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1.
Front Endocrinol (Lausanne) ; 15: 1296886, 2024.
Article En | MEDLINE | ID: mdl-38828417

Introduction: The dysregulation of cell fate toward osteoprecursor cells associated with most GNAS-based disorders may lead to episodic de novo extraskeletal or ectopic bone formation in subcutaneous tissues. The bony lesion distribution suggests the involvement of abnormal differentiation of mesenchymal stem cells (MSCs) and/or more committed precursor cells. Data from transgenic mice support the concept that GNAS is a crucial factor in regulating lineage switching between osteoblasts (OBs) and adipocyte fates. The mosaic nature of heterotopic bone lesions suggests that GNAS genetic defects provide a sensitized background for ectopic osteodifferentiation, but the underlying molecular mechanism remains largely unknown. Methods: The effect of GNAS silencing in the presence and/or absence of osteoblastic stimuli was evaluated in the human L88/5 MSC line during osteodifferentiation. A comparison of the data obtained with data coming from a bony lesion from a GNAS-mutated patient was also provided. Results: Our study adds some dowels to the current fragmented notions about the role of GNAS during osteoblastic differentiation, such as the premature transition of immature OBs into osteocytes and the characterization of the differences in the deposed bone matrix. Conclusion: We demonstrated that our cell model partially replicates the in vivo behavior results, resulting in an applicable human model to elucidate the pathophysiology of ectopic bone formation in GNAS-based disorders.


Cell Differentiation , Chromogranins , GTP-Binding Protein alpha Subunits, Gs , Mesenchymal Stem Cells , Osteoblasts , Osteogenesis , Humans , GTP-Binding Protein alpha Subunits, Gs/genetics , GTP-Binding Protein alpha Subunits, Gs/metabolism , Chromogranins/genetics , Cell Differentiation/genetics , Osteogenesis/genetics , Osteoblasts/metabolism , Osteoblasts/cytology , Mesenchymal Stem Cells/metabolism , Mesenchymal Stem Cells/cytology , Gene Silencing , Cell Line
2.
Carbohydr Polym ; 339: 122232, 2024 Sep 01.
Article En | MEDLINE | ID: mdl-38823905

In this study, new types of hybrid double-network (DN) hydrogels composed of polyvinyl alcohol (PVA), chitosan (CH), and sodium alginate (SA) are introduced, with the hypothesis that this combination and incorporating multi-walled carbon nanotubes (MWCNTs) and graphene nanoplatelets (GNPs) will enhance osteogenetic differentiation and the structural and mechanical properties of scaffolds for bone tissue engineering applications. Initially, the impact of varying mass ratios of the PVA/CH/SA mixture on mechanical properties, swelling ratio, and degradability was examined. Based on this investigation, a mass ratio of 4:6:6 was determined to be optimal. At this ratio, the hydrogel demonstrated a Young's modulus of 47.5 ± 5 kPa, a swelling ratio of 680 ± 6 % after 3 h, and a degradation rate of 46.5 ± 5 % after 40 days. In the next phase, following the determination of the optimal mass ratio, CNTs and GNPs were incorporated into the 4:6:6 composite resulting in a significant enhancement in the electrical conductivity and stiffness of the scaffolds. The introduction of CNTs led to a notable increase of 36 % in the viability of MG63 osteoblast cells. Additionally, the inhibition zone test revealed that GNPs and CNTs increased the diameter of the inhibition zone by 49.6 % and 52.6 %, respectively.


Alginates , Bone Regeneration , Chitosan , Hydrogels , Polyvinyl Alcohol , Tissue Engineering , Tissue Scaffolds , Chitosan/chemistry , Alginates/chemistry , Alginates/pharmacology , Polyvinyl Alcohol/chemistry , Tissue Scaffolds/chemistry , Humans , Bone Regeneration/drug effects , Hydrogels/chemistry , Hydrogels/pharmacology , Tissue Engineering/methods , Nanotubes, Carbon/chemistry , Osteoblasts/drug effects , Osteoblasts/cytology , Graphite/chemistry , Graphite/pharmacology , Biomimetic Materials/chemistry , Biomimetic Materials/pharmacology , Cell Survival/drug effects , Cell Line
3.
Cell Mol Biol (Noisy-le-grand) ; 70(6): 135-141, 2024 Jun 05.
Article En | MEDLINE | ID: mdl-38836669

Epigenetic change has been found to play an important role in cell differentiation and regulation and the dental pulp stem cell in tissue engineering is gaining attention due to the ability of cells to differentiate into odontoblast and other cells. This study evaluated the influence of poly L- lactic acid with hydroxyapatite-coated with polyaniline scaffold (PLLA/HA/PANI) on dental pulp stem cell (DPSC) proliferation and differentiation. After scaffold preparation and DPSCs seeding, the cells proliferation and differentiation were evaluated by immunocytochemistry assay and cell viability was measured by cytotoxicity / MTT assay. The results showed (PLLA/HA/PANI) scaffold facilitates DPSC proliferation and differentiation with gene expression. This finding underscores the promise of this biomaterial combination as a scaffold for dental tissue regeneration and application.


Biocompatible Materials , Cell Differentiation , Cell Proliferation , Dental Pulp , Durapatite , Odontoblasts , Osteoblasts , Stem Cells , Tissue Scaffolds , Dental Pulp/cytology , Humans , Cell Differentiation/drug effects , Odontoblasts/cytology , Odontoblasts/drug effects , Odontoblasts/metabolism , Tissue Scaffolds/chemistry , Stem Cells/cytology , Stem Cells/metabolism , Stem Cells/drug effects , Osteoblasts/cytology , Osteoblasts/drug effects , Osteoblasts/metabolism , Cell Proliferation/drug effects , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Durapatite/chemistry , Durapatite/pharmacology , Aniline Compounds/pharmacology , Aniline Compounds/chemistry , Polyesters/chemistry , Polyesters/pharmacology , Cell Survival/drug effects , Cells, Cultured , Tissue Engineering/methods
4.
J Orthop Surg Res ; 19(1): 330, 2024 Jun 02.
Article En | MEDLINE | ID: mdl-38825686

OBJECTIVE: The present study aimed to investigate the underlying mechanism of mechanical stimulation in regulating osteogenic differentiation. MATERIALS AND METHODS: Osteoblasts were exposed to compressive force (0-4 g/cm2) for 1-3 days or CGRP for 1 or 3 days. Expression of receptor activity modifying protein 1 (RAMP1), the transcription factor RUNX2, osteocalcin, p38 and p-p38 were analyzed by western blotting. Calcium mineralization was analyzed by alizarin red straining. RESULTS: Using compressive force treatments, low magnitudes (1 and 2 g/cm2) of compressive force for 24 h promoted osteoblast differentiation and mineral deposition whereas higher magnitudes (3 and 4 g/cm2) did not produce osteogenic effect. Through western blot assay, we observed that the receptor activity-modifying protein 1 (RAMP1) expression was upregulated, and p38 mitogen-activated protein kinase (MAPK) was phosphorylated during low magnitudes compressive force-promoted osteoblast differentiation. Further investigation of a calcitonin gene-related peptide (CGRP) peptide incubation, a ligand for RAMP1, showed that CGRP at concentration of 25 and 50 ng/ml could increase expression levels of RUNX2 and osteocalcin, and percentage of mineralization, suggesting its osteogenic potential. In addition, with the same conditions, CGRP also significantly upregulated RAMP1 and phosphorylated p38 expression levels. Also, the combination of compressive forces (1 and 2 g/cm2) with 50 ng/ml CGRP trended to increase RAMP1 expression, p38 activity, and osteogenic marker RUNX2 levels, as well as percentage of mineralization compared to compressive force alone. This suggest that RAMP1 possibly acts as an upstream regulator of p38 signaling during osteogenic differentiation. CONCLUSION: These findings suggest that CGRP-RAMP1/p38MAPK signaling implicates in osteoblast differentiation in response to optimal magnitude of compressive force. This study helps to define the underlying mechanism of compressive stimulation and may also enhance the application of compressive stimulation or CGRP peptide as an alternative approach for accelerating tooth movement in orthodontic treatment.


Cell Differentiation , Osteoblasts , Osteogenesis , Receptor Activity-Modifying Protein 1 , p38 Mitogen-Activated Protein Kinases , Osteoblasts/physiology , Osteoblasts/metabolism , Osteoblasts/cytology , Cell Differentiation/physiology , Receptor Activity-Modifying Protein 1/metabolism , p38 Mitogen-Activated Protein Kinases/metabolism , Osteogenesis/physiology , Calcitonin Gene-Related Peptide/metabolism , MAP Kinase Signaling System/physiology , Stress, Mechanical , Animals , Cells, Cultured , Core Binding Factor Alpha 1 Subunit/metabolism , Signal Transduction/physiology , Osteocalcin/metabolism
5.
Nat Commun ; 15(1): 4575, 2024 Jun 04.
Article En | MEDLINE | ID: mdl-38834586

Bone regeneration requires a well-orchestrated cellular and molecular response including robust vascularization and recruitment of mesenchymal and osteogenic cells. In femoral fractures, angiogenesis and osteogenesis are closely coupled during the complex healing process. Here, we show with advanced longitudinal intravital multiphoton microscopy that early vascular sprouting is not directly coupled to osteoprogenitor invasion during calvarial bone regeneration. Early osteoprogenitors emerging from the periosteum give rise to bone-forming osteoblasts at the injured calvarial bone edge. Microvessels growing inside the lesions are not associated with osteoprogenitors. Subsequently, osteogenic cells collectively invade the vascularized and perfused lesion as a multicellular layer, thereby advancing regenerative ossification. Vascular sprouting and remodeling result in dynamic blood flow alterations to accommodate the growing bone. Single cell profiling of injured calvarial bones demonstrates mesenchymal stromal cell heterogeneity comparable to femoral fractures with increase in cell types promoting bone regeneration. Expression of angiogenesis and hypoxia-related genes are slightly elevated reflecting ossification of a vascularized lesion site. Endothelial Notch and VEGF signaling alter vascular growth in calvarial bone repair without affecting the ossification progress. Our findings may have clinical implications for bone regeneration and bioengineering approaches.


Bone Regeneration , Mesenchymal Stem Cells , Neovascularization, Physiologic , Osteogenesis , Skull , Animals , Bone Regeneration/physiology , Mice , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Vascular Endothelial Growth Factor A/metabolism , Osteoblasts/cytology , Osteoblasts/metabolism , Male , Receptors, Notch/metabolism , Receptors, Notch/genetics , Mice, Inbred C57BL , Signal Transduction , Female , Angiogenesis
6.
Biomed Eng Online ; 23(1): 44, 2024 May 05.
Article En | MEDLINE | ID: mdl-38705993

BACKGROUND: Osteocytes are critical mechanosensory cells in bone, and mechanically stimulated osteocytes produce exosomes that can induce osteogenesis. MicroRNAs (miRNAs) are important constituents of exosomes, and some miRNAs in osteocytes regulate osteogenic differentiation; previous studies have indicated that some differentially expressed miRNAs in mechanically strained osteocytes likely influence osteoblastic differentiation. Therefore, screening and selection of miRNAs that regulate osteogenic differentiation in exosomes of mechanically stimulated osteocytes are important. RESULTS: A mechanical tensile strain of 2500 µÎµ at 0.5 Hz 1 h per day for 3 days, elevated prostaglandin E2 (PGE2) and insulin-like growth factor-1 (IGF-1) levels and nitric oxide synthase (NOS) activity of MLO-Y4 osteocytes, and promoted osteogenic differentiation of MC3T3-E1 osteoblasts. Fourteen miRNAs differentially expressed only in MLO-Y4 osteocytes which were stimulated with mechanical tensile strain, were screened, and the miRNAs related to osteogenesis were identified. Four differentially expressed miRNAs (miR-1930-3p, miR-3110-5p, miR-3090-3p, and miR-3058-3p) were found only in mechanically strained osteocytes, and the four miRNAs, eight targeted mRNAs which were differentially expressed only in mechanically strained osteoblasts, were also identified. In addition, the mechanically strained osteocyte-derived exosomes promoted the osteoblastic differentiation of MC3T3-E1 cells in vitro, the exosomes were internalized by osteoblasts, and the up-regulated miR-3110-5p and miR-3058-3p in mechanically strained osteocytes, were both increased in the exosomes, which was verified via reverse transcription quantitative polymerase chain reaction (RT-qPCR). CONCLUSIONS: In osteocytes, a mechanical tensile strain of 2500 µÎµ at 0.5 Hz induced the fourteen differentially expressed miRNAs which probably were in exosomes of osteocytes and involved in osteogenesis. The mechanically strained osteocyte-derived exosomes which contained increased miR-3110-5p and miR-3058-3p (two of the 14 miRNAs), promoted osteoblastic differentiation.


Exosomes , MicroRNAs , Osteocytes , Osteogenesis , Stress, Mechanical , Animals , Mice , Cell Line , Exosomes/metabolism , Gene Expression Regulation , MicroRNAs/genetics , MicroRNAs/metabolism , Osteoblasts/cytology , Osteoblasts/metabolism , Osteocytes/cytology , Osteocytes/metabolism , Osteogenesis/genetics
7.
Biomed Mater ; 19(4)2024 May 22.
Article En | MEDLINE | ID: mdl-38740037

The purpose of this study was to construct a rutin-controlled release system on the surface of Ti substrates and investigate its effects on osteogenesis and osseointegration on the surface of implants. The base layer, polyethylenimine (PEI), was immobilised on a titanium substrate. Then, hyaluronic acid (HA)/chitosan (CS)-rutin (RT) multilayer films were assembled on the PEI using layer-by-layer (LBL) assembly technology. We used scanning electron microscopy (SEM), Fourier transform infrared (FTIR) spectroscopy and contact angle measurements to examine all Ti samples. The drug release test of rutin was also carried out to detect the slow-release performance. The osteogenic abilities of the samples were evaluated by experiments on an osteoporosis rat model and MC3T3-E1 cells. The results (SEM, FTIR and contact angle measurements) all confirmed that the PEI substrate layer and HA/CS-RT multilayer film were effectively immobilised on titanium. The drug release test revealed that a rutin controlled release mechanism had been successfully established. Furthermore, thein vitrodata revealed that osteoblasts on the coated titanium matrix had greater adhesion, proliferation, and differentiation capacity than the osteoblasts on the pure titanium surface. When MC3T3-E1 cells were exposed to H2O2-induced oxidative stressin vitro, cell-based tests revealed great tolerance and increased osteogenic potential on HA/CS-RT substrates. We also found that the HA/CS-RT coating significantly increased the new bone mass around the implant. The LBL-deposited HA/CS-RT multilayer coating on the titanium base surface established an excellent rutin-controlled release system, which significantly improved osseointegration and promoted osteogenesis under oxidative stress conditions, suggesting a new implant therapy strategy for patients with osteoporosis.


Coated Materials, Biocompatible , Hyaluronic Acid , Osseointegration , Osteoblasts , Osteogenesis , Osteoporosis , Prostheses and Implants , Rutin , Surface Properties , Titanium , Animals , Titanium/chemistry , Rutin/chemistry , Rutin/pharmacology , Osteogenesis/drug effects , Rats , Osteoporosis/drug therapy , Mice , Osteoblasts/drug effects , Osteoblasts/cytology , Osteoblasts/metabolism , Osseointegration/drug effects , Hyaluronic Acid/chemistry , Coated Materials, Biocompatible/chemistry , Coated Materials, Biocompatible/pharmacology , Oxidation-Reduction , Chitosan/chemistry , Female , Rats, Sprague-Dawley , Cell Adhesion/drug effects , Spectroscopy, Fourier Transform Infrared , Cell Differentiation/drug effects , Microscopy, Electron, Scanning , Cell Proliferation/drug effects , Polyethyleneimine/chemistry , 3T3 Cells , Oxidative Stress/drug effects , Layer-by-Layer Nanoparticles
8.
Nanoscale ; 16(20): 9861-9874, 2024 May 23.
Article En | MEDLINE | ID: mdl-38712977

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.


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
9.
Nan Fang Yi Ke Da Xue Xue Bao ; 44(4): 697-705, 2024 Apr 20.
Article Zh | MEDLINE | ID: mdl-38708503

OBJECTIVE: To explore the role of zinc finger protein 36(ZFP36) in regulating osteogenic differentiation of bone marrow-derived mesenchymal stem cells (BMSCs) and preosteoblasts. METHODS: ZFP36 expression was observed in primary mouse BMSCs and mouse preosteoblasts (MC3T3-E1 cells) during induced osteogenic differentiation. Zfp36-deficient cell models were constructed in the two cells using RNA interference technique and the changes in differentiation capacities of the transfected cells into osteoblasts were observed. Transcriptome sequencing was used to investigate the potential mechanisms of ZFP36 for regulating osteoblast differentiation of the two cells. U0126, a ERK/MAPK signal suppressor, was used to verify the regulatory mechanism of Zfp36 in osteogenic differentiation of Zfp36-deficient cells. RESULTS: During the 14-day induction of osteogenic differentiation, both mouse BMSCs and MC3T3-E1 cells exhibited increased expression of ZFP36, and its mRNA expression reached the peak level on Day 7(P < 0.0001). The Zfp36-deficient cell models showed reduced intensity of alkaline phosphatase (ALP) staining and alizarin red staining with significantly lowered expressions of the osteogenic marker genes including Alpl, Sp7, Bglap and Ibsp (P < 0.01). Transcriptome sequencing verified the reduction of bone mineralization-related gene expressions in Zfp36-deficient cells and indicated the involvement of ERK signaling in the potential regulatory mechanism of Zfp36. Immunoblotting showed that pERK protein expression increased significantly in Zfp36-deficient cells compared with the control cells. In Zfp36-deficient MC3T3-E1 cells, inhibition of activated ERK/MAPK signaling with U0126 resulted in obviously enhanced ALP staining and significantly increased expressions of osteoblast differentiation markers Runx2 and Bglap (P < 0.05). CONCLUSIONS: ZFP36 is involved in the regulation of osteoblast differentiation of mouse BMSCs and preosteoblasts, and ZFP36 deficiency causes inhibition of osteoblast differentiation of the cells by activating the ERK/MAPK signaling pathway.


Cell Differentiation , MAP Kinase Signaling System , Mesenchymal Stem Cells , Osteoblasts , Osteogenesis , Animals , Mice , Alkaline Phosphatase/metabolism , Bone Marrow Cells/cytology , Bone Marrow Cells/metabolism , Butyrate Response Factor 1/metabolism , Butyrate Response Factor 1/genetics , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/metabolism , Osteoblasts/cytology , Osteoblasts/metabolism
10.
Sci Rep ; 14(1): 10345, 2024 05 06.
Article En | MEDLINE | ID: mdl-38710795

Skeletal bone function relies on both cells and cellular niches, which, when combined, provide guiding cues for the control of differentiation and remodeling processes. Here, we propose an in vitro 3D model based on human fetal osteoblasts, which eases the study of osteocyte commitment in vitro and thus provides a means to examine the influences of biomaterials, substances or cells on the regulation of these processes. Aggregates were formed from human fetal osteoblasts (hFOB1.19) and cultivated under proliferative, adipo- and osteoinductive conditions. When cultivated under osteoinductive conditions, the vitality of the aggregates was compromised, the expression levels of the mineralization-related gene DMP1 and the amount of calcification and matrix deposition were lower, and the growth of the spheroids stalled. However, within spheres under growth conditions without specific supplements, self-organization processes occur, which promote extracellular calcium deposition, and osteocyte-like cells develop. Long-term cultivated hFOB aggregates were free of necrotic areas. Moreover, hFOB aggregates cultivated under standard proliferative conditions supported the co-cultivation of human monocytes, microvascular endothelial cells and stromal cells. Overall, the model presented here comprises a self-organizing and easily accessible 3D osteoblast model for studying bone marrow formation and in vitro remodeling and thus provides a means to test druggable molecular pathways with the potential to promote life-long bone formation and remodeling.


Cell Differentiation , Coculture Techniques , Osteoblasts , Humans , Osteoblasts/metabolism , Osteoblasts/cytology , Cellular Microenvironment , Bone Marrow Cells/metabolism , Bone Marrow Cells/cytology , Osteogenesis , Cell Aggregation , Cells, Cultured
11.
Bull Exp Biol Med ; 176(5): 620-625, 2024 Mar.
Article En | MEDLINE | ID: mdl-38733480

We studied the interaction of human buccal mesenchymal stem cells (MSCs) and osteoblasts differentiated from them with the surface of titanium samples. MSCs were isolated by enzymatic method from buccal fat pads. The obtained cell culture was presented by MSCs, which was confirmed by flow cytometry and differentiation into adipocytes and osteoblasts. Culturing of buccal MSCs on titanium samples was accompanied by an increase in the number of cells for 15 days and the formation of a developed network of F-actin fibers in the cells. The viability of buccal MSCs decreased by 8 days, but was restored by 15 days. Culturing of osteoblasts obtained as a result of buccal MSC differentiation on the surface of titanium samples was accompanied by a decrease in their viability and proliferation. Thus, MSCs from buccal fat pads can be used to coat implants to improve osseointegration during bone reconstruction in craniofacial surgery and dentistry. To improve the integration of osteoblasts, modification of the surface of titanium samples is required.


Cell Differentiation , Mesenchymal Stem Cells , Osseointegration , Osteoblasts , Titanium , Titanium/chemistry , Mesenchymal Stem Cells/cytology , Mesenchymal Stem Cells/physiology , Humans , Osseointegration/physiology , Osteoblasts/cytology , Osteoblasts/physiology , Cells, Cultured , Cell Proliferation , Dental Implants , Cell Survival , Adipocytes/cytology , Adipocytes/physiology , Mouth Mucosa/cytology , Osteogenesis/physiology
12.
ACS Appl Mater Interfaces ; 16(23): 30385-30395, 2024 Jun 12.
Article En | MEDLINE | ID: mdl-38816917

In the present work, we explored Lewis acid catalysis, via FeCl3, for the heterogeneous surface functionalization of cellulose nanofibrils (CNFs). This approach, characterized by its simplicity and efficiency, facilitates the amidation of nonactivated carboxylic acids in carboxymethylated cellulose nanofibrils (c-CNF). Following the optimization of reaction conditions, we successfully introduced amine-containing polymers, such as polyethylenimine and Jeffamine, onto nanofibers. This introduction significantly enhanced the physicochemical properties of the CNF-based materials, resulting in improved characteristics such as adhesiveness and thermal stability. Reaction mechanistic investigations suggested that endocyclic oxygen of cellulose finely stabilizes the transition state required for further functionalization. Notably, a nanocomposite, containing CNF and a branched low molecular weight polyethylenimine (CNF-PEI 800), was synthesized using the catalytic reaction. The composite CNF-PEI 800 was thoroughly characterized having in mind its potential application as coating biomaterial for medical implants. The resulting CNF-PEI 800 hydrogel exhibits adhesive properties, which complement the established antibacterial qualities of polyethylenimine. Furthermore, CNF-PEI 800 demonstrates its ability to support the proliferation and differentiation of primary human osteoblasts over a period of 7 days.


Cellulose , Chlorides , Nanocomposites , Nanofibers , Cellulose/chemistry , Nanocomposites/chemistry , Humans , Catalysis , Nanofibers/chemistry , Chlorides/chemistry , Ferric Compounds/chemistry , Osteoblasts/drug effects , Osteoblasts/cytology , Polyethyleneimine/chemistry , Prostheses and Implants , Biocompatible Materials/chemistry , Biocompatible Materials/pharmacology , Biocompatible Materials/chemical synthesis
13.
J Biomed Mater Res B Appl Biomater ; 112(6): e35409, 2024 Jun.
Article En | MEDLINE | ID: mdl-38786580

The challenge of integrating hydroxyapatite nanoparticles (nHAp) with polymers is hindered by the conflict between the hydrophilic and hygroscopic properties of nHAp and the hydrophobic properties of polymers. This conflict particularly affects the materials when calcium phosphates, including nHAp, are used as a filler in composites in thermal processing applications such as 3D printing with fused filament fabrication (FFF). To overcome this, we propose a one-step surface modification of nHAp with calcium stearate monolayer. Moreover, to build the scaffold with suitable mechanical strength, we tested the addition of nHAp with diverse morphology-spherical, plate- and rod-like nanoparticles. Our analysis showed that the composite of polycaprolactone (PCL) reinforced with nHAp with rod and plate morphologies modified with calcium stearate monolayer exhibited a significant increase in compressive strength. However, composites with spherical nHAp added to PCL showed a significant reduction in compressive modulus and compressive strength, but both parameters were within the applicability range of hard tissue scaffolds. None of the tested composite scaffolds showed cytotoxicity in L929 murine fibroblasts or MG-63 human osteoblast-like cells, supporting the proliferation of the latter. Additionally, PCL/nHAp scaffolds reinforced with spherical nHAp caused osteoactivation of bone marrow human mesenchymal stem cells, as indicated by alkaline phosphatase activity and COL1, RUNX2, and BGLAP expression. These results suggest that the calcium stearate monolayer on the surface of the nHAp particles allows the production of polymer/nHAp composites suitable for hard tissue engineering and personalized implant production in 3D printing using the FFF technique.


Durapatite , Nanoparticles , Printing, Three-Dimensional , Tissue Engineering , Tissue Scaffolds , Tissue Scaffolds/chemistry , Durapatite/chemistry , Durapatite/pharmacology , Mice , Animals , Humans , Nanoparticles/chemistry , Cell Line , Polyesters/chemistry , Osteoblasts/metabolism , Osteoblasts/cytology , Osteogenesis/drug effects , Materials Testing
14.
Cell Biochem Funct ; 42(4): e4068, 2024 Jun.
Article En | MEDLINE | ID: mdl-38817105

Evidence is accumulating that osteal macrophages, in addition to bone-resorbing osteoclasts and bone-forming osteoblasts, participate vitally in bone remodeling process. Oncostatin M (OSM), an inflammatory cytokine belonging to interleukin-6 superfamily, is recognized as an essential factor secreted by osteal macrophages to orchestrate bone remodeling. Osteoprotegerin (OPG) produced by osteoblasts regulates osteoclastogenesis. We have reported that bone morphogenetic protein-4 (BMP-4) stimulates OPG synthesis in MC3T3-E1 osteoblast-like cells, and that SMAD1/5/8(9), p38 mitogen-activated protein kinase (MAPK), and p70 S6 kinase are involved in the OPG synthesis. The present study aims to investigate the effect of OSM on the synthesis of OPG stimulated by BMP-4 in osteoblasts. OSM suppressed the release and the mRNA expression of OPG upregulated by BMP-4 in MC3T3-E1 cells. Neither the BMP-4-induced phosphorylation of SMAD1/5/9 nor that of p38 MAPK was affected by OSM. On the other hand, the phosphorylation of p70 S6 kinase stimulated by BMP-4 was considerably suppressed by OSM. These results strongly suggest that OSM suppresses the BMP-4-stimulated OPG synthesis via inhibition of the p70 S6 kinase-mediated pathway in osteoblast-like cells.


Bone Morphogenetic Protein 4 , Oncostatin M , Osteoblasts , Osteoprotegerin , Ribosomal Protein S6 Kinases, 70-kDa , Animals , Mice , Oncostatin M/pharmacology , Oncostatin M/metabolism , Osteoblasts/metabolism , Osteoblasts/drug effects , Osteoblasts/cytology , Osteoprotegerin/metabolism , Osteoprotegerin/biosynthesis , Bone Morphogenetic Protein 4/metabolism , Bone Morphogenetic Protein 4/pharmacology , Ribosomal Protein S6 Kinases, 70-kDa/metabolism , p38 Mitogen-Activated Protein Kinases/metabolism , Phosphorylation/drug effects , Cell Line
15.
Biomed Mater ; 19(4)2024 Jun 07.
Article En | MEDLINE | ID: mdl-38815596

As the structural basis of connective and load-bearing tissues, collagen fibers with orientation play an important role in the mechanical properties and physiological and biochemical functions of the tissues, but viable methods for preparing scaffolds with highly oriented collagenous structure still need to be further studied. In this study, pure collagen was used as printing ink to 3D printing. Harnessing oriented collagen fiber structure by 3D printing for promoting mechanical and osteogenic properties of scaffolds. The scaffolds with different printed angles and thicknesses were prepared to fit the bone defect site and realize personalized customization. The orientation assembly of collagen fibers was promoted by shear force action of 3D printing, the regular arrangement of collagen fibers and stabilization of fiber structure were promoted by pH adjustment and glutaraldehyde cross-linking, and the collagen fibers were mineralized by cyclic mineralization method. The microscopic morphology of fiber arrangement in the scaffolds were investigated by scanning electron microscopy. Results demonstrated that collagen fibers were changed from non-oriented to oriented after 3D printing. And the tensile modulus of the scaffolds with oriented collagen fibers was nine times higher than that of the scaffolds with non-oriented fibers. Moreover, the effects of oriented collagen fibers on the proliferation, differentiation and mineralization of MC3T3-E1 cells were studied by CCK-8 assay, live/dead cell staining, alkaline phosphatase activity test, and Alizarin red staining. The results indicated that cell proliferation, differentiation and mineralization were significantly promoted by oriented collagen fibers, and the cells proliferated directionally in the direction of the fibers. Taken together, mineralized collagen fiber scaffolds with oriented collagen fibers have great potential in bone tissue engineering applications.


Cell Differentiation , Cell Proliferation , Collagen , Osteoblasts , Osteogenesis , Printing, Three-Dimensional , Tissue Engineering , Tissue Scaffolds , Tissue Scaffolds/chemistry , Mice , Animals , Collagen/chemistry , Tissue Engineering/methods , Osteoblasts/cytology , Materials Testing , Tensile Strength , Biocompatible Materials/chemistry , Cell Line , Microscopy, Electron, Scanning , Calcification, Physiologic , 3T3 Cells , Stress, Mechanical
16.
Biomed Mater ; 19(4)2024 Jun 07.
Article En | MEDLINE | ID: mdl-38815600

Excessive reactive oxygen species (ROS) in the microenvironment of osteoporosis (OP) not only accelerate the bone absorption, but also affect the osteogenic and mineralized effect of osteoblasts. Procyanidins (PC) have been reported to have anti-oxidation effects, but low bioavailability. This study aimed to explore the effect of magnesium oxide nanoparticles (MgO-PC NPs)-loaded PC on the osteogenesis and mineralization of osteoblasts that stimulated by H2O2. PC was loaded onto MgO NPs and characterized by transmission electron microscopy, energy dispersive spectroscopy, dynamic light scattering, and Fourier transform infrared spectroscopy. After primary screening by cytotoxicity assay, MgO-PC NPs containing 20 µM of PC were chosen for further studies. In H2O2-stimulated osteoblasts, dichlorodihydrofluorescein diacetate probe, Cell Counting Kit-8, quantitative real-time polymerase chain reaction, alkaline phosphatase staining/activity and Alizarin red staining were used to detect the ROS production, cell viability and osteogenic and mineralized markers of osteoblasts. PC was loaded onto MgO NPs to successfully receive MgO-PC NPs with a diameter of about 144 nm and negative potential. PC can sustain release from MgO-PC NPs for at least 16 d. The controlled release of PC from MgO-PC NPs can effectively eliminate ROS and thereby promoted the cell activity. Most importantly, the osteogenesis and mineralization of osteoblasts under oxidative stress were also significantly reversed by MgO-PC NPS. Thus, these findings indicate that MgO-PC NPs may be developed as a potential therapeutic strategy for OP.


Biflavonoids , Catechin , Cell Survival , Hydrogen Peroxide , Magnesium Oxide , Nanoparticles , Osteoblasts , Osteogenesis , Oxidative Stress , Proanthocyanidins , Reactive Oxygen Species , Osteoblasts/drug effects , Osteoblasts/metabolism , Osteoblasts/cytology , Proanthocyanidins/pharmacology , Proanthocyanidins/chemistry , Catechin/chemistry , Catechin/pharmacology , Oxidative Stress/drug effects , Magnesium Oxide/chemistry , Reactive Oxygen Species/metabolism , Animals , Cell Survival/drug effects , Biflavonoids/pharmacology , Biflavonoids/chemistry , Osteogenesis/drug effects , Hydrogen Peroxide/chemistry , Nanoparticles/chemistry , Delayed-Action Preparations/chemistry , Mice , Calcification, Physiologic/drug effects , Spectroscopy, Fourier Transform Infrared
17.
Colloids Surf B Biointerfaces ; 239: 113971, 2024 Jul.
Article En | MEDLINE | ID: mdl-38759296

The optimal material for repairing skull defects should exhibit outstanding biocompatibility and mechanical properties. Specifically, hydrogel scaffolds that emulate the microenvironment of the native bone extracellular matrix play a vital role in promoting osteoblast adhesion, proliferation, and differentiation, thereby yielding superior outcomes in skull reconstruction. In this study, a composite network hydrogel comprising sodium alginate (SA), epigallocatechin gallate (EGCG), and zinc ions (Zn2+) was developed to establish an ideal osteogenic microenvironment for bone regeneration. Initially, physical entanglement and hydrogen bonding between SA and EGCG resulted in the formation of a primary network hydrogel known as SA-EGCG. Subsequently, the inclusion of Zn2+ facilitated the creation of a composite network hydrogels named SA-EGCG-Zn2+ via dynamic coordination bonds with SA and EGCG. The engineered SA-EGCG2 %-Zn2+ hydrogels offered an environment mimicking the native extracellular matrix (ECM). Moreover, the sustained release of Zn2+ from the hydrogel effectively enhanced cell adhesion, promoted proliferation, and stimulated osteoblast differentiation. In vitro experiments have shown that SA-EGCG2 %-Zn2+ hydrogels greatly enhance the attachment and growth of osteoblast precursor cells (MC3T3-E1), while also increasing the expression of genes related to osteogenesis in these cells. Additionally, in vivo studies have confirmed that SA-EGCG2 %-Zn2+ hydrogels promote new bone formation and accelerate the regeneration of bone in situ, indicating promising applications in the realm of bone tissue engineering.


Alginates , Catechin , Cell Proliferation , Hydrogels , Skull , Tissue Scaffolds , Zinc , Zinc/chemistry , Zinc/pharmacology , Alginates/chemistry , Alginates/pharmacology , Catechin/chemistry , Catechin/analogs & derivatives , Catechin/pharmacology , Skull/drug effects , Skull/injuries , Skull/pathology , Animals , Mice , Hydrogels/chemistry , Hydrogels/pharmacology , Tissue Scaffolds/chemistry , Cell Proliferation/drug effects , Osteoblasts/drug effects , Osteoblasts/cytology , Osteoblasts/metabolism , Cell Differentiation/drug effects , Osteogenesis/drug effects , Bone Regeneration/drug effects , Cell Adhesion/drug effects
18.
J Struct Biol ; 216(2): 108096, 2024 Jun.
Article En | MEDLINE | ID: mdl-38697586

The bone extracellular matrix consists of a highly organized collagen matrix that is mineralized with carbonated hydroxyapatite. Even though the structure and composition of bone have been studied extensively, the mechanisms underlying collagen matrix organization remain elusive. In this study, we used a 3D cell culture system in which osteogenic cells deposit and orient the collagen matrix that is subsequently mineralized. Using live fluorescence imaging combined with volume electron microscopy, we visualize the organization of the cells and collagen in the cell culture. We show that the osteogenically induced cells are organizing the collagen matrix during development. Based on the observation of tunnel-like structures surrounded by aligned collagen in the center of the culture, we propose that osteoblasts organize the deposited collagen during migration through the culture. Overall, we show that cell-matrix interactions are involved in collagen alignment during early-stage osteogenic differentiation and that the matrix is organized by the osteoblasts in the absence of osteoclast activity.


Cell Differentiation , Collagen , Extracellular Matrix , Osteoblasts , Osteogenesis , Extracellular Matrix/metabolism , Osteoblasts/metabolism , Osteoblasts/cytology , Collagen/metabolism , Osteogenesis/physiology , Animals , Cell Culture Techniques, Three Dimensional/methods , Mice , Osteoclasts/metabolism , Osteoclasts/cytology
19.
J Mater Chem B ; 12(23): 5661-5677, 2024 Jun 12.
Article En | MEDLINE | ID: mdl-38747312

Magnesium alloy is currently regarded as the most favourable biodegradable metal; however, obstacles remain to be overcome in terms of managing its corrosion and ensuring its biocompatibility. In this study, a metal-organic complex comprising Ca ions incorporated in tannic acid (TA) was prepared and used to coat magnesium alloy by chemical conversion and dipping processes, followed by modification with stearic acid (SA). This metal-organic complex coating was demonstrated to be homogeneous and compact, and it significantly improved the electrochemical corrosion resistance and long-term degradation behaviour of the coated samples. Consequently, the well-controlled release of Mg and Ca ions, as well as the osteo-compatible TA and SA molecules, promoted the proliferation of osteoblast cells. This metal-organic complex coating offers a promising modifying strategy for magnesium-based orthopaedic implants.


Alloys , Coated Materials, Biocompatible , Magnesium , Magnesium/chemistry , Alloys/chemistry , Alloys/pharmacology , Corrosion , Coated Materials, Biocompatible/chemistry , Coated Materials, Biocompatible/pharmacology , Materials Testing , Tannins/chemistry , Tannins/pharmacology , Cell Proliferation/drug effects , Surface Properties , Osteoblasts/drug effects , Osteoblasts/cytology , Absorbable Implants , Humans , Stearic Acids/chemistry , Animals , Calcium/chemistry , Calcium/metabolism , Cell Line
20.
Int J Mol Sci ; 25(9)2024 Apr 29.
Article En | MEDLINE | ID: mdl-38732057

Implant therapy is a common treatment option in dentistry and orthopedics, but its application is often associated with an increased risk of microbial contamination of the implant surfaces that cause bone tissue impairment. This study aims to develop two silver-enriched platelet-rich plasma (PRP) multifunctional scaffolds active at the same time in preventing implant-associated infections and stimulating bone regeneration. Commercial silver lactate (L) and newly synthesized silver deoxycholate:ß-Cyclodextrin (B), were studied in vitro. Initially, the antimicrobial activity of the two silver soluble forms and the PRP enriched with the two silver forms has been studied on microbial planktonic cells. At the same time, the biocompatibility of silver-enriched PRPs has been assessed by an MTT test on human primary osteoblasts (hOBs). Afterwards, an investigation was conducted to evaluate the activity of selected concentrations and forms of silver-enriched PRPs in inhibiting microbial biofilm formation and stimulating hOB differentiation. PRP-L (0.3 µg/mm2) and PRP-B (0.2 µg/mm2) counteract Staphylococcus aureus, Staphylococcus epidermidis and Candida albicans planktonic cell growth and biofilm formation, preserving hOB viability without interfering with their differentiation capability. Overall, the results obtained suggest that L- and B-enriched PRPs represent a promising preventive strategy against biofilm-related implant infections and demonstrate a new silver formulation that, together with increasing fibrin binding protecting silver in truncated cone-shaped cyclic oligosaccharides, achieved comparable inhibitory results on prokaryotic cells at a lower concentration.


Biofilms , Osteoblasts , Platelet-Rich Plasma , Silver , Humans , Biofilms/drug effects , Silver/chemistry , Silver/pharmacology , Osteoblasts/drug effects , Osteoblasts/cytology , Staphylococcus aureus/drug effects , Candida albicans/drug effects , Prosthesis-Related Infections/prevention & control , Prosthesis-Related Infections/microbiology , Staphylococcus epidermidis/drug effects
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