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Published on: June 25, 2018
Structural basis of antizyme-mediated regulation of polyamine homeostasis
Hsiang-Yi Wu1, Shin-Fu Chen1, Ju-Yi Hsieh2
1Institute of Biochemistry and Molecular Biology, College of Medicine, National Taiwan University, Taipei 100, Taiwan;
Abstract:
Polyamines are organic polycations essential for cell growth and differentiation; their aberrant accumulation is often associated with diseases, including many types of cancer. To maintain polyamine homeostasis, the catalytic activity and protein abundance of ornithine decarboxylase (ODC), the committed enzyme for polyamine biosynthesis, are reciprocally controlled by the regulatory proteins antizyme isoform 1 (Az1) and antizyme inhibitor (AzIN). Az1 suppresses polyamine production by inhibiting the assembly of the functional ODC homodimer and, most uniquely, by targeting ODC for ubiquitin-independent proteolytic destruction by the 26S proteasome. In contrast, AzIN positively regulates polyamine levels by competing with ODC for Az1 binding. The structural basis of the Az1-mediated regulation of polyamine homeostasis has remained elusive. Here we report crystal structures of human Az1 complexed with either ODC or AzIN. Structural analysis revealed that Az1 sterically blocks ODC homodimerization. Moreover, Az1 binding triggers ODC degradation by inducing the exposure of a cryptic proteasome-interacting surface of ODC, which illustrates how a substrate protein may be primed upon association with Az1 for ubiquitin-independent proteasome recognition. Dynamic and functional analyses further indicated that the Az1-induced binding and degradation of ODC by proteasome can be decoupled, with the intrinsically disordered C-terminal tail fragment of ODC being required only for degradation but not binding. Finally, the AzIN-Az1 structure suggests how AzIN may effectively compete with ODC for Az1 to restore polyamine production. Taken together, our findings offer structural insights into the Az-mediated regulation of polyamine homeostasis and proteasomal degradation.
Insights
Antizyme inhibitor (AzIN) and antizyme isoform 1 (Az1) regulate polyamine levels by controlling ornithine decarboxylase (ODC). This study reveals the structural basis for Az1-mediated ODC degradation and AzIN
Area of Science:
- Biochemistry
- Molecular Biology
- Cell Biology
Background:
- Polyamines are vital for cell functions, and their dysregulation is linked to cancer.
- Ornithine decarboxylase (ODC) controls polyamine synthesis and is regulated by antizyme isoform 1 (Az1) and antizyme inhibitor (AzIN).
- The structural mechanisms of Az1-mediated regulation of ODC and polyamine homeostasis were previously unclear.
Purpose of the Study:
- To elucidate the structural basis of antizyme isoform 1 (Az1)-mediated regulation of ornithine decarboxylase (ODC) and polyamine homeostasis.
- To understand how Az1 targets ODC for ubiquitin-independent proteasomal degradation.
- To investigate the structural mechanism by which antizyme inhibitor (AzIN) counteracts Az1's effects.
Main Methods:
- X-ray crystallography to determine the structures of human Az1 complexed with ODC and AzIN.
- Structural analysis to understand protein-protein interactions and conformational changes.
- Dynamic and functional analyses to investigate the roles of specific protein regions in binding and degradation.
Main Results:
- Crystal structures reveal Az1 sterically inhibits ODC homodimerization.
- Az1 binding exposes a cryptic surface on ODC, targeting it for ubiquitin-independent proteasomal degradation.
- The C-terminal tail of ODC is crucial for proteasomal degradation but not for Az1 binding.
- The AzIN-Az1 structure explains how AzIN competes with ODC to restore polyamine production.
Conclusions:
- Structural insights into Az1-mediated regulation of polyamine homeostasis and ODC degradation.
- Understanding the mechanism of ubiquitin-independent proteasomal targeting.
- Provides a basis for therapeutic strategies targeting polyamine metabolism in diseases like cancer.
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