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Biology subjects

Lehman, K. M.

Publications and source records attributed to Lehman, K. M..

3 recordsLinked to original sources

Dfm1 promotes Ste24-dependent translocon quality control

Proteins stalled during endoplasmic reticulum translocation clog Sec61 channels and require translocon quality control (TQC) mechanisms for clearance. Genetic screens implicated the derlin Dfm1 in TQC; however, its mechanistic role remained unclear. Using engineered and disease-relevant translocon-clogging substrates in Saccharomyces cerevisiae, we show Dfm1 functions in the Ste24-dependent branch of TQC, but not Hrd1- or Ltn1-dependent pathways. Loss of DFM1 increased accumulation and toxicity of translocon-clogging proteins. Increased dosage of wild type or catalytically inactive Hrd1 or Ste24 rescued toxicity, supporting a non-enzymatic buffering function for these factors in TQC. These findings identify Dfm1 as a key TQC factor whose critical role in clearing clogged translocons can be suppressed in multiple ways. Our results suggest enhancing TQC may protect cells from proteotoxic stress caused by disease-relevant translocon-clogging substrates, with potential implications for pancreatic {beta}-cell dysfunction in diabetes. Significance StatementO_LICells rely on translocon quality control (TQC) to clear proteins that clog the Sec61 translocon, but how the derlin Dfm1 contributes to this process has remained unclear. C_LIO_LIWe demonstrate that Dfm1 functions specifically in the Ste24-dependent TQC pathway and show that increased levels of the TQC factors Hrd1 or Ste24 rescues Dfm1 deficiency even without catalytic activity, revealing an unexpected non-enzymatic buffering function. C_LIO_LIThis work defines Dfm1s mechanistic role in TQC, provides new insight into how cells preserve endoplasmic reticulum function during translocation stress, and establishes a framework for investigating conserved pathways that protect against diseases associated with translocon clogging. C_LI

cell biology↗

Genetic analysis reveals a robust and hierarchical recruitment of the LolA chaperone to the LolCDE lipoprotein transporter

The outer membrane (OM) is an essential organelle of Gram-negative bacteria. Lipoproteins are key to building the OM, performing essential functions in several OM assembly machines. Lipoproteins mature in the inner membrane (IM) and are then trafficked to the OM. In Escherichia coli, the LolCDE transporter is needed to extract lipoproteins from the IM to begin trafficking. Lipoproteins are then transferred from LolCDE to the periplasmic chaperone LolA which ferries them to the OM for insertion by LolB. LolA recruitment by LolC is an essential trafficking step. Structural and biochemical studies suggested that two regions (termed Hook and Pad) within a periplasmic loop of LolC worked in tandem to recruit LolA, leading to a bipartite model for recruitment. Here, we genetically examine the LolC periplasmic loop in vivo using E. coli. Our findings challenge the bipartite interaction model. We show that while the Hook is essential for lipoprotein trafficking in vivo, lipoproteins are still efficiently trafficked when the Pad residues are inactivated. We show with AlphaFold2 multimer modeling that Hook:LolA interactions are likely universal among diverse Gram-negative bacteria. Conversely, Pad:LolA interactions vary across phyla. Our in vivo data redefine LolC:LolA recruitment into a hierarchical interaction model. We propose that the Hook is the major player in LolA recruitment, while the Pad plays an ancillary role that is important for efficiency but is ultimately dispensable. Our findings expand the understanding of a fundamental step in essential lipoprotein trafficking and have implications for efforts to develop new antibacterials that target LolCDE. IMPORTANCEResistance to current antibiotics is increasingly common. New antibiotics that target essential processes are needed to expand clinical options. For Gram-negative bacteria, their cell surface-- the outer membrane (OM)--is an essential organelle and antibiotic barrier that is an attractive target for new antibacterials. Lipoproteins are key to building the OM. The LolCDE transporter is needed to supply the OM with lipoproteins and has been a focus of recent antibiotic discovery. In vitro evidence recently proposed a two-part interaction of LolC with LolA lipoprotein chaperone (which traffics lipoproteins to the OM) via "Hook" and "Pad" regions. We show that this model does not reflect lipoprotein trafficking in vivo. Only the Hook is essential for lipoprotein trafficking and is remarkably robust to mutational changes. The Pad is non-essential for lipoprotein trafficking but plays an ancillary role, contributing to trafficking efficiency. These insights inform ongoing efforts to drug LolCDE.

microbiology↗

A Biological Signature for the Inhibition of Outer Membrane Lipoprotein Biogenesis

The outer membrane (OM) of Gram-negative bacteria is an essential organelle that acts as a formidable barrier to antibiotics. Increasingly prevalent resistance to existing drugs has exacerbated the need for antibiotic discovery efforts targeting the OM. Acylated proteins, known as lipoproteins, are essential in every pathway needed to build the OM. The central role of OM lipoproteins makes their biogenesis a uniquely attractive therapeutic target, but it also complicates in vivo identification of on-pathway inhibitors, as inhibition of OM lipoprotein biogenesis broadly disrupts OM assembly. Here, we use genetics to probe the eight essential proteins involved in OM lipoprotein biogenesis. We define a biological signature consisting of three simple assays that can characteristically identify OM lipoprotein biogenesis defects in vivo. The few known chemical inhibitors of OM lipoprotein biogenesis conform to the biological signature. We also examine MAC13243, a proposed inhibitor of OM lipoprotein biogenesis, and find that it fails to conform to the biological signature. Indeed, we demonstrate that MAC13243 activity relies entirely on a target outside of the OM lipoprotein biogenesis pathway. Hence, our signature offers simple tools to easily assess whether antibiotic lead compounds target an essential pathway that is the hub of OM assembly. IMPORTANCEGram-negative bacteria have an outer membrane, which acts as a protective barrier and excludes many antibiotics. The limited number of antibiotics active against Gram-negative bacteria, along with rising rates of antibiotic resistance, highlights the need for efficient antibiotic discovery efforts. Unfortunately, finding the target of lead compounds, especially ones targeting outer membrane construction, remains difficult. The hub of outer membrane construction is the lipoprotein biogenesis pathway. We show that defects in this pathway result in a signature cellular response that can be used to quickly and accurately validate pathway inhibitors. Indeed, we found that MAC13243, a compound previously proposed to target outer membrane lipoprotein biogenesis, does not fit the signature, and we show that it instead targets an entirely different cellular pathway. Our findings offer a streamlined approach to discovery and validation of lead antibiotics against a conserved and essential pathway in Gram-negative bacteria.

microbiology↗