The structure of neuronal circuits drives their function and our ability to investigate and understand the mechanisms governing their development, organization, adaptation and dysfunction has remained very limited. The access to these dense and intricate structures is conditioned by technology that can simultaneously offer nanometre scale spatial resolution and coverage of milimetre sized tissue volumes. Electron microscopy has remained the only technology capable of offering the necessary spatial resolution to resolve all neurites and synapses, but the perspective of imaging a full mammalian brain in a reasonable time frame remains out of reach with existing setups. Generating multiple maps of full neuronal circuits is essential for advancing our understanding of brain function, for finding ways to prevent and treat neurological diseases or to translate the extraordinary efficiency of the brain into novel designs of computer architectures. Our goal is to develop scalable coherent X-ray microscopy capable to image rapidly neuronal tissues with synaptic resolution.