Cell polarityCell polarity refers to spatial differences in shape, structure, and function within a cell. Almost all cell types exhibit some form of polarity, which enables them to carry out specialized functions. Classical examples of polarized cells are described below, including epithelial cells with apical-basal polarity, neurons in which signals propagate in one direction from dendrites to axons, and migrating cells. Furthermore, cell polarity is important during many types of asymmetric cell division to set up functional asymmetries between daughter cells.
Asymmetric cell divisionAn asymmetric cell division produces two daughter cells with different cellular fates. This is in contrast to symmetric cell divisions which give rise to daughter cells of equivalent fates. Notably, stem cells divide asymmetrically to give rise to two distinct daughter cells: one copy of the original stem cell as well as a second daughter programmed to differentiate into a non-stem cell fate. (In times of growth or regeneration, stem cells can also divide symmetrically, to produce two identical copies of the original cell.
Microelectrode arrayMicroelectrode arrays (MEAs) (also referred to as multielectrode arrays) are devices that contain multiple (tens to thousands) microelectrodes through which neural signals are obtained or delivered, essentially serving as neural interfaces that connect neurons to electronic circuitry. There are two general classes of MEAs: implantable MEAs, used in vivo, and non-implantable MEAs, used in vitro. Neurons and muscle cells create ion currents through their membranes when excited, causing a change in voltage between the inside and the outside of the cell.
PharmacocinétiqueLa , parfois désignée sous le nom de « l'ADME » (voir plus loin) et qui suit la phase biopharmaceutique, a pour but d'étudier le devenir d'une substance active contenue dans un médicament après son administration dans l'organisme. Elle comprend, après la phase biopharmaceutique précédant le premier passage trans-membranaire, quatre grandes étapes : Absorption (A) ; Distribution (D) ; Métabolisme (M) ; Excrétion du principe actif et de ses métabolites (E).
Biologie cellulairethumb|Détection de filaments d'actine dans des cellules animales (immunofluorescence) La biologie cellulaire (anciennement appelée cytologie) est une discipline scientifique qui étudie les cellules, du point de vue structural et fonctionnel, et les utilise pour des applications en biotechnologie. Elle s'intéresse à l'écosystème cellulaire, c'est-à-dire à l'équilibre dynamique et autorégulé des fonctions cellulaires, dans un contexte normal ou perturbé.
Laughlin wavefunctionIn condensed matter physics, the Laughlin wavefunction is an ansatz, proposed by Robert Laughlin for the ground state of a two-dimensional electron gas placed in a uniform background magnetic field in the presence of a uniform jellium background when the filling factor of the lowest Landau level is where is an odd positive integer. It was constructed to explain the observation of the fractional quantum Hall effect, and predicted the existence of additional states as well as quasiparticle excitations with fractional electric charge , both of which were later experimentally observed.
Expérimentation animaleL’expérimentation animale consiste à utiliser des animaux comme substituts ou « modèles » pour mieux comprendre la physiologie d'un organisme et ses réponses à divers facteurs (alimentation, environnement, agents pathogènes) ou substances (pour en tester, vérifier ou évaluer l'efficacité, l'innocuité ou la toxicité). Il s'agit généralement de tenter de prévoir ce qui se passe chez l'espèce humaine sans exposer de personnes humaines aux risques, aux contraintes et aux souffrances (douleurs et/ou stress) susceptibles d'être générées par les expérimentations.
Static forces and virtual-particle exchangeStatic force fields are fields, such as a simple electric, magnetic or gravitational fields, that exist without excitations. The most common approximation method that physicists use for scattering calculations can be interpreted as static forces arising from the interactions between two bodies mediated by virtual particles, particles that exist for only a short time determined by the uncertainty principle. The virtual particles, also known as force carriers, are bosons, with different bosons associated with each force.