Abstract
A revolution has taken over the world of cryo-electron microscopy for the last years, by dint of a major breakthrough both in technology, with the rise of new microscopes and cameras, and in image processing. With the advent of high-end microscopes, mechanically and electronically more stable, one can expect to record an initial data set of thousand images in few days, thanks to automated acquisition. Besides, the new direct electron detectors can not only record images, but also movies with a better sensitivity than the one we used to have. The movie processing revealed the existence of a beam-induced motion occurring during acquisition. The correction of the motion through frame alignment improves significantly the quality of data. Thus, cryo-electron microscopy was only limited to a middle resolution range (5 to 15 Å) until two or three years ago, when several density maps above 4 Å started to appear, allowing the building of atomic model using tools that were only restricted to X-ray crystallography.In this context, I have studied the structural organization of three plant viruses, using cryo-electron microscopy and image processing:-Arabis Mosaic Virus (ArMV), it’s a Nepovirus only transmitted by the nematode Xiphinema diversicaudatum, responsible for disease of vineyards.-Broad Bean Stain Virus (BBSV), it’s a Comovirus transmitted by beetles, responsible for the degeneration of leguminous plants.-Cauliflower Mosaic Virus (CaMV), it’s a Caulimovirus used as model to characterize the transmission of non circulative viruses.Viruses are obligate intracellular parasites, which efficiency is directly related to its replicative capacity inside the infected cell, and its transmission to new hosts. Due to the immobility of plants, plant viruses often use vectors for the transmission plant to plant, which are mainly insects, nematodes, fungi or mites. Plant viruses are generally responsible for a significant decrease in plant and fruit growth, and even the death of the plant. The plant viruses are devasting fields worldwide, causing huge loss in crop yield each year. This study highlights the atomic structures of ArMV and BBSV, as well as the first data about the CaMV capsid and its transmission protein.