A Gradient of ATP Affinities Generates an Asymmetric Power Stroke Driving the Chaperonin TRIC/CCT Folding Cycle
Градиент аффинности к ATP формирует асимметричный «рабочий ход», приводящий в движение цикл сворачивания шаперонина TRiC/CCT
2012-10-01
SCID: 54.1/bqkj2kh9
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ATP-binding affinity gradientTRiC/CCT chaperoninasymmetric ATP utilizationdirectional folding power strokehetero-oligomeric double-ring
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Abstract (AI)
The eukaryotic chaperonin TRiC/CCT uses ATP cycling to fold many essential proteins that other chaperones cannot fold. This 1 MDa hetero-oligomer consists of two identical stacked rings assembled from eight paralogous subunits, each containing a conserved ATP-binding domain. Here, we report a dramatic asymmetry in the ATP utilization cycle of this ring-shaped chaperonin, despite its apparently symmetric architecture. Only four of the eight different subunits bind ATP at physiological concentrations. ATP binding and hydrolysis by the low-affinity subunits is fully dispensable for TRiC function in vivo. The conserved nucleotide-binding hierarchy among TRiC subunits is evolutionarily modulated through differential nucleoside contacts. Strikingly, high- and low-affinity subunits are spatially segregated within two contiguous hemispheres in the ring, generating an asymmetric power stroke that drives the folding cycle. This unusual mode of ATP utilization likely serves to orchestrate a directional mechanism underlying TRiC/CCT's unique ability to fold complex eukaryotic proteins.
Key Findings
1
ATP binding and hydrolysis by the low-affinity subunits are fully dispensable for TRiC function in vivo.
2
High- and low-affinity subunits are spatially segregated into two contiguous hemispheres within each ring.
3
Only four of the eight paralogous subunits bind ATP at physiological concentrations.
4
TRiC/CCT chaperonin exhibits dramatic asymmetry in ATP utilization despite symmetric ring architecture.
5
The conserved nucleotide-binding hierarchy is evolutionarily modulated via differential nucleoside contacts among subunits.
6
The hemispheric segregation of ATP affinities generates an asymmetric power stroke that drives the TRiC folding cycle and likely enforces directional folding of complex eukaryotic proteins.
Research Object
Eukaryotic chaperonin TRiC/CCT (the 1 MDa hetero-oligomeric, two-ring complex of eight paralogous subunits)
Research Subject
Asymmetric ATP utilization across subunits — a gradient of ATP affinities, spatial segregation of high- and low-affinity subunits into two hemispheres, and the resulting asymmetric power stroke that drives the TRiC/CCT folding cycle
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2012-10-01
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