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result(s) for
"Haugen, Håvard Jostein"
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Significance of mechanical loading in bone fracture healing, bone regeneration, and vascularization
by
Moghanian, Amirhossein
,
Haugen, Håvard Jostein
,
Ma, Qianli
in
Bone growth
,
Bone healing
,
Bone remodeling
2023
In 1892, J.L. Wolff proposed that bone could respond to mechanical and biophysical stimuli as a dynamic organ. This theory presents a unique opportunity for investigations on bone and its potential to aid in tissue repair. Routine activities such as exercise or machinery application can exert mechanical loads on bone. Previous research has demonstrated that mechanical loading can affect the differentiation and development of mesenchymal tissue. However, the extent to which mechanical stimulation can help repair or generate bone tissue and the related mechanisms remain unclear. Four key cell types in bone tissue, including osteoblasts, osteoclasts, bone lining cells, and osteocytes, play critical roles in responding to mechanical stimuli, while other cell lineages such as myocytes, platelets, fibroblasts, endothelial cells, and chondrocytes also exhibit mechanosensitivity. Mechanical loading can regulate the biological functions of bone tissue through the mechanosensor of bone cells intraosseously, making it a potential target for fracture healing and bone regeneration. This review aims to clarify these issues and explain bone remodeling, structure dynamics, and mechano-transduction processes in response to mechanical loading. Loading of different magnitudes, frequencies, and types, such as dynamic versus static loads, are analyzed to determine the effects of mechanical stimulation on bone tissue structure and cellular function. Finally, the importance of vascularization in nutrient supply for bone healing and regeneration was further discussed.
Journal Article
From Basic Science to Clinical Practice: A Review of Current Periodontal/Mucogingival Regenerative Biomaterials
by
Øvrebø, Øystein
,
Haugen, Håvard Jostein
,
De Lauretis, Angela
in
Alzheimer's disease
,
Angiogenesis
,
Anticoagulants
2024
Periodontitis is a dysbiosis‐driven inflammatory disease affecting the tooth‐supporting tissues, characterized by their progressive resorption, which can ultimately lead to tooth loss. A step‐wise therapeutic approach is employed for periodontitis. After an initial behavioral and non‐surgical phase, intra‐bony or furcation defects may be amenable to regenerative procedures. This review discusses the regenerative technologies employed for periodontal regeneration, highlighting the current limitations and future research areas. The search, performed on the MEDLINE database, has identified the available biomaterials, including biologicals (autologous platelet concentrates, hydrogels), bone grafts (pure or putty), and membranes. Biologicals and bone grafts have been critically analyzed in terms of composition, mechanism of action, and clinical applications. Although a certain degree of periodontal regeneration is predictable in intra‐bony and class II furcation defects, complete defect closure is hardly achieved. Moreover, treating class III furcation defects remains challenging. The key properties required for functional regeneration are discussed, and none of the commercially available biomaterials possess all the ideal characteristics. Therefore, research is needed to promote the advancement of more effective and targeted regenerative therapies for periodontitis. Lastly, improving the design and reporting of clinical studies is suggested by strictly adhering to the Consolidated Standards of Reporting Trials (CONSORT) 2010 statement. This review comprehensively examines regenerative technologies in periodontal therapy, exploring biomaterials' composition, action mechanisms, and clinical applications. It critically assesses the quality of related clinical trials and discusses future research directions. The paper highlights the necessity for functional regeneration and the potential of emerging bio‐inspired materials, emphasizing the evolving landscape of periodontal treatment methodologies.
Journal Article
Morphometric micro-CT study of contralateral mandibular incisors
by
Piasecki, Lucila
,
Johnsen, Gaute Floer
,
Hussain, Badra
in
Anatomy
,
Clinical decision making
,
Computed tomography
2023
ObjectivesThis study aimed to determine the degree of similarity and symmetry in the anatomy of contralateral mandibular incisors. Three-dimensional (3D) models of extracted teeth were obtained from microtomography (micro-CT) scans. Qualitative and quantitative assessments of the morphology and comparison of contralateral pairs were made. The null hypothesis was that contralateral mandibular incisors could not be considered identical in simple morphometric measurements.MethodsSixty pairs of mandibular incisors were extracted from 30 patients and scanned with micro-CT. Virtual models of the cemento-enamel junction to the root apex were rendered. Parameters such as length, canal width, dentinal thicknesses, tortuosity, centerline length, accessory canals, root canal configurations, and root canal orifice cross-sections were used to compare the teeth. Width and thickness comparisons between paired teeth in the same individual were made by paired t-test (Wilcoxon signed-rank test for variables not normally distributed). An online randomization tool generated randomized pairs (independent of the individual/patient). Subsequently, an unpaired t-test (or Mann–Whitney U test for non-normally distributed parameters) and a correlation analysis were conducted. Canal configurations were classified according to preexisting classification schemes. The number and location of accessory canals and apical foramina were registered and compared.ResultsUtilizing advanced imaging techniques and quantitative analyses, our study establishes that contralateral mandibular incisors exhibit a remarkable degree of symmetry in multiple morphological parameters, including length, canal width, and dentinal thicknesses. The apical third showed a high degree of inter-variability for the contralateral pairs. The rigorous statistical analysis of the normalized parameters by Z-score showed no statistically significant differences between the contralateral mandibular incisors. Comparisons between central and lateral teeth revealed differences in root length but no significant disparity in the distribution of accessory canals. Central teeth, on average, were longer, while accessory canals were distributed relatively evenly between central and lateral teeth.ConclusionsThe findings of this study further establish the significant similarities between contralateral mandibular incisors, reinforcing their suitability as a reliable substrate for root canal comparison studies.Clinical relevanceThe absence of statistically significant differences between contralateral pairs in normalized parameters underscores their potential as a reliable reference point for root canal comparison studies in clinical dentistry. Furthermore, our findings emphasize the importance of individualized treatment planning, considering the natural symmetry in mandibular incisors to enhance clinical decision-making. This research contributes valuable insights to the field of endodontics, offering a standardized approach to sample selection and enriching the understanding of dental anatomy.
Journal Article
TiO2 nanostructured implant surface-mediated M2c polarization of inflammatory monocyte requiring intact cytoskeleton rearrangement
by
Haugen, Håvard Jostein
,
Ma, Qianli
,
Hou, Yongli
in
Biological products
,
Biotechnology
,
Chemistry
2023
Background
Microgravity directly disturbs the reorganization of the cytoskeleton, exerting profound effects on the physiological process of macrophages. Although it has been established that macrophage M1/M2 polarization could be manipulated by the surface nanostructure of biomaterial in our previous study under normal gravity, how will inflammatory monocytes (iMos)-derived macrophages respond to diverse nanostructured Ti surfaces under normal gravity or microgravity remains unrevealed.
Results
In this study, Cytochalasin D, a cytoskeleton relaxant, was employed to establish the simulated microgravity (SMG) environment. Our results showed that human iMos polarized into M2c macrophages on NT5 surface but M1 type on NT20 surface with divergent inflammatory phenotypes according to the profile of macrophage polarization featured molecules under normal gravity. However, such manipulative effects of NTs surfaces on iMos-derived macrophages were strikingly weakened by SMG, characterized by the altered macrophage morphology, changed cytokine secretion profile, and decreased cell polarization capacity.
Conclusions
To our knowledge, this is the first metallic implantable material study focusing on the functions of specific monocyte subsets and its crucial role of the cytoskeleton in materials-mediated host immune response, which enriches our mechanism knowledge about the crosstalk between immunocytes and biomaterials. The results obtained in the present study may also provide potential targets and strategies for biomaterial development and clinical treatment via precise immune-regulation under normal gravity and microgravity.
Graphic Abstract
Journal Article
Bioengineering the ameloblastoma tumour to study its effect on bone nodule formation
by
Pape, Judith
,
Haugen, Håvard Jostein
,
Rezaei, Azadeh
in
631/67/70
,
692/308/1426
,
Ameloblastoma
2021
Ameloblastoma is a benign, epithelial cancer of the jawbone, which causes bone resorption and disfigurement to patients affected. The interaction of ameloblastoma with its tumour stroma drives invasion and progression. We used stiff collagen matrices to engineer active bone forming stroma, to probe the interaction of ameloblastoma with its native tumour bone microenvironment. This bone-stroma was assessed by nano-CT, transmission electron microscopy (TEM), Raman spectroscopy and gene analysis. Furthermore, we investigated gene correlation between bone forming 3D bone stroma and ameloblastoma introduced 3D bone stroma. Ameloblastoma cells increased expression of MMP-2 and -9 and RANK temporally in 3D compared to 2D. Our 3D biomimetic model formed bone nodules of an average surface area of 0.1 mm
2
and average height of 92.37
±
7.96 μm over 21 days. We demonstrate a woven bone phenotype with distinct mineral and matrix components and increased expression of bone formation genes in our engineered bone. Introducing ameloblastoma to the bone stroma, completely inhibited bone formation, in a spatially specific manner. Multivariate gene analysis showed that ameloblastoma cells downregulate bone formation genes such as
RUNX2
. Through the development of a comprehensive bone stroma, we show that an ameloblastoma tumour mass prevents osteoblasts from forming new bone nodules and severely restricted the growth of existing bone nodules. We have identified potential pathways for this inhibition. More critically, we present novel findings on the interaction of stromal osteoblasts with ameloblastoma.
Journal Article
Enhanced Bone Healing in Critical-Sized Rabbit Femoral Defects: Impact of Helical and Alternate Scaffold Architectures
by
Haugen, Håvard Jostein
,
López-Álvarez, Miriam
,
González-Cantalapiedra, Antonio
in
3-D printers
,
Additive manufacturing
,
Bioceramics
2024
This study investigates the effect of scaffold architecture on bone regeneration, focusing on 3D-printed polylactic acid–bioceramic calcium phosphate (PLA-bioCaP) composite scaffolds in rabbit femoral condyle critical defects. We explored two distinct scaffold designs to assess their influence on bone healing and scaffold performance. Structures with alternate (0°/90°) and helical (0°/45°/90°/135°/180°) laydown patterns were manufactured with a 3D printer using a fused deposition modeling technique. The scaffolds were meticulously characterized for pore size, strut thickness, porosity, pore accessibility, and mechanical properties. The in vivo efficacy of these scaffolds was evaluated using a femoral condyle critical defect model in eight skeletally mature New Zealand White rabbits. Then, the results were analyzed micro-tomographically, histologically, and histomorphometrically. Our findings indicate that both scaffold architectures are biocompatible and support bone formation. The helical scaffolds, characterized by larger pore sizes and higher porosity, demonstrated significantly greater bone regeneration than the alternate structures. However, their lower mechanical strength presented limitations for use in load-bearing sites.
Journal Article
Early osteoimmunomodulatory effects of magnesium–calcium–zinc alloys
by
Stötzel, Sabine
,
Rahmati, Maryam
,
Haugen, Håvard Jostein
in
Alkaline phosphatase
,
Alloys
,
Biodegradability
2021
Today, substantial attention is given to biomaterial strategies for bone regeneration, and among them, there is a growing interest in using immunomodulatory biomaterials. The ability of a biomaterial to induce neo vascularization and macrophage polarization is a major factor in defining its success. Magnesium (Mg)-based degradable alloys have attracted significant attention for bone regeneration owing to their biodegradability and potential for avoiding secondary removal surgeries. However, there is insufficient evidence in the literature regarding the early inflammatory responses to these alloys in vivo. In this study, we investigated the early body responses to Mg-0.45wt%Zn-0.45wt%Ca pin-shaped alloy (known as ZX00 alloy) in rat femora 2, 5, and 10 days after implantation. We used 3D micro computed tomography (µCT), histological, immunohistochemical, histomorphometrical, and small angle X-ray scattering (SAXS) analyses to study new bone formation, early macrophage polarization, neo vascularization, and bone quality at the implant bone interface. The expression of macrophage type 2 biological markers increased significantly after 10 days of Mg alloy implantation, indicating its potential in stimulating macrophage polarization. Our biomineralization results using µCT as well as histological stained sections did not indicate any statistically significant differences between different time points for both groups. The activity of alkaline phosphatase (ALP) and Runt-related transcription factor 2 (Runx 2) biological markers decreased significantly for Mg group, indicating less osteoblast activity. Generally, our results supported the potential of ZX00 alloy to enhance the expression of macrophage polarization in vivo; however, we could not observe any statistically significant changes regarding biomineralization.
Journal Article
Preserving the Immune‐Privileged Niche of the Nucleus Pulposus: Safeguarding Intervertebral Discs from Degeneration after Discectomy with Synthetic Mucin Hydrogel Injection
2024
Intervertebral disc (IVD) herniation is a prevalent spinal disorder, often necessitating surgical intervention such as microdiscectomy for symptomatic relief and nerve decompression. IVDs comprise a gel‐like nucleus pulposus (NP) encased by an annulus fibrosus (AF), and their avascular nature renders them immune‐privileged. Microdiscectomy exposes the residual NP to the immune system, precipitating an immune cell infiltration and attack that exacerbates IVD degeneration. While many efforts in the tissue engineering field are directed toward IVD regeneration, the inherently limited regenerative capacity due to the avascular and low‐cellularity nature of the disc and the challenging mechanical environment of the spine often impedes success. This study, aiming to prevent IVD degeneration post‐microdiscectomy, utilizes mucin‐derived gels (Muc‐gels) that form a gel at the surgical site, inspired by the natural mucin coating on living organisms to evade immune reorganization. It is shown that type I macrophages are present in severely degenerated human discs. Encapsulating IVDs within Muc‐gels prevents fibrous encapsulation and macrophage infiltration in a mouse subcutaneous model. The injection of Muc‐gels prevents IVD degeneration in a rat tail IVD degeneration model up to 24 weeks post‐operation. Mechanistic investigations indicate that Muc‐gels attenuate immune cell infiltration into NPs, offering durable protection against immune attack post‐microdiscectomy. This study unequivocally establishes the multifaceted utility of mucin hydrogels (Muc‐gels), showcasing their efficacy as both a physical shielding barrier and an immune‐isolating barrier for nucleus pulposus. This novel dual‐functionality presents a promising avenue for mitigating the recurrence rate of discectomy and impeding the progression of intervertebral disc degeneration.
Journal Article
Osteoblasts in a perfusion flow bioreactor-tissue engineered constructs of TiO2 scaffolds and cells for improved clinical performance
by
Haugen, Håvard Jostein
,
Schröder, Maria
,
Reseland, Janne Elin
in
Biomaterials
,
Bioreactors
,
Bone growth
2022
Combining biomaterial scaffolds with cells serves as a promising strategy for engineering critical size defects; however, homogenous cellular growth within large scaffolds is challenging. Mechanical stimuli can enhance bone regeneration by modulating cellular growth and differentiation. Here, we compare dynamic seeding in a perfusion flow bioreactor with static seeding for a synthetic bone scaffold for up to 21 days using the cell line MC3T3-E1 and primary human osteoblast, confocal laser scanning microscopy, and real-time reverse transcriptase-polymerase chain reaction. The secretion of bone-related proteins was quantified using multiplex immunoassays. Dynamic culture improved cellular distribution through the TiO2 scaffold and induced a five-fold increase in cell number after 21 days. The relative mRNA expression of osteopontin of MC3T3-E1 was 40-fold enhanced after 7 and 21 days at a flow rate of 0.08 mL/min, and that of collagen type I alpha I expression was 18-fold after 21 days. A flow rate of 0.16 mL/min was 10-fold less effective. Dynamic culture increased the levels of dickkopf-related protein 1 (60-fold), osteoprotegrin (29-fold), interleukin-6 (23-fold), interleukin-8 (36-fold), monocyte chemoattractant protein 1 (28-fold) and vascular endothelial growth factor (6-fold) in the medium of primary human osteoblasts after 21 days compared to static seeding. The proposed method may have clinical potential for bone tissue engineering.
Journal Article
Systemic versus local delivery of mesenchymal stem cells to improve the early stages of fracture healing in a polytrauma model
by
Øvrebø, Øystein
,
Stötzel, Sabine
,
Leach, J. Kent
in
Animal models
,
Applied Microbiology
,
Biological response modifiers
2025
Fracture healing complications, including nonunion, are common in polytrauma patients partly due to systemic inflammatory dysregulation. Although mesenchymal stem cells (MSCs) have been widely explored for their regenerative properties, their therapeutic potential in polytrauma patients remains uncertain. Given the clinical interest in both systemic and localized stem cell therapies, understanding how delivery route influences MSCs biodistribution, inflammatory modulation, and therapeutic efficacy is critical for optimizing treatment strategies in polytrauma. Hence, we compared systemic versus local MSCs delivery in a polytrauma model. We evaluated inflammatory responses and bone formation in a C57BL/6J murine model across four groups: (1) isolated fracture, (2) polytrauma (femur fracture + chest trauma), (3) polytrauma + systemic MSC delivery, and (4) polytrauma + local MSC delivery in hyaluronic acid-based hydrogels at the fracture site. Polytrauma induced a prolonged inflammatory response characterized by elevated interleukin 1 alpha and beta (IL-1α & β), tumor necrosis factor-alpha (TNF-α), interferon-gamma (IFN-γ), and monocyte chemoattractant protein-1 and − 5 (MCP-1 & MCP-5). Both delivery methods significantly reduced inflammation and proinflammatory cytokines, though local delivery yielded more consistent effects. IVIS imaging confirmed MSC retention at the fracture site in the local delivery group, while systemic administration of MSCs resulted in pulmonary entrapment. Although systemic MSCs failed to enhance fracture healing significantly, local MSC delivery promoted bone formation evidenced by CT and histological characterizations. These findings demonstrate that local MSC delivery in a hydrogel scaffold represents a superior strategy for improving fracture healing in polytrauma patients compared to systemic delivery.
Journal Article