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Functional Cloning Using a Xenopus Oocyte Expression System
Published on: January 30, 2016
Cloning and characterization of Xenopus laevis Smac/DIABLO
Annalisa Montesanti1, Karen Deignan, Carmel Hensey
1UCD School of Biomolecular and Biomedical Science, Conway Institute of Biomolecular and Biomedical Research, University College Dublin, Belfield, Dublin 4, Ireland.
Abstract:
Mitochondria-mediated apoptosis plays a central role in animal development and tissue homeostasis, and mitochondria contain several pro-apoptotic proteins that have key roles in apoptosis. Smac/DIABLO was identified as a mitochondrial protein that is released into the cytosol following apoptotic stimuli, subsequently blocking the anti-apoptotic activity of inhibitor of apoptosis proteins. Through expressed sequence tag (EST) analysis we detected evidence for the presence of a number of Xenopus counterparts to mammalian mitochondrial pro-apoptotic proteins. EST and genome sequencing provides evidence for the presence of endonuclease G, AIF, HtrA/Omi and Smac/DIABLO in Xenopus laevis and tropicalis. Here we report the cloning and characterization of X. laevis Smac/DIABLO (XSmac/DIABLO). In this study degenerate primers based on conserved regions of human, mouse and an EST predicted Smac from X. tropicalis were used to amplify cDNA templates from X. laevis. The full length cDNA of Xenopus Smac contained a complete open reading frame of 732 bp, encoding 244 amino acids, that when expressed is observed to be approximately 27 kDa in size. The protein sequence is 49% identical and 71% similar to human Smac, and includes the motifs involved in mitochondrial targeting, and IAP-binding (AIPV). Smac expression was detected throughout early development with multiple transcripts being detected by Northern blot analysis, suggesting the presence of alternatively spliced isoforms. Exogenous expression of Xenopus Smac enhances gamma-irradiation-induced apoptosis in HeLa cells, demonstrating its functional equivalence with mammalian forms. Our study has identified the third vertebrate homologue of Smac/DIABLO, with its structural and functional similarities to mammalian Smac/DIABLO further illustrating the evolutionary conservation of apoptotic pathways across vertebrate species.
Insights
Researchers identified Xenopus laevis Smac/DIABLO, a key protein in programmed cell death (apoptosis). This finding highlights the conserved nature of apoptosis pathways across vertebrate species, crucial for development and tissue health.
Area of Science:
- Cell Biology
- Developmental Biology
- Molecular Biology
Background:
- Mitochondria-mediated apoptosis is vital for animal development and tissue homeostasis.
- Mitochondria release pro-apoptotic proteins, like Smac/DIABLO, which inhibit apoptosis regulators.
Purpose of the Study:
- To clone and characterize Xenopus laevis Smac/DIABLO (XSmac/DIABLO).
- To investigate the evolutionary conservation of Smac/DIABLO and its role in apoptosis.
Main Methods:
- Expressed sequence tag (EST) and genome sequencing were used to identify Xenopus Smac/DIABLO.
- Degenerate primers amplified cDNA from X. laevis.
- Full-length cDNA was sequenced, and protein characteristics were analyzed.
- Northern blot analysis assessed Smac expression during development.
- Functional analysis involved exogenous expression in HeLa cells.
Main Results:
- XSmac/DIABLO cDNA encodes a 27 kDa protein with 49% identity and 71% similarity to human Smac.
- The protein contains conserved mitochondrial targeting and IAP-binding motifs.
- Smac expression was detected throughout early development, with evidence of alternative splicing.
- Exogenous XSmac expression enhanced gamma-irradiation-induced apoptosis in HeLa cells.
Conclusions:
- Xenopus laevis Smac/DIABLO is the third identified vertebrate homologue of Smac/DIABLO.
- Structural and functional similarities to mammalian Smac/DIABLO underscore the conserved nature of apoptotic pathways.
- This study contributes to understanding the evolutionary conservation of programmed cell death mechanisms.

