee ground-derived carbon in the field of photothermal conversion. Full article
(This article belongs to the Special Issue Advanced Photocatalytic Nanomaterials for Environmental Applications)
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16 pages, 5559 KB  
Article
Sodium Alginate Hydrogel Sponges Embedded with M2 Macrophages: An Adoptive Cell Therapy Strategy for Accelerated Diabetic Wound Healing
by Qingchang Tian, Wenqi Li, Lijiaqi Zhang, Kefen Gan, Yiting Zhang and Shuling Wang
Gels 2025, 11(7), 502; https://doi.org/10.3390/gels11070502 - 27 Jun 2025
Cited by 3 | Viewed by 1720
Abstract
Hydrogels possess advantages for providing a moist wound environment and enabling drug or cell delivery. Wound healing is a complex, multistage process where macrophages play a pivotal role; they influence inflammation resolution, anti-inflammatory cytokine production, angiogenesis, and extracellular matrix remodeling. Combining hydrogel materials [...] Read more.
Hydrogels possess advantages for providing a moist wound environment and enabling drug or cell delivery. Wound healing is a complex, multistage process where macrophages play a pivotal role; they influence inflammation resolution, anti-inflammatory cytokine production, angiogenesis, and extracellular matrix remodeling. Combining hydrogel materials with adoptive M2 macrophages offers a promising adoptive cell therapy approach to accelerate healing. In the present study, sodium alginate, a natural polymer, was harnessed to create hydrogel sponges embedded with M2 macrophages for application to chronic wounds. Hydrogel sponges were capable of preserving the characteristics of M2 macrophages, secreting functional cellular factors, and maintaining viability. Hydrogel sponges loaded with M2 type macrophages could promote chronic wound healing in the back of type 2 diabetic mice. In vitro and in vivo experiments demonstrated that M2 macrophages successfully grew and proliferated within the hydrogel sponges, exhibiting anti-inflammatory effects, which is expected to offer a cell therapy approach to diabetic wound treatment. Full article
(This article belongs to the Special Issue Hydrogels for Tissue Repair: Innovations and Applications)
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19 pages, 4384 KB  
Article
Porous Osteoplastic Composite Materials Based on Alginate–Pectin Complexes and Cation-Substituted Hydroxyapatites
by Galina A. Davydova, Inna V. Fadeeva, Elena S. Trofimchuk, Irina I. Selezneva, Muhriddin T. Mahamadiev, Lenar I. Akhmetov, Daniel S. Yakovsky, Vadim P. Proskurin, Marco Fosca, Viktoriya G. Yankova, Julietta V. Rau and Vicentiu Saceleanu
Polymers 2025, 17(13), 1744; https://doi.org/10.3390/polym17131744 - 23 Jun 2025
Cited by 1 | Viewed by 1497
Abstract
Novel three-dimensional porous composites of alginate–pectin (A/P) with zinc- or manganese-substituted hydroxyapatites (A/P-ZnHA and A/P-MnHA) were synthesized via lyophilization and calcium cross-linking. Powder X-ray diffraction and infrared spectroscopy analyses confirmed single-phase apatite formation (crystallite sizes < 1 µm), with ZnHA exhibiting lattice contraction [...] Read more.
Novel three-dimensional porous composites of alginate–pectin (A/P) with zinc- or manganese-substituted hydroxyapatites (A/P-ZnHA and A/P-MnHA) were synthesized via lyophilization and calcium cross-linking. Powder X-ray diffraction and infrared spectroscopy analyses confirmed single-phase apatite formation (crystallite sizes < 1 µm), with ZnHA exhibiting lattice contraction (*c*-axis: 6.881 Å vs. 6.893 Å for HA). Mechanical testing revealed tunable properties: pristine A/P sponges exhibited an elastic modulus of 4.7 MPa and a tensile strength of 0.10 MPa, reduced by 30–70% by HA incorporation due to increased porosity (pore sizes: 112 ± 18 µm in the case of MnHA vs. 148 ± 23 µm-ZnHA). Swelling capacity increased 2.3–2.8-fold (125–155% vs. 55% for A/P), governed by polysaccharide interactions. Scanning electron microscopy investigation showed microstructural evolution from layered A/P (<100 µm) to tridimensional architectures with embedded mineral particles. The A/P-MnHA composites demonstrated minimal cytotoxicity for the NCTC cells and good viability of dental pulp stem cells, while A/P-ZnHA caused ≈20% metabolic suppression, attributed to hydrolysis-induced acidification. Antibacterial assays highlighted A/P-MnHA′s broad-spectrum efficacy against Gram-positive (Bacillus atrophaeus) and Gram-negative (Pseudomonas protegens) strains, whereas A/P-ZnHA targeted only the Gram-positive strain. The developed composite sponges combine cytocompatibility and antimicrobial activity, potentially advancing osteoplastic materials for bone regeneration and infection control in orthopedic/dental applications. Full article
(This article belongs to the Special Issue Functional Polymer Composites: Synthesis and Application)
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16 pages, 3251 KB  
Article
Optimizing the Nitrogen Removal Efficiency of an Intermittent Biological Sponge Iron Reactor by Immobilizing Aerobic Denitrifying Bacteria in the Biological Sponge Iron System
by Jing Li, Jie Li, Yae Wang, Hao Mu, Huina Xie and Wei Zhao
Water 2025, 17(9), 1308; https://doi.org/10.3390/w17091308 - 27 Apr 2025
Viewed by 1429
Abstract
This study investigates the enhancement of nitrogen removal performance in an intermittent biological sponge iron system (BSIS) through the immobilization of aerobic denitrifying bacteria. The aim is to improve the efficiency of simultaneous nitrification and denitrification (SND) in the BSIS by optimizing the [...] Read more.
This study investigates the enhancement of nitrogen removal performance in an intermittent biological sponge iron system (BSIS) through the immobilization of aerobic denitrifying bacteria. The aim is to improve the efficiency of simultaneous nitrification and denitrification (SND) in the BSIS by optimizing the microbial community involved in nitrogen conversion. The immobilization technique not only stabilizes the microbial activity and abundance of aerobic denitrifying bacteria, but also promotes a more efficient denitrification process. The optimal material ratio of polyvinyl alcohol–sodium alginate gel beads was determined as 10 g/100 mL PVA, 4 g/100 mL SA, 2 g/100 mL CaCl2, and 2 g/100 mL of bacterial suspension, achieving a maximum NO3-N removal rate of 91.73%. A response surface model (RSM), established for the operational conditions, (shaker speed, temperature, and pH) showed a high fitting degree (R2 = 0.9960) and predicted the optimal conditions for maximum NO3-N removal as 109.24 rpm, 23.6 °C, and pH 7.9. Compared to R1 (47.82%), R3 achieved a higher average total nitrogen (TN) removal rate of 95.49%, following the addition of immobilized aerobic denitrifying bacteria to the BSIS. Full article
(This article belongs to the Section Wastewater Treatment and Reuse)
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15 pages, 3174 KB  
Review
Recent Advances in Natural Polysaccharide-Based Hemostatic Sponges: A Review
by Yingying Guo, Xuan Xie, Jing Li and Shun Yao
Polysaccharides 2025, 6(2), 25; https://doi.org/10.3390/polysaccharides6020025 - 28 Mar 2025
Cited by 7 | Viewed by 4600
Abstract
Bleeding is a potentially life-threatening emergency that can result in severe complications or death regardless of the cause of bleeding. The development of hemostatic materials has been a long-standing concern for emergency treatment in surgery and combat. In recent years, there have been [...] Read more.
Bleeding is a potentially life-threatening emergency that can result in severe complications or death regardless of the cause of bleeding. The development of hemostatic materials has been a long-standing concern for emergency treatment in surgery and combat. In recent years, there have been many reviews on hemostatic materials, but there have been few specific studies about performance requirements and development in recent years on natural polysaccharide-based hemostatic sponge as a type of hemostatic excipient. Currently, natural polysaccharide hemostatic sponge has attracted wide attention due to the enhancement or interaction of various hemostatic mechanisms. These polysaccharide sponges show a high hemostatic effect. In this paper, the application history of natural polysaccharides (chitosan, hyaluronic acid, alginate, cellulose, starch, etc.) as a new generation of hemostatic sponge materials in recent years is reviewed. The design principles and new achievements in polysaccharide-based hemostatic sponge are introduced. Finally, we summarize the advantages and disadvantages of polysaccharide hemostatic sponge and prospect the development opportunities and challenges of this material. Full article
(This article belongs to the Collection Current Opinion in Polysaccharides)
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16 pages, 2870 KB  
Article
Modified Fine Polyurethane Sponges with Polyvinyl Alcohol–Sodium Alginate Gel Coating as Bio-Carriers for Anammox Process
by Patcharaporn Phocharoen, Jarawee Kaewyai, Sineenat Thaiboonrod, Sanya Sirivitayaprakorn, Pongsak (Lek) Noophan and Chi-Wang Li
Water 2025, 17(5), 737; https://doi.org/10.3390/w17050737 - 3 Mar 2025
Cited by 3 | Viewed by 2326
Abstract
This research investigates suitable bio-carriers for the anaerobic ammonium oxidation (anammox) process. This study evaluates the efficiency of the anammox process by assessing nitrogen removal efficiency using five different bio-carriers: fine and coarse polyurethane (PU) sponges, a melamine sponge, Scotch Brite, and a [...] Read more.
This research investigates suitable bio-carriers for the anaerobic ammonium oxidation (anammox) process. This study evaluates the efficiency of the anammox process by assessing nitrogen removal efficiency using five different bio-carriers: fine and coarse polyurethane (PU) sponges, a melamine sponge, Scotch Brite, and a loofah. Among the tested carriers, the reactor of the fine PU sponge media exhibited the highest nitrogen removal efficiency, achieving an 87% removal rate. This high efficiency was attributed to the substantial biomass containment, evidenced by a measured mixed liquor volatile suspended solids (MLVSS) amount of 1414 mg/L. Subsequently, the fine PU sponge, exhibiting the highest efficiency, was selected for further modification with a polyvinyl alcohol–sodium alginate (PVA-SA) gel coating to study the impact of methanol inhibition on nitrogen removal efficiency. An optimal modification condition was determined, utilizing concentrations of 8% PVA and 1.8% SA for the fine PU sponge media. The modified PU reactor exhibited the highest resistance to methanol inhibition, followed by the attached growth fine PU sponge reactor and suspended growth reactor. These findings suggest that there are benefits to using modified PU media for the anammox process in the field. Full article
(This article belongs to the Special Issue ANAMMOX Based Technology for Nitrogen Removal from Wastewater)
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18 pages, 27165 KB  
Article
High-Performance Flexible Sensor with Sensitive Strain/Magnetic Dual-Mode Sensing Characteristics Based on Sodium Alginate and Carboxymethyl Cellulose
by Chong Liu, Longwang Yue, Yu Fu, Zhenshuai Wan, Li Wang, Yangke Wei and Sha Li
Gels 2024, 10(9), 555; https://doi.org/10.3390/gels10090555 - 27 Aug 2024
Cited by 5 | Viewed by 2470
Abstract
Flexible sensors can measure various stimuli owing to their exceptional flexibility, stretchability, and electrical properties. However, the integration of multiple stimuli into a single sensor for measurement is challenging. To address this issue, the sensor developed in this study utilizes the natural biopolymers [...] Read more.
Flexible sensors can measure various stimuli owing to their exceptional flexibility, stretchability, and electrical properties. However, the integration of multiple stimuli into a single sensor for measurement is challenging. To address this issue, the sensor developed in this study utilizes the natural biopolymers sodium alginate and carboxymethyl cellulose to construct a dual interpenetrating network, This results in a flexible porous sponge that exhibits a dual-modal response to strain and magnetic stimulation. The dual-mode flexible sensor achieved a maximum tensile strength of 429 kPa and elongation at break of 24.7%. It also exhibited rapid response times and reliable stability under both strain and magnetic stimuli. The porous foam sensor is intended for use as a wearable electronic device for monitoring joint movements of the body. It provides a swift and stable sensing response to mechanical stimuli arising from joint activities, such as stretching, compression, and bending. Furthermore, the sensor generates opposing response signals to strain and magnetic stimulation, enabling real-time decoupling of different stimuli. This study employed a simple and environmentally friendly manufacturing method for the dual-modal flexible sensor. Because of its remarkable performance, it has significant potential for application in smart wearable electronics and artificial electroskins. Full article
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27 pages, 4365 KB  
Article
Biochar/Biopolymer Composites for Potential In Situ Groundwater Remediation
by Marco Petrangeli Papini, Sara Cerra, Damiano Feriaud, Ida Pettiti, Laura Lorini and Ilaria Fratoddi
Materials 2024, 17(16), 3899; https://doi.org/10.3390/ma17163899 - 6 Aug 2024
Cited by 8 | Viewed by 2724
Abstract
This study explores the use of pine wood biochar (BC) waste gasified at 950 °C as fillers in polymer matrices to create BC@biopolymer composites with perspectives in groundwater remediation. Four biochar samples underwent different sieving and grinding processes and were extensively characterized via [...] Read more.
This study explores the use of pine wood biochar (BC) waste gasified at 950 °C as fillers in polymer matrices to create BC@biopolymer composites with perspectives in groundwater remediation. Four biochar samples underwent different sieving and grinding processes and were extensively characterized via UV–Vis, FTIR, and FESEM–EDS, highlighting the fact that that BCs are essentially graphitic in nature with a sponge-like morphology. The grinding process influences the particle size, reducing the specific surface area by about 30% (evaluated by BET). The adsorption performances of raw BC were validated via an adsorption isotherm using trichloroethylene (TCE) as a model contaminant. A selected BC sample was used to produce hydrophilic, stable polymer composites with chitosan (CS), alginate (ALG), potato starch (PST), and sodium carboxymethylcellulose (CMC) via a simple blending approach. Pilot sedimentation tests over 7 days in water identified BC@PST and BC@CMC as the most stable suspensions due to a combination of both hydrogen bonds and physical entrapment, as studied by FTIR. BC@CMC showed optimal distribution and retention properties without clogging in breakthrough tests. The study concludes that biopolymer-based biochar composites with improved stability in aqueous environments hold significant promise for addressing various groundwater pollution challenges. Full article
(This article belongs to the Special Issue Environmentally Friendly Adsorption Materials)
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16 pages, 3359 KB  
Article
In Vitro Hemostatic Activity of Novel Fish Gelatin–Alginate Sponge (FGAS) Prototype
by Heri Herliana, Harmas Yazid Yusuf, Avi Laviana, Ganesha Wandawa and Basril Abbas
Polymers 2024, 16(14), 2047; https://doi.org/10.3390/polym16142047 - 18 Jul 2024
Cited by 7 | Viewed by 4221
Abstract
A hemostatic sponge prototype was successfully synthesized from fish gelatin as an alternative to mammalian gelatin; it was mixed with alginate in certain combinations, double cross-linked with calcium ions, and gamma irradiated at a dose of 20 kGy to improve the characteristics and [...] Read more.
A hemostatic sponge prototype was successfully synthesized from fish gelatin as an alternative to mammalian gelatin; it was mixed with alginate in certain combinations, double cross-linked with calcium ions, and gamma irradiated at a dose of 20 kGy to improve the characteristics and effectiveness of its function as a local hemostatic agent. There were improvements in the physicochemical and mechanical properties, porosity index, absorption capacity, biodegradation properties, biocompatibility, and hemocompatibility of the fish gelatin–alginate sponge (FGAS) prototypes compared with the pure fish gelatin sponge. Hemostatic activity tests showed that the means for clotting time, prothrombin time, and activated partial thromboplastin time were shorter in the FGAS prototype than in the negative control, and there was no significant difference compared with the commercial gelatin sponge. The hemostatic mechanism of the FGAS prototype combined a passive mechanism as a concentrator factor and an active mechanism through the release of calcium ions as a coagulation factor in the coagulation cascade process. Full article
(This article belongs to the Special Issue Bio-Based Polymers: Preparation, Characterization and Applications)
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14 pages, 1693 KB  
Article
Comprehensive Assessment of Collagen/Sodium Alginate-Based Sponges as Hemostatic Dressings
by Leilei Sun, Yanyan Shen, Mingbo Li, Qiuting Wang, Ruimin Li and Shunmin Gong
Molecules 2024, 29(13), 2999; https://doi.org/10.3390/molecules29132999 - 24 Jun 2024
Cited by 5 | Viewed by 3552
Abstract
In our search for a biocompatible composite hemostatic dressing, we focused on the design of a novel biomaterial composed of two natural biological components, collagen and sodium alginate (SA), cross-linked using 1-ethyl-3-(3-dimethylaminopropyl) carbodiimide/N-hydroxysuccinimide (EDC/NHS) and oxidized sodium alginate (OSA). We conducted a series [...] Read more.
In our search for a biocompatible composite hemostatic dressing, we focused on the design of a novel biomaterial composed of two natural biological components, collagen and sodium alginate (SA), cross-linked using 1-ethyl-3-(3-dimethylaminopropyl) carbodiimide/N-hydroxysuccinimide (EDC/NHS) and oxidized sodium alginate (OSA). We conducted a series of tests to evaluate the physicochemical properties, acute systemic toxicity, skin irritation, intradermal reaction, sensitization, cytotoxicity, and in vivo femoral artery hemorrhage model. The results demonstrated the excellent biocompatibility of the collagen/sodium alginate (C/SA)-based dressings before and after crosslinking. Specifically, the femoral artery hemorrhage model revealed a significantly shortened hemostasis time of 132.5 ± 12.82 s for the EDC/NHS cross-linked dressings compared to the gauze in the blank group (hemostasis time of 251.43 ± 10.69 s). These findings indicated that C/SA-based dressings exhibited both good biocompatibility and a significant hemostatic effect, making them suitable for biomedical applications. Full article
(This article belongs to the Special Issue Synthesis and Applications of Natural Polymers and Their Derivatives)
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12 pages, 1825 KB  
Article
Preparation and Modification of Collagen/Sodium Alginate-Based Biomedical Materials and Their Characteristics
by Leilei Sun, Yanyan Shen, Mingbo Li, Qiuting Wang, Ruimin Li and Shunmin Gong
Polymers 2024, 16(2), 171; https://doi.org/10.3390/polym16020171 - 6 Jan 2024
Cited by 16 | Viewed by 5548
Abstract
(1) Background: Collagen and sodium alginate are commonly used in the field of biomedical materials due to their excellent biocompatibility. This study focuses on the preparation, modification, and characterization of collagen/sodium alginate (C/SA)-based biomedical materials. (2) Methods: The characteristics, including surface chemistry, mechanical [...] Read more.
(1) Background: Collagen and sodium alginate are commonly used in the field of biomedical materials due to their excellent biocompatibility. This study focuses on the preparation, modification, and characterization of collagen/sodium alginate (C/SA)-based biomedical materials. (2) Methods: The characteristics, including surface chemistry, mechanical properties, hygroscopicity, and porosity, were analyzed. The hemostatic activity in vitro was measured using a blood clotting assay and dynamic blood clotting assay. (3) Results: The results from microstructure and porosity measurement revealed that all of the sponges exhibited a porosity of more than 95 percent. The sponge cross-linked with 1-ethyl-3-(3-dimethylaminopropyl) carbodiimide/N-hydroxysuccinimide (EDC/NHS) showed better tensile strength and lower elongation at break. The sponges cross-linked with EDC/NHS and oxidized sodium alginate (OSA) exhibited the highest hygroscopicity in comparison with the uncross-linked sponge. (4) Conclusions: Our study demonstrated that the C/SA-based material we prepared exhibited a high level of porosity, enabling efficient absorption of tissue exudate and blood. Additionally, the materials revealed excellent hemocompatibility, making them suitable for use as a hemostatic dressing in the field of biomedical materials. Full article
(This article belongs to the Special Issue Advanced Biopolymers for Tissue Engineering Application)
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27 pages, 6560 KB  
Article
Morphological Reconstruction of a Critical-Sized Bone Defect in the Maxillofacial Region Using Modified Chitosan in Rats with Sub-Compensated Type I Diabetes Mellitus
by Nadezhda N. Patlataya, Igor N. Bolshakov, Vladimir A. Khorzhevskii, Anatoli A. Levenets, Nadezhda N. Medvedeva, Mariya A. Cherkashina, Matvey M. Nikolaenko, Ekaterina I. Ryaboshapko and Anna E. Dmitrienko
Polymers 2023, 15(21), 4337; https://doi.org/10.3390/polym15214337 - 6 Nov 2023
Cited by 3 | Viewed by 2339
Abstract
It is known that complexes based on natural polysaccharides are able to eliminate bone defects. Prolonged hyperglycemia leads to low bone regeneration and a chronic inflammatory response. The purpose of this study was to increase the efficiency of early bone formation in a [...] Read more.
It is known that complexes based on natural polysaccharides are able to eliminate bone defects. Prolonged hyperglycemia leads to low bone regeneration and a chronic inflammatory response. The purpose of this study was to increase the efficiency of early bone formation in a cavity of critical size in diabetes mellitus in the experiment. The polyelectrolyte complex contains high-molecular ascorbate of chitosan, chondroitin sulfate, sodium hyaluronate, heparin, adgelon serum growth factor, sodium alginate and amorphous nanohydroxyapatite (CH–SA–HA). Studies were conducted on five groups of white female Wistar rats: group 1—regeneration of a bone defect in healthy animals under a blood clot; group 2—regeneration of a bone defect under a blood clot in animals with diabetes mellitus; group 3—bone regeneration in animals with diabetes mellitus after filling the bone cavity with a collagen sponge; group 4—filling of a bone defect with a CH–SA–HA construct in healthy animals; group 5—filling of a bone defect with a CH–SA–HA construct in animals with diabetes mellitus. Implantation of the CH–SA–HA construct into bone cavities in type I diabetic rats can accelerate the rate of bone tissue repair. The inclusion of modifying polysaccharides and apatite agents in the construction may be a prospect for further improvement of the properties of implants. Full article
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15 pages, 1146 KB  
Review
Marine-Originated Materials and Their Potential Use in Biomedicine
by Nefeli Lagopati, Natassa Pippa, Maria-Anna Gatou, Nefeli Papadopoulou-Fermeli, Vassilis G. Gorgoulis, Maria Gazouli and Evangelia A. Pavlatou
Appl. Sci. 2023, 13(16), 9172; https://doi.org/10.3390/app13169172 - 11 Aug 2023
Cited by 19 | Viewed by 5932
Abstract
Aquatic habitats cover almost 70% of the Earth, containing several species contributing to marine biodiversity. Marine and aquatic organisms are rich in chemical compounds that can be widely used in biomedicine (dentistry, pharmacy, cosmetology, etc.) as alternative raw biomaterials or in food supplements. [...] Read more.
Aquatic habitats cover almost 70% of the Earth, containing several species contributing to marine biodiversity. Marine and aquatic organisms are rich in chemical compounds that can be widely used in biomedicine (dentistry, pharmacy, cosmetology, etc.) as alternative raw biomaterials or in food supplements. Their structural characteristics make them promising candidates for tissue engineering approaches in regenerative medicine. Thus, seaweeds, marine sponges, arthropods, cnidaria, mollusks, and the biomaterials provided by them, such as alginate, vitamins, laminarin, collagen, chitin, chitosan, gelatin, hydroxyapatite, biosilica, etc., are going to be discussed focusing on the biomedical applications of these marine-originated biomaterials. The ultimate goal is to highlight the sustainability of the use of these biomaterials instead of conventional ones, mainly due to the antimicrobial, anti-inflammatory, anti-aging and anticancer effect. Full article
(This article belongs to the Special Issue Bioactive Compounds from Natural Products - Volume II)
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23 pages, 9091 KB  
Article
Bromotyrosine-Derived Metabolites from a Marine Sponge Inhibit Pseudomonas aeruginosa Biofilms
by Tam M. T. Tran, Russell S. Addison, Rohan A. Davis and Bernd H. A. Rehm
Int. J. Mol. Sci. 2023, 24(12), 10204; https://doi.org/10.3390/ijms241210204 - 16 Jun 2023
Cited by 8 | Viewed by 3502
Abstract
Pseudomonas aeruginosa forms stable biofilms, providing a major barrier for multiple classes of antibiotics and severely impairing treatment of infected patients. The biofilm matrix of this Gram-negative bacterium is primarily composed of three major exopolysaccharides: alginate, Psl, and Pel. Here, we studied the [...] Read more.
Pseudomonas aeruginosa forms stable biofilms, providing a major barrier for multiple classes of antibiotics and severely impairing treatment of infected patients. The biofilm matrix of this Gram-negative bacterium is primarily composed of three major exopolysaccharides: alginate, Psl, and Pel. Here, we studied the antibiofilm properties of sponge-derived natural products ianthelliformisamines A–C and their combinations with clinically used antibiotics. Wild-type P. aeruginosa strain and its isogenic exopolysaccharide-deficient mutants were employed to determine the interference of the compounds with biofilm matrix components. We identified that ianthelliformisamines A and B worked synergistically with ciprofloxacin to kill planktonic and biofilm cells. Ianthelliformisamines A and B reduced the minimum inhibitory concentration (MIC) of ciprofloxacin to 1/3 and 1/4 MICs, respectively. In contrast, ianthelliformisamine C (MIC = 53.1 µg/mL) alone exhibited bactericidal effects dose-dependently on both free-living and biofilm populations of wild-type PAO1, PAO1ΔpslA (Psl deficient), PDO300 (alginate overproducing and mimicking clinical isolates), and PDO300Δalg8 (alginate deficient). Interestingly, the biofilm of the clinically relevant mucoid variant PDO300 was more susceptible to ianthelliformisamine C than strains with impaired polysaccharide synthesis. Ianthelliformisamines exhibited low cytotoxicity towards HEK293 cells in the resazurin viability assay. Mechanism of action studies showed that ianthelliformisamine C inhibited the efflux pump of P. aeruginosa. Metabolic stability analyses indicated that ianthelliformisamine C is stable and ianthelliformisamines A and B are rapidly degraded. Overall, these findings suggest that the ianthelliformisamine chemotype could be a promising candidate for the treatment of P. aeruginosa biofilms. Full article
(This article belongs to the Special Issue New Insights in Bioactive Compounds as Antibiofilm Agents)
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20 pages, 5424 KB  
Article
Marine Collagen-Based Bioink for 3D Bioprinting of a Bilayered Skin Model
by Aida Cavallo, Tamer Al Kayal, Angelica Mero, Andrea Mezzetta, Anissa Pisani, Ilenia Foffa, Cecilia Vecoli, Marianna Buscemi, Lorenzo Guazzelli, Giorgio Soldani and Paola Losi
Pharmaceutics 2023, 15(5), 1331; https://doi.org/10.3390/pharmaceutics15051331 - 24 Apr 2023
Cited by 37 | Viewed by 5881
Abstract
Marine organisms (i.e., fish, jellyfish, sponges or seaweeds) represent an abundant and eco-friendly source of collagen. Marine collagen, compared to mammalian collagen, can be easily extracted, is water-soluble, avoids transmissible diseases and owns anti-microbial activities. Recent studies have reported marine collagen as a [...] Read more.
Marine organisms (i.e., fish, jellyfish, sponges or seaweeds) represent an abundant and eco-friendly source of collagen. Marine collagen, compared to mammalian collagen, can be easily extracted, is water-soluble, avoids transmissible diseases and owns anti-microbial activities. Recent studies have reported marine collagen as a suitable biomaterial for skin tissue regeneration. The aim of this work was to investigate, for the first time, marine collagen from basa fish skin for the development of a bioink for extrusion 3D bioprinting of a bilayered skin model. The bioinks were obtained by mixing semi-crosslinked alginate with 10 and 20 mg/mL of collagen. The bioinks were characterised by evaluating the printability in terms of homogeneity, spreading ratio, shape fidelity and rheological properties. Morphology, degradation rate, swelling properties and antibacterial activity were also evaluated. The alginate-based bioink containing 20 mg/mL of marine collagen was selected for 3D bioprinting of skin-like constructs with human fibroblasts and keratinocytes. The bioprinted constructs showed a homogeneous distribution of viable and proliferating cells at days 1, 7 and 14 of culture evaluated by qualitative (live/dead) and qualitative (XTT) assays, and histological (H&E) and gene expression analysis. In conclusion, marine collagen can be successfully used to formulate a bioink for 3D bioprinting. In particular, the obtained bioink can be printed in 3D structures and is able to support fibroblasts and keratinocytes viability and proliferation. Full article
(This article belongs to the Special Issue Biomaterials in Skin Wound Healing and Tissue Regenerations Volume II)
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