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January 22, 2026Proceedings of the National Academy of Sciences1 citationsOpen Access

Liganded LolCDE structures reveal a common substrate-LolE interaction guiding bacterial lipoprotein transport

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PSPaul SzewczykNGNicholas P. GreeneMSMartyn F. Symmons

Key Points

  • The research aims to elucidate how lipoproteins are transported from the inner to outer bacterial membrane via the LolCDE system.
  • Cryo-electron microscopy (cryo-EM) was used to determine structures of LolCDE with different lipoprotein substrates.
  • Analysis included structures of Lpp, Pal, and LolB, focusing on peptide linkers and conformational states.
  • Investigated interactions between lipoproteins and LolE for transport efficiency.
  • Showed that lipoproteins without an unstructured linker have their N-terminal portions unfolded for transport.
  • Revealed a sequence-independent interaction of lipoproteins with LolE's periplasmic domain.
  • Proposed a model where this interaction allows the acyl chains to rotate for effective binding to LolA.

Abstract

Bacterial lipoproteins are key structural components of the outer membrane in Gram-negative bacteria and vital components of machineries required for its biosynthesis and maintenance. The Lol system, essential for viability, directs transport of lipoproteins from the site of biosynthesis on the inner membrane to the outer membrane and has been the target of extensive efforts to develop novel antimicrobial drugs. In the first stage of this transport process, newly synthesized lipoproteins are released from the inner membrane by the ABC transporter LolCDE and passed to the periplasmic chaperone, LolA. Here, we show cryo-EM structures of LolCDE in complex with three different lipoprotein substrates, Lpp, Pal, and LolB, with the latter two bearing a disordered peptide linker between the acyl chains and the globular domain. Our work reveals that when the mature lipoprotein lacks an unstructured linker, the N-terminal portion of the protein is in an unfolded state for transport. The lipoproteins make a sequence-independent but structurally conserved interaction with a cleft on the surface of the periplasmic domain of LolE that promotes efficient transport. We propose a model of lipoprotein export where this interaction acts as pivot point for the peptide portion of the lipoprotein allowing the acyl chains to rotate 180° from their initial position in LolCDE to their binding site in LolA. Our results demonstrate how LolCDE can extrude lipoproteins of diverse sequence and structure and reveal an important detail of a transport process fundamental to bacterial physiology.

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Cite This Study

Szewczyk et al. (2026) studied this question.

synapsesocial.com/papers/6971bd6a642b1836717e2134https://doi.org/10.1073/pnas.2520579123
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Also Consider

Synapse has enriched 5 closely related papers on similar clinical questions. Consider them for comparative context:

  1. 1Structural basis of lipoprotein recognition by the bacterial Lol trafficking chaperone LolA2022 · 24 citations
  2. 2LolCDE complex with Pal lipoprotein2025 · 1 citations
  3. 3Dissecting the Escherichia coli periplasmic chaperone network using differential proteomics2012 · 69 citations
  4. 4A Periplasmic Reducing System Protects Single Cysteine Residues from Oxidation2009 · 182 citations
  5. 5Cryo-EM structures of LolCDE reveal the molecular mechanism of bacterial lipoprotein sorting in Escherichia coli2022 · 29 citations