9I26 | pdb_00009i26

inactive Form II Rubisco from Rhodospirillum rubrum


Experimental Data Snapshot

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.30 Å
  • R-Value Free: 
    0.226 (Depositor), 0.226 (DCC) 
  • R-Value Work: 
    0.204 (Depositor), 0.203 (DCC) 
  • R-Value Observed: 
    0.205 (Depositor) 

Starting Model: in silico
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wwPDB Validation 3D Report Full Report

Validation slider image for 9I26

This is version 1.2 of the entry. See complete history

Literature

Bottom-up reconstruction of synthetic pyrenoids provides insights into the mechanisms and evolution of carbon concentration by EPYC1 proteins.

Kuffner, A.M.Pommerenke, B.Kley, L.Ng, J.Z.Y.Prinz, S.Tinzl-Zechner, M.Schulz, L.Claus, P.Paczia, N.Chotel, T.Klose, M.Zarzycki, J.Hochberg, G.K.A.Erb, T.J.

(2026) Nat Plants 12: 1622-1636

  • DOI: https://doi.org/10.1038/s41477-026-02349-x
  • Primary Citation Related Structures: 
    9I26, 9I27, 9I28

  • PubMed Abstract: 

    Membraneless organelles play essential roles in many cellular processes. In various photosynthetic organisms, they are a crucial part of CO 2 /carbon-concentrating mechanisms (CCMs) that increase photosynthetic productivity. One example is the pyrenoid in Chlamydomonas reinhardtii, a liquid-phase-separated organelle that localizes and improves CO 2 fixation via the intrinsically disordered protein essential pyrenoid component 1 (EPYC1 CR ). Modern-day pyrenoids are complex structures with an elaborate cellular architecture and dozens of components, raising the question of how they could have developed from simpler condensates. Here we develop a bottom-up approach to study the function of EPYC1s and explore their sequence-function space across phylogenetic diversity and evolution. We demonstrate that extant and ancestral EPYC1 sequences induce phase separation of Rubisco into synthetic pyrenoids with functional CCMs. Surprisingly, these CCMs are mainly based on enhanced carboxylation rates (rather than increased specificity), offering new insights into the construction, function and evolution of natural and synthetic pyrenoids.


  • Organizational Affiliation
    • Research Group Sustainable Biocatalysis, Max Planck Institute for Multidisciplinary Sciences, Göttingen, Germany. andreas.kueffner@mpinat.mpg.de.

Macromolecule Content 

  • Total Structure Weight: 101.08 kDa 
  • Atom Count: 6,524 
  • Modeled Residue Count: 830 
  • Deposited Residue Count: 932 
  • Unique protein chains: 1

Macromolecules

Find similar proteins by:|  3D Structure
Entity ID: 1
MoleculeChains  Sequence LengthOrganismDetailsImage
Ribulose bisphosphate carboxylase
A, B
466Rhodospirillum rubrum ATCC 11170Mutation(s): 0 
Gene Names: cbbMRru_A2400
EC: 4.1.1.39
UniProt
Find proteins for Q2RRP5 (Rhodospirillum rubrum (strain ATCC 11170 / ATH 1.1.1 / DSM 467 / LMG 4362 / NCIMB 8255 / S1))
Explore Q2RRP5 
Go to UniProtKB:  Q2RRP5
Entity Groups
Sequence Clusters30% Identity50% Identity70% Identity90% Identity95% Identity100% Identity
UniProt GroupQ2RRP5
Sequence Annotations
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Reference Sequence

Experimental Data & Validation

Experimental Data

  • Method: X-RAY DIFFRACTION
  • Resolution: 2.30 Å
  • R-Value Free:  0.226 (Depositor), 0.226 (DCC) 
  • R-Value Work:  0.204 (Depositor), 0.203 (DCC) 
  • R-Value Observed: 0.205 (Depositor) 
Space Group: P 41 21 2
Unit Cell:
Length ( Å )Angle ( ˚ )
a = 78.98α = 90
b = 78.98β = 90
c = 277.23γ = 90
Software Package:
Software NamePurpose
PHENIXrefinement
XSCALEdata scaling
XDSdata reduction
PHENIXphasing

Structure Validation

View Full Validation Report



Entry History 

& Funding Information

Deposition Data


Funding OrganizationLocationGrant Number
European Molecular Biology Organization (EMBO)European UnionALTF 684-2022
Marie Sklodowska-Curie Actions, FragNET ITNEuropean Union101106795 - ECOFix
Max Planck SocietyGermany--

Revision History  (Full details and data files)

  • Version 1.0: 2026-02-04
    Type: Initial release
  • Version 1.1: 2026-08-19
    Changes: Database references
  • Version 1.2: 2026-08-26
    Changes: Database references