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MITF: an evolutionarily conserved transcription factor in the sea urchin Paracentrotus lividus
Roberta Russo1, Marco Chiaramonte2, Nadia Lampiasi2
1Consiglio Nazionale delle Ricerche, Istituto per la Ricerca e l'Innovazione Biomedica, Via Ugo La Malfa 153, 90146, Palermo, Italy. roberta.russo@irib.cnr.it.
Abstract:
Microphthalmia-associated transcription factor (MITF) is a member of MYC superfamily, associated with melanocyte cells, as it was discovered in depigmented mice. However, over the last years it was found to be involved in many cellular signaling pathways, among which oncogenesis, osteoclast differentiation, and stress response. In mammals, Mitf gene mutations can cause diverse syndromes affecting pigmentation of eyes or skin, bone defects and melanomas. As MITF protein homologs were also found in some invertebrates, we have isolated and characterized the MITF cDNAs from the sea urchin Paracentrotus lividus, referred to as Pl-Mitf. The in silico study of the secondary and tertiary structure of Pl-Mitf protein showed high conserved regions mostly lying in the DNA binding domain. To understand the degree of evolutionary conservation of MITF, a phylogenetic analysis was performed comparing the Pl-Mitf deduced protein with proteins from different animal species. Moreover, the analysis of temporal and spatial expression pattern of Pl-Mitf mRNA showed that it was expressed from the onset of gastrulation of the sea urchin embryo to the pluteus larva, specifically in primary mesenchymes cells (PMCs), the sea urchin skeletogenic cells, and in the forming archenteron, the larval gut precursor. In silico protein-protein interactions analysis was used to understand the association of MITF with other proteins. Our results put in evidence the conservation of the MITF protein among vertebrates and invertebrates and may provide new perspectives on the pathways underlying sea urchin development, even if further functional analyses are needed.
Insights
The Microphthalmia-associated transcription factor (MITF) gene is evolutionarily conserved in sea urchins. This study characterized Pl-Mitf, revealing its expression in key embryonic cell types and conserved structural domains.
Area of Science:
- Developmental Biology
- Evolutionary Biology
- Molecular Biology
Background:
- Microphthalmia-associated transcription factor (MITF) is a MYC superfamily member crucial for melanocyte development.
- MITF plays roles in oncogenesis, osteoclast differentiation, and stress response, with mutations causing syndromes in mammals.
- MITF homologs exist in invertebrates, suggesting broader evolutionary significance.
Purpose of the Study:
- To isolate and characterize the MITF cDNA from the sea urchin Paracentrotus lividus (Pl-Mitf).
- To investigate the evolutionary conservation of MITF.
- To analyze the temporal and spatial expression patterns of Pl-Mitf during sea urchin development.
Main Methods:
- Isolation and characterization of Pl-Mitf cDNA.
- In silico analysis of Pl-Mitf protein structure and evolutionary conservation (phylogenetic analysis).
- Analysis of Pl-Mitf mRNA expression patterns using quantitative methods.
- In silico protein-protein interaction analysis.
Main Results:
- High conservation of structural regions, particularly the DNA binding domain, was observed in Pl-Mitf.
- Phylogenetic analysis confirmed MITF conservation across vertebrates and invertebrates.
- Pl-Mitf mRNA was expressed from gastrulation to the pluteus larva stage, specifically in primary mesenchyme cells (PMCs) and the archenteron.
Conclusions:
- The MITF protein is evolutionarily conserved between vertebrates and invertebrates.
- Pl-Mitf plays a role in sea urchin embryonic development, particularly in skeletogenic (PMCs) and gut precursor cells.
- Further functional studies are required to fully elucidate MITF's role in sea urchin development.
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