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Plasticity supports the remarkable adaptability and robustness of cortical processing. It allows the brain to learn and remember patterns in the sensory world, to refine motor control, to predict and obtain reward, or to recover function after injury. Behind this great flexibility hide a range of plasticity mechanisms, affecting different aspects of neuronal communication. However, little is known about the precise computational roles of some of these mechanisms. Here, we show that the interaction between spike-timing dependent plasticity (STDP), intrinsic plasticity and synaptic scaling enables neurons to learn efficient representations of their inputs. In the context of reward-dependent learning, the same mechanisms allow a neural network to solve a working memory task. Moreover, although we make no any apriori assumptions on the encoding used for representing inputs, the network activity resembles that of brain regions known to be associated with working memory, suggesting that reward-dependent learning may be a central force in working memory development. Lastly, we investigated some of the clinical implications of synaptic scaling and showed that, paradoxically, there are situations in which the very mechanisms that normally are required to preserve the balance of the system, may act as a destabilizing factor and lead to seizures. Our model offers a novel explanation for the increased incidence of seizures following chronic inflammation.
Die Entwicklung des Verständnisses von globaler Ordnung ist eng mit der Etablierung dessen verbunden, was in den Internationalen Beziehungen gemeinhin als „Westfälisches Staatensystem“ bezeichnet wird. Der Abschluss der Westfälischen Friedensverträge im Jahr 1648, die den Beginn einer auf rechtlicher Gleichheit und Selbstbestimmung basierenden internationalen Ordnung in Europa markieren sollen, wird dabei häufig auch als ein zentraler Meilenstein in der Entstehung der spezifischen politischen Praxis „Außenpolitik“ verstanden. Deren konstitutives Merkmal wird insbesondere im Konzept der „Souveränität“ verortet, eine befähigende Eigenschaft politischer Akteure, frei von Fremdeinfluss in einem größeren Kontext unter Herstellung von Innen-/Außen-Grenzen handeln zu können. Somit ist dieser Begriff einer der Grundprämissen, die in der Vorstellung eines „internationalen Systems“ zum Ausdruck kommt, in dem „souveräne“ Akteure in Beziehungen zu anderen „souveränen“ Akteuren treten – also „Außenpolitik“ betreiben. Nun ist die Denkfigur des Westfälischen Staatensystems bereits aus mehreren disziplinären Perspektiven heraus kritisiert worden, dennoch scheint die Vorstellung eines Systems souveräner Nationalstaaten beachtliche Standfestigkeit zu beweisen. Das Westfälische Staatenmodell – mit seinem „master concept“ Souveränität - verbindet das Konzept von politischer Autorität mit Territorialität und Gruppe und stellt somit ein einschlägiges wie analytisch handliches Ordnungsprinzip internationaler Beziehungen bereit. Oder in Stephen Krasners Worten: „it orders the minds of the policy-makers“.
The physical and functional borders of transit peptide-like sequences in secondary endosymbionts
(2010)
Background: Plastids rely on protein supply by their host cells. In plastids surrounded by two membranes (primary plastids) targeting of these proteins is facilitated by an N-terminal targeting signal, the transit peptide. In secondary plastids (surrounded by three or four membranes), transit peptide-like regions are an essential part of a bipartite topogenic signal sequence (BTS), and generally found adjacent to a N-terminally located signal peptide of the plastid pre-proteins. As in primary plastids, for which no wealth of functional information about transit peptide features exists, the transit peptide-like regions used for import into secondary ones show some common features only, which are also poorly characterised. Results: We modified the BTS (in the transit peptide-like region) of the plastid precursor fucoxanthin-chlorophyll a/c binding protein D (FcpD) fused to GFP as model substrate for the characterisation of pre-protein import into the secondary plastids of diatoms. Thereby we show that (i) pre-protein import is highly charge dependent. Positive net charge is necessary for transport across the plastid envelope, but not across the periplastid membrane. Acidic net charge perturbs pre-protein import within the ER. Moreover, we show that (ii) the mature domain of the pre-protein can provide intrinsic transit peptide functions. Conclusions: Our results indicate important characteristics of targeting signals of proteins imported into secondary plastids surrounded by four membranes. In addition, we show a self-targeting mechanism, in which the mature protein domain contributes to the transit peptide function. Thus, this phenomenon lowers the demand for pre-sequences evolved during the course of endosymbiosis.
Within the visual cortex, it has been proposed that interhemispheric interactions serve to re-establish the continuity of the visual field across its vertical meridian (VM) by mechanisms similar to those used by intrinsic connections within a hemisphere. However, other specific functions of transcallosal projections have also been proposed, including contributing to disparity tuning and depth perception. Here, we consider whether interhemispheric connections modulate specific response properties, orientation and direction selectivity, of neurons in areas 17 and 18 of the ferret by combining reversible thermal deactivation in one hemisphere with optical imaging of intrinsic signals and single-cell electrophysiology in the other hemisphere. We found interhemispheric influences on both the strength and specificity of the responses to stimulus orientation and direction of motion, predominantly at the VM. However, neurons and domains preferring cardinal contours, in particular vertical contours, seem to receive stronger interhemispheric input than others. This finding is compatible with interhemispheric connections being involved in horizontal disparity tuning. In conclusion, our results support the view that interhemispheric interactions mainly perform integrative functions similar to those of connections intrinsic to one hemisphere. Key words: cooling deactivation , corpus callosum , ferret , optical imaging , orientation selectivity
Studying the role of human parietal cortex in visuospatial attention with concurrent TMS-fMRI
(2010)
Combining transcranial magnetic stimulation (TMS) with concurrent functional magnetic resonance imaging (fMRI) allows study of how local brain stimulation may causally affect activity in remote brain regions. Here, we applied bursts of high- or low-intensity TMS over right posterior parietal cortex, during a task requiring sustained covert visuospatial attention to either the left or right hemifield, or in a neutral control condition, while recording blood oxygenation-level–dependent signal with a posterior MR surface coil. As expected, the active attention conditions activated components of the well-described “attention network,” as compared with the neutral baseline. Also as expected, when comparing left minus right attention, or vice versa, contralateral occipital visual cortex was activated. The critical new finding was that the impact of high- minus low-intensity parietal TMS upon these visual regions depended on the currently attended side. High- minus low-intensity parietal TMS increased the difference between contralateral versus ipsilateral attention in right extrastriate visual cortex. A related albeit less pronounced pattern was found for left extrastriate visual cortex. Our results confirm that right human parietal cortex can exert attention-dependent influences on occipital visual cortex and provide a proof of concept for the use of concurrent TMS–fMRI in studying how remote influences can vary in a purely top–down manner with attentional demands. Key words: concurrent TMS--fMRI, posterior parietal cortex, statedependence, visuospatial attention
Gamma synchronization has generally been associated with grouping processes in the visual system. Here, we examine in monkey V1 whether gamma oscillations play a functional role in segmenting surfaces of plaid stimuli. Local field potentials (LFPs) and spiking activity were recorded simultaneously from multiple sites in the opercular and calcarine regions while the monkeys were presented with sequences of single and superimposed components of plaid stimuli. In accord with the previous studies, responses to the single components (gratings) exhibited strong and sustained gamma-band oscillations (30–65 Hz). The superposition of the second component, however, led to profound changes in the temporal structure of the responses, characterized by a drastic reduction of gamma oscillations in the spiking activity and systematic shifts to higher frequencies in the LFP (~10% increase). Comparisons between cerebral hemispheres and across monkeys revealed robust subject-specific spectral signatures. A possible interpretation of our results may be that single gratings induce strong cooperative interactions among populations of cells that share similar response properties, whereas plaids lead to competition. Overall, our results suggest that the functional architecture of the cortex is a major determinant of the neuronal synchronization dynamics in V1. Key words: attention , gamma , gratings , oscillation , visual cortex
Understanding how temperature affects cod (Gadus morhua) ecology is important for forecasting how populations will develop as climate changes in future. The effects of spawning-season temperature and habitat size on cod recruitment dynamics have been investigated across the North Atlantic. Ricker and Beverton and Holt stock–recruitment (SR) models were extended by applying hierarchical methods, mixed-effects models, and Bayesian inference to incorporate the influence of these ecosystem factors on model parameters representing cod maximum reproductive rate and carrying capacity. We identified the pattern of temperature effects on cod productivity at the species level and estimated SR model parameters with increased precision. Temperature impacts vary geographically, being positive in areas where temperatures are <5°C, and negative for higher temperatures. Using the relationship derived, it is possible to predict expected changes in population-specific reproductive rates and carrying capacities resulting from temperature increases. Further, carrying capacity covaries with available habitat size, explaining at least half its variability across stocks. These patterns improve our understanding of environmental impacts on key population parameters, which is required for an ecosystem approach to cod management, particularly under ocean-warming scenarios. Key words: carrying capacity , cod , hierarchical models , North Atlantic , temperature , uncertainty
The massive amount of genomic sequence data that is now available for analyzing evolutionary relationships among 31 placental mammals reduces the stochastic error in phylogenetic analyses to virtually zero. One would expect that this would make it possible to finally resolve controversial branches in the placental mammalian tree. We analyzed a 2,863,797 nucleotide-long alignment (3,364 genes) from 31 placental mammals for reconstructing their evolution. Most placental mammalian relationships were resolved, and a consensus of their evolution is emerging. However, certain branches remain difficult or virtually impossible to resolve. These branches are characterized by short divergence times in the order of 1-4 million years. Computer simulations based on parameters from the real data show that as little as about 12,500 amino acid sites could be sufficient to confidently resolve short branches as old as about 90 million years ago. Thus, the amount of sequence data should no longer be a limiting factor in resolving the relationships among placental mammals. The timing of the early radiation of placental mammals coincides with a period of climate warming some 100 - 80 million years ago and with continental fragmentation. These global processes may have triggered the rapid diversification of placental mammals. However, the rapid radiations of certain mammalian groups complicate phylogenetic analyses, possibly due to incomplete lineage sorting and introgression. These speciation-related processes led to a mosaic genome and conflicting phylogenetic signals. Split network methods are ideal for visualizing these problematic branches and can therefore depict data conflict and possibly the true evolutionary history better than strictly bifurcating trees. Given the timing of tectonics, of placental mammalian divergences, and the fossil record, a Laurasian rather than Gondwanan origin of placental mammals seems the most parsimonious explanation. Key words: continental drift , Cretaceous warming , genome analysis , hybridization , phylogenomics , split decomposition
Fucoxanthin chlorophyll proteins (Fcps), the light-harvesting antennas of heterokont algae, are encoded by a multigene family and are highly similar with respect to their molecular masses as well as to their pigmentation, making it difficult to purify single Fcps. In this study, a hexa-histidine tag was genetically added to the C-terminus of the FcpA protein of the pennate diatom Phaeodactylum tricornutum. A transgenic strain expressing the recombinant His-tagged FcpA protein in addition to the endogenous wild type Fcps was created. This strategy allowed, for the first time, the purification of a specific, stable trimeric Fcp complex. In addition, a pool of various trimeric Fcps was also purified from the wild-type cells using sucrose density gradient ultracentrifugation and gel filtration. In both the His-tagged and the wild-type Fcps, excitation energy coupling between fucoxanthin and chlorophyll a was intact and the existence of a chlorophyll a/fucoxanthin excitonic dimer was demonstrated using circular dichroism spectroscopy. Mass spectrometric analyses of the trimeric His-tagged complex indicated that it is composed of FcpA and FcpE polypeptides. It is confirmed here that a trimer is the basic organizational unit of Fcps in P. tricornutum. From circular dichroism spectra, it is proposed that the organization of the pigments on the polypeptide backbone of Fcps is a conserved feature in the case of chlorophyll a/c containing algae.
I-kappaB-Kinase epsilon - ein neues Zielprotein für die Pharmakotherapie bei Schmerz und Entzündung?
(2010)
Der Transkriptionsfaktor NF-kappaB spielt eine wichtige Rolle bei der Regulation von Immunantworten, Apoptose und Entzündungen sowie bei der Entstehung und Verarbeitung von Schmerzen. Ein pharmakologischer Eingriff in die NF-kappaB-Aktivierungskaskade könnte daher eine Schmerzhemmung bewirken und so Ansätze für die Entwicklung neuer Therapien für pathophysiologische Schmerzen liefern. Die NF-kappaB-Signalübertragungskaskade bietet verschiedene Angriffspunkte für Pharmaka, wobei zurzeit IkappaB Kinasen (IKK) als hoffnungsvolle Zielmoleküle im Fokus der Untersuchungen stehen. Verschiedene IKKs regulieren die Aktivität von NF-kappaB über die Phosphorylierung des inhibitorischen Proteins IkappaB oder über die direkte Phosphorylierung von NF-kappaB. In der vorliegenden Arbeit wurde die Rolle der neu entdeckten IKK epsilon bei der Schmerzentstehung und -verarbeitung sowie deren Eignung als neues Zielmolekül für die Schmerztherapie näher untersucht. Es konnte gezeigt werden, dass IKK epsilon konstitutiv in Geweben der Maus, welche an der Entstehung und Verarbeitung von Schmerzen beteiligt sind, exprimiert ist. Im Rückenmark konnte die Lokalisation von IKK epsilon in den schmerzrelevanten Laminae I und II des Dorsalhorns nachgewiesen werden und auch in den Hinterwurzelganglien (Dorsal Root Ganglia (DRG’s)) war IKK epsilon in kleinen, nozizeptiven Neuronen exprimiert. Nach peripherer entzündlich-nozizeptiver Stimulation mit Formalin oder Zymosan kam es im Lumbalmark und den DRG’s zu einem signifikanten Anstieg der IKK epsilon-Expression sowohl auf mRNA- als auch auf Proteinebene. Diese Beobachtungen machten eine Beteiligung von IKK epsilon an der Prozessierung von Schmerz sehr wahrscheinlich. Um die Rolle von IKK epsilon während der Schmerzentstehung und -verarbeitung besser beurteilen zu können wurde das Verhalten von IKK epsilon defizienten Mäusen in akuten und inflammatorischen Schmerzmodellen charakterisiert. Es konnte gezeigt werden, dass der Knockout von IKK epsilon zu einem signifikant verringerten nozizeptiven Verhalten im Formalintest und einer Hemmung der mechanischen Hyperalgesie nach Zymosaninjektion im Vergleich zu Wildtyp-Mäusen führte. Gleichzeitig konnte kein Unterschied im akut nozizeptiven Verhalten festgestellt werden. Der Knockout von IKK epsilon hatte demnach keine Auswirkung auf den akuten physiologischen Nozizeptorschmerz, zeigte jedoch eine Verbesserung bei pathophysiologischen Schmerzen. Das verringerte nozizeptive Verhalten der IKK epsilon defizienten Mäuse im Formalintest ging mit einer Hemmung der NF-kappaB-Aktivierung im Rückenmark einher. Auch konnte eine verringerte mRNA-Expression der NF-kappaB-abhängigen Gene Cyclooxygenase-2 (COX-2), Matrixmetalloprotease-9 (MMP-9) und induzierbare Stickstoffmonoxid-Synthase (iNOS), die an der Regulation von Entzündungsschmerzen beteiligt sind, im Rückenmark und den DRG’s nachgewiesen werden. Da IKK epsilon bisher hauptsächlich mit der Aktivierung des TypI Interferon-Signalweges in Zusammenhang gebracht wurde, wurde außerdem geprüft, ob es nach Injektion mit Formalin zu einer Aktivierung des Trankriptionsfaktors Interferon-regulierender Faktor (IRF)-3 in Wildtyp-Mäusen kommt, was nicht beobachtet werden konnte. Der Knockout von IKK epsilon scheint demnach seine antinozizeptive Wirkung direkt über eine fehlende Aktivierung von NF-kappaB zu entfalten, wonach IKK epsilon eine bedeutendere Rolle als bisher angenommen bei der Aktivierung von NF-kappaB spielt. Dies konnte durch in vitro Daten untermauert werden. Der Knockdown von IKK epsilon in Makrophagen-Zellkultur mit spezifischer siRNA verhinderte die Phosphorylierung von NF-kappaBp65 am Serinrest 536 nach Stimulation mit LPS. Anhand der vorliegenden Daten lässt sich also schlussfolgern, dass IKK epsilon an der Schmerzentstehung und verarbeitung bei Entzündungen beteiligt zu sein scheint. Eine Hemmung dieser Kinase könnte demnach ein neues, lohnendes Ziel für die Entwicklung neuer Medikamente für die Schmerztherapie sein.