Abstract

ADAM9 is an active member of the family of transmembrane ADAMs (a disintegrin and metalloproteases). It plays a role in processes such as bone formation and retinal neovascularization, and importantly, its expression in human cancers correlates with disease stage and poor prognosis. Functionally, ADAM9 can cleave several transmembrane proteins, thereby shedding their ectodomains from the cell surface. Moreover, ADAM9 regulates cell behavior by binding cell-surface receptors such as integrin and membrane-type matrix metalloproteases. Because these functions are mainly restricted to the cell surface, understanding the mechanisms regulating ADAM9 localization and activity at this site is highly important. To this end, we here investigated how intracellular trafficking regulates ADAM9 availability at the cell surface. We found that ADAM9 undergoes constitutive clathrin-dependent internalization and subsequent degradation or recycling to the plasma membrane. We confirmed previous findings of an interaction between ADAM9 and the intracellular sorting protein, sorting nexin 9 (SNX9), as well as its close homolog SNX18. Knockdown of either SNX9 or SNX18 had no apparent effects on ADAM9 internalization or recycling. However, double knockdown of SNX9 and SNX18 decreased ADAM9 internalization significantly, demonstrating a redundant role in this process. Moreover, SNX9 knockdown revealed a nonredundant effect on overall ADAM9 protein levels, resulting in increased ADAM9 levels at the cell surface, and a corresponding increase in the shedding of Ephrin receptor B4, a well-known ADAM9 substrate. Together, our findings demonstrate that intracellular SNX9-mediated trafficking constitutes an important ADAM9 regulatory pathway.

Highlights

  • ADAM9 is an active member of the family of transmembrane ADAMs

  • A substantial amount of mature ADAM9 was observed at the plasma membrane, whereas both pro (ϳ100 kDa) and mature forms (ϳ84 kDa) of ADAM9 were detected in total cell lysates

  • Performing the reverse experiments, we found that sorting nexin 9 (SNX9) and SNX18 were both able to pulldown pro- and mature ADAM9, yet both apparently more efficiently the proform (Fig. 3, B and C)

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Summary

Present addresses

As ADAM9 functions are primarily executed at the plasma membrane [22], its cell-surface availability is key for its biological actions. It has been shown that ADAMs, to other membrane proteins undergo endocytosis [3, 25] This serves as an additional regulatory level, controlling surface availability and thereby ADAM actions at the plasma membrane. SNX9 knockdown up-regulated ADAM9 protein levels including at the cell surface, resulting in increased ectodomain shedding of the ADAM9 substrate EphB4. Together, these findings highlight intracellular trafficking and SNX9 as important ADAM9 regulatory components

Results
Discussion
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