Celestino, Ricardo; Gama, José B; Castro-Rodrigues, Artur F.; Barbosa, Daniel J.; Rocha, Helder; d'Amico, Ennio A.; Musacchio, Andrea; Carvalho, Ana Xavier; Morais-Cabral, João H; Gassmann, Reto; d’Amico, Ennio A.:
JIP3 interacts with dynein and kinesin-1 to regulate bidirectional organelle transport
In: The Journal of Cell Biology (JCB), Jg. 221 (2022), Heft 8, Artikel e202110057
2022Artikel/Aufsatz in ZeitschriftOA Embargo
BiologieFakultät für Biologie » MikrobiologieForschungszentren » Zentrum für Medizinische Biotechnologie (ZMB)
Damit verbunden: 1 Publikation(en)
Titel in Englisch:
JIP3 interacts with dynein and kinesin-1 to regulate bidirectional organelle transport
Autor*in:
Celestino, Ricardo
;
Gama, José B
;
Castro-Rodrigues, Artur F.
;
Barbosa, Daniel J.
;
Rocha, Helder
;
d'Amico, Ennio A.
;
Musacchio, AndreaUDE
LSF ID
57733
ORCID
0000-0003-2362-8784ORCID iD
Sonstiges
der Hochschule zugeordnete*r Autor*in
;
Carvalho, Ana Xavier
;
Morais-Cabral, João H
;
Gassmann, Reto
Sonstiges
korrespondierende*r Autor*in
;
d’Amico, Ennio A.
Erscheinungsjahr:
2022
Open Access?:
OA Embargo
Web of Science ID
PubMed ID
Scopus ID
Sprache des Textes:
Englisch

Abstract in Englisch:

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.