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1.
Carbohydr Polym ; 339: 122209, 2024 Sep 01.
Article in English | MEDLINE | ID: mdl-38823899

ABSTRACT

The escalating global health concern arises from chronic wounds induced by bacterial infections, posing a significant threat to individuals. Consequently, an imperative exist for the development of hydrogel dressings to facilitate prompt wound monitoring and efficacious wound management. To this end, pH-sensitive bromothymol blue (BTB) and pH-responsive drug tetracycline hydrochloride (TH) were introduced into the polysaccharide-based hydrogel to realize the integration of wound monitoring and controlled treatment. Polysaccharide-based hydrogels were formed via a Schiff base reaction by cross-linking carboxymethyl chitosan (CMCS) on an oxidized sodium alginate (OSA) skeleton. BTB was used as a pH indicator to monitor wound infection through visual color changes visually. TH could be dynamically released through the pH response of the Schiff base bond to provide effective treatment and long-term antibacterial activity for chronically infected wounds. In addition, introducing polylactic acid nanofibers (PLA) enhanced the mechanical properties of hydrogels. The multifunctional hydrogel has excellent mechanical, self-healing, injectable, antibacterial properties and biocompatibility. Furthermore, the multifaceted hydrogel dressing under consideration exhibits noteworthy capabilities in fostering the healing process of chronically infected wounds. Consequently, the research contributes novel perspectives towards the advancement of intelligent and expeditious bacterial infection monitoring and dynamic treatment platforms.


Subject(s)
Alginates , Anti-Bacterial Agents , Bandages , Chitosan , Hydrogels , Nanofibers , Wound Healing , Nanofibers/chemistry , Hydrogels/chemistry , Hydrogels/pharmacology , Wound Healing/drug effects , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/therapeutic use , Hydrogen-Ion Concentration , Chitosan/chemistry , Chitosan/analogs & derivatives , Chitosan/pharmacology , Alginates/chemistry , Animals , Staphylococcus aureus/drug effects , Tetracycline/chemistry , Tetracycline/pharmacology , Mice , Wound Infection/drug therapy , Polysaccharides/chemistry , Escherichia coli/drug effects , Schiff Bases/chemistry , Microbial Sensitivity Tests , Humans
2.
Carbohydr Polym ; 337: 122112, 2024 Aug 01.
Article in English | MEDLINE | ID: mdl-38710545

ABSTRACT

The growing concerns on environmental pollution and sustainability have raised the interest on the development of functional biobased materials for different applications, including food packaging, as an alternative to the fossil resources-based counterparts, currently available in the market. In this work, functional wood inspired biopolymeric nanocomposite films were prepared by solvent casting of suspensions containing commercial beechwood xylans, cellulose nanofibers (CNF) and lignosulfonates (magnesium or sodium), in a proportion of 2:5:3 wt%, respectively. All films presented good homogeneity, translucency, and thermal stability up to 153 °C. The incorporation of CNF into the xylan/lignosulfonates matrix provided good mechanical properties to the films (Young's modulus between 1.08 and 3.79 GPa and tensile strength between 12.75 and 14.02 MPa). The presence of lignosulfonates imparted the films with antioxidant capacity (DPPH radical scavenging activity from 71.6 to 82.4 %) and UV barrier properties (transmittance ≤19.1 % (200-400 nm)). Moreover, the films obtained are able to successfully delay the browning of packaged fruit stored over 7 days at 4 °C. Overall, the obtained results show the potential of using low-cost and eco-friendly resources for the development of sustainable active food packaging materials.


Subject(s)
Cellulose , Food Packaging , Lignin , Lignin/analogs & derivatives , Nanocomposites , Nanofibers , Tensile Strength , Wood , Xylans , Food Packaging/methods , Lignin/chemistry , Nanocomposites/chemistry , Cellulose/chemistry , Cellulose/analogs & derivatives , Wood/chemistry , Nanofibers/chemistry , Xylans/chemistry , Antioxidants/chemistry , Fruit/chemistry
3.
AAPS PharmSciTech ; 25(5): 94, 2024 May 06.
Article in English | MEDLINE | ID: mdl-38710898

ABSTRACT

This study introduces and assesses the potential of a Luliconazole-loaded nanofiber (LUL-NF) patch, fabricated through electrospinning, for enhancing topical drug delivery. The primary objectives involve evaluating the nanofiber structure, characterizing physical properties, determining drug loading and release kinetics, assessing antifungal efficacy, and establishing the long-term stability of the NF patch. LUL-NF patches were fabricated via electrospinning and observed by SEM at approximately 200 nm dimensions. The comprehensive analysis included physical properties (thickness, folding endurance, swelling ratio, weight, moisture content, and drug loading) and UV analysis for drug quantification. In vitro studies explored sustained drug release kinetics, while microbiological assays evaluated antifungal efficacy against Candida albicans and Aspergillus Niger. Stability studies confirmed long-term viability. Comparative analysis with the pure drug, placebo NF patch, LUL-NF patch, and Lulifod gel was conducted using agar diffusion, revealing enhanced performance of the LUL-NF patch. SEM analysis revealed well-defined LUL-NF patches (0.80 mm thickness) with exceptional folding endurance (> 200 folds) and a favorable swelling ratio (12.66 ± 0.73%). The patches exhibited low moisture uptake (3.4 ± 0.09%) and a moisture content of 11.78 ± 0.54%. Drug loading in 1 cm2 section was 1.904 ± 0.086 mg, showing uniform distribution and sustained release kinetics in vitro. The LUL-NF patch demonstrated potent antifungal activity. Stability studies affirmed long-term stability, and comparative analysis highlighted increased inhibition compared to a pure drug, LUL-NF patch, and a commercial gel. The electrospun LUL-NF patch enhances topical drug delivery, promising extended therapy through single-release, one-time application, and innovative drug delivery strategies, supported by thorough analysis.


Subject(s)
Antifungal Agents , Aspergillus niger , Candida albicans , Drug Delivery Systems , Drug Liberation , Imidazoles , Nanofibers , Antifungal Agents/administration & dosage , Antifungal Agents/pharmacology , Antifungal Agents/chemistry , Nanofibers/chemistry , Candida albicans/drug effects , Aspergillus niger/drug effects , Drug Delivery Systems/methods , Imidazoles/chemistry , Imidazoles/administration & dosage , Imidazoles/pharmacology , Delayed-Action Preparations , Microbial Sensitivity Tests/methods , Drug Carriers/chemistry , Drug Stability
4.
Molecules ; 29(9)2024 Apr 30.
Article in English | MEDLINE | ID: mdl-38731558

ABSTRACT

Given the widespread prevalence of viruses, there is an escalating demand for antimicrobial composites. Although the composite of dialdehyde cellulose and silver nanoparticles (DAC@Ag1) exhibits excellent antibacterial properties, its weak mechanical characteristics hinder its practical applicability. To address this limitation, cellulose nanofibers (CNFs) were initially ammoniated to yield N-CNF, which was subsequently incorporated into DAC@Ag1 as an enhancer, forming DAC@Ag1/N-CNF. We systematically investigated the optimal amount of N-CNF and characterized the DAC@Ag1/N-CNF using FT-IR, XPS, and XRD analyses to evaluate its additional properties. Notably, the optimal mass ratio of N-CNF to DAC@Ag1 was found to be 5:5, resulting in a substantial enhancement in mechanical properties, with a 139.8% increase in tensile elongation and a 33.1% increase in strength, reaching 10% and 125.24 MPa, respectively, compared to DAC@Ag1 alone. Furthermore, the inhibition zones against Escherichia coli and Staphylococcus aureus were significantly expanded to 7.9 mm and 15.9 mm, respectively, surpassing those of DAC@Ag1 alone by 154.8% and 467.9%, indicating remarkable improvements in antimicrobial efficacy. Mechanism analysis highlighted synergistic effects from chemical covalent bonding and hydrogen bonding in the DAC@Ag1/N-CNF, enhancing the mechanical and antimicrobial properties significantly. The addition of N-CNF markedly augmented the properties of the composite film, thereby facilitating its broader application in the antimicrobial field.


Subject(s)
Cellulose , Escherichia coli , Metal Nanoparticles , Silver , Staphylococcus aureus , Silver/chemistry , Metal Nanoparticles/chemistry , Escherichia coli/drug effects , Staphylococcus aureus/drug effects , Cellulose/chemistry , Cellulose/analogs & derivatives , Anti-Bacterial Agents/pharmacology , Anti-Bacterial Agents/chemistry , Nanofibers/chemistry , Nanocomposites/chemistry , Microbial Sensitivity Tests , Anti-Infective Agents/chemistry , Anti-Infective Agents/pharmacology , Spectroscopy, Fourier Transform Infrared
5.
Part Fibre Toxicol ; 21(1): 23, 2024 May 11.
Article in English | MEDLINE | ID: mdl-38734694

ABSTRACT

BACKGROUND: Inhalation of biopersistent fibers like asbestos can cause strong chronic inflammatory effects, often resulting in fibrosis or even cancer. The interplay between fiber shape, fiber size and the resulting biological effects is still poorly understood due to the lack of reference materials. RESULTS: We investigated how length, diameter, aspect ratio, and shape of synthetic silica fibers influence inflammatory effects at doses up to 250 µg cm-2. Silica nanofibers were prepared with different diameter and shape. Straight (length ca. 6 to 8 µm, thickness ca. 0.25 to 0.35 µm, aspect ratio ca. 17:1 to 32:1) and curly fibers (length ca. 9 µm, thickness ca. 0.13 µm, radius of curvature ca. 0.5 µm, aspect ratio ca. 70:1) were dispersed in water with no apparent change in the fiber shape during up to 28 days. Upon immersion in aqueous saline (DPBS), the fibers released about 5 wt% silica after 7 days irrespectively of their shape. The uptake of the fibers by macrophages (human THP-1 and rat NR8383) was studied by scanning electron microscopy and confocal laser scanning microscopy. Some fibers were completely taken up whereas others were only partially internalized, leading to visual damage of the cell wall. The biological effects were assessed by determining cell toxicity, particle-induced chemotaxis, and the induction of gene expression of inflammatory mediators. CONCLUSIONS: Straight fibers were only slightly cytotoxic and caused weak cell migration, regardless of their thickness, while the curly fibers were more toxic and caused significantly stronger chemotaxis. Curly fibers also had the strongest effect on the expression of cytokines and chemokines. This may be due to the different aspect ratio or its twisted shape.


Subject(s)
Chemotaxis , Macrophages , Particle Size , Silicon Dioxide , Silicon Dioxide/toxicity , Silicon Dioxide/chemistry , Animals , Humans , Rats , Macrophages/drug effects , Macrophages/metabolism , Chemotaxis/drug effects , Nanofibers/toxicity , Nanofibers/chemistry , THP-1 Cells , Transcriptome/drug effects , Mineral Fibers/toxicity , Cytokines/metabolism , Cytokines/genetics , Cell Line
6.
Nanoscale ; 16(20): 9861-9874, 2024 May 23.
Article in English | MEDLINE | ID: mdl-38712977

ABSTRACT

A guided bone regeneration (GBR) membrane can act as a barrier to prevent the invasion and interference from foreign soft tissues, promoting infiltration and proliferation of osteoblasts in the bone defect area. Herein, a composite scaffold with dual functions of osteogenesis and antibacterial effects was prepared for GBR. A polycaprolactone (PCL)/nano-hydroxyapatite (n-HA) aerogel produced by electrospinning and freeze-drying techniques was fabricated as the loose layer of the scaffold, while a PCL nanofiber membrane was used as the dense layer. Chitosan (CS) solution served as a middle layer to provide mechanical support and antibacterial effects between the two layers. Morphological results showed that the loose layer had a porous structure with n-HA successfully dispersed in the aerogels, while the dense layer possessed a sufficiently dense structure. In vitro antibacterial experiments illustrated that the CS solution in the middle layer stabilized the scaffold structure and endowed the scaffold with good antibacterial properties. The cytocompatibility results indicated that both fibroblasts and osteoblasts exhibited superior cell activity on the dense and loose layers, respectively. In particular, the dense layer made of nanofibers could work as a barrier layer to inhibit the infiltration of fibroblasts into the loose layer. In vitro osteogenesis analysis suggested that the PCL/n-HA aerogel could enhance the bone induction ability of bone mesenchymal stem cells, which was confirmed by the increased expression of the alkaline phosphatase activity. The loose structure facilitated the infiltration and migration of bone mesenchymal stem cells for better osteogenesis. In summary, such a composite scaffold exhibited excellent osteogenic and antibacterial properties as well as the barrier effect, thus holding promising potential for use as GBR materials.


Subject(s)
Anti-Bacterial Agents , Bone Regeneration , Chitosan , Durapatite , Nanofibers , Osteoblasts , Osteogenesis , Polyesters , Chitosan/chemistry , Chitosan/pharmacology , Durapatite/chemistry , Durapatite/pharmacology , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/pharmacology , Bone Regeneration/drug effects , Nanofibers/chemistry , Polyesters/chemistry , Polyesters/pharmacology , Animals , Osteoblasts/cytology , Osteoblasts/drug effects , Osteoblasts/metabolism , Osteogenesis/drug effects , Mice , Tissue Scaffolds/chemistry , Gels/chemistry , Staphylococcus aureus/drug effects , Fibroblasts/drug effects , Fibroblasts/cytology
7.
ACS Appl Mater Interfaces ; 16(20): 25843-25855, 2024 May 22.
Article in English | MEDLINE | ID: mdl-38717308

ABSTRACT

Poor hemostatic ability and less vascularization at the injury site could hinder wound healing as well as adversely affect the quality of life (QOL). An ideal wound dressing should exhibit certain characteristics: (a) good hemostatic ability, (b) rapid wound healing, and (c) skin appendage formation. This necessitates the advent of innovative dressings to facilitate skin regeneration. Therapeutic ions, such as silicon ions (Si4+) and calcium ions (Ca2+), have been shown to assist in wound repair. The Si4+ released from silica (SiO2) can upregulate the expression of proteins, including the vascular endothelial growth factor (VEGF) and alpha smooth muscle actin (α-SMA), which is conducive to vascularization; Ca2+ released from tricalcium phosphate (TCP) can promote the coagulation alongside upregulating the expression of cell migration and cell differentiation related proteins, thereby facilitating the wound repair. The overarching objective of this study was to exploit short SiO2 nanofibers along with the TCP to prepare TCPx@SSF aerogels and assess their wound healing ability. Short SiO2 nanofibers were prepared by electrospinning and blended with varying proportions of TCP to afford TCPx@SSF aerogel scaffolds. The TCPx@SSF aerogels exhibited good cytocompatibility in a subcutaneous implantation model and manifested a rapid hemostatic effect (hemostatic time 75 s) in a liver trauma model in the rabbit. These aerogel scaffolds also promoted skin regeneration and exhibited rapid wound closure, epithelial tissue regeneration, and collagen deposition. Taken together, TCPx@SSF aerogels may be valuable for wound healing.


Subject(s)
Calcium Phosphates , Nanofibers , Silicon Dioxide , Tissue Scaffolds , Wound Healing , Nanofibers/chemistry , Animals , Rabbits , Silicon Dioxide/chemistry , Silicon Dioxide/pharmacology , Calcium Phosphates/chemistry , Calcium Phosphates/pharmacology , Wound Healing/drug effects , Tissue Scaffolds/chemistry , Skin/drug effects , Regeneration/drug effects , Mice , Gels/chemistry
8.
Biofabrication ; 16(3)2024 May 23.
Article in English | MEDLINE | ID: mdl-38739412

ABSTRACT

Reconstruction of large 3D tissues based on assembly of micro-sized multi-cellular spheroids has gained attention in tissue engineering. However, formation of 3D adipose tissue from spheroids has been challenging due to the limited adhesion capability and restricted cell mobility of adipocytes in culture media. In this study, we addressed this problem by developing adipo-inductive nanofibers enabling dual delivery of indomethacin and insulin. These nanofibers were introduced into composite spheroids comprising human adipose-derived stem cells (hADSCs). This approach led to a significant enhancement in the formation of uniform lipid droplets, as evidenced by the significantly increased Oil red O-stained area in spheroids incorporating indomethacin and insulin dual delivery nanofibers (56.9 ± 4.6%) compared to the control (15.6 ± 3.5%) with significantly greater gene expression associated with adipogenesis (C/EBPA, PPARG, FABP4, and adiponectin) of hADSCs. Furthermore, we investigated the influence of culture media on the migration and merging of spheroids and observed significant decrease in migration and merging of spheroids in adipogenic differentiation media. Conversely, the presence of adipo-inductive nanofibers promoted spheroid fusion, allowing the formation of macroscopic 3D adipose tissue in the absence of adipogenic supplements while facilitating homogeneous adipogenesis of hADSCs. The approach described here holds promise for the generation of 3D adipose tissue constructs by scaffold-free assembly of stem cell spheroids with potential applications in clinical and organ models.


Subject(s)
Adipogenesis , Adipose Tissue , Nanofibers , Spheroids, Cellular , Stem Cells , Tissue Engineering , Nanofibers/chemistry , Humans , Spheroids, Cellular/cytology , Spheroids, Cellular/metabolism , Adipose Tissue/cytology , Adipose Tissue/metabolism , Stem Cells/cytology , Stem Cells/metabolism , Insulin/metabolism , Indomethacin/pharmacology , Adipocytes/cytology , Adipocytes/metabolism , Cell Differentiation/drug effects , Tissue Scaffolds/chemistry , Adiponectin/metabolism , Cells, Cultured
9.
Mol Biol Rep ; 51(1): 658, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38748314

ABSTRACT

BACKGROUND: The formation of chronic wounds accounts for considerable costs in health care systems. Despite the several benefits of decellularized small intestinal submucosa (SIS) as an appropriate scaffold for different tissue regeneration, it has shortcomings such as lack of antibacterial features and inappropriate mechanical properties for skin tissue regeneration. We aimed to examine the efficacy and safety of decellularized SIS scaffold enhanced with cellulose acetate (CA) and silver (Ag) nanoparticles (NPs) for healing full-thickness wounds. METHODS AND RESULTS: The scaffolds were prepared by decellularizing bovine SIS and electrospinning CA/Ag nanoparticles and characterized using a transmission electron microscope (TEM), scanning electron microscope (SEM), tensile testing, and X-ray diffraction. In vivo evaluations were performed using full-thickness excisions covered with sterile gauze as the control group, SIS, SIS/CA, and SIS/CA/Ag scaffolds on the dorsum of twenty male Wistar rats divided into four groups randomly with 21-days follow-up. All in vivo specimens underwent Masson's trichrome (MT) staining for evaluation of collagen deposition, transforming growth factor-ß (TGF-ß) immunohistochemistry (IHC), and Haematoxylin Eosin (H&E) staining. The IHC and MT data were analyzed with the ImageJ tool by measuring the stained area. The TEM results revealed that Ag nanoparticles are successfully incorporated into CA nanofibers. Assessment of scaffolds hydrophilicity demonstrated that the contact angle of SIS/CA/Ag scaffold was the lowest. The in vivo results indicated that the SIS/CA/Ag scaffold had the most significant wound closure. H&E staining of the in vivo specimens showed the formation of epidermal layers in the SIS/CA/Ag group on day 21. The percentage of the stained area of MT and TGF-ß IHC staining's was highest in the SIS/CA/Ag group. CONCLUSION: The decellularized SIS/CA/Ag scaffolds provided the most significant wound closure compared to other groups and caused the formation of epidermal layers and skin appendages. Additionally, the collagen deposition and expression of TGF-ß increased significantly in SIS/CA/Ag group.


Subject(s)
Cellulose , Intestinal Mucosa , Intestine, Small , Metal Nanoparticles , Nanofibers , Rats, Wistar , Silver , Tissue Scaffolds , Wound Healing , Animals , Silver/chemistry , Cellulose/analogs & derivatives , Cellulose/chemistry , Wound Healing/drug effects , Metal Nanoparticles/chemistry , Rats , Nanofibers/chemistry , Tissue Scaffolds/chemistry , Intestinal Mucosa/metabolism , Male , Intestine, Small/metabolism , Cattle , Transforming Growth Factor beta/metabolism , Tissue Engineering/methods , Collagen
10.
J Nanobiotechnology ; 22(1): 244, 2024 May 12.
Article in English | MEDLINE | ID: mdl-38735969

ABSTRACT

Biomaterials can modulate the local immune microenvironments to promote peripheral nerve regeneration. Inspired by the spatial orderly distribution and endogenous electric field of nerve fibers, we aimed to investigate the synergistic effects of electrical and topological cues on immune microenvironments of peripheral nerve regeneration. Nerve guidance conduits (NGCs) with aligned electrospun nanofibers were fabricated using a polyurethane copolymer containing a conductive aniline trimer and degradable L-lysine (PUAT). In vitro experiments showed that the aligned PUAT (A-PUAT) membranes promoted the recruitment of macrophages and induced their polarization towards the pro-healing M2 phenotype, which subsequently facilitated the migration and myelination of Schwann cells. Furthermore, NGCs fabricated from A-PUAT increased the proportion of pro-healing macrophages and improved peripheral nerve regeneration in a rat model of sciatic nerve injury. In conclusion, this study demonstrated the potential application of NGCs in peripheral nerve regeneration from an immunomodulatory perspective and revealed A-PUAT as a clinically-actionable strategy for peripheral nerve injury.


Subject(s)
Macrophages , Nerve Regeneration , Peripheral Nerve Injuries , Polyurethanes , Rats, Sprague-Dawley , Schwann Cells , Animals , Nerve Regeneration/drug effects , Polyurethanes/chemistry , Rats , Macrophages/drug effects , Schwann Cells/drug effects , Nanofibers/chemistry , Sciatic Nerve/drug effects , Guided Tissue Regeneration/methods , Male , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Tissue Scaffolds/chemistry , Mice , RAW 264.7 Cells
11.
Sci Rep ; 14(1): 10846, 2024 05 13.
Article in English | MEDLINE | ID: mdl-38736008

ABSTRACT

Human liver organoids are in vitro three dimensionally (3D) cultured cells that have a bipotent stem cell phenotype. Translational research of human liver organoids for drug discovery has been limited by the challenge of their low hepatic function compared to primary human hepatocytes (PHHs). Various attempts have been made to develop functional hepatocyte-like cells from human liver organoids. However, none have achieved the same level of hepatic functions as PHHs. We here attempted to culture human liver organoids established from cryopreserved PHHs (PHH-derived organoids), using HYDROX, a chemically defined 3D nanofiber. While the proliferative capacity of PHH-derived organoids was lost by HYDROX-culture, the gene expression levels of drug-metabolizing enzymes were significantly improved. Enzymatic activities of cytochrome P450 3A4 (CYP3A4), CYP2C19, and CYP1A2 in HYDROX-cultured PHH-derived organoids (Org-HYDROX) were comparable to those in PHHs. When treated with hepatotoxic drugs such as troglitazone, amiodarone and acetaminophen, Org-HYDROX showed similar cell viability to PHHs, suggesting that Org-HYDROX could be applied to drug-induced hepatotoxicity tests. Furthermore, Org-HYDROX maintained its functions for up to 35 days and could be applied to chronic drug-induced hepatotoxicity tests using fialuridine. Our findings demonstrated that HYDROX could possibly be a novel biomaterial for differentiating human liver organoids towards hepatocytes applicable to pharmaceutical research.


Subject(s)
Cell Differentiation , Hepatocytes , Nanofibers , Organoids , Humans , Hepatocytes/drug effects , Hepatocytes/metabolism , Hepatocytes/cytology , Organoids/drug effects , Organoids/metabolism , Organoids/cytology , Cell Differentiation/drug effects , Nanofibers/chemistry , Cells, Cultured , Liver/cytology , Liver/drug effects , Liver/metabolism , Chemical and Drug Induced Liver Injury/pathology , Chemical and Drug Induced Liver Injury/metabolism , Cell Survival/drug effects , Cytochrome P-450 CYP3A/metabolism , Cytochrome P-450 CYP3A/genetics
12.
Anal Methods ; 16(19): 3131-3141, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38712986

ABSTRACT

Plastics are ubiquitous in today's lifestyle, and their indiscriminate use has led to the accumulation of plastic waste in landfills and oceans. The waste accumulates and breaks into micro-particles that enter the food chain, causing severe threats to human health, wildlife, and the ecosystem. Environment-friendly and bio-based degradable materials offer a sustainable alternative to the vastly used synthetic materials. Here, a polylactic acid and carbon nanofiber-based membrane and a paper-based colorimetric sensor have been developed. The membrane had a surface area of 3.02 m2 g-1 and a pore size of 18.77 nm. The pores were evenly distributed with a pore volume of 0.0137 cm3 g-1. The membrane was evaluated in accordance with OECD guidelines and was found to be safe for tested aquatic and terrestrial models. The activated PLA-CNF membrane was further used as a bio-based electrode for the electrochemical detection of nitrates (NO3-) in water samples with a detection limit of 0.046 ppm and sensitivity of 1.69 × 10-4 A ppm-1 mm-2, whereas the developed paper-based colorimetric sensor had a detection limit of 156 ppm for NO3-. This study presents an environment-friendly, low-carbon footprint disposable material for sensing applications as a sustainable alternative to plastics.


Subject(s)
Carbon , Colorimetry , Nanofibers , Nitrates , Paper , Polyesters , Nanofibers/chemistry , Colorimetry/methods , Colorimetry/instrumentation , Nitrates/analysis , Nitrates/chemistry , Polyesters/chemistry , Carbon/chemistry , Electrochemical Techniques/methods , Electrochemical Techniques/instrumentation , Limit of Detection , Water Pollutants, Chemical/analysis , Electric Conductivity , Membranes, Artificial
13.
J Mech Behav Biomed Mater ; 155: 106564, 2024 Jul.
Article in English | MEDLINE | ID: mdl-38749267

ABSTRACT

Polycaprolactone (PCL) nanofibers are a promising material for biomedical applications due to their biocompatibility, slow degradation rate, and thermal stability. We electrospun PCL fibers onto a striated substrate with 12 µm wide ridges and grooves and determined their mechanical properties in an aqueous solution with a combined atomic force/inverted optical microscopy technique. Fiber diameters, D, ranged from 27 to 280 nm. The hydrated PCL fibers had an extensibility (breaking strain), εmax, of 137%. The Young's modulus, E, and tensile strength, σT, showed a strong dependence on fiber diameter, D; decreasing steeply with increasing diameter, following empirical equations E(D)=(4.3∙103∙e-D51nm+1.1∙102) MPa and σT(D)=(2.6∙103∙e-D55nm+0.6∙102) MPa. Incremental stress-strain measurements were employed to investigate the viscoelastic behavior of these fibers. The fibers exhibited stress relaxation with a fast and slow relaxation time of 3.7 ± 1.2 s and 23 ± 8 s and these experiments also allowed the determination of the elastic and viscous moduli. Cyclic stress-strain curves were used to determine that the elastic limit of the fibers, εelastic, is between 19% and 36%. These curves were also used to determine that these fibers showed small energy losses (<20%) at small strains (ε < 10%), and over 50% energy loss at large strains (ε > 50%), asymptotically approaching 61%, as Eloss=61%·(1-e-0.04*ε). Our work is the first mechanical characterization of hydrated electrospun PCL nanofibers; all previous experiments were performed on dry PCL fibers, to which we will compare our data.


Subject(s)
Materials Testing , Nanofibers , Polyesters , Stress, Mechanical , Water , Polyesters/chemistry , Nanofibers/chemistry , Water/chemistry , Mechanical Phenomena , Tensile Strength , Elastic Modulus , Viscosity , Biocompatible Materials/chemistry
14.
PLoS One ; 19(5): e0303758, 2024.
Article in English | MEDLINE | ID: mdl-38768136

ABSTRACT

Nitric oxide (NO) promotes angiogenesis via various mechanisms; however, the effective transmission of NO in ischemic diseases is unclear. Herein, we tested whether NO-releasing nanofibers modulate therapeutic angiogenesis in an animal hindlimb ischemia model. Male wild-type C57BL/6 mice with surgically-induced hindlimb ischemia were treated with NO-releasing 3-methylaminopropyltrimethoxysilane (MAP3)-derived or control (i.e., non-NO-releasing) nanofibers, by applying them to the wound for 20 min, three times every two days. The amount of NO from the nanofiber into tissues was assessed by NO fluorometric assay. The activity of cGMP-dependent protein kinase (PKG) was determined by western blot analysis. Perfusion ratios were measured 2, 4, and 14 days after inducing ischemia using laser doppler imaging. On day 4, Immunohistochemistry (IHC) with F4/80 and gelatin zymography were performed. IHC with CD31 was performed on day 14. To determine the angiogenic potential of NO-releasing nanofibers, aorta-ring explants were treated with MAP3 or control fiber for 20 min, and the sprout lengths were examined after 6 days. As per either LDPI (Laser doppler perfusion image) ratio or CD31 capillary density measurement, angiogenesis in the ischemic hindlimb was improved in the MAP3 nanofiber group; further, the total nitrate/nitrite concentration in the adduct muscle increased. The number of macrophage infiltrations and matrix metalloproteinase-9 (MMP-9) activity decreased. Vasodilator-stimulated phosphoprotein (VASP), one of the major substrates for PKG, increased phosphorylation in the MAP3 group. MAP3 nanofiber or NO donor SNAP (s-nitroso-n-acetyl penicillamine)-treated aortic explants showed enhanced sprouting in an ex vivo aortic ring assay, which was partially abrogated by KT5823, a potent inhibitor of PKG. These findings suggest that the novel NO-releasing nanofiber, MAP3 activates PKG and promotes therapeutic angiogenesis in response to hindlimb ischemia.


Subject(s)
Cyclic GMP-Dependent Protein Kinases , Hindlimb , Ischemia , Mice, Inbred C57BL , Nanofibers , Neovascularization, Physiologic , Nitric Oxide , Animals , Nanofibers/chemistry , Male , Nitric Oxide/metabolism , Ischemia/drug therapy , Ischemia/metabolism , Cyclic GMP-Dependent Protein Kinases/metabolism , Mice , Hindlimb/blood supply , Neovascularization, Physiologic/drug effects , Matrix Metalloproteinase 9/metabolism , Phosphoproteins/metabolism , Microfilament Proteins/metabolism , Cell Adhesion Molecules
15.
Carbohydr Polym ; 338: 122218, 2024 Aug 15.
Article in English | MEDLINE | ID: mdl-38763705

ABSTRACT

Here, biogenic and multifunctional active food coatings and packaging with UV shielding and antimicrobial properties were structured from the aqueous dispersion of an industrial byproduct, suberin, which was stabilized with amphiphilic cellulose nanofibers (CNF). The dual-functioning CNF, synthesized in a deep eutectic solvent, functioned as an efficient suberin dispersant and reinforcing agent in the packaging design. The nanofibrillar percolation network of CNF provided a steric hindrance against the coalescence of the suberin particles. The low CNF dosage of 0.5 wt% resulted in dispersion with optimal viscosity (208.70 Pa.s), enhanced stability (instability index of <0.001), and reduced particle size (9.37 ± 2.43 µm). The dispersion of suberin and CNF was further converted into self-standing films with superior UV-blocking capability, good thermal stability, improved hydrophobicity (increase in water contact angle from 61° ± 0.15 to 83° ± 5.11), and antimicrobial properties against gram-negative bacteria. Finally, the synergistic bicomponent dispersions were demonstrated as fruit coatings for bananas and packaging for strawberries to promote their self-life. The coatings and packaging considerably mitigated fruit deterioration and improved their freshness by preventing moisture loss and microbial attack. This sustainable approach is expected to pave the way toward advanced, biogenic, and active food packaging based on widely available bioresources.


Subject(s)
Cellulose , Food Packaging , Lipids , Nanofibers , Wood , Nanofibers/chemistry , Cellulose/chemistry , Food Packaging/methods , Wood/chemistry , Lipids/chemistry , Hydrophobic and Hydrophilic Interactions , Anti-Bacterial Agents/chemistry , Anti-Bacterial Agents/pharmacology , Viscosity , Musa/chemistry , Water/chemistry , Gram-Negative Bacteria/drug effects , Fruit/chemistry
16.
J Vis Exp ; (207)2024 May 03.
Article in English | MEDLINE | ID: mdl-38767378

ABSTRACT

Ultrashort self-assembling peptides (SAPs) can spontaneously form nanofibers that resemble the extracellular matrix. These fibers allow the formation of hydrogels that are biocompatible, biodegradable, and non-immunogenic. We have previously proven that SAPs, when biofunctionalized with protein-derived motifs, can mimic the extracellular matrix characteristics that support colorectal organoid formation. These biofunctional peptide hydrogels retain the original parent peptide's mechanical properties, tunability, and printability while incorporating cues that allow cell-matrix interactions to increase cell adhesion. This paper presents the protocols needed to evaluate and characterize the effects of various biofunctional peptide hydrogels on cell adhesion and lumen formation using an adenocarcinoma cancer cell line able to form colorectal cancer organoids cost-effectively. These protocols will help evaluate biofunctional peptide hydrogel effects on cell adhesion and luminal formation using immunostaining and fluorescence image analysis. The cell line used in this study has been previously utilized for generating organoids in animal-derived matrices.


Subject(s)
Colorectal Neoplasms , Hydrogels , Organoids , Peptides , Organoids/cytology , Humans , Colorectal Neoplasms/pathology , Cell Line, Tumor , Hydrogels/chemistry , Peptides/chemistry , Nanofibers/chemistry , Adenocarcinoma/pathology , Extracellular Matrix/chemistry , Cell Adhesion/physiology
17.
Int J Biol Macromol ; 268(Pt 1): 131692, 2024 May.
Article in English | MEDLINE | ID: mdl-38702247

ABSTRACT

Natural bioactive molecules such as phenolic acids and alkaloids play a crucial role in preserving the quality and safety of food products, particularly oils, by preventing oxidation. Berberis integerrima, a rich source of such antioxidants, has been explored in this study for its potential application in soybean oil preservation. Electrospun nanofibers, composed of polyvinyl alcohol and chitosan, were fabricated and loaded with an alcoholic extract of Berberis integerrima. The antioxidant activity of Berberis integerrima was evaluated, and the phenolic compounds contributing to its efficacy were identified and quantified. The physicochemical properties of the polyvinyl alcohol /chitosan/Berberis integerrima nanofibers, including morphology, crystallinity, functional groups, and thermal stability, were characterized. The results revealed that the polyvinyl alcohol/chitosan/Berberis integerrima nanofibers exhibited high antioxidant capacity and improved the stability of Berberis integerrima, indicating their potential as effective and biodegradable materials for food preservation. This study underscores the potential of harnessing natural antioxidants from Berberis integerrima in nanofibers to enhance the quality and safety of soybean oil.


Subject(s)
Antioxidants , Berberis , Chitosan , Nanofibers , Oxidation-Reduction , Soybean Oil , Chitosan/chemistry , Nanofibers/chemistry , Soybean Oil/chemistry , Antioxidants/chemistry , Antioxidants/pharmacology , Berberis/chemistry , Polyvinyl Alcohol/chemistry , Plant Extracts/chemistry , Plant Extracts/pharmacology
18.
J Nanobiotechnology ; 22(1): 250, 2024 May 15.
Article in English | MEDLINE | ID: mdl-38750519

ABSTRACT

The complexity of repairing large segment defects and eradicating residual tumor cell puts the osteosarcoma clinical management challenging. Current biomaterial design often overlooks the crucial role of precisely regulating innervation in bone regeneration. Here, we develop a Germanium Selenium (GeSe) co-doped polylactic acid (PLA) nanofiber membrane-coated tricalcium phosphate bioceramic scaffold (TCP-PLA/GeSe) that mimics the bone-periosteum structure. This biomimetic scaffold offers a dual functionality, combining piezoelectric and photothermal conversion capabilities while remaining biodegradable. When subjected to ultrasound irradiation, the US-electric stimulation of TCP-PLA/GeSe enables spatiotemporal control of neurogenic differentiation. This feature supports early innervation during bone formation, promoting early neurogenic differentiation of Schwann cells (SCs) by increasing intracellular Ca2+ and subsequently activating the PI3K-Akt and Ras signaling pathways. The biomimetic scaffold also demonstrates exceptional osteogenic differentiation potential under ultrasound irradiation. In rabbit model of large segment bone defects, the TCP-PLA/GeSe demonstrates promoted osteogenesis and nerve fibre ingrowth. The combined attributes of high photothermal conversion capacity and the sustained release of anti-tumor selenium from the TCP-PLA/GeSe enable the synergistic eradication of osteosarcoma both in vitro and in vivo. This strategy provides new insights on designing advanced biomaterials of repairing large segment bone defect and osteosarcoma.


Subject(s)
Bone Regeneration , Calcium Phosphates , Osteogenesis , Osteosarcoma , Tissue Scaffolds , Osteosarcoma/drug therapy , Osteosarcoma/pathology , Animals , Bone Regeneration/drug effects , Tissue Scaffolds/chemistry , Rabbits , Calcium Phosphates/chemistry , Calcium Phosphates/pharmacology , Osteogenesis/drug effects , Polyesters/chemistry , Humans , Cell Differentiation/drug effects , Bone Neoplasms/pathology , Bone Neoplasms/drug therapy , Bone Neoplasms/therapy , Cell Line, Tumor , Biomimetic Materials/chemistry , Biomimetic Materials/pharmacology , Schwann Cells/drug effects , Nanofibers/chemistry , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Selenium/chemistry , Selenium/pharmacology
19.
Sci Rep ; 14(1): 12339, 2024 05 29.
Article in English | MEDLINE | ID: mdl-38811651

ABSTRACT

Poly-ε-caprolactone (PCL) has been widely used as biocompatible materials in tissue engineering. They have been used in mammalian cell proliferation to polarization and differentiation. Their modified versions had regulatory activities on mammalian macrophages in vitro. There are also studies suggesting different nanofiber diameters might alter the biological activities of these materials. Based on these cues, we examined the inflammatory activities and adherence properties of mammalian macrophages on electrospun PCL nanofibrous scaffolds formed with PCL having different nanofiber diameters. Our results suggest that macrophages could easily attach and get dispersed on the scaffolds. Macrophages lost their inflammatory cytokine TNF and IL6 production capacity in the presence of LPS when they were incubated on nanofibers. These effects were independent of the mean fiber diameters. Overall, the scaffolds have potential to be used as biocompatible materials to suppress excessive inflammatory reactions during tissue and organ transplantation by caging and suppressing the inflammatory cells.


Subject(s)
Inflammation , Macrophages , Nanofibers , Polyesters , Tissue Scaffolds , Nanofibers/chemistry , Macrophages/drug effects , Macrophages/metabolism , Macrophages/immunology , Animals , Mice , Inflammation/pathology , Inflammation/metabolism , Tissue Scaffolds/chemistry , Polyesters/chemistry , Tissue Engineering/methods , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Interleukin-6/metabolism , Lipopolysaccharides/pharmacology , RAW 264.7 Cells , Tumor Necrosis Factor-alpha/metabolism , Cell Adhesion/drug effects
20.
Int J Biol Macromol ; 269(Pt 2): 132129, 2024 Jun.
Article in English | MEDLINE | ID: mdl-38718994

ABSTRACT

This Review presents an overview of all-organic nanocomposites, a sustainable alternative to organic-inorganic hybrids. All-organic nanocomposites contain nanocellulose, nanochitin, and aramid nanofibers as highly rigid reinforcing fillers. They offer superior mechanical properties and lightweight characteristics suitable for diverse applications. The Review discusses various methods for preparing the organic nanofillers, including top-down and bottom-up approaches. It highlights in situ polymerization as the preferred method for incorporating these nanomaterials into polymer matrices to achieve homogeneous filler dispersion, a crucial factor for realizing desired performance. Furthermore, the Review explores several applications of all-organic nanocomposites in diverse fields including food packaging, performance-advantaged plastics, and electronic materials. Future research directions-developing sustainable production methods, expanding biomedical applications, and enhancing resistance against heat, chemicals, and radiation of all-organic nanocomposites to permit their use in extreme environments-are explored. This Review offers insights into the potential of all-organic nanocomposites to drive sustainable growth while meeting the demand for high-performance materials across various industries.


Subject(s)
Nanocomposites , Nanocomposites/chemistry , Polymers/chemistry , Organic Chemicals/chemistry , Food Packaging/methods , Nanofibers/chemistry , Inorganic Chemicals/chemistry
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