TY - JOUR
T1 - Endophilin-A2 functions in membrane scission in clathrin-independent endocytosis
AU - Renard, Henri François
AU - Simunovic, Mijo
AU - Lemiere, Joel
AU - Boucrot, Emmanuel
AU - Garcia-Castillo, Maria Daniela
AU - Arumugam, Senthil
AU - Chambon, Valérie
AU - Lamaze, Christophe
AU - Wunder, Christian
AU - Kenworthy, Anne K.
AU - Schmidt, Anne A.
AU - McMahon, Harvey T.
AU - Sykes, Cécile
AU - Bassereau, Patricia
AU - Johannes, Ludger
PY - 2015/1/22
Y1 - 2015/1/22
N2 - During endocytosis, energy is invested to narrow the necks of cargo-containing plasma membrane invaginations to radii at which the opposing segments spontaneously coalesce, thereby leading to the detachment by scission of endocytic uptake carriers. In the clathrin pathway, dynamin uses mechanical energy from GTP hydrolysis to this effect, assisted by the BIN/amphiphysin/Rvs (BAR) domain-containing protein endophilin. Clathrin-independent endocytic events are often less reliant on dynamin, and whether in these cases BAR domain proteins such as endophilin contribute to scission has remained unexplored. Here we show, in human and other mammalian cell lines, that endophilin-A2 (endoA2) specifically and functionally associates with very early uptake structures that are induced by the bacterial Shiga and cholera toxins, which are both clathrin-independent endocytic cargoes. In controlled in vitro systems, endoA2 reshapes membranes before scission. Furthermore, we demonstrate that endoA2, dynamin and actin contribute in parallel to the scission of Shiga-toxin-induced tubules. Our results establish a novel function of endoA2 in clathrin-independent endocytosis. They document that distinct scission factors operate in an additive manner, and predict that specificity within a given uptake process arises from defined combinations of universal modules. Our findings highlight a previously unnoticed link between membrane scaffolding by endoA2 and pulling-force-driven dynamic scission.
AB - During endocytosis, energy is invested to narrow the necks of cargo-containing plasma membrane invaginations to radii at which the opposing segments spontaneously coalesce, thereby leading to the detachment by scission of endocytic uptake carriers. In the clathrin pathway, dynamin uses mechanical energy from GTP hydrolysis to this effect, assisted by the BIN/amphiphysin/Rvs (BAR) domain-containing protein endophilin. Clathrin-independent endocytic events are often less reliant on dynamin, and whether in these cases BAR domain proteins such as endophilin contribute to scission has remained unexplored. Here we show, in human and other mammalian cell lines, that endophilin-A2 (endoA2) specifically and functionally associates with very early uptake structures that are induced by the bacterial Shiga and cholera toxins, which are both clathrin-independent endocytic cargoes. In controlled in vitro systems, endoA2 reshapes membranes before scission. Furthermore, we demonstrate that endoA2, dynamin and actin contribute in parallel to the scission of Shiga-toxin-induced tubules. Our results establish a novel function of endoA2 in clathrin-independent endocytosis. They document that distinct scission factors operate in an additive manner, and predict that specificity within a given uptake process arises from defined combinations of universal modules. Our findings highlight a previously unnoticed link between membrane scaffolding by endoA2 and pulling-force-driven dynamic scission.
UR - http://www.scopus.com/inward/record.url?scp=84925518114&partnerID=8YFLogxK
U2 - 10.1038/nature14064
DO - 10.1038/nature14064
M3 - Article
C2 - 25517096
AN - SCOPUS:84925518114
SN - 0028-0836
VL - 517
SP - 493
EP - 496
JO - Nature
JF - Nature
IS - 7535
ER -