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Biology subjects

Kostrz, D.

Publications and source records attributed to Kostrz, D..

3 recordsLinked to original sources

Competition between glycine and GABAA receptors for gephyrin controls their equilibrium populations at inhibitory synapses

Glycine and GABA receptors are ligand-gated chloride channels that mediate inhibitory neurotransmission throughout the central nervous system. The receptors co-localise widely at inhibitory synapses in the spinal cord and in the brainstem due to their interaction with an overlapping binding site of the synaptic scaffold protein gephyrin, pointing to a direct competition between the different receptor types. We have put this hypothesis to the test using single molecule approaches to measure receptor-gephyrin interactions in cells and in vitro. We explored the effects of receptor competition at inhibitory synapses in living neurons by measuring the change in the accumulation and effective stabilisation energy of glycine receptors in the presence of interfering GABA receptor complexes through single molecule tracking and diffusion analysis. Secondly, using molecular tweezers, we quantified the thermodynamic properties of receptor-gephyrin binding, demonstrating direct and reversible competition through the addition of interacting peptides in solution. The relatively low affinity of GABA receptor subunits for gephyrin compared to the glycine receptor raises interesting questions about the role of this competition in synaptic plasticity. We hypothesize that GABA and glycine receptor competition constitutes a molecular system designed to reconcile synapse stability and plasticity at mixed inhibitory synapses.

neuroscience↗

Modulation of SARS-CoV-2 spike binding to ACE2 throughconformational selection

The first step of SARS-CoV-2 infection involves the interaction between the trimeric viral spike protein (S) and the host angiotensin-converting enzyme 2 (ACE2). The receptor binding domain (RBD) of S adopts two conformations: open and closed, respectively, accessible and inaccessible to ACE2. Therefore, RBD motions are suspected to affect ACE2 binding; yet a quantitative description of the underlying mechanism has been elusive. Here, using single-molecule approaches, we visualize RBD opening and closing and probe the S/ACE2 interaction. Our results show that RBD dynamics affect ACE2 binding but not unbinding. The resulting modulation is quantitatively predicted by a conformational selection model in which each protomer behaves independently. Our work reveals a general molecular mechanism affecting binding affinity without altering binding strength, helping to understand coronavirus infection and immune evasion.

biophysics↗

Combining DNA scaffolds and acoustic force spectroscopy to characterize individual protein bonds

Single-molecule data are of great significance in biology, chemistry, and medicine. However, experimental tools to characterize, in a multiplexed manner, protein bond rupture under force are needed. Acoustic force spectroscopy (AFS) is an emerging manipulation technique which generates acoustic waves to apply force in parallel on a large population of microbeads tethered to a surface. We have exploited this configuration on a recently developed modular Junctured-DNA (J-DNA) scaffold designed to study protein-protein interactions at the single-molecule level. By applying repetitive constant force steps on the FKBP12-rapamycin-FRB complex, we measured its unbinding kinetics under force at the single-bond level. Special effort was made in analyzing the data in order to identify potential pitfalls. We established a calibration method allowing in situ force determination during the course of the unbinding measurement. We compare our results with well established techniques, such as magnetic tweezers, to ensure their accuracy. We also apply our strategy for measuring the force dependent rupture of a single domain antibody with its antigen. We get a good agreement with standard measurement at zero force. Our technique offers single molecule precision for multiplexed measurements of interactions of biotechnological and medical interest.

biophysics↗