Search bioRxiv⌕ Search

Biology subjects

Graham, D. E.

Publications and source records attributed to Graham, D. E..

2 recordsLinked to original sources

Borrelia burgdorferi BB0346 is an Essential, Structurally Variant LolA Homolog that is Primarily Required for Homeostatic Localization of Periplasmic Lipoproteins

In diderm bacteria, the Lol pathway canonically mediates the periplasmic transport of lipoproteins from the inner membrane (IM) to the outer membrane (OM) and therefore plays an essential role in bacterial envelope homeostasis. After extrusion of modified lipoproteins from the IM via the LolCDE complex, the periplasmic chaperone LolA carries lipoproteins through the periplasm and transfers them to the OM lipoprotein insertase LolB, itself a lipoprotein with a LolA-like fold. Yet, LolB homologs appear restricted to {psi}-proteobacteria and are missing from spirochetes like the tick-borne Lyme disease pathogen Borrelia burgdorferi, suggesting a different hand-off mechanism at the OM. Here, we solved the crystal structure of the B. burgdorferi LolA homolog BB0346 (LolABb) at 1.9 [A] resolution. We identified multiple structural deviations in comparative analyses to other solved LolA structures, particularly a unique LolB-like protruding loop domain. LolABb failed to complement an Escherichia coli lolA knockout, even after codon optimization, signal I peptide adaptation, and a C-terminal chimerization which had allowed for complementation with an -proteobacterial LolA. Analysis of a conditional B. burgdorferi lolA knockout strain indicated that LolABb was essential for growth. Intriguingly, protein localization assays indicated that initial depletion of LolABb led to an emerging mislocalization of both IM and periplasmic OM lipoproteins, but not surface lipoproteins. Together, these findings further support the presence of two separate primary secretion pathways for periplasmic and surface OM lipoproteins in B. burgdorferi and suggest that the distinct structural features of LolABb allow it to function in a unique LolB-deficient lipoprotein sorting system. SIGNIFICANCEBorrelia spirochetes causing Lyme disease and relapsing fever have unusual double-membrane envelopes that instead of lipopolysaccharide (LPS) display abundant surface lipoproteins. We recently showed that secretion of these surface lipoproteins in Borrelia burgdorferi depends on a distant homolog of the canonical LPS outer membrane translocase LptD. Here, we probed the role of the B. burgdorferi Lol pathway in lipoprotein sorting and secretion. We show that the periplasmic chaperone LolA is essential, functionally different from E. coli LolA, with structural features of a bifunctional lipoprotein carrier protein operating without a downstream LolB outer membrane lipoprotein insertase. Depletion of LolA did not impact surface lipoprotein localization but led to a marked mislocalization of inner membrane lipoproteins to the outer membrane. This further supports two parallel, yet potentially interacting Borrelia lipoprotein transport pathways that are responsible for either secreting surface lipoprotein virulence factors or maintaining proper distribution of lipoproteins within the periplasmic space.

microbiology↗

Reduction of a heme cofactor initiates N-nitroglycine degradation by NnlA

The NnlA enzyme from Variovorax sp. strain JS1663 degrades the linear nitramine N-nitroglycine (NNG)--a natural product produced by some bacteria--to glyoxylate and nitrite (NO2-). Ammonium (NH4+) was predicted as the third product of this reaction. A source of non-heme FeII was shown to be required for initiation of NnlA activity. However, it was unclear if this FeII was being used as a metallocofactor or a reductant. This study reveals that NnlA contains a b-type heme cofactor. Reduction of this heme is required to initiate NnlA activity. Reduction can occur either by addition of a non-heme FeII source or by reduction with dithionite. Therefore, FeII is not an essential substrate for holoenzyme activity. Data are presented showing that reduced NnlA (FeII-NnlA) can catalyze at least 100 turnovers. In addition, this catalysis occurred in the absence of O2. Finally, NH4+ was verified as the third product, accounting for the complete nitrogen mass balance. Size exclusion chromatography showed that NnlA is a dimer in solution. Additionally, FeII-NnlA is oxidized by O2 and NO2- and binds carbon monoxide (CO) and nitric oxide (NO). These are characteristics shared with PAS domains; NnlA was previously shown to exhibit homology with such domains. Providing further evidence, a structural homology model of NnlA was generated based on the structure of the PAS domain from Pseudomonas aeruginosa Aer2. The structural homology model suggested His73 is the axial ligand of the NnlA heme. Site-directed mutagenesis of His73 to alanine decreased the heme occupancy of NnlA and eliminated NNG activity, providing evidence that the homology model is valid. We conclude that NnlA forms a homodimeric heme-binding PAS domain protein that requires reduction for initiation of the activity. ImportanceLinear nitramines are potential carcinogens. These compounds result from environmental degradation of high-energy cyclic nitramines and as by-products of carbon capture technologies. Mechanistic understanding of the biodegradation of linear nitramines is critical to inform approaches for their remediation. The best understood biodegradation of a linear nitramine is NNG degradation by NnlA from Variovorax sp. strain JS 1663; however, it is unclear why non-heme iron was required to initiate enzymatic turnover. This study shows that non-heme iron is unnecessary. Instead, our study reveals that NnlA contains a heme cofactor, the reduction of which is critical for activating NNG degradation activity. These studies constrain the proposals for NnlA reaction mechanisms, thereby informing mechanistic studies of degradation of anthropogenic nitramine contaminants. In addition, these results will future work to design biocatalysts to degrade these nitramine contaminants.

biochemistry↗