An SNX10-dependent mechanism downregulates fusion between mature osteoclasts

Author:

Barnea-Zohar Maayan1,Winograd-Katz Sabina E.2,Shalev Moran1,Arman Esther1,Reuven Nina1,Roth Lee1ORCID,Golani Ofra3,Stein Merle4,Thalji Fadi5,Kanaan Moien6,Tuckermann Jan4,Geiger Benjamin2,Elson Ari1ORCID

Affiliation:

1. Department of Molecular Genetics, The Weizmann Institute of Science, Rehovot 76100, Israel

2. Department of Immunology, The Weizmann Institute of Science, Rehovot 76100, Israel

3. Department of Life Sciences Core Facilities, The Weizmann Institute of Science, Rehovot 76100, Israel

4. Department of Biology, Institute of Comparative Molecular Endocrinology, University of Ulm, 89081 Ulm, Germany

5. Department of Orthopedics, Istishari Arab Hospital, Ramallah, Palestine

6. Hereditary Research Laboratory and Department of Life Sciences, Bethlehem University, Bethlehem 0045866, Palestine

Abstract

ABSTRACT Homozygosity for the R51Q mutation in sorting nexin 10 (SNX10) inactivates osteoclasts (OCLs) and induces autosomal recessive osteopetrosis in humans and in mice. We show here that the fusion of wild-type murine monocytes to form OCLs is highly regulated, and that its extent is limited by blocking fusion between mature OCLs. In contrast, monocytes from homozygous R51Q SNX10 mice fuse uncontrollably, forming giant dysfunctional OCLs that can become 10- to 100-fold larger than their wild-type counterparts. Furthermore, mutant OCLs display reduced endocytotic activity, suggesting that their deregulated fusion is due to alterations in membrane homeostasis caused by loss of SNX10 function. This is supported by the finding that the R51Q SNX10 protein is unstable and exhibits altered lipid-binding properties, and is consistent with a key role for SNX10 in vesicular trafficking. We propose that OCL size and functionality are regulated by a cell-autonomous SNX10-dependent mechanism that downregulates fusion between mature OCLs. The R51Q mutation abolishes this regulatory activity, leading to excessive fusion, loss of bone resorption capacity and, consequently, to an osteopetrotic phenotype in vivo. This article has an associated First Person interview with the joint first authors of the paper.

Funder

Deutsche Forschungsgemeinschaft

Israel Science Foundation

Weizmann Institute of Science

Publisher

The Company of Biologists

Subject

Cell Biology

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