EpendymaThe ependyma is the thin neuroepithelial (simple columnar ciliated epithelium) lining of the ventricular system of the brain and the central canal of the spinal cord. The ependyma is one of the four types of neuroglia in the central nervous system (CNS). It is involved in the production of cerebrospinal fluid (CSF), and is shown to serve as a reservoir for neuroregeneration. The ependyma is made up of ependymal cells called ependymocytes, a type of glial cell.
ParamécieLes paramécies sont des eucaryotes unicellulaires constituant le genre Paramecium, de la famille des (embranchement des Ciliés, division des Alvéolés). Certaines espèces, dont , sont souvent utilisées comme organisme modèle dans les laboratoires de microbiologie. On les élevait autrefois sous forme d'infusoires pour les besoins scolaires (découverte des micro-organismes en sciences naturelles), ou en aquariophilie pour nourrir les alevins. Le terme paramécie dérive du grec (« oblong, ovale »).
MechanosensationMechanosensation is the transduction of mechanical stimuli into neural signals. Mechanosensation provides the basis for the senses of light touch, hearing, proprioception, and pain. Mechanoreceptors found in the skin, called cutaneous mechanoreceptors, are responsible for the sense of touch. Tiny cells in the inner ear, called hair cells, are responsible for hearing and balance. States of neuropathic pain, such as hyperalgesia and allodynia, are also directly related to mechanosensation.
Flux axoplasmiqueLe flux axoplasmique ou transport axonal désigne le transport des macromolécules, et en particulier des protéines, le long de l'axone des neurones, soit dans le sens antérograde, du corps cellulaire vers la synapse, soit dans le sens inverse, dit rétrograde. Ce double flux directionnel a été mis en évidence en 1971 par Liliana Lubińska. Suivant les mécanismes impliqués, ces flux peuvent être rapides (quelques microns par seconde) ou lents (environ cent fois moins vite).
Plexus choroïdesLes plexus choroïdes forment des structures, des parois, des ventricules du cerveau où le liquide cérébrospinal est sécrété. C'est un lacis de vaisseaux sanguins capillaires poreux (on dit qu'ils sont fenestrés), entourés d'épendymocytes (ou cellules épendymaires) qui constituent un tissu similaire à un épithélium. La porosité des capillaires permet au sang d'arriver aux épendymocytes, mais pas au-delà. Les plexus choroïdes fabriquent le liquide cérébrospinal en laissant passer certaines molécules, et en bloquant d'autres.
Olfactory receptor neuronAn olfactory receptor neuron (ORN), also called an olfactory sensory neuron (OSN), is a sensory neuron within the olfactory system. Humans have between 10 and 20 million olfactory receptor neurons (ORNs). In vertebrates, ORNs are bipolar neurons with dendrites facing the external surface of the cribriform plate with axons that pass through the cribriform foramina with terminal end at olfactory bulbs. The ORNs are located in the olfactory epithelium in the nasal cavity.
NephronophthisisNephronophthisis is a genetic disorder of the kidneys which affects children. It is classified as a medullary cystic kidney disease. The disorder is inherited in an autosomal recessive fashion and, although rare, is the most common genetic cause of childhood kidney failure. It is a form of ciliopathy. Its incidence has been estimated to be 0.9 cases per million people in the United States, and 1 in 50,000 births in Canada. Infantile, juvenile, and adolescent forms of nephronophthisis have been identified.
Nanoscopic scaleThe nanoscopic scale (or nanoscale) usually refers to structures with a length scale applicable to nanotechnology, usually cited as 1–100 nanometers (nm). A nanometer is a billionth of a meter. The nanoscopic scale is (roughly speaking) a lower bound to the mesoscopic scale for most solids. For technical purposes, the nanoscopic scale is the size at which fluctuations in the averaged properties (due to the motion and behavior of individual particles) begin to have a significant effect (often a few percent) on the behavior of a system, and must be taken into account in its analysis.
Paramecium caudatumParamecium caudatum is a species of unicellular protist in the phylum Ciliophora. They can reach 0.33 mm in length and are covered with minute hair-like organelles called cilia. The cilia are used in locomotion and feeding. The species is very common, and widespread in marine, brackish and freshwater environments. Paramecium caudatum is 170–330 micrometres long (usually 200–300 micrometres). The cell body is spindle-shaped, rounded at the front, tapering at the posterior to a blunt point.