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Portaliou, A.

Publications and source records attributed to Portaliou, A..

2 recordsLinked to original sources

Evolutionary adaptation of the folding pathway for secretability

Secretory preproteins of the Sec pathway bear signal peptides and are targeted post-translationally to cross the plasma membrane or ER through translocases. After translocation and signal peptide cleavage, mature domains fold to native states in the bacterial periplasm or after further trafficking. During cytoplasmic transit, mature domains must remain non-folded for translocase recognition and translocation. Here, we sought the structural basis for the delayed folding mechanism of mature domains and how this is regulated by signal peptides. To address this, we compared how evolution diversified a periplasmic peptidyl-prolyl isomerase PpiA mature domain from its structural twin cytoplasmic PpiB. Using global and local hydrogen deuterium exchange mass spectrometry we showed that PpiA is a slower folder. We defined at near-residue resolution hierarchical folding initiated by similar foldons in the twins, that displayed different order and rates. Folding is delayed in PpiA by less hydrophobic/bulky native contacts, frustrated residues and a critical {beta} -turn in the early folding region and by signal peptide-driven disorder, which disrupts foldon hierarchy. When selected PpiA residues and its signal peptide were grafted onto PpiB they converted it into a slow folder with enhanced in vivo secretion. These data reveal the structural basis of non-folding in a secretory protein, that allows its trafficking.

biochemistry↗

A nexus of intrinsic dynamics underlies translocase priming

The cytoplasmic ATPase SecA and the membrane-embedded SecYEG channel assemble to form the functional Sec translocase. How this interaction primes and catalytically activates the translocase remains unclear. We now show that priming exploits a sophisticated nexus of intrinsic dynamics in SecA. Using atomistic simulations, single molecule FRET and hydrogen/deuterium exchange mass spectrometry we reveal multiple distributed dynamic islands that cross-talk with domain and quaternary motions. These dynamic elements are highly conserved and essential for function. Central to the nexus is a slender Stem through which, motions in the helicase ATPase domain of SecA biases how the preprotein binding domain rotates between open-closed clamping states. Multi-tier dynamics are enabled by an H-bonded framework covering most of the SecA structure and allowing conformational alterations with minimal energy inputs. As a result, dimerization, the channel and nucleotides select pre-existing conformations, and alter local dynamics to restrict or promote catalytic activity and clamp motions. These events prime the translocase for high affinity reception of non-folded preprotein clients. Such dynamics nexuses are likely universal and essential in multi-liganded protein machines.

biochemistry↗