TY - JOUR
T1 - Combinatorial multivalent interactions drive cooperative assembly of the COPII coat
AU - Stancheva, Viktoriya G.
AU - Li, Xiao-Han
AU - Hutchings, Joshua
AU - Gomez-Navarro, Natalia
AU - Santhanam, Balaji
AU - Babu, M. Madan
AU - Zanetti, Giulia
AU - Miller, Elizabeth A.
N1 - Publisher Copyright:
© 2020 MRC Laboratory of Molecular Biology.
PY - 2020/9/30
Y1 - 2020/9/30
N2 - Protein secretion is initiated at the endoplasmic reticulum by the COPII coat, which self-assembles to form vesicles. Here, we examine the mechanisms by which a cargo-bound inner coat layer recruits and is organized by an outer scaffolding layer to drive local assembly of a stable structure rigid enough to enforce membrane curvature. An intrinsically disordered region in the outer coat protein, Sec31, drives binding with an inner coat layer via multiple distinct interfaces, including a newly defined charge-based interaction. These interfaces combinatorially reinforce each other, suggesting coat oligomerization is driven by the cumulative effects of multivalent interactions. The Sec31 disordered region could be replaced by evolutionarily distant sequences, suggesting plasticity in the binding interfaces. Such a multimodal assembly platform provides an explanation for how cells build a powerful yet transient scaffold to direct vesicle traffic.
AB - Protein secretion is initiated at the endoplasmic reticulum by the COPII coat, which self-assembles to form vesicles. Here, we examine the mechanisms by which a cargo-bound inner coat layer recruits and is organized by an outer scaffolding layer to drive local assembly of a stable structure rigid enough to enforce membrane curvature. An intrinsically disordered region in the outer coat protein, Sec31, drives binding with an inner coat layer via multiple distinct interfaces, including a newly defined charge-based interaction. These interfaces combinatorially reinforce each other, suggesting coat oligomerization is driven by the cumulative effects of multivalent interactions. The Sec31 disordered region could be replaced by evolutionarily distant sequences, suggesting plasticity in the binding interfaces. Such a multimodal assembly platform provides an explanation for how cells build a powerful yet transient scaffold to direct vesicle traffic.
UR - http://www.scopus.com/inward/record.url?scp=85092489326&partnerID=8YFLogxK
U2 - 10.1083/JCB.202007135
DO - 10.1083/JCB.202007135
M3 - Article
C2 - 32997735
AN - SCOPUS:85092489326
SN - 0021-9525
VL - 219
JO - Journal of Cell Biology
JF - Journal of Cell Biology
IS - 11
M1 - e202007135
ER -