Molecular pathological epidemiologyMolecular pathological epidemiology (MPE, also molecular pathologic epidemiology) is a discipline combining epidemiology and pathology. It is defined as "epidemiology of molecular pathology and heterogeneity of disease". Pathology and epidemiology share the same goal of elucidating etiology of disease, and MPE aims to achieve this goal at molecular, individual and population levels. Typically, MPE utilizes tissue pathology resources and data within existing epidemiology studies.
Molecular epidemiologyMolecular epidemiology is a branch of epidemiology and medical science that focuses on the contribution of potential genetic and environmental risk factors, identified at the molecular level, to the etiology, distribution and prevention of disease within families and across populations. This field has emerged from the integration of molecular biology into traditional epidemiological research. Molecular epidemiology improves our understanding of the pathogenesis of disease by identifying specific pathways, molecules and genes that influence the risk of developing disease.
Molecular diagnosticsMolecular diagnostics is a collection of techniques used to analyze biological markers in the genome and proteome, and how their cells express their genes as proteins, applying molecular biology to medical testing. In medicine the technique is used to diagnose and monitor disease, detect risk, and decide which therapies will work best for individual patients, and in agricultural biosecurity similarly to monitor crop- and livestock disease, estimate risk, and decide what quarantine measures must be taken.
Population structure (genetics)Population structure (also called genetic structure and population stratification) is the presence of a systematic difference in allele frequencies between subpopulations. In a randomly mating (or panmictic) population, allele frequencies are expected to be roughly similar between groups. However, mating tends to be non-random to some degree, causing structure to arise. For example, a barrier like a river can separate two groups of the same species and make it difficult for potential mates to cross; if a mutation occurs, over many generations it can spread and become common in one subpopulation while being completely absent in the other.
Génétique des populationsLa génétique des populations (GDP) est l'étude de la distribution et des changements de la fréquence des versions d'un gène (allèles) dans les populations d'êtres vivants, sous l'influence des « pressions évolutives » (sélection naturelle, dérive génétique, recombinaison, mutation, et migration). Les changements de fréquence des allèles sont un aspect majeur de l'évolution, la fixation de certains allèles conduit à une modification génétique de la population, et l'accumulation de tels changements dans différentes populations peut conduire au processus de spéciation.
Regeneration in humansRegeneration in humans is the regrowth of lost tissues or organs in response to injury. This is in contrast to wound healing, or partial regeneration, which involves closing up the injury site with some gradation of scar tissue. Some tissues such as skin, the vas deferens, and large organs including the liver can regrow quite readily, while others have been thought to have little or no capacity for regeneration following an injury. Numerous tissues and organs have been induced to regenerate.
TranscriptomiqueLa transcriptomique est l'étude de l'ensemble des ARN messagers produits lors du processus de transcription d'un génome. Elle repose sur la quantification systématique de ces ARNm, ce qui permet d'avoir une indication relative du taux de transcription de différents gènes dans des conditions données. Plusieurs techniques permettent d'avoir accès à cette information, en particulier celle des puces à ADN, celle de la PCR quantitative ou encore celle du séquençage systématique d'ADN complémentaires. Métatransc
HoméostasieEn biologie et en systémique, l’homéostasie est un phénomène par lequel un facteur clé (par exemple, la température) est maintenu autour d'une valeur bénéfique pour le système considéré, grâce à un processus de régulation. Des exemples typiques d'homéostasie sont : la température d'une pièce grâce à un thermostat, la température du corps d'un animal homéotherme, le taux de sucre sanguin, le degré d'acidité d'un milieu, la pression interne d'un milieu, etc.
Effective population sizeThe effective population size (Ne) is a number that, in some simplified scenarios, corresponds to the number of breeding individuals in the population. More generally, Ne is the number of individuals that an idealised population would need to have in order for some specified quantity of interest (typically change of genetic diversity or inbreeding rates) to be the same as in the real population. Idealised populations are based on unrealistic but convenient simplifications such as random mating, simultaneous birth of each new generation, constant population size, and equal numbers of children per parent.
Pyramide des âgesLa pyramide des âges est un mode de représentation graphique de la structure (sexe, âge) d'une population qui constitue une image synthétique du passé, du présent et du futur de celle-ci. Cette représentation dérivée de l'histogramme prend la forme générale d'un strobiloïde (grosso modo, une toupie vue en coupe). Et peut avoir plusieurs formes différents, en as de pique, trèfle et bien d'autres. La pyramide des âges représente la répartition par sexe et âge de la population à un instant donné.