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.

Gene
|March 6, 2007
PubMed

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.