EMD-18499

Single-particle
3.43 Å
EMD-18499 Deposition: 24/09/2023
Map released: 06/03/2024
Last modified: 20/03/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-18499

Structure of the plastid-encoded RNA polymerase complex (PEP) from Sinapis alba - Map A

EMD-18499

Single-particle
3.43 Å
EMD-18499 Deposition: 24/09/2023
Map released: 06/03/2024
Last modified: 20/03/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Sinapis alba
Sample: Plastid-encoded DNA-dependent RNA polymerase (PEP)

Deposition Authors: do Prado PFV, Ahrens FM, Pfannschmidt T, Hillen HS
Structure of the multi-subunit chloroplast RNA polymerase.
do Prado PFV, Ahrens FM, Liebers M, Ditz N, Braun HP , Pfannschmidt T, Hillen HS
(2024) Mol Cell , 84 , 910 - 925.e5
PUBMED: 38428434
DOI: doi:10.1016/j.molcel.2024.02.003
ISSN: 1097-2765
ASTM: MOCEFL
Abstract:
Chloroplasts contain a dedicated genome that encodes subunits of the photosynthesis machinery. Transcription of photosynthesis genes is predominantly carried out by a plastid-encoded RNA polymerase (PEP), a nearly 1 MDa complex composed of core subunits with homology to eubacterial RNA polymerases (RNAPs) and at least 12 additional chloroplast-specific PEP-associated proteins (PAPs). However, the architecture of this complex and the functions of the PAPs remain unknown. Here, we report the cryo-EM structure of a 19-subunit PEP complex from Sinapis alba (white mustard). The structure reveals that the PEP core resembles prokaryotic and nuclear RNAPs but contains chloroplast-specific features that mediate interactions with the PAPs. The PAPs are unrelated to known transcription factors and arrange around the core in a unique fashion. Their structures suggest potential functions during transcription in the chemical environment of chloroplasts. These results reveal structural insights into chloroplast transcription and provide a framework for understanding photosynthesis gene expression.