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Mancuso, A. P.

Publications and source records attributed to Mancuso, A. P..

3 recordsLinked to original sources

Heterologous expression, purification and structural features of native Dictyostelium discoideum dye-decolorizing peroxidase bound to a natively incorporated heme

The Dictyostelium discoideum dye-decolorizing peroxidase (DdDyP) is a newly discovered peroxidase, which belongs to a unique class of heme peroxidase family that lacks homology to the known members of plant peroxidase superfamily. DdDyP catalyzes the H2O2-dependent oxidation of a wide-spectrum of substrates ranging from polycyclic dyes to lignin biomass, holding promise for potential industrial and biotechnological applications. To study the molecular mechanism of DdDyP, highly pure and functional protein with a natively incorporated heme is required, however, obtaining a functional DyP-type peroxidase with a natively bound heme is challenging and often requires addition of expensive biosynthesis precursors. Alternatively, a heme in vitro reconstitution approach followed by a chromatographic purification step to remove the excess heme is often used. Here, we show that expressing the DdDyP peroxidase in 2xYT enriched medium at low temperature (20 {degrees}C), without adding heme supplement or biosynthetic precursors, allows for a correct native incorporation of heme into the apo-protein, giving rise to a stable protein with a strong Soret peak at 402 nm. Further, we crystallized and determined the native structure of DdDyP at a resolution of 1.95 [A], which verifies the correct heme binding and its geometry. The structural analysis also reveals a binding of two water molecules at the distal site of heme plane bridging the catalytic residues (Arg239 and Asp149) of the GXXDG motif to the heme-Fe(III) via hydrogen bonds. Our results provide new insights into the geometry of native DdDyP active site and its implication on DyP catalysis.

biochemistry↗

Observation of a single protein by ultrafast X-ray diffraction

The idea of using ultrashort X-ray pulses to obtain images of single proteins frozen in time has fascinated and inspired many. It was one of the arguments for building X-ray free-electron lasers. According to theory1, the extremely intense pulses provide sufficient signal to dispense with using crystals as an amplifier, and the ultrashort pulse duration permits capturing the diffraction data before the sample inevitably explodes2. This was first demonstrated on biological samples a decade ago on the giant mimivirus3. Since then a large collaboration4 has been pushing the limit of the smallest sample that can be imaged5,6. The ability to capture snapshots on the timescale of atomic vibrations, while keeping the sample at room temperature, may allow probing the entire conformational phase space of macromolecules. Here we show the first observation of an X-ray diffraction pattern from a single protein, that of Escherichia coli GroEL which at 14 nm in diameter7 is the smallest biological sample ever imaged by X-rays, and demonstrate that the concept of diffraction before destruction extends to single proteins. From the pattern, it is possible to determine the approximate orientation of the protein. Our experiment demonstrates the feasibility of ultrafast imaging of single proteins, opening the way to single-molecule time-resolved studies on the femtosecond timescale.

biophysics↗

Structure of the Lysinibacillus sphaericus Tpp49Aa1 pesticidal protein elucidated from natural crystals using MHz-SFX

Tpp49Aa1 from Lysinibacillus sphaericus is a Toxin_10 family protein that - in combination with Cry48Aa1, a 3-domain crystal protein - has potent mosquitocidal activity, specifically against Culex quinquefasciatus mosquitoes. MHz serial femtosecond crystallography at a nano-focused X-ray free electron laser, allowed rapid and high-quality data collection to determine the Tpp49Aa1 structure at 1.62 [A] resolution from native nanocrystals. This revealed the packing of Tpp49Aa1 within these nanocrystals, isolated from sporulated bacteria, as a homodimer with a large intermolecular interface, shedding light on natural crystallization. Complementary experiments conducted at varied pH also enabled investigations of the early structural events leading up to the dissolution of natural Tpp49Aa1 crystals. Using modelling, we propose a potential interaction between Tpp49Aa1 and Cry48Aa1 that may play a role in their codependency and broaden our understanding of this two-component system. We expand the known target range, demonstrating Tpp49Aa1/Cry48Aa1 susceptibility of larvae from Anopheles stephensi, Aedes albopictus and Culex tarsalis - substantially increasing the potential use of this toxin pair in mosquito control. Further functional insights are gained using Culex cell lines to characterise cellular models for future investigations into Cry48Aa1/Tpp49Aa1 mechanism of action and to demonstrate transient detrimental effects of individual toxin components. Significance StatementThe Tpp49Aa1/Cry48Aa1 protein pair kills mosquito larvae. Innovative use of nano-focused X-ray free electron laser to match the size of natural Tpp49Aa1 nanocrystals and the highest beam intensity available in any XFEL for high-throughput data collection, allowed structural resolution to 1.62 [A]. Tpp proteins show a range of interactions with different partners to elicit toxicity. To gain insight into Tpp49Aa1, its interaction with Cry48Aa1 was modelled. We also establish cell-based assays of Tpp49Aa1/Cry48Aa1 activity. We expand the known target range to include three more mosquito species: Anopheles stephensi, Aedes albopictus and Culex tarsalis. This study will underpin future Tpp mode of action investigations and aid insecticide optimization against mosquito vectors of emerging diseases such as West Nile Virus and malaria.

biochemistry↗