bioRxiv Science⌕ Search

Biology subjects

Bey, H.

Publications and source records attributed to Bey, H..

2 recordsLinked to original sources

Label-free virus-antibody interaction monitoring in real-time by common-path interferometry

Viruses can affect all life forms, raising concerns about virus detection and quantification of small nanoparticles. In this paper we use a label-free, full-field, incoherently illuminated common path interferometric method to detect, track, and quantify biotic nanoparticles. The detection consists of amplifying the light scattered by single nanoparticles in the sample solution. Then, the use of single-particle tracking analysis is used to monitor the change in particle diffusive mobility. With this approach, the recognition signature of T5 phages with purified antibodies targeting the major capsid protein is detected in a few minutes. We also tracked the interaction between SPP1 phages and physiological non-purified serum-containing multiples antibodies molecules. The first interactions occur after around one minute, and the recognition signature is detectable after minutes. In addition, we have been able to differentiate two populations of similar size of empty and full (encapsulating DNA) capsids of T5 in a heterogeneous solution demonstrating the robustness of this label-free detection approach. Furthermore, by combining the diffusion coefficient to the number of tracked particles, we were able to estimate the affinity of the virus-antibodies reaction.

biophysics↗

Dynamic Cell Imaging: application to the diatom Phaeodactylum tricornutum under environmental stresses

The dynamic movement of cell organelles is an important and poorly understood component of cellular organisation and metabolism. In this work we present a non-invasive non-destructive method (Dynamic Cell Imaging, DCI) based on light scattering and interferometry to monitor dynamic events within photosynthetic cells using the diatom Phaeodactylum tricornutum as a model system. For this monitoring we acquire few seconds movies of the signals that are related to the motion of dynamic structures within the cell (denoted scatterers), followed by a statistical analysis of each pixel time series. Illuminating P.tricornutum with LEDs of different wavelengths associated to short pulsed or continuous-wave modes of illumination revealed that dynamic movements depend on chloroplast activity, in agreement with the reduction in the number of pixels with dynamic behaviour after addition of photosystemII inhibitors. We studied P. tricornutum under two environmentally relevant stresses, iron and phosphate deficiency. The major dynamic sites were located within lipid droplets and chloroplast envelope membranes. By comparing standard deviation and cumulative sum analysis of the time series, we showed that within the droplets two types of scatterer movement could be observed: random motions (Brownian type) but also anomalous movements corresponding to a drift which may relate to molecular fluxes within a cell. The method appears valuable for studying the effects of various environments on a large variety of microalgae in the laboratory as well as in natural aquatic environments. HIGHLIGHTsLight scattering an alternative to fluorescence to rapidly evidence dynamic processes. Lipid droplets the major metabolic active sites under stress A non-destructive visualisation method for laboratory microalgae and aquatic samples.. SIGNIFICANCE STATEMENTLight scattering could be an alternative to fluorescence techniques to study dynamic processes within photosynthetic cells. We used a method combining light scattering and interferometry to analyse movements of intracellular scatterers in the marine diatom Phaedactylum tricornutum under two environmentally relevant stresses, iron and phosphate deficiency. Lipid droplets were the major active sites under stress. The method which is rapid and non destructive can be broadly expanded to study other microalgae and their stress responses, in the laboratory and in aquatic environments.

microbiology↗