STAT3 promotes a youthful epigenetic state in articular chondrocytes

Author:

Sarkar Arijita1,Liu Nancy Q.1,Magallanes Jenny1,Tassey Jade1,Lee Siyoung1,Shkhyan Ruzanna1,Lee Youngjoo1,Lu Jinxiu1,Ouyang Yuxin1,Tang Hanhan1,Bian Fangzhou1,Tao Litao2,Segil Neil34,Ernst Jason56789,Lyons Karen10,Horvath Steve1112ORCID,Evseenko Denis134ORCID

Affiliation:

1. Department of Orthopaedic Surgery, Keck School of Medicine of USC University of Southern California (USC) Los Angeles California USA

2. Department of Biomedical Sciences Creighton University Nebraska Omaha USA

3. Department of Stem Cell and Regenerative Medicine University of Southern California Los Angeles California USA

4. Eli and Edythe Broad Center University of Southern California Los Angeles California USA

5. Department of Biological Chemistry University of California Los Angeles California USA

6. Eli and Edythe Broad Center of Regenerative Medicine and Stem Cell Research at UCLA Los Angeles California USA

7. Computer Science Department University of California Los Angeles California USA

8. Jonsson Comprehensive Cancer Center, University of California Los Angeles California USA

9. Molecular Biology Institute, University of California Los Angeles California USA

10. Department of Orthopaedic Surgery University of California Los Angeles California USA

11. Department of Biostatistics, Fielding School of Public Health University of California Los Angeles California USA

12. Department of Human Genetics, David Geffen School of Medicine University of California Los Angeles California USA

Abstract

AbstractEpigenetic mechanisms guiding articular cartilage regeneration and age‐related disease such as osteoarthritis (OA) are poorly understood. STAT3 is a critical age‐patterned transcription factor highly active in fetal and OA chondrocytes, but the context‐specific role of STAT3 in regulating the epigenome of cartilage cells remain elusive. In this study, DNA methylation profiling was performed across human chondrocyte ontogeny to build an epigenetic clock and establish an association between CpG methylation and human chondrocyte age. Exposure of adult chondrocytes to a small molecule STAT3 agonist decreased DNA methylation, while genetic ablation of STAT3 in fetal chondrocytes induced global hypermethylation. CUT&RUN assay and subsequent transcriptional validation revealed DNA methyltransferase 3 beta (DNMT3B) as one of the putative STAT3 targets in chondrocyte development and OA. Functional assessment of human OA chondrocytes showed the acquisition of progenitor‐like immature phenotype by a significant subset of cells. Finally, conditional deletion of Stat3 in cartilage cells increased DNMT3B expression in articular chondrocytes in the knee joint in vivo and resulted in a more prominent OA progression in a post‐traumatic OA (PTOA) mouse model induced by destabilization of the medial meniscus (DMM). Taken together these data reveal a novel role for STAT3 in regulating DNA methylation in cartilage development and disease. Our findings also suggest that elevated levels of active STAT3 in OA chondrocytes may indicate an intrinsic attempt of the tissue to regenerate by promoting a progenitor‐like phenotype. However, it is likely that chronic activation of this pathway, induced by IL‐6 cytokines, is detrimental and leads to tissue degeneration.

Funder

California Institute for Regenerative Medicine

Foundation for the National Institutes of Health

U.S. Department of Defense

Publisher

Wiley

Subject

Cell Biology,Aging

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