Structure and tethering mechanism of dynein-2 intermediate chains in intraflagellar transport
-
Published:2024-03-07
Issue:7
Volume:43
Page:1257-1272
-
ISSN:1460-2075
-
Container-title:The EMBO Journal
-
language:en
-
Short-container-title:EMBO J
Author:
Mukhopadhyay Aakash GORCID, Toropova KaterinaORCID, Daly LydiaORCID, Wells Jennifer NORCID, Vuolo Laura, Mladenov MiroslavORCID, Seda MarianORCID, Jenkins DaganORCID, Stephens David JORCID, Roberts Anthony JORCID
Abstract
AbstractDynein-2 is a large multiprotein complex that powers retrograde intraflagellar transport (IFT) of cargoes within cilia/flagella, but the molecular mechanism underlying this function is still emerging. Distinctively, dynein-2 contains two identical force-generating heavy chains that interact with two different intermediate chains (WDR34 and WDR60). Here, we dissect regulation of dynein-2 function by WDR34 and WDR60 using an integrative approach including cryo-electron microscopy and CRISPR/Cas9-enabled cell biology. A 3.9 Å resolution structure shows how WDR34 and WDR60 use surprisingly different interactions to engage equivalent sites of the two heavy chains. We show that cilia can assemble in the absence of either WDR34 or WDR60 individually, but not both subunits. Dynein-2-dependent distribution of cargoes depends more strongly on WDR60, because the unique N-terminal extension of WDR60 facilitates dynein-2 targeting to cilia. Strikingly, this N-terminal extension can be transplanted onto WDR34 and retain function, suggesting it acts as a flexible tether to the IFT “trains” that assemble at the ciliary base. We discuss how use of unstructured tethers represents an emerging theme in IFT train interactions.
Funder
UKRI | Biotechnology and Biological Sciences Research Council Wellcome Trust Royal Society
Publisher
Springer Science and Business Media LLC
Reference87 articles.
1. Afonine PV, Grosse-Kunstleve RW, Echols N, Headd JJ, Moriarty NW, Mustyakimov M, Terwilliger TC, Urzhumtsev A, Zwart PH, Adams PD (2012) Towards automated crystallographic structure refinement with phenix.refine. Acta Crystallogr D Biol Crystallogr 68:352–367 2. Ansar M, Ullah F, Paracha SA, Adams DJ, Lai A, Pais L, Iwaszkiewicz J, Millan F, Sarwar MT, Agha Z et al (2019) Bi-allelic variants in DYNC1I2 cause syndromic microcephaly with intellectual disability, cerebral malformations, and dysmorphic facial features. Am J Hum Genet 104:1073–1087 3. Asante D, Maccarthy-Morrogh L, Townley AK, Weiss MA, Katayama K, Palmer KJ, Suzuki H, Westlake CJ, Stephens DJ (2013) A role for the Golgi matrix protein giantin in ciliogenesis through control of the localization of dynein-2. J Cell Sci 126:5189–5197 4. Asante D, Stevenson NL, Stephens DJ (2014) Subunit composition of the human cytoplasmic dynein-2 complex. J Cell Sci 127:4774–4787 5. Bhogaraju S, Cajanek L, Fort C, Blisnick T, Weber K, Taschner M, Mizuno N, Lamla S, Bastin P, Nigg EA et al (2013) Molecular basis of tubulin transport within the cilium by IFT74 and IFT81. Science 341:1009–1012
Cited by
1 articles.
订阅此论文施引文献
订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献
|
|