Abstract
We present structural data on the RI alpha isoform of the cAMP-dependent protein kinase A that reveal, for the first time, a large scale conformational change within the RI alpha homodimer upon catalytic subunit binding. This result infers that the inhibition of catalytic subunit activity is not the result of a simple docking process but rather is a multi-step process involving local conformational changes both in the cAMP-binding domains as well as in the linker region of the regulatory subunit that impact the global structure of the regulatory homodimer. The results were obtained using small-angle neutron scattering with contrast variation and deuterium labeling. From these experiments we derived information on the shapes and dispositions of the catalytic subunits and regulatory homodimer within a holoenzyme reconstituted with a deuterated regulatory subunit. The scattering data also show that, despite extensive sequence homology between the isoforms, the overall structure of the type I alpha holoenzyme is significantly more compact than the type II alpha isoform. We present a model of the type I alpha holoenzyme, built using available high-resolution structures of the component subunits and domains, which best fits the neutron-scattering data. In this model, the type I alpha holoenzyme forms a flattened V shape with the RI alpha dimerization domain at the point of the V and the cAMP-binding domains of the RI alpha subunits with their bound catalytic subunits at the ends.
Highlights
We present structural data on the RI␣ isoform of the cAMP-dependent protein kinase A that reveal, for the first time, a large scale conformational change within the RI␣ homodimer upon catalytic subunit binding
The present study demonstrates for the first time that a significant conformational change within the RI␣ homodimer may be critical for PKA function
We show that inhibition of C subunits is not just a simple docking process but rather involves significant conformational changes within the RI␣ subunit linker region
Summary
We present structural data on the RI␣ isoform of the cAMP-dependent protein kinase A that reveal, for the first time, a large scale conformational change within the RI␣ homodimer upon catalytic subunit binding. We present a model of the type I␣ holoenzyme, built using available high-resolution structures of the component subunits and domains, which best fits the neutron-scattering data. In this model, the type I␣ holoenzyme forms a flattened V shape with the RI␣ dimerization domain at the point of the V and the cAMP-binding domains of the RI␣ subunits with their bound catalytic subunits at the ends. This difference in Stokes radii is larger than expected for the relatively small difference in isoform molecular weight
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