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Biology subjects

Lahlou, A.

Publications and source records attributed to Lahlou, A..

3 recordsLinked to original sources

Non-covalent reversibly photoconvertible fluorescent tags for wash-free protein labeling

Reversibly photoswitchable fluorophores are widely used in advanced bioimaging but their design remains demanding. Here, we introduce a new series spanning the whole visible range, which results from combining a large set of fluorogens with the FAST protein scaffold. We first demonstrate that these well-established labeling fluorescent protein tags turn into negative reversible photoswitchers upon decreasing the fluorogen concentration and increasing light intensity. We then show that using not anymore one but two fluorogens adds new responses to illumination. Thus, we obtain positive reversible photoswitchers, that increase their brightness under illumination. We also generate a palette of non-covalent reversibly photoconvertible fluorescent proteins changing their fluorescence color upon illumination, a reversible behavior that still remains absent in regular fluorescent proteins. This light-induced color change opens the possibility to discriminate six spectrally similar FAST variants in live cells upon demonstrating the superiority of using multiple spectral channels for exploiting the time dependence of the fluorescence response to illumination.

biophysics↗

Photoejection turns non-covalent fluorescent tags into negative reversible photoswitchers

Reversibly photoswitchable fluorophores have enabled a broad range of applications in advanced fluorescence bioimaging. Here, we introduce RSpFAST, a new class of reversibly photoswitchable fluorescent labels that combine a biomolecular host (pFAST protein tag) with a reversibly photoisomerizable guest (fluorogen), allowing fluorescence brightness to be modulated through illumination and molecular complexation. We combine thermokinetic, photochemical, and structural investigations to obtain a comprehensive mechanistic and kinetic understanding of RSpFAST. Building on this theoretical framework, we demonstrate in both live and fixed cells that RSpFAST exhibits an unprecedented dual behavior: a stable and wash-free fluorescent labeling tag turns into a negative reversible photoswitcher by lowering the fluorogen concentration and increasing light intensity. In this photoejection-driven kinetic regime, RSpFAST is shown to be an efficient marker for dynamic contrast and super-resolution microscopy.

biochemistry↗

Interplay between high-energy quenching and state transitions in Chlamydomonas reinhardtii: a single-cell approach

Studying cell-to-cell heterogeneity is essential to understand how unicellular organisms respond to stresses. We introduce a single-cell analysis framework that enables the study of intercellular heterogeneity of photosynthetic traits, particularly their interactions within individual cells that have identical genotypes, cellular contexts and histories. Our approach combines single-cell imaging of chlorophyll a fluorescence with machine learning and we study light stress responses in Chlamydomonas reinhardtii as a proof-of- concept. This framework allows us to score the extent of high-light responses such as state transitions (qT) and high-energy quenching (qE), to reveal significant cell-to-cell heterogeneity and to reveal a strong correlation between qT and qE, undetectable in bulk measurements. This study highlights the value of single-cell phenotypic analysis for for investigating light stress responses in unicellular organisms. We detail the key aspects that come into play to generalize the method to other complex stress responses involving multiple traits.

biophysics↗