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Sousa, M. C.

Publications and source records attributed to Sousa, M. C..

2 recordsLinked to original sources

Type III secretion system effector evolved to be mechanically labile and initiate unfolding from the N-terminus.

Many Gram-negative pathogens critically depend on the Type III secretion system (T3SS) to inject effector proteins into host cells for colonization. Because the channel of the T3SS is narrow ([~]2 nm), effectors must be unfolded for secretion. However, the T3SS cannot unfold mechanically robust substrates (GFP, ubiquitin, and dihydrofolate reductase), severely impairing their secretion. Consistent with this, effectors are exceptionally mechanically labile, unfolding at low forces. Thus, secretion competency is correlated with mechanical properties. Effector sequences have significantly diverged from non-effectors, suggesting that secretion exerts evolutionary pressure selecting mechanical lability. Here, using atomic-force-microscopy-based force spectroscopy, we show that effector NleC is mechanically labile (Funfold = 13.5 pN at 100 nm/s) and mechanically compliant, as characterized by a large distance to the transition state ({Delta}x{ddagger} = 2.7 nm). In contrast, the non-effector homolog protealysin is mechanically stable (Funfold = 50.7 pN at 100 nm/s) and brittle ({Delta}x{ddagger} = 0.7 nm), comparable to proteins known to impair secretion (Funfold > 80 pN; {Delta}x{ddagger} < 0.4 nm). Denaturant-induced unfolding assays demonstrate that effectors exhibit rates typical of their fold, further reinforcing mechanical properties rather than fast unfolding kinetics (k0) predicts secretion. Steered molecular dynamic simulations revealed NleC unfolding initiates at the N-terminus, consistent with current secretion models, whereas protealysin unfolding initiates at the C-terminus. Notably, the NleC N-terminus is primarily -helical while non-effector homologs contain {beta}-sheets, which may account for the distinct unfolding pathway. Together, these results support the notion that mechanical lability is an evolved, structurally encoded feature underlying effector secretion. SignificanceThe Type III secretion system (T3SS) delivers effector proteins directly into host cells to promote bacterial colonization. Effectors must be unfolded for secretion, and this particular selective pressure is hypothesized to have driven significant sequence divergence from non-effector proteins. Here, we show that effectors are not characterized by unusually fast unfolding rates. Rather as hypothesized, effector NleC is more mechanically labile than its non-effector homolog, indicating that mechanical lability underlies both effector sequence divergence and T3SS unfolding. Simulations revealed that NleC unfolding initiates via the N-terminus consistent with the current secretion mechanism, while protealysin unfolds from the C-terminus. Together, these results strongly suggest mechanical lability is an evolved property of effectors and provide structural insight into how it is encoded.

biophysics↗

A fluorescent reporter and single-turnover kinetics reveal new insight into BAM complex function

The {beta}-barrel assembly machine (BAM) is an essential protein complex that folds and inserts outer membrane {beta}-barrel proteins (OMPs) into the bacterial outer membrane. The BAM complex contains the essential BamA OMP with five soluble polypeptide transport-associated (POTRA) domains, which scaffold the essential BamD lipoprotein and the non-essential lipoproteins BamB/C/E. The importance of each BAM component has been investigated primarily using cell-based phenotypic assays, and structural data have revealed insights into the role of the BamA {beta}-barrel in OMP folding. However, in vitro quantitative analysis for the function of each BAM component has been challenging. We describe the development of a fluorescent reporter of OMP folding, tOmpA-A488, which we use to obtain single-turnover kinetic parameters for wildtype BAM complex in vitro. We observe a kfold of 0.78 {+/-} 0.15 min-1 and approximate substrate affinity of 3.1 {+/-} 1.1 {micro}M consistent with estimates of in vivo requirements. We also find that, contrary to prevailing models, POTRA domain deletions that include POTRA3, which is essential in cells, do not drastically impact activity. This indicates that the first three POTRA domains do not play a major role in binding or folding OMPs under single-turnover conditions, suggesting a different role in cells. Furthermore, we find that BamA alone is inactive in E. coli lipid liposomes, and the gain-of-function mutant BamA E470K does not rescue activity in vitro. The single-turnover kinetics enabled by the fluorescent reporter presented here defines a robust platform for quantitative evaluation of the folding activity of wildtype and mutant BAM complexes. SignificanceThe folding of outer membrane proteins (OMPs) in Gram-negative bacteria requires the essential {beta}-barrel assembly machine (BAM). By developing a fluorescent OMP folding reporter, we have unlocked insight into BAM activity in vitro, opening the door for rigorous evaluation of BAM mutants and putative inhibitors. We also discovered that, contrary to current models, the BamA POTRA1-3 domains do not contribute significantly to catalysis, despite being essential for bacterial growth. We propose that, consistent with biochemical, structural, and live cell imaging, the in vivo role of BamA POTRAs1-3 is to support a connection with the Sec translocon to form a transperiplasmic bridge, as well as provide a docking site for the chaperone SurA for substrate delivery.

biochemistry↗