EMD-18730

Single-particle
2.66 Å
EMD-18730 Deposition: 24/10/2023
Map released: 15/05/2024
Last modified: 22/05/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links

EMD-18730

Cryo-EM structure of tetrameric human SAMHD1 State I - Tense

EMD-18730

Single-particle
2.66 Å
EMD-18730 Deposition: 24/10/2023
Map released: 15/05/2024
Last modified: 22/05/2024
Overview 3D View Sample Experiment Validation Volume Browser Additional data Links
Sample Organism: Homo sapiens
Sample: homotetramer of SAMHD1
Fitted models: 8qxk (Avg. Q-score: 0.62)

Deposition Authors: Acton OJ , Sheppard D , Rosenthal PB , Taylor IA
Platform-directed allostery and quaternary structure dynamics of SAMHD1 catalysis.
Acton OJ , Sheppard D , Kunzelmann S , Caswell SJ , Nans A , Burgess AJO , Kelly G , Morris ER , Rosenthal PB , Taylor IA
(2024) Nat Commun , 15 , 3775 - 3775
PUBMED: 38710701
DOI: doi:10.1038/s41467-024-48237-w
ISSN: 2041-1723
Abstract:
SAMHD1 regulates cellular nucleotide homeostasis, controlling dNTP levels by catalysing their hydrolysis into 2'-deoxynucleosides and triphosphate. In differentiated CD4+ macrophage and resting T-cells SAMHD1 activity results in the inhibition of HIV-1 infection through a dNTP blockade. In cancer, SAMHD1 desensitizes cells to nucleoside-analogue chemotherapies. Here we employ time-resolved cryogenic-EM imaging and single-particle analysis to visualise assembly, allostery and catalysis by this multi-subunit enzyme. Our observations reveal how dynamic conformational changes in the SAMHD1 quaternary structure drive the catalytic cycle. We capture five states at high-resolution in a live catalytic reaction, revealing how allosteric activators support assembly of a stable SAMHD1 tetrameric core and how catalysis is driven by the opening and closing of active sites through pairwise coupling of active sites and order-disorder transitions in regulatory domains. This direct visualisation of enzyme catalysis dynamics within an allostery-stabilised platform sets a precedent for mechanistic studies into the regulation of multi-subunit enzymes.