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Conformational dynamics of the membrane-anchored foldase LipH from Pseudomonas aeruginosa governs recognition and release of its client lipase

Busch, M.; Loschwitz, J.; Papadopoulos, A.; Reiners, J.; Steinchen, W.; Calvagna, V.; Smits, S.; Jaeger, K.-E.; Kedrov, A.

2026-03-13 biochemistry
10.64898/2026.03.12.711337 bioRxiv
Show abstract

The lipase LipA from Pseudomonas aeruginosa is an extracellular enzyme that plays an important role in bacterial infections. Prior its export via the type II secretion system, LipA requires the cognate membrane-anchored foldase LipH for maturation in the periplasm. Though structural studies elucidated the architecture of the LipH:lipase complex, how the full-length, membrane-tethered foldase recognizes, folds, and releases its client has remained barely understood. Here, we combine in silico and in vitro analysis to resolve the conformational dynamics and function of the full-length LipH in a membrane context. Simulations reveal that the membrane-anchored LipH is highly dynamic, sampling a broad ensemble of conformations. The chaperoning cavity is transiently closed or occluded by both the proximal membrane and the linker polypeptide, which is further confirmed by structural analysis. Despite the steric hindrance, the full-length LipH reconstituted into lipid-based nanodiscs and amphipols efficiently activates LipA, though it displays substantially reduced affinity for the client. We propose that the negatively charged membrane promotes release of the folded client, enabling multiple chaperoning cycles. Hydrogen/deuterium exchange analysis reveals that the MD2 domain of LipH in engaged in stable interactions with the lipase, whereas MD1 contacts are transient. Consistently, LipH readily captures N-terminal fragments of LipA, indicating that initial recognition relies on local interactions via the MD2 domain. Together, our results show how membrane coupling and intrinsic conformational plasticity modulate the function of the steric chaperone, and suggest that the membrane-anchored LipH balances capture, folding, and release of the client LipA to enable its efficient secretion.

Published in Journal of Biological Chemistry (predicted rank #16) · training set

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