139 resultados para Rectangular patch
Resumo:
Spontaneous polarization without spatial cues, or symmetry breaking, is a fundamental problem of spatial organization in biological systems. This question has been extensively studied using yeast models, which revealed the central role of the small GTPase switch Cdc42. Active Cdc42-GTP forms a coherent patch at the cell cortex, thought to result from amplification of a small initial stochastic inhomogeneity through positive feedback mechanisms, which induces cell polarization. Here, I review and discuss the mechanisms of Cdc42 activity self-amplification and dynamic turnover. A robust Cdc42 patch is formed through the combined effects of Cdc42 activity promoting its own activation and active Cdc42-GTP displaying reduced membrane detachment and lateral diffusion compared to inactive Cdc42-GDP. I argue the role of the actin cytoskeleton in symmetry breaking is not primarily to transport Cdc42 to the active site. Finally, negative feedback and competition mechanisms serve to control the number of polarization sites.
Resumo:
A long-standing question in biology and economics is whether individual organisms evolve to behave as if they were striving to maximize some goal function. We here formalize this "as if" question in a patch-structured population in which individuals obtain material payoffs from (perhaps very complex multimove) social interactions. These material payoffs determine personal fitness and, ultimately, invasion fitness. We ask whether individuals in uninvadable population states will appear to be maximizing conventional goal functions (with population-structure coefficients exogenous to the individual's behavior), when what is really being maximized is invasion fitness at the genetic level. We reach two broad conclusions. First, no simple and general individual-centered goal function emerges from the analysis. This stems from the fact that invasion fitness is a gene-centered multigenerational measure of evolutionary success. Second, when selection is weak, all multigenerational effects of selection can be summarized in a neutral type-distribution quantifying identity-by-descent between individuals within patches. Individuals then behave as if they were striving to maximize a weighted sum of material payoffs (own and others). At an uninvadable state it is as if individuals would freely choose their actions and play a Nash equilibrium of a game with a goal function that combines self-interest (own material payoff), group interest (group material payoff if everyone does the same), and local rivalry (material payoff differences).
Resumo:
The adult dentate gyrus produces new neurons that morphologically and functionally integrate into the hippocampal network. In the adult brain, most excitatory synapses are ensheathed by astrocytic perisynaptic processes that regulate synaptic structure and function. However, these processes are formed during embryonic or early postnatal development and it is unknown whether astrocytes can also ensheathe synapses of neurons born during adulthood and, if so, whether they play a role in their synaptic transmission. Here, we used a combination of serial-section immuno-electron microscopy, confocal microscopy, and electrophysiology to examine the formation of perisynaptic processes on adult-born neurons. We found that the afferent and efferent synapses of newborn neurons are ensheathed by astrocytic processes, irrespective of the age of the neurons or the size of their synapses. The quantification of gliogenesis and the distribution of astrocytic processes on synapses formed by adult-born neurons suggest that the majority of these processes are recruited from pre-existing astrocytes. Furthermore, the inhibition of astrocytic glutamate re-uptake significantly reduced postsynaptic currents and increased paired-pulse facilitation in adult-born neurons, suggesting that perisynaptic processes modulate synaptic transmission on these cells. Finally, some processes were found intercalated between newly formed dendritic spines and potential presynaptic partners, suggesting that they may also play a structural role in the connectivity of new spines. Together, these results indicate that pre-existing astrocytes remodel their processes to ensheathe synapses of adult-born neurons and participate to the functional and structural integration of these cells into the hippocampal network.
Resumo:
Récemment encore, la neuro-genèse chez le primate adulte était supposée limitée aux régions précises que sont le bulbe olfactif, la zone sous-granulaire de l'hippocampe et la région sous- ventriculaire. Depuis lors, des cellules neurales progénitrices distribuées dans l'ensemble du cortex du primate adulte furent mises en évidence. Cultivées in vitro, ces cellules forment des écosystèmes cellulaires nerveux constitués de progéniteurs neuronaux, d'astrocytes et d'oligo- dendrocytes. Transplantés sur un modèle de primate parkinsonien, certains progéniteurs complètent leur différentiation en neurones matures et développent des propriétés neuro- trophiques et neuro-protectrices. Injectées aux environs d'une lésion cérébrale, ces cellules offrent un bénéfice fonctionnel et comportemental significatif. Le présent projet mesure l'activité électro-physiologique du tissu nerveux obtenu par culture de biopsies corticales humaines adultes, de sorte à déterminer son aptitude à intégrer l'information. Des biopsies corticales humaines adultes furent cultivées in vitro avec succès sur un support Micro-Electrode-Array. Cette technologie permet l'acquisition d'enregistrements électro- physiologiques à l'échelle des circuits, au sein d'un tissu maintenu en culture. En parallèle, une mesure de l'activité à l'échelle cellulaire fut obtenue par l'application du Patch Clamp à des cellules cultivées sur un support de verre. Malgré une culture prolongée et l'induction d'une différentiation neuronale, aucune activité électro-physiologique significative ne put être démontrée. Une analyse phénotypique à un stade intermédiaire de culture montra l'expression prometteuse du marqueur neuronal précoce β-Tubulin-III. Cependant, après l'induction d'une différenciation neuronale, la surprenante co-expression de marqueurs astroglial (GFAP) et neuronal (MAP2) fut constatée. Le silence électro-physiologique issu des enregistrements sur MEA peut être l'oeuvre d'un isolement des cellules électriquement actives, et d'un défaut d'organisation en réseau. Une interposition de tissu glial entre neurones et électrodes peut également absorber le signal. Par ailleurs, les cellules enregistrées par Patch Clamp furent déterminées selon le seul critère morphologique ; leur nature exacte demeure inconnue. Les analyses phénotypiques laissent supposer l'entrée dans une voie de maturation neuronale par l'expression du marqueur β- Tubulin-III. Toutefois le phénotype exprimé au terme du processus de culture reste incertain. Des facteurs de maturation ou environnementaux semblent faire défaut à la complétion d'une différentiation neuronale. La culture de neurones bien différenciés et électriquement actifs appelle de nouvelles études in vivo, ainsi qu'une analyse fine des voies intracellulaires de maturation.