Structural basis for the sheddase function of human meprin β metalloproteinase at the plasma membrane
Author(s) -
Joan L. Arolas,
Claudia Broder,
Tamara Jefferson,
Tibisay Guevara,
Erwin E. Sterchi,
Wolfram Bode,
Walter Stöcker,
Christoph BeckerPauly,
F. Xavier GomisRüth
Publication year - 2012
Publication title -
proceedings of the national academy of sciences
Language(s) - English
Resource type - Journals
SCImago Journal Rank - 5.011
H-Index - 771
eISSN - 1091-6490
pISSN - 0027-8424
DOI - 10.1073/pnas.1211076109
Subject(s) - ectodomain , metalloproteinase , chemistry , disintegrin , microbiology and biotechnology , transmembrane protein , amyloid precursor protein , biochemistry , matrix metalloproteinase , biology , disease , alzheimer's disease , receptor , medicine , pathology
Ectodomain shedding at the cell surface is a major mechanism to regulate the extracellular and circulatory concentration or the activities of signaling proteins at the plasma membrane. Human meprin β is a 145-kDa disulfide-linked homodimeric multidomain type-I membrane metallopeptidase that sheds membrane-bound cytokines and growth factors, thereby contributing to inflammatory diseases, angiogenesis, and tumor progression. In addition, it cleaves amyloid precursor protein (APP) at the β-secretase site, giving rise to amyloidogenic peptides. We have solved the X-ray crystal structure of a major fragment of the meprin β ectoprotein, the first of a multidomain oligomeric transmembrane sheddase, and of its zymogen. The meprin β dimer displays a compact shape, whose catalytic domain undergoes major rearrangement upon activation, and reveals an exosite and a sugar-rich channel, both of which possibly engage in substrate binding. A plausible structure-derived working mechanism suggests that substrates such as APP are shed close to the plasma membrane surface following an "N-like" chain trace.
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