JIP3 interacts with dynein and kinesin-1 to regulate bidirectional organelle transport

Author:

Celestino Ricardo1ORCID,Gama José B.1ORCID,Castro-Rodrigues Artur F.1,Barbosa Daniel J.12ORCID,Rocha Helder1ORCID,d’Amico Ennio A.3ORCID,Musacchio Andrea34ORCID,Carvalho Ana Xavier1ORCID,Morais-Cabral João H.1ORCID,Gassmann Reto1ORCID

Affiliation:

1. Instituto de Investigação e Inovação em Saúde—i3S, Universidade do Porto, Porto, Portugal 1

2. TOXRUN—Toxicology Research Unit, University Institute of Health Sciences, Advanced Polytechnic and University Cooperative (CESPU), Cooperative of Limited Liability (CRL), Gandra, Portugal 2

3. Department of Mechanistic Cell Biology, Max Planck Institute of Molecular Physiology, Dortmund, Germany 3

4. Centre for Medical Biotechnology, Faculty of Biology, University Duisburg-Essen, Essen, Germany 4

Abstract

The MAP kinase and motor scaffold JIP3 prevents excess lysosome accumulation in axons of vertebrates and invertebrates. How JIP3’s interaction with dynein and kinesin-1 contributes to organelle clearance is unclear. We show that human dynein light intermediate chain (DLIC) binds the N-terminal RH1 domain of JIP3, its paralog JIP4, and the lysosomal adaptor RILP. A point mutation in RH1 abrogates DLIC binding without perturbing the interaction between JIP3’s RH1 domain and kinesin heavy chain. Characterization of this separation-of-function mutation in Caenorhabditis elegans shows that JIP3–bound dynein is required for organelle clearance in the anterior process of touch receptor neurons. Unlike JIP3 null mutants, JIP3 that cannot bind DLIC causes prominent accumulation of endo-lysosomal organelles at the neurite tip, which is rescued by a disease-associated point mutation in JIP3’s leucine zipper that abrogates kinesin light chain binding. These results highlight that RH1 domains are interaction hubs for cytoskeletal motors and suggest that JIP3–bound dynein and kinesin-1 participate in bidirectional organelle transport.

Funder

Oklahoma Medical Research Foundation

Office of Research Infrastructure Programs

Fundação para a Ciência e a Tecnologia

Publisher

Rockefeller University Press

Subject

Cell Biology

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