Electrical synapseAn electrical synapse is a mechanical and electrically conductive link between two neighboring neurons that is formed at a narrow gap between the pre- and postsynaptic neurons known as a gap junction. At gap junctions, such cells approach within about 3.8 nm of each other, a much shorter distance than the 20- to 40-nanometer distance that separates cells at chemical synapse. In many animals, electrical synapse-based systems co-exist with chemical synapses.
Guidage axonalLe guidage axonal est une branche du neurodéveloppement. Elle étudie comment les axones parviennent à trouver leurs cellules cibles notamment grâce aux cônes de croissance. Le principe élémentaire du guidage axonal repose sur la chemoattraction et la chemorepulsion : Le cône de croissance est attiré par des molécules présentes dans le milieu extracellulaire et sécrétées par les cellules de sa zone de destination (ex: des facteurs de croissance).
Neuronethumb|537x537px|Schéma complet d’un neurone. Un neurone, ou une cellule nerveuse, est une cellule excitable constituant l'unité fonctionnelle de la base du système nerveux. Les neurones assurent la transmission d'un signal bioélectrique appelé influx nerveux. Ils ont deux propriétés physiologiques : l'excitabilité, c'est-à-dire la capacité de répondre aux stimulations et de convertir celles-ci en impulsions nerveuses, et la conductivité, c'est-à-dire la capacité de transmettre les impulsions.
Pioneer axonPioneer axon is the classification given to axons that are the first to grow in a particular region. They originate from pioneer neurons, and have the main function of laying down the initial growing path that subsequent growing axons, dubbed follower axons, from other neurons will eventually follow. Several theories relating to the structure and function of pioneer axons are currently being explored. The first theory is that pioneer axons are specialized structures, and that they play a crucial role in guiding follower axons.
Reticular theoryReticular theory is an obsolete scientific theory in neurobiology that stated that everything in the nervous system, such as brain, is a single continuous network. The concept was postulated by a German anatomist Joseph von Gerlach in 1871, and was most popularised by the Nobel laureate Italian physician Camillo Golgi. However, the theory was refuted by later observations of a Spanish pathologist Santiago Ramón y Cajal, using a staining technique discovered by Golgi, which showed that nervous tissue, like other tissues, is made of discrete cells.