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Published on: June 24, 2020
HDAC Regulates Transcription at the Outset of Axolotl Tail Regeneration
S Randal Voss1, Larissa V Ponomareva2, Varun B Dwaraka3
1Department of Neuroscience, Spinal Cord and Brain Injury Research Center, and Ambystoma Genetic Stock Center, University of Kentucky, Lexington, KY, 40506, USA. srvoss@uky.edu.
Abstract:
Tissue regeneration is associated with complex changes in gene expression and post-translational modifications of proteins, including transcription factors and histones that comprise chromatin. We tested 172 compounds designed to target epigenetic mechanisms in an axolotl (Ambystoma mexicanum) embryo tail regeneration assay. A relatively large number of compounds (N = 55) inhibited tail regeneration, including 18 histone deacetylase inhibitors (HDACi). In particular, romidepsin, an FDA-approved anticancer drug, potently inhibited tail regeneration when embryos were treated continuously for 7 days. Additional experiments revealed that romidepsin acted within a very narrow, post-injury window. Romidepsin treatment for only 1-minute post amputation inhibited regeneration through the first 7 days, however after this time, regeneration commenced with variable outgrowth of tailfin tissue and abnormal patterning. Microarray analysis showed that romidepsin altered early, transcriptional responses at 3 and 6-hour post-amputation, especially targeting genes that are implicated in tumor cell death, as well as genes that function in the regulation of transcription, cell differentiation, cell proliferation, pattern specification, and tissue morphogenesis. Our results show that HDAC activity is required at the time of tail amputation to regulate the initial transcriptional response to injury and regeneration.
Insights
Histone deacetylase (HDAC) activity is crucial for initiating axolotl tail regeneration. Targeting HDACs, like with the drug romidepsin, shortly after injury disrupts early gene expression and regeneration.
Area of Science:
- Developmental Biology
- Regenerative Medicine
- Epigenetics
Background:
- Tissue regeneration involves intricate gene expression and protein modifications.
- Epigenetic mechanisms, including histone modifications, play a role in these complex processes.
Purpose of the Study:
- To investigate the role of epigenetic mechanisms in axolotl tail regeneration.
- To identify compounds targeting epigenetic pathways that affect regeneration.
Main Methods:
- Screening of 172 compounds targeting epigenetic mechanisms in axolotl embryo tail regeneration.
- Treatment with romidepsin, a histone deacetylase inhibitor (HDACi), at different time points post-amputation.
- Microarray analysis to assess transcriptional changes following romidepsin treatment.
Main Results:
- 55 compounds inhibited tail regeneration, including 18 HDAC inhibitors.
- Romidepsin potently inhibited regeneration, particularly when applied within a narrow window immediately after amputation.
- Romidepsin altered early transcriptional responses, affecting genes involved in cell death, transcription, differentiation, proliferation, and morphogenesis.
Conclusions:
- Histone deacetylase (HDAC) activity is essential during the initial phase of tail amputation.
- HDACs regulate the early transcriptional response to injury, which is critical for initiating regeneration.
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