Advances in Molecular Genetics and Epigenetics in Osteoarthritis

A special issue of Cells (ISSN 2073-4409). This special issue belongs to the section "Cell Nuclei: Function, Transport and Receptors".

Deadline for manuscript submissions: closed (31 July 2023) | Viewed by 5279

Special Issue Editor


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Guest Editor
Faculty of Medicine, Department of Biology, University of Thessaly, Larissa, Greece
Interests: human molecular genetics; epigenetics; microRNAs; osteoarthritis; lipid metabolism; musculoskeletal tissue regeneration

Special Issue Information

Dear Colleagues,

Recent GWAS studies revealed a large number of novel osteoarthritis (OA) genetic loci, with some having a functional role. In addition, epigenetic studies pointed toward possible mechanistic links between genetics and epigenetic markers in OA. The application of novel approaches and technologies in different joint tissues, in combination with genomics and epigenetics including non-coding RNAs and associated networks, will shed light on the molecular mechanisms involved in OA development. 

This Special Issue welcomes original research articles or critical reviews on molecular genetics, genomics, genomic technologies, epigenetics and therapeutic interventions in OA, aiming towards an improved understanding of its molecular etiopathogenesis and possible therapeutic interventions.

Prof. Dr. Aspasia N. Tsezou
Guest Editor

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Keywords

  • osteoarthritis
  • genetics
  • genomics
  • epigenetics

Published Papers (3 papers)

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21 pages, 6840 KiB  
Article
Integration of Transcriptome and MicroRNA Profile Analysis of iMSCs Defines Their Rejuvenated State and Conveys Them into a Novel Resource for Cell Therapy in Osteoarthritis
by Vasileios Konteles, Ioanna Papathanasiou, Maria Tzetis, Evgenios Goussetis, Varvara Trachana, Evanthia Mourmoura, Charalampos Balis, Konstantinos Malizos and Aspasia Tsezou
Cells 2023, 12(13), 1756; https://doi.org/10.3390/cells12131756 - 30 Jun 2023
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Abstract
Although MSCs grant pronounced potential for cell therapies, several factors, such as their heterogeneity restrict their use. To overcome these limitations, iMSCs (MSCs derived from induced pluripotent stem cells (iPSCs) have attracted attention. Here, we analyzed the transcriptome of MSCs, iPSCs and iMSCs [...] Read more.
Although MSCs grant pronounced potential for cell therapies, several factors, such as their heterogeneity restrict their use. To overcome these limitations, iMSCs (MSCs derived from induced pluripotent stem cells (iPSCs) have attracted attention. Here, we analyzed the transcriptome of MSCs, iPSCs and iMSCs derived from healthy individuals and osteoarthritis (OA) patients and explored miRNA-mRNA interactions during these transitions. We performed RNA-seq and gene expression comparisons and Protein-Protein-Interaction analysis followed by GO enrichment and KEGG pathway analyses. MicroRNAs’ (miRNA) expression profile using miRarrays and differentially expressed miRNA’s impact on regulating iMSCs gene expression was also explored. Our analyses revealed that iMSCs derivation from iPSCs favors the expression of genes conferring high proliferation, differentiation, and migration properties, all of which contribute to a rejuvenated state of iMSCs compared to primary MSCs. Additionally, our exploration of the involvement of miRNAs in this rejuvenated iMSCs transcriptome concluded in twenty-six miRNAs that, as our analysis showed, are implicated in pluripotency. Notably, the identified here interactions between hsa-let7b/i, hsa-miR-221/222-3p, hsa-miR-302c, hsa-miR-181a, hsa-miR-331 with target genes HMGA2, IGF2BP3, STARD4, and APOL6 could prove to be the necessary tools that will convey iMSCs into the ideal mean for cell therapy in osteoarthritis. Full article
(This article belongs to the Special Issue Advances in Molecular Genetics and Epigenetics in Osteoarthritis)
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16 pages, 4292 KiB  
Article
A Fenchone Derivative Effectively Abrogates Joint Damage Following Post-Traumatic Osteoarthritis in Lewis Rats
by Idan Carmon, Reem Smoum, Eli Farhat, Eli Reich, Leonid Kandel, Zhannah Yekhtin, Ruth Gallily, Raphael Mechoulam and Mona Dvir-Ginzberg
Cells 2022, 11(24), 4084; https://doi.org/10.3390/cells11244084 - 16 Dec 2022
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Abstract
Background: In a previous report, we have identified the cannabinoid receptor 2 (CB2) agonist HU308 to possess a beneficial effect in preventing age and trauma-induced osteoarthritis (OA) in mice. The effects of HU308 were largely related to the capacity of this compound to [...] Read more.
Background: In a previous report, we have identified the cannabinoid receptor 2 (CB2) agonist HU308 to possess a beneficial effect in preventing age and trauma-induced osteoarthritis (OA) in mice. The effects of HU308 were largely related to the capacity of this compound to induce cartilage anabolism which was dependent on the CREB/SOX9 axis, and exhibited pro-survival and pro-proliferative hallmarks of articular cartilage following treatment. Here, we utilized the novel cannabinoid-fenchone CB2 agonists (1B, 1D), which were previously reported to render anti-inflammatory effects in a zymosan model. Methods: Initially, we assessed the selectivity of CB2 using a Gs-protein receptor cAMP potency assay, which was also validated for antagonistic effects dependent on the Gi-protein receptor cAMP pathway. Based on EC50 values, 1D was selected for a zymosan inflammatory pain model. Next, 1D was administered in two doses intra-articularly (IA), in a post-traumatic medial meniscal tear (MMT, Lewis rats) model, and compared to sham, vehicle, and a positive control consisting of fibroblast growth factor 18 (FGF18) administration. The histopathological assessment was carried out according to the Osteoarthritis Research Society International (OARSI) guidelines for rat models following 28 days post-MMT. Results: The G protein receptor assays confirmed that both 1B and 1D possess CB2 agonistic effects in cell lines and in chondrocytes. Co-administering a CB2 antagonists to 25 mg/kg 1D in a paw inflammatory pain model abolished 1D-related anti-swelling effect and partially abolishing its analgesic effects. Using an MMT model, the high dose (i.e., 24 µg) of 1D administered via IA route, exhibited reduced cartilage damage. Particularly, this dose of 1D exhibited a 30% improvement in cartilage degeneration (zonal/total tibial scores) and lesion depth ratios (44%), comparable to the FGF18 positive control. Synovitis scores remained unaffected and histopathologic evaluation of subchondral bone damage did not suggest that 1D treatment changed the load-bearing ability of the rats. Contrary to the anabolic effect of FGF18, synovial inflammation was observed and was accompanied by increased osteophyte size. Conclusion: The structural histopathological analysis supports a disease-modifying effect of IA-administered 1D compound without any deleterious effects on the joint structure. Full article
(This article belongs to the Special Issue Advances in Molecular Genetics and Epigenetics in Osteoarthritis)
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17 pages, 1385 KiB  
Systematic Review
Epigenetic Modifications of MiRNAs in Osteoarthritis: A Systematic Review on Their Methylation Levels and Effects on Chondrocytes, Extracellular Matrix and Joint Inflammation
by Francesca Veronesi, Viviana Costa, Daniele Bellavia, Valentina Basoli and Gianluca Giavaresi
Cells 2023, 12(14), 1821; https://doi.org/10.3390/cells12141821 - 11 Jul 2023
Cited by 1 | Viewed by 1686
Abstract
Osteoarthritis (OA) is a joint disorder characterized by progressive degeneration of cartilage extracellular matrix (ECM), chondrocyte hypertrophy and apoptosis and inflammation. The current treatments mainly concern pain control and reduction of inflammation, but no therapeutic strategy has been identified as a disease-modifying treatment. [...] Read more.
Osteoarthritis (OA) is a joint disorder characterized by progressive degeneration of cartilage extracellular matrix (ECM), chondrocyte hypertrophy and apoptosis and inflammation. The current treatments mainly concern pain control and reduction of inflammation, but no therapeutic strategy has been identified as a disease-modifying treatment. Therefore, identifying specific biomarkers useful to prevent, treat or distinguish the stages of OA disease has become an immediate need of clinical practice. The role of microRNAs (miRNAs) in OA has been investigated in the last decade, and increasing evidence has emerged that the influence of the environment on gene expression through epigenetic processes contributes to the development, progression and aggressiveness of OA, in particular acting on the microenvironment modulations. The effects of epigenetic regulation, particularly different miRNA methylation during OA disease, were highlighted in the present systematic review. The evidence arising from this study of the literature conducted in three databases (PubMed, Scopus, Web of Science) suggested that miRNA methylation state already strongly impacts OA progression, driving chondrocytes and synoviocyte proliferation, apoptosis, inflammation and ECM deposition. However, the possibility of understanding the mechanism by which different epigenetic modifications of miRNA or pre-miRNA sequences drive the aggressiveness of OA could be the new focus of future investigations. Full article
(This article belongs to the Special Issue Advances in Molecular Genetics and Epigenetics in Osteoarthritis)
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