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Master Transcription Regulators

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Master transcription regulators are regulatory proteins that are predominantly responsible for regulating the expression of multiple genes. Often these genes work in concert to drive a  complex process. Activation of a master transcription regulator can lead to a cascade of transcriptional activation necessary for that outcome. These regulators can directly bind to the regulatory sequences of the various genes involved, or they can indirectly regulate transcription by binding to regulatory...
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Tissue-specific transcription factors contribute to diverse cellular functions in mammals. For example, the gene for beta globin, a major component of hemoglobin, is present in all cells of the body. However, it is only expressed in red blood cells because the transcription factors that can bind to the promoter sequences of the beta globin gene are only expressed in these cells. Tissue-specific transcription factors also ensure that mutations in these factors may impair only the function of...
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Tissue-specific transcription factors contribute to diverse cellular functions in mammals. For example, the gene for beta globin, a major component of hemoglobin, is present in all cells of the body. However, it is only expressed in red blood cells because the transcription factors that can bind to the promoter sequences of the beta globin gene are only expressed in these cells. Tissue-specific transcription factors also ensure that mutations in these factors may impair only the function of...
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Author Spotlight: Advancements in Cell and Tissue Engineering for Tendon Repair
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A conserved transcription factor regulatory program promotes tendon fate.

Xubo Niu1, Delmy L Melendez2, Suyash Raj2

  • 1Center for Regenerative Medicine, Department of Orthopaedic Surgery, Massachusetts General Hospital, Harvard Medical School, Boston, MA 02114, USA.

Developmental Cell
|August 31, 2024
PubMed
Summary

Researchers identified key regulators of tendon development using zebrafish. Forskolin, acting via Creb1a and Ebf transcription factors, promotes tendon cell formation, offering insights into tendon healing.

Keywords:
Creb1a/CREB1Ebf1a/Ebf3a/EBF1cAMPchemical screenenhancerforskolin/colforsinscxatendonzebrafish

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Area of Science:

  • Biochemistry
  • Developmental Biology
  • Genetics

Background:

  • Tendons are crucial for force transmission but prone to injury, necessitating better understanding of tendon healing mechanisms.
  • Knowledge regarding the specific regulators of tendon progenitor cell emergence and differentiation remains limited.
  • Identifying these regulators is vital for advancing therapeutic strategies for tendon repair and regeneration.

Purpose of the Study:

  • To identify novel regulators of tendon progenitor cell emergence and fate determination.
  • To investigate the conserved molecular mechanisms underlying tendon development across species.
  • To explore potential therapeutic targets for enhancing tendon healing.

Main Methods:

  • A high-throughput chemical screen in zebrafish was employed to identify tenogenic inducers.
  • Forskolin was identified and characterized as a tenogenic inducer, with its mechanism investigated through Creb1a.
  • Zebrafish enhancers containing cyclic AMP (cAMP) response elements (CREs) and early B cell factor (Ebf) transcription factor motifs were analyzed, alongside genetic mutations and overexpression studies in zebrafish and human cells.

Main Results:

  • Forskolin was established as a conserved tenogenic inducer, functioning via Creb1a, which is essential and sufficient for tendon fate.
  • Genomic analysis revealed conserved CREs and Ebf motifs in tendon-specific enhancers across vertebrates.
  • Disruption of CRE or Ebf motifs impaired enhancer activity, while Ebf mutations caused tendon formation defects; overexpression of Creb1a/CREB1 and Ebf1a/Ebf3a/EBF1 promoted tenogenesis in both zebrafish and human cells.

Conclusions:

  • The study identifies Creb1a and Ebf transcription factors as key, functionally conserved regulators of tendon progenitor cell fate.
  • The findings elucidate a conserved molecular pathway involving cAMP signaling and Ebf transcription factors in tendon development.
  • This research provides a foundation for developing novel therapeutic approaches to improve tendon healing and regeneration.