Abstract

Most Bcl-2 family members can localize to intracellular membranes via hydrophobic sequences within their C-terminal portion. We found that the C terminus of the anti-apoptotic family member A1 did not function as a membrane anchor. Instead, this stretch of the protein rendered A1 highly unstable by mediating its polyubiquitination and rapid proteasomal degradation. Moreover, the domain did not only function independently of its position within the A1 protein but when transferred could even destabilize unrelated proteins like enhanced green fluorescent protein and caspase-3. A1 was, however, much more stable in the presence of the Bcl-2 homology-only protein BimEL, suggesting that direct interaction of A1 with pro-apoptotic members of the Bcl-2 family strongly reduces its rate of turnover. We further show that the C-terminal end of A1 also contributes to the anti-apoptotic capacity of the protein. In conclusion, our data demonstrate that the C terminus serves a dual function by controlling the stability of A1 and by amplifying the capacity of the protein to protect cells against apoptosis.

Highlights

  • Downstream of their BH3-only relatives and are responsible for the formation of pores in the outer mitochondrial membrane [7]

  • To directly test the potential of the C-terminal end of A1 to anchor a protein to intracellular membranes, we fused the last 35 amino acids of A1 to the C terminus of the enhanced green fluorescent protein (EGFPA1ct)

  • EGFP-Bcl2ct was found at several intracellular membranes, EGFP-Bcl-XLct was mainly localized at mitochondrial membranes (Fig. 1B)

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Summary

Introduction

Downstream of their BH3-only relatives and are responsible for the formation of pores in the outer mitochondrial membrane [7]. Other anti-apoptotic Bcl-2 family members are targeted to intracellular membranes via a conserved stretch of hydrophobic amino acid residues in their C termini [29].

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