Search bioRxiv⌕ Search

Biology subjects

Fuertes, G.

Publications and source records attributed to Fuertes, G..

5 recordsLinked to original sources

A chemically reactive and Raman-active non-canonical amino acid reveals photocycle complexity in a blue-light receptor

Photosensory protein function spans multiple time and length scales, demanding integrative approaches. We introduce 4-diacetylenyl-phenylalanine (DAF), a dual-purpose non-canonical amino acid (ncAA) that enables both chemical control and spectroscopic readout of photoreceptor dynamics. Genetically encoded in E. coli, DAF combines a reactive diyne for bioorthogonal ligations (thiols, azides, tetrazines) with a strong, solvatochromic Raman signal in the cell-silent region. Applied to the light-oxygen-voltage (LOV) transcription factor EL222, DAF enables multifaceted interrogation of its photocycle. We engineer a covalently cross-linked variant that suppresses light-driven conformational changes and DNA binding, and generate a donor-acceptor construct for Forster resonance energy transfer (FRET) tracking of photoinduced structural dynamics. Time-resolved stimulated Raman spectroscopy following flavin mononucleotide (FMN) excitation reveals additional processes -from vibrational energy transfer to local unfolding-spanning femtoseconds to milliseconds. DAF thus constitutes a versatile tool to resolve protein dynamics with high spatiotemporal resolution.

biochemistry↗

Learning the structural diversity in random protein sequence space

The universe of possible protein sequences is astronomically large, yet our understanding of the sequence-structure relationship is confined to the infinitesimal fraction used currently by life. Determining whether "foldable" architectures are rare singularities or accessible solutions is critical for understanding protein evolution and designing novel proteins. Here, we map the structural landscape of random sequence space by screening one million synthetic proteins using a high-throughput in vivo FRET biosensor. We reveal that this space is structurally heterogeneous, populated not only by disordered chains and stress-inducing aggregates but also by "benign" compact structures that resemble globular proteins and evade cellular chaperone responses. By training machine learning models on these phenotypes, we show that structural potential is learnable and generalizes to natural proteomes. These findings demonstrate that biology-like folds are accessible from random sequences with surprising frequency, providing data required to expand generative protein design beyond evolutionary priors.

synthetic biology↗

Pancreatic cancer metastasis is regulated by an eleven amino-acid sequence

Pancreatic ductal adenocarcinoma (PDAC) has a very poor prognosis with a 5-year survival rate less than 5% because of its ability to metastasise, its late detection and the lack of effective therapies. The Integrin v{beta}6 is highly overexpressed in PDAC and correlates with poor prognosis. The integrin {beta}6 subunit contains a unique C-terminal tail of 11 amino acids (aa) that regulates downstream signals, although the mechanism remains unclear. Here, using integrin {beta}6-deficient cells lines, we have developed two PDAC mouse models overexpressing the full-length {beta}6 and a mutant {beta}6 lacking the C-terminal 11aa (v{Delta}{beta}6). In vitro, v{beta}6 overexpression increased cell proliferation, migration and invasion in a 3D spheroid model. The elimination of the C-terminal 11aa decreased proliferation and totally impaired cell migration and invasion. v{Delta}{beta}6 cells also expressed reduced MMPs in vitro. In vivo, orthotopic implantation of v{beta}6 overexpressing cells showed decreased overall survival and more spontaneous metastasis compared to v{Delta}{beta}6 and v{beta}6-null cells. Therefore, the C-terminal 11aa of the integrin {beta}6 subunit regulates PDAC progression and metastasis.

cancer biology↗

Light-dependent flavin redox and adduct states control the conformation and DNA binding activity of the transcription factor EL222

The activity of the transcription factor EL222 is regulated through protein-chromophore adduct formation, interdomain dynamics, oligomerization and protein-DNA interactions, all triggered by photo-excitation of its flavin mononucleotide (FMN) cofactor. To gain molecular-level insight into the photocycle of EL222, we applied complementary methods: macromolecular X-ray crystallography (MX), nuclear magnetic resonance (NMR) spectroscopy, optical spectroscopies (infrared and UV/visible), molecular dynamics/metadynamics (MD/metaD) simulations, and protein engineering using non-canonical amino acids. The observation of only subtle atomic displacements between crystal structures of EL222 with and without blue-light back-illumination, was confirmed by NMR data indicating no major changes in secondary structure and fold compactness. Kinetic experiments in solution provided evidence for two distinct EL222 conformations (lit1 and lit2) that become sequentially populated under illumination. These two lit states were assigned to covalently-bound N5 protonated, and non-covalently-bound hydroquinone forms of FMN, respectively. Molecular modeling revealed differential dynamics and domain separation times arising from the three FMN states (oxidized, adduct, and reduced). Furthermore, while the dark state is largely monomeric, both lit states undergo slow monomer-dimer exchange. The photoinduced loss of -helicity, seen by infrared difference spectroscopy, was ascribed to dimeric EL222 species. Unexpectedly, NMR revealed that all three EL222 species (dark, lit1, lit2) can associate with DNA to some extent, but only under illumination a high population of stable complexes is obtained. Overall, we propose a refined model of EL222 photo-activation where photoinduced changes in the oxidation state of FMN and thioadduct formation shift the population equilibrium towards an open conformation that favors self-association and DNA-binding. Significance StatementFlavin-binding light-oxygen-voltage (LOV) proteins constitute a prominent example of highly evolved chromophore-containing proteins that convert light into biochemical changes in the cell. However, it is not well understood how blue-light orchestrates changes in LOV structure and function. Here we show that the dynamics, oligomerization and DNA-binding properties of the photocontrolled transcription factor EL222 are dependent on both the flavin redox state and thioadduct formation. In the dark, monomeric EL222 forms transient encounter complexes with DNA. Under illumination, two distinct lit states are sequentially generated, termed lit1 and lit2, that are both able to assemble into EL222:DNA (2:1) complexes. Our results reveal the coupling between flavin photochemistry (protonation and covalent linkage) and fold stability in EL222 and potentially other flavoproteins.

biochemistry↗

Genetically encoded non-canonical amino acids reveal asynchronous dark reversion of chromophore, backbone and side-chains in EL222

Photoreceptors containing the light-oxygen-voltage (LOV) domain elicit biological responses upon excitation of their flavin mononucleotide (FMN) chromophore by blue light. The mechanism and kinetics of dark-state recovery are not well understood. Here we incorporated the non-canonical amino acid p-cyanophenylalanine (CNF) by genetic code expansion technology at forty-five positions of the bacterial transcription factor EL222. Screening of light-induced changes in infrared (IR) absorption frequency, electric field and hydration of the nitrile groups identified residues CNF31 and CNF35 as reporters of monomer/oligomer and caged/decaged equilibria, respectively. Time-resolved multi-probe UV/Visible and IR spectroscopy experiments of the lit-to-dark transition revealed four dynamical events. Predominantly, rearrangements around the A helix interface (CNF31 and CNF35) precede FMN-cysteinyl adduct scission, folding of -helices (amide bands), and relaxation of residue CNF151. This study illustrates the importance of characterizing all parts of a protein and suggests a key role for the N-terminal A extension of the LOV domain in controlling EL222 photocycle length. SignificanceThe kinetics of fold switching between non-illuminated and blue-light-irradiated states in the transcription factor EL222 is important for understanding the signal transduction mechanism of LOV photoreceptors. Here we combine two native probes, the FMN chromophore (absorption bands in the UV/Visible region) and the protein backbone (amide bands in the infrared region), with genetically encoded cyano (C{equiv}N)-containing phenylalanine residues as infrared reporters of protein microenvironments. EL222 structural dynamics is more complex than expected if using a single type of probe. Local changes around residues 31 and 35 precede FMN-protein adduct rupture, which in turn precedes the global protein conformational relaxation. Our findings point the way forward to obtaining comprehensive descriptions of kinetic transitions in LOV and other photosensors.

biophysics↗