Human pregnancy zone protein stabilizes misfolded proteins including preeclampsia- and Alzheimer's-associated amyloid
Jordan H Cater1,2, Janet R Kumita3, Rafaa Zeineddine Abdallah1,2
1Illawarra Health and Medical Research Institute, Wollongong, NSW 2522, Australia.
Insights
Pregnancy zone protein (PZP) prevents harmful protein misfolding during pregnancy. Elevated PZP protects against amyloid beta (Aβ) aggregation, crucial for preventing preeclampsia and Alzheimer's disease.
Area of Science:
- Biochemistry
- Proteostasis
- Maternal-fetal medicine
Background:
- Protein misfolding causes many age-related diseases.
- Preeclampsia involves misfolded protein accumulation in pregnancy.
- Pregnancy zone protein (PZP) levels increase during gestation.
Purpose of the Study:
- To investigate the role of PZP in inhibiting protein misfolding during pregnancy.
- To understand PZP's mechanism of action against amyloid beta (Aβ) aggregation.
- To explore PZP's significance in preeclampsia and maternal proteostasis.
Main Methods:
- In vitro inhibition assays of protein aggregation.
- Characterization of PZP-amyloid beta (Aβ) complex formation.
- Immunohistochemistry analysis of PZP in placental tissue.
Main Results:
- PZP efficiently inhibits in vitro Aβ aggregation.
- PZP forms stable complexes with monomeric Aβ and early oligomers.
- PZP exhibits superior chaperone activity compared to alpha-2-macroglobulin (α2M).
- PZP is localized in placental extravillous trophoblasts, adjacent to Aβ plaques in severe preeclampsia.
Conclusions:
- Elevated PZP is a maternal adaptation for maintaining extracellular proteostasis during pregnancy.
- Disruption of PZP's chaperone function may contribute to misfolded protein accumulation in preeclampsia.
- Studying extracellular proteostasis in pregnancy has implications for understanding protein misfolding disorders.
Abstract:
Protein misfolding underlies the pathology of a large number of human disorders, many of which are age-related. An exception to this is preeclampsia, a leading cause of pregnancy-associated morbidity and mortality in which misfolded proteins accumulate in body fluids and the placenta. We demonstrate that pregnancy zone protein (PZP), which is dramatically elevated in maternal plasma during pregnancy, efficiently inhibits in vitro the aggregation of misfolded proteins, including the amyloid beta peptide (Aβ) that is implicated in preeclampsia as well as with Alzheimer's disease. The mechanism by which this inhibition occurs involves the formation of stable complexes between PZP and monomeric Aβ or small soluble Aβ oligomers formed early in the aggregation pathway. The chaperone activity of PZP is more efficient than that of the closely related protein alpha-2-macroglobulin (α2M), although the chaperone activity of α2M is enhanced by inducing its dissociation into PZP-like dimers. By immunohistochemistry analysis, PZP is found primarily in extravillous trophoblasts in the placenta. In severe preeclampsia, PZP-positive extravillous trophoblasts are adjacent to extracellular plaques containing Aβ, but PZP is not abundant within extracellular plaques. Our data support the conclusion that the up-regulation of PZP during pregnancy represents a major maternal adaptation that helps to maintain extracellular proteostasis during gestation in humans. We propose that overwhelming or disrupting the chaperone function of PZP could underlie the accumulation of misfolded proteins in vivo. Attempts to characterize extracellular proteostasis in pregnancy will potentially have broad-reaching significance for understanding disease-related protein misfolding.
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