Sort:
Open Access Research Article Issue
H3K56 lactylation promotes collagen Ⅱ synthesis to modulate chondrocyte metabolism in posttraumatic osteoarthritis
Burns & Trauma 2026, 14(2)
Published: 06 November 2025
Abstract PDF (3.2 MB) Collect
Downloads:1
Background

The accumulation of intracellular glycolytic lactate is a hallmark characteristic of chondrocytes. Histone lactylation, a post-translational modification mediated by lactate, plays a pivotal role in regulating the physiological functions of chondrocytes and contributes to the pathogenesis of posttraumatic osteoarthritis. This study was designed to investigate the role of glycolytic lactate-dependent histone H3 lysine 56 lactylation (H3K56la) in modulating the synthesis of type Ⅱ collagen in chondrocytes. Furthermore, through a combination of laboratory-based and animal experimental approaches, the study sought to uncover new insights into potential therapeutic strategies for the management of posttraumatic osteoarthritis.

Methods

In in vitro experiments, the researchers first conducted assays to inhibit and induce histone lactylation in chondrocytes, subsequently measuring changes in the expression levels of hypoxia-inducible factor 1 alpha (HIF 1α) and the type Ⅱ collagen alpha 1 chain gene (Col2a1). Next, we assessed alterations in intracellular lactylation levels and Col2a1 expression following either knockdown or overexpression of HIF 1α in chondrocytes. To further elucidate the regulatory relationship between HIF 1α and Col2a1, chromatin immunoprecipitation assays were performed to investigate the transcriptional control exerted by HIF 1α on the Col2a1 gene promoter. In addition, murine models of posttraumatic osteoarthritis were developed using anterior cruciate ligament transection surgery. Both in vivo and in vitro experiments were then carried out to explore the chondroprotective mechanisms and therapeutic potential associated with modulation of histone lactylation in chondrocytes.

Results

Induction of histone lactylation in chondrocytes led to a significant upregulation of HIF 1α expression. Conversely, knockdown of HIF 1α resulted in a marked reduction in both H3K56 lactylation and Col2a1 expression. It was found that H3K56la and HIF 1α functioned synergistically to positively regulate collagen synthesis, with HIF 1α directly binding to the promoter region of the Col2a1 gene to enhance its transcription. Treatment with α-ketoglutarate modified the cellular redox state and contributed to increased expression of both H3K56la and Col2a1.

Conclusions

The glycolytic lactate/H3K56la/HIF 1α regulatory axis plays a positive regulatory role in the synthesis of type Ⅱ collagen in chondrocytes by facilitating the binding of HIF 1α to the Col2a1 gene promoter. Activation of this molecular pathway holds promise as a novel therapeutic strategy for the treatment of posttraumatic osteoarthritis.

Open Access Full Length Article Issue
Long non-coding RNA HCAR promotes endochondral bone repair by upregulating VEGF and MMP13 in hypertrophic chondrocyte through sponging miR-15b-5p
Genes & Diseases 2022, 9(2): 456-465
Published: 10 August 2020
Abstract PDF (2.5 MB) Collect
Downloads:6

Endochondral bone formation is an important route for bone repair. Although emerging evidence has revealed the functions of long non-coding RNAs (lncRNAs) in bone and cartilage development, the effect of lncRNAs in endochondral bone repair is still largely unknown. Here, we identified a lncRNA, named Hypertrophic Chondrocyte Angiogenesis-related lncRNA (HCAR), and proved it to promote the endochondral bone repair by upregulating the expression of matrix metallopeptidase 13 (Mmp13) and vascular endothelial growth factor α (Vegfa) in hypertrophic chondrocytes. Lnc-HCAR knockdown in hypertrophic chondrocytes restrained the cartilage matrix remodeling and decrease the CD31hiEmcnhi vessels number in a bone repair model. Mechanistically, we proved that lnc-HCAR was mainly enriched in the cytoplasm using fluorescence in situ hybridization (FISH) assay, and it acted as a molecular sponge for miR-15b-5p. Further, in hypertrophic chondrocytes, lnc-HCAR competitively bound to miR-15b-5p to increase Vegfa and Mmp13 expression. Our results proved that lncRNA is deeply involved in endochondral bone repair, which will provide a new theoretical basis for future strategies for promoting fracture healing.

Open Access Review Article Issue
The role of dendritic cells derived osteoclasts in bone destruction diseases
Genes & Diseases 2021, 8(4): 401-411
Published: 07 April 2020
Abstract PDF (1,008.2 KB) Collect
Downloads:7

The bone is previously considered as a dominant organ involved in the processes of locomotion. However, in the past two decades, a large number of studies have suggested that the skeletal system closely coordinated with the immune system so as to result in the emerging area of ‘osteoimmunology’. In the evolution of many kinds of bone destruction-related diseases, osteoclasts could differentiate from dendritic cells, which contributed to increased expression of osteoclast-related membrane receptors and relatively higher activity of bone destruction, inducing severe bone destruction under inflammatory conditions. Numerous factors could influence the interaction between osteoclasts and dendritic cells, contributing to the pathogenesis of several bone diseases in the context of inflammation, including both immunocytes and a large number of cytokines. In addition, the products of osteoclasts released from bone destruction area serve as important signals for the differentiation and activation of immature dendritic cells. Therefore, the border between the dendritic cell-related immune response and osteoclast-related bone destruction has gradually unravelled. Dendritic cells and osteoclasts cooperate with each other to mediate bone destruction and bone remodelling under inflammatory conditions. In this review, we will pay attention to the interactions between dendritic cells and osteoclasts in physiological and pathological conditions to further understand the skeletal system and identify potential new therapeutic targets for the future by summarizing their significant roles and molecular mechanisms in bone destruction.

Total 3