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MT1-MMP and ADAM10/17 exhibit a remarkable overlap of shedding properties
Ludwig Werny1, Antonia Grogro1, Kira Bickenbach1
1Institute of Biochemistry, University of Kiel, Germany.
Abstract:
Membrane-type-I matrix metalloproteinase (MT1-MMP) is one of six human membrane-bound MMPs and is responsible for extracellular matrix remodelling by degrading several substrates like fibrillar collagens, including types I-III, or fibronectin. Moreover, MT1-MMP was described as a key player in cancer progression and it is involved in various inflammatory processes, as well as in the pathogenesis of Alzheimer's disease (AD). The membrane-tethered metalloprotease meprin β as well as a disintegrin and metalloproteinase 10 (ADAM10) and ADAM17 are also associated with these diseases. Interestingly, meprin β, ADAM10/17 and MT1-MMP also have a shared substrate pool including the interleukin-6 receptor and the amyloid precursor protein. We investigated the interaction of these proteases, focusing on a possible connection between MT1-MMP and meprin β, to elucidate the potential mutual regulations of both enzymes. Herein, we show that besides ADAM10/17, MT1-MMP is also able to shed meprin β from the plasma membrane, leading to the release of soluble meprin β. Mass spectrometry-based cleavage site analysis revealed that the cleavage of meprin β by all three proteases occurs between Pro602 and Ser603 , N-terminal of the EGF-like domain. Furthermore, only inactive human pro-meprin β is shed by MT1-MMP, which is again in accordance with the shedding capability observed for ADAM10/17. Vice versa, meprin β also appears to shed MT1-MMP, indicating a complex regulatory network. Further studies will elucidate this well-orchestrated proteolytic web under distinct conditions in health and disease and will possibly show whether the loss of one of the above-mentioned sheddases can be compensated by the other enzymes.
Insights
Membrane-type-I matrix metalloproteinase (MT1-MMP) sheds meprin β, and meprin β sheds MT1-MMP, revealing a complex regulatory network. This interaction is crucial for understanding diseases like cancer and Alzheimer's.
Area of Science:
- Biochemistry and Molecular Biology
- Enzymology
- Cell Biology
Background:
- Membrane-type-I matrix metalloproteinase (MT1-MMP) remodels the extracellular matrix and is implicated in cancer, inflammation, and Alzheimer's disease (AD).
- Meprin β, ADAM10, and ADAM17 are metalloproteases associated with these diseases and share substrates like the interleukin-6 receptor and amyloid precursor protein with MT1-MMP.
- Understanding the interplay between MT1-MMP and meprin β is key to elucidating disease pathogenesis.
Purpose of the Study:
- To investigate the interaction between MT1-MMP and meprin β.
- To elucidate potential mutual regulations between these two proteases.
- To identify the specific cleavage site and conditions for meprin β shedding.
Main Methods:
- In vitro assays to assess protease interactions and shedding.
- Mass spectrometry-based cleavage site analysis.
- Western blotting to detect soluble and membrane-bound forms of meprin β.
Main Results:
- MT1-MMP, alongside ADAM10/17, sheds meprin β from the plasma membrane, releasing soluble meprin β.
- Cleavage of meprin β by MT1-MMP, ADAM10, and ADAM17 occurs between Pro602 and Ser603, N-terminal to the EGF-like domain.
- MT1-MMP specifically sheds inactive human pro-meprin β.
- Meprin β also appears to shed MT1-MMP, indicating a reciprocal regulatory relationship.
Conclusions:
- MT1-MMP and meprin β engage in a mutual shedding interaction, forming a complex proteolytic regulatory network.
- This interaction, involving shared substrates and reciprocal shedding, has implications for diseases including cancer and Alzheimer's.
- Further research is needed to fully understand this proteolytic web in health and disease and potential compensatory mechanisms.
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