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Updated: May 30, 2026

Visualization of Amyloid β Deposits in the Human Brain with Matrix-assisted Laser Desorption/Ionization Imaging Mass Spectrometry
Published on: March 7, 2019
Structural basis for matrix metalloproteinase-2 (MMP-2)-selective inhibitory action of β-amyloid precursor
Hiroshi Hashimoto1, Tomoka Takeuchi, Kyoko Komatsu
1Department of Supramolecular Biology, Graduate School of Nanobioscience, Yokohama City University, 1-7-29, Suehiro-cho, Tsurumi-ku, Yokohama 230-0045, Japan.
Abstract:
Unlike other synthetic or physiological inhibitors for matrix metalloproteinases (MMPs), the β-amyloid precursor protein-derived inhibitory peptide (APP-IP) having an ISYGNDALMP sequence has a high selectivity toward MMP-2. Our previous study identified amino acid residues of MMP-2 essential for its selective inhibition by APP-IP and demonstrated that the N to C direction of the decapeptide inhibitor relative to the substrate-binding cleft of MMP-2 is opposite that of substrate. However, detailed interactions between the two molecules remained to be clarified. Here, we determined the crystal structure of the catalytic domain of MMP-2 in complex with APP-IP. We found that APP-IP in the complex is indeed embedded into the substrate-binding cleft of the catalytic domain in the N to C direction opposite that of substrate. With the crystal structure, it was first clarified that the aromatic side chain of Tyr(3) of the inhibitor is accommodated into the S1' pocket of the protease, and the carboxylate group of Asp(6) of APP-IP coordinates bidentately to the catalytic zinc of the enzyme. The Ala(7) to Pro(10) and Tyr(3) to Ile(1) strands of the inhibitor extend into the nonprime and the prime sides of the cleft, respectively. Therefore, the decapeptide inhibitor has long range contact with the substrate-binding cleft of the protease. This mode of interaction is probably essential for the high MMP-2 selectivity of the inhibitor because MMPs share a common architecture in the vicinity of the catalytic center, but whole structures of their substrate-binding clefts have sufficient variety for the inhibitor to distinguish MMP-2 from other MMPs.
Insights
The β-amyloid precursor protein-derived inhibitory peptide (APP-IP) selectively targets MMP-2 by binding in a unique orientation within its catalytic domain. This detailed structural insight explains APP-IP
Area of Science:
- Biochemistry
- Structural Biology
- Enzymology
Background:
- Matrix metalloproteinases (MMPs) are crucial enzymes involved in various physiological and pathological processes.
- Selective inhibition of specific MMPs, like MMP-2, is a key therapeutic goal.
- The β-amyloid precursor protein-derived inhibitory peptide (APP-IP) shows high selectivity for MMP-2, but its interaction mechanism was not fully understood.
Purpose of the Study:
- To elucidate the detailed molecular interactions between MMP-2 and its selective inhibitor, APP-IP.
- To determine the crystal structure of the catalytic domain of MMP-2 in complex with APP-IP.
Main Methods:
- X-ray crystallography was used to determine the structure of the MMP-2 catalytic domain bound to APP-IP.
- Structural analysis focused on the binding mode and specific amino acid interactions.
Main Results:
- The crystal structure confirmed APP-IP binds to the MMP-2 catalytic domain in an N to C direction opposite to substrates.
- Key interactions include Tyr(3) of APP-IP in the S1' pocket and Asp(6) coordinating the catalytic zinc.
- The inhibitor forms long-range contacts within the substrate-binding cleft, explaining its high MMP-2 selectivity.
Conclusions:
- The determined crystal structure provides a detailed molecular basis for APP-IP's high selectivity towards MMP-2.
- The unique binding mode, involving specific residue interactions and orientation, allows APP-IP to distinguish MMP-2 from other MMPs.
- This structural understanding can guide the development of more targeted MMP inhibitors.
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