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Biology subjects

Maly, M.

Publications and source records attributed to Maly, M..

3 recordsLinked to original sources

Ligand-responsive groove remodelling in human and macaque CD1d reveals a conserved MHC-like gating mechanism

CD1d presents lipid antigens to invariant natural killer T (iNKT) cells. We determined a high-resolution crystal structure of human CD1d bound to -galactosylceramide (-GalCer) at 1.76 [A], enabling detailed investigation of ligand-sensitive conformational flexibility at Phe84, a conserved aromatic residue that caps the F' groove. Electron density at Phe84 revealed multiple side-chain conformations, suggestive of ligand-induced plasticity. Molecular dynamics simulations indicated that the canonical rotamer is energetically favoured in the absence of a stabilising groove-occupying ligand. To assess conservation of this putative gating mechanism, we solved the first CD1d structure from a non-human primate, rhesus macaque CD1d--GalCer, at 1.83 [A] resolution. In contrast to the human complex, Phe84 in macaque CD1d adopted a fixed conformation. As this aromatic residue is conserved across CD1 isoforms and CD1d-expressing species, and mirrors gating residues in MHC class I that regulate peptide accommodation, our findings support a shared evolutionary strategy for managing antigen diversity. These data provide critical insight into the mechanisms of antigen presentation by CD1 molecules. Significance StatementThis study reveals that Phe84, a conserved aromatic residue in CD1d, may act as a ligand-responsive gate modulating F' groove accessibility. This conditional plasticity could enable binding of structurally diverse lipid antigens and appears conserved across CD1 isoforms. The mechanism parallels class I MHC, where gating residues regulate peptide presentation, suggesting an evolutionarily shared strategy for accommodating antigen diversity.

immunology↗

Droplet microfluidics for time-resolved serial crystallography

Serial crystallography requires large numbers of microcrystals and robust strategies to rapidly apply substrates to initiate reactions in time-resolved studies. Here we report the use of droplet miniaturisation for the controlled production of uniform crystals, providing an avenue for controlled diffusion and synchronous reaction initiation. The approach was evaluated using two enzymatic systems, yielding 3-{micro}m lysozyme crystals and 2-{micro}m crystals of Pdx1, an Arabidopsis enzyme involved in vitamin B6 biosynthesis. A seeding strategy was used to overcome the improbability of Pdx1 nucleation occurring with diminishing droplet volumes. Convection within droplets was exploited for rapid crystal mixing with ligands. Mixing times of <2 milliseconds were achieved. Droplet microfluidics for crystal size engineering and rapid micromixing can be used to advance time-resolved serial crystallography.

biochemistry↗

A redox switch allows binding of ferrous and ferric ions in the cyanobacterial iron binding protein FutA from Prochlorococcus

The marine cyanobacterium Prochlorococcus is a main contributor to global photosynthesis, whilst being limited by iron availability. Cyanobacterial genomes typically encode two different types of FutA iron binding proteins: periplasmic FutA2 ABC transporter subunits bind Fe(III), while cytosolic FutA1 binds Fe(II). Owing to their small size and their economized genome Prochlorococcus ecotypes typically possess a single futA gene. How the encoded FutA protein might bind different Fe oxidation states was previously unknown. Here we use structural biology techniques at room temperature to probe the dynamic behavior of FutA. Neutron diffraction confirmed four negatively charged tyrosinates, that together with a neutral water molecule coordinate iron in trigonal bipyramidal geometry. Positioning of the positively charged Arg103 side chain in the second coordination shell yields an overall charge-neutral Fe(III) binding state in structures determined by neutron diffraction and serial femtosecond crystallography. Conventional rotation X-ray crystallography using a home source revealed X-ray induced photoreduction of the iron center with observation of the Fe(II) binding state; here, an additional positioning of the Arg203 side chain in the second coordination shell maintained an overall charge neutral Fe(II) binding site. Dose series using serial synchrotron crystallography and an XFEL X-ray pump-probe approach capture the transition between Fe(III) and Fe(II) states, revealing how Arg203 operates as a switch to accommodate the different iron oxidation states. This switching ability of the Prochlorococcus FutA protein may reflect ecological adaptation by genome streamlining and loss of specialized FutA proteins. Significance StatementOceanic primary production by marine cyanobacteria is a main contributor to carbon and nitrogen fixation. Prochlorococcus is the most abundant photosynthetic organism on Earth, with an annual carbon fixation comparable to the net global primary production from agriculture. Its remarkable ecological success is based on the ability to thrive in low nutrient waters. To manage iron limitation, Prochlorococcus possesses the FutA protein for iron uptake and homeostasis. We reveal a molecular switch in the FutA protein that allows it to accommodate binding of iron in either the Fe(III) or Fe(II) state using structural biology techniques at room temperature and provide a plausible mechanism for iron binding promiscuity.

biophysics↗