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Updated: Apr 27, 2026

Assays for Validating Histone Acetyltransferase Inhibitors
Published on: August 6, 2020
Class I and IIa histone deacetylases have opposite effects on sclerostin gene regulation
Stefan Baertschi1, Nina Baur2, Valerie Lueders-Lefevre1
1From the Musculoskeletal Disease Area and.
Abstract:
Adult bone mass is controlled by the bone formation repressor sclerostin (SOST). Previously, we have shown that intermittent parathyroid hormone (PTH) bone anabolic therapy involves SOST expression reduction by inhibiting myocyte enhancer factor 2 (MEF2), which activates a distant bone enhancer. Here, we extended our SOST gene regulation studies by analyzing a role of class I and IIa histone deacetylases (HDACs), which are known regulators of MEF2s. Expression analysis using quantitative PCR (qPCR) showed high expression of HDACs 1 and 2, lower amounts of HDACs 3, 5, and 7, low amounts of HDAC4, and no expression of HDACs 8 and 9 in constitutively SOST-expressing UMR106 osteocytic cells. PTH-induced Sost suppression was associated with specific rapid nuclear accumulation of HDAC5 and co-localization with MEF2s in nuclear speckles requiring serine residues 259 and 498, whose phosphorylations control nucleocytoplasmic shuttling. Increasing nuclear levels of HDAC5 in UMR106 by blocking nuclear export with leptomycin B (LepB) or overexpression in transient transfection assays inhibited endogenous Sost transcription and reporter gene expression, respectively. This repressor effect of HDAC5 did not require catalytic activity using specific HDAC inhibitors. In contrast, inhibition of class I HDAC activities and expression using RNA interference suppressed constitutive Sost expression in UMR106 cells. An unbiased comprehensive search for involved HDAC targets using an acetylome analysis revealed several non-histone proteins as candidates. These findings suggest that PTH-mediated Sost repression involves nuclear accumulation of HDAC inhibiting the MEF2-dependent Sost bone enhancer, and class I HDACs are required for constitutive Sost expression in osteocytes.
Insights
Parathyroid hormone (PTH) therapy reduces sclerostin (SOST) by increasing nuclear HDAC5, which inhibits MEF2-driven SOST transcription. Class I histone deacetylases (HDACs) are crucial for maintaining SOST expression in bone cells.
Area of Science:
- Molecular Biology
- Cell Biology
- Bone Biology
Background:
- Sclerostin (SOST) is a key regulator of adult bone mass.
- Intermittent parathyroid hormone (PTH) therapy promotes bone anabolism by reducing SOST.
- Myocyte enhancer factor 2 (MEF2) and histone deacetylases (HDACs) are implicated in SOST gene regulation.
Purpose of the Study:
- To investigate the role of class I and IIa HDACs in SOST gene regulation.
- To elucidate the mechanism by which PTH suppresses SOST expression.
- To identify specific HDACs involved in SOST expression in osteocytes.
Main Methods:
- Quantitative PCR (qPCR) to analyze HDAC expression in UMR106 cells.
- Analysis of HDAC5 nuclear accumulation and co-localization with MEF2.
- Functional assays using leptomycin B (LepB) and HDAC inhibitors.
- RNA interference to inhibit class I HDACs.
- Acetylome analysis to identify HDAC targets.
Main Results:
- PTH-induced SOST suppression correlated with HDAC5 nuclear accumulation and MEF2 co-localization.
- Increased nuclear HDAC5 inhibited SOST transcription and reporter gene expression.
- HDAC5's repressive effect on SOST did not require its catalytic activity.
- Class I HDAC inhibition suppressed constitutive SOST expression.
- Acetylome analysis identified non-histone protein targets of HDACs.
Conclusions:
- PTH-mediated SOST repression involves HDAC5 nuclear accumulation, inhibiting MEF2-dependent SOST transcription.
- Class I HDACs are essential for constitutive SOST expression in osteocytes.
- HDAC5 acts as a repressor of SOST, independent of its catalytic activity.
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