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Functional dissection of the human Bcl2 protein: sequence requirements for inhibition of apoptosis
J J Hunter1, B L Bond, T G Parslow
1Department of Pathology, University of California, San Francisco 94143-0506, USA.
Abstract:
Overexpression of the cytoplasmic oncoprotein Bcl2 blocks programmed cell death (apoptosis) in many cellular systems. To map the sequences in Bcl2 that are necessary for its activity, we created a library of deletion-scanning mutants of this 239-amino-acid protein and tested their abilities to block staurosporine-induced fibroblast apoptosis, using a novel transient-transfection assay. Phenotypes of informative mutants were then confirmed by assaying for inhibition of steroid-induced apoptosis in stably transfected T-lymphoid cells. In accordance with earlier results, we found that Bcl2 activity was only partially reduced after deletion of the hydrophobic tail that normally anchors it in cytoplasmic membranes. Essential sequences were found in the remainder of the protein and appeared to be organized in at least two discrete functional domains. The larger, more C-terminal region (within residues 90 to 203) encompassed, but extended beyond, two oligopeptide motifs called BH1 and BH2, which are known to mediate dimerization of Bcl2 and related proteins. The second, more N-terminal regions (within residues 6 to 31) was not required for protein dimerization in vivo, but its deletion imparted a dominant negative phenotype, yielding mutants that promoted rather than inhibited apoptotic death. Residues 30 to 91 were not absolutely required for function; by deleting most of this region along with the hydrophobic tail, we derived a 155-residue mini-Bcl2 that retains significant ability to inhibit apoptosis.
Insights
The anti-apoptotic protein Bcl2
Area of Science:
- Molecular Biology
- Cell Biology
- Biochemistry
Background:
- The oncoprotein Bcl2 inhibits programmed cell death (apoptosis).
- Understanding Bcl2's functional domains is crucial for targeting apoptosis.
- Bcl2's role in various cellular systems necessitates detailed sequence analysis.
Purpose of the Study:
- To identify specific Bcl2 protein sequences essential for its anti-apoptotic activity.
- To map functional domains within the Bcl2 protein.
- To investigate the structure-activity relationship of Bcl2 mutants.
Main Methods:
- Creation and testing of a library of deletion-scanning Bcl2 mutants.
- Utilizing a novel transient-transfection assay to measure apoptosis inhibition.
- Confirmation of mutant phenotypes in stably transfected T-lymphoid cells.
Main Results:
- Bcl2's anti-apoptotic function is partially retained after removing its hydrophobic tail.
- Essential functional sequences are located in the protein's core, organized into at least two domains.
- A N-terminal region (residues 6-31) is not required for dimerization but its deletion causes a dominant-negative effect.
- A 155-residue mini-Bcl2 retains significant apoptosis-inhibiting ability.
Conclusions:
- Bcl2's anti-apoptotic activity relies on specific domains beyond its membrane-anchoring hydrophobic tail.
- Distinct functional domains within Bcl2, including BH1 and BH2 motifs, are critical for its role in apoptosis regulation.
- The N-terminal region plays a regulatory role, influencing Bcl2's ability to inhibit or promote apoptosis.