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Segura Rodriguez, C.

Publications and source records attributed to Segura Rodriguez, C..

2 recordsLinked to original sources

The C-terminal tails of GroEL and its mitochondrial and chloroplastic homologs adopt polyproline II helices.

The chaperonin GroEL and its mitochondrial and chloroplastic homologs mHsp60 and Cpn60 are large barrel-like oligomeric proteins. Chaperonins facilitate folding by isolating nascent chains in their hollow interior and undergoing conformational transitions driven by ATP hydrolysis. Due to their vital importance, the structure of GroEL and its homologs have been extensively studied by X-ray crystallography and CryoEM, revealing one or two rings each of which contains seven subunits. Each subunit has three folded domains and a twenty-four residue C-terminal extension. Whereas this C-terminal tail has been reported to bind and stimulate the folding of the client protein, it appears to be invisible or blurry, which suggests disorder. The objective of this study is to characterize conformational preferences in the C-terminal tails of GroEL, mHsp60 and representative Cpn60s using circular dichroism and nuclear magnetic resonance spectroscopies. The tails of GroEL and mHsp60 consist of two segments. The first is rich in residues typical of intrinsically disordered proteins and the second segment consists exclusively (GroEL) or almost entirely (mHsp60) of Gly and Met residues. The spectroscopic results evince that these C-terminal extensions are not wholly disordered but adopt polyproline II helices whose populations are higher in the second Gly/Met-rich segment. Whereas the C-terminal segments of chloroplastic chaperonins are Gly-poor, they are rich in proline and also adopt polyproline II helix conformations. These results provide insight into the function of chaperonin C-terminal tails.

biochemistry↗

Architectonic Principles of Polyproline II Bundle Protein Domains

Glycine rich polyproline II helix assemblies are an emerging class of natural domains found in several proteins with different functions and diverse origins. The distinct properties of these domains relative to those composed of -helices and {beta}-sheets could make glycine-rich polyproline II helix assemblies a useful building block for protein design. Whereas the high population of polyproline II conformers in disordered state ensembles could facilitate glycine-rich polyproline II helix folding, the architectonic bases of these structures are not well known. Here, we compare and analyze their structures to uncover common features. These protein domains are found to be highly tolerant of distinct flanking sequences. This speaks to the robustness of this fold and strongly suggests that glycine rich polyproline II assemblies could be grafted with other protein domains to engineer new structures and functions. These domains are also well packed with few or no cavities. Moreover, a significant trend towards antiparallel helix configuration is observed in all these domains and could provide stabilizing interactions among macrodipoles. Finally, extensive networks of C-H{middle dot}{middle dot}{middle dot}O=C hydrogen bonds are detected in these domains. Despite their diverse evolutionary origins and activities, glycine-rich polyproline II helix assemblies share architectonic features which could help design novel proteins.

biochemistry↗