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Molecular architecture of the yeast Elongator complex reveals an unexpected asymmetric subunit arrangement.


ABSTRACT: Elongator is a ~850 kDa protein complex involved in multiple processes from transcription to tRNA modification. Conserved from yeast to humans, Elongator is assembled from two copies of six unique subunits (Elp1 to Elp6). Despite the wealth of structural data on the individual subunits, the overall architecture and subunit organization of the full Elongator and the molecular mechanisms of how it exerts its multiple activities remain unclear. Using single-particle electron microscopy (EM), we revealed that yeast Elongator adopts a bilobal architecture and an unexpected asymmetric subunit arrangement resulting from the hexameric Elp456 subassembly anchored to one of the two Elp123 lobes that form the structural scaffold. By integrating the EM data with available subunit crystal structures and restraints generated from cross-linking coupled to mass spectrometry, we constructed a multiscale molecular model that showed the two Elp3, the main catalytic subunit, are located in two distinct environments. This work provides the first structural insights into Elongator and a framework to understand the molecular basis of its multifunctionality.

SUBMITTER: Setiaputra DT 

PROVIDER: S-EPMC5286391 | biostudies-literature | 2017 Feb

REPOSITORIES: biostudies-literature

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Molecular architecture of the yeast Elongator complex reveals an unexpected asymmetric subunit arrangement.

Setiaputra Dheva T DT   Cheng Derrick Th DT   Lu Shan S   Hansen Jesse M JM   Dalwadi Udit U   Lam Cindy Hy CH   To Jeffrey L JL   Dong Meng-Qiu MQ   Yip Calvin K CK  

EMBO reports 20161121 2


Elongator is a ~850 kDa protein complex involved in multiple processes from transcription to tRNA modification. Conserved from yeast to humans, Elongator is assembled from two copies of six unique subunits (Elp1 to Elp6). Despite the wealth of structural data on the individual subunits, the overall architecture and subunit organization of the full Elongator and the molecular mechanisms of how it exerts its multiple activities remain unclear. Using single-particle electron microscopy (EM), we rev  ...[more]

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