Search bioRxiv⌕ Search

Biology subjects

Gora, R. J.

Publications and source records attributed to Gora, R. J..

2 recordsLinked to original sources

Multifocal two-photon excitation fluorescence microscopy reveals hop diffusion of H-Ras membrane anchors in epidermal cells of zebrafish embryos

Developments in fluorescence microscopy techniques have enabled imaging of individual fluorescently labelled proteins in biological systems, and in the current study, a single-molecule microscopy (SMM) technique has been applied in vivo, using the zebrafish embryo model. We have used multifocal two-photon excitation fluorescence microscopy (2PEFM) to study the dynamics of a GFP-fused H-Ras membrane-anchoring domain, GFP-C10H-Ras, in the epidermal cells of living embryos. In previous studies, a fast and a slow diffusing population of GFP-C10H-Ras molecules had been found. The application of the multifocal 2PEFM technique enabled us to focus on the slow diffusing population, which appears to occur in clusters that diffuse within microdomains of the epidermal cell membranes. Based on their mobility on a short timescale ([≤] 1s) we could distinguish between a subpopulation that was diffusing and one that was virtually immobile. Owing to the multifocal 2PEFM imaging mode, we were able to dramatically reduce photobleaching which enabled us to follow the GFP-C10H-Ras particles over a prolonged time (> 3 s) and reconstruct their molecular trajectories of the diffusing subpopulation. These trajectories exhibited that the C10H-Ras particles continuously switch between a diffusing state and brief bursts of increased diffusion. As a result, they display an anomalous mobility pattern that can be referred to as hop diffusion. Taken together, this study demonstrates that multifocal 2PEFM offers a powerful approach to studying individual particles for prolonged periods of time, and that using this approach we were able to uncover the hopping behavior of GFP-C10H-Ras. SUMMARY STATEMENTBy application of the two-photon excitation single-molecule microscopy to living zebrafish embryos, anomalous diffusion modes of individual H-Ras membrane anchors in epidermal cells were found.

biophysics↗

Analysis of the H-Ras mobility pattern in vivo shows cellular heterogeneity inside epidermal tissue

Over the last two decades, developments in single-molecule microscopy (SMM) have enabled imaging and tracking of individual, fluorescently labelled proteins in biological systems, and most of these studies have focused on the analysis of protein mobility patterns inside cultured cells. In the present study, SMM was applied in vivo, using the zebrafish embryo model. We studied the protein dynamics of the membrane protein H-Ras, mutants of this protein, and its membrane-anchoring domain, C10H-Ras, in epidermal cells of living two-day-old embryos, using a total internal reflection fluorescence microscopy (TIRFM) setup. For all proteins studied, our results consistently confirm the presence of a fast- and a slow-diffusing subpopulations of molecules, which both confine to microdomains within the plasma membrane. Although the mobility patterns of H-Ras, mutants of this proteins and its membrane-anchoring domain were remarkably similar, the constitutively active H-Ras mutant, H-RasV12, exhibited significantly higher diffusion rates than the wild-type H-Ras and its inactive mutant, H-RasN17. Ultimately, we characterized variability in our data obtained using the zebrafish embryo model and demonstrated that differences between cells within the same embryo are the largest source of variation in our data. Our findings are in line with a model in which the cellular architecture of individual cells within a tissue determine the mobility of H-Ras proteins anchored in the plasma membrane cytoplasmic leaflet. Thereby, our results underline the growing importance of performing SMM imaging in vivo in order to better understand factors influencing the protein dynamics in an intact living organism. SUMMARY STATEMENTBy application of single-molecule microscopy to living zebrafish embryos, factors altering the in vivo dynamics of H-Ras proteins in epidermal cells were analyzed.

biophysics↗