Role of Ostm1 Cytosolic Complex with Kinesin 5B in Intracellular Dispersion and Trafficking

Author:

Pandruvada Subramanya N. M.123,Beauregard Janie123,Benjannet Suzanne4,Pata Monica123,Lazure Claude5,Seidah Nabil G.4,Vacher Jean123

Affiliation:

1. Laboratory of Cellular Interactions and Development, Clinical Research Institute of Montreal, Montreal, Québec, Canada

2. Département de Médecine, Université de Montréal, Montréal, Québec, Canada

3. Department of Medicine, Division of Experimental Medicine, McGill University, Montréal, Québec, Canada

4. Laboratory of Biochemical Neuroendocrinology, Clinical Research Institute of Montreal, Montreal, Québec, Canada

5. Laboratory of Neuropeptide Structure and Metabolism, Clinical Research Institute of Montreal, Montreal, Québec, Canada

Abstract

ABSTRACT In humans and in mice, mutations in the Ostm1 gene cause the most severe form of osteopetrosis, a major bone disease, and neuronal degeneration, both of which are associated with early death. To gain insight into Ostm1 function, we first investigated by sequence and biochemical analysis an immature 34-kDa type I transmembrane Ostm1 protein with a unique cytosolic tail. Mature Ostm1 is posttranslationally processed and highly N-glycosylated and has an apparent mass of ∼60 kDa. Analysis the subcellular localization of Ostm1 showed that it is within the endoplasmic reticulum, trans -Golgi network, and endosomes/lysosomes. By a wide protein screen under physiologic conditions, several novel cytosolic Ostm1 partners were identified and validated, for which a direct interaction with the kinesin 5B heavy chains was demonstrated. These results determined that Ostm1 is part of a cytosolic scaffolding multiprotein complex, imparting an adaptor function to Ostm1. Moreover, we uncovered a role for the Ostm1/KIF5B complex in intracellular trafficking and dispersion of cargos from the endoplasmic reticulum to late endosomal/lysosomal subcellular compartments. These Ostm1 molecular and cellular functions could elucidate all of the pathophysiologic mechanisms underlying the wide phenotypic spectrum of Ostm1-deficient mice.

Funder

Canada Chair

Gouvernement du Canada | Canadian Institutes of Health Research

Publisher

American Society for Microbiology

Subject

Cell Biology,Molecular Biology

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