Reduced glycolysis links resting zone chondrocyte proliferation in the growth plate

Tatsuya Kobayashi1, Cameron Young1, Wen Zhou1,2

  • 1Endocrine Unit, Massachusetts General Hospital and Harvard Medical School, Boston, MA 02114 USA.

Insights

A specific microRNA mutation causes spondyloepiphyseal dysplasia by disrupting chondrocyte energy metabolism. Reduced glycolysis leads to skeletal defects, primarily due to acetyl-CoA deficiency impacting FGFR3 signaling.

Area of Science:

  • Molecular Biology
  • Genetics
  • Developmental Biology

Background:

  • Spondyloepiphyseal dysplasia, Nishimura type (SEDN) is linked to a gain-of-function mutation in miR-140-5p.
  • SEDN mouse models exhibit growth plate abnormalities, including resting zone expansion and increased resting chondrocytes.
  • The regulatory mechanisms behind these growth plate phenotypes remain poorly understood.

Approach:

  • Investigated the role of energy metabolism in growth plate development by studying miR-140 mutant chondrocytes.
  • Utilized lactate dehydrogenase (LDH) ablation to suppress glycolysis and observed skeletal phenotypes.
  • Examined the impact of reduced acetyl-CoA production on chondrocyte proliferation and gene expression.

Key Points:

  • Suppression of glycolysis via LDH ablation results in resting zone expansion and skeletal defects.
  • Reduced glycolysis leads to decreased histone acetylation, linked to lower acetyl-CoA levels.
  • Deficiency in acetyl-CoA, not ATP, is responsible for increased resting zone chondrocytes, as shown by Acly deletion.

Conclusions:

  • Reduced glycolysis, leading to acetyl-CoA deficiency, causes resting zone expansion in chondrocytes.
  • This deficiency may epigenetically upregulate FGFR3 signaling, contributing to skeletal dysplasia.
  • The findings highlight a critical link between cellular energy metabolism and skeletal development regulation.

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