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Was passiert auf molekularer Ebene, wenn der Körper altert? Eine Antwort darauf lautet: Es häufen sich irreparable Schäden an Zellen, an Zellbestandteilen wie den Organellen, der DNA oder Eiweißen und anderen Molekülen. DassFehler passieren, ist unvermeidlich, denn jeder Stoffwechselvorgang birgt eine gewisse Störanfälligkeit in sich. Ein junger Organismus ist dank ausgefeilter Reparatursysteme in der Lage, Fehler zu korrigieren. Nimmt diese Fähigkeit mit dem Altern ab, so treten zwei Arten von Problemen mit besonders weitreichenden Folgen auf: Fehler bei der Replikation (dem Kopieren) der DNA und molekulare Schäden, die freie Radikale anrichten. So können Defekte der DNA einerseits die Entstehung von Tumoren verursachen, andererseits aber auch Alterungsprozesse beschleunigen.
Koalas are popular zoo animals, but difficult in husbandry. In addition to their specialised diet of eucalyptus leaves, they are prone to “stress” and disease. Particularly in European zoos, themonitoring of theirwell-being has high priority and they are protected from possible stressors. However, stress signs in koalas are vague and monitoring techniques like weighing might result in discomfort itself. Additionally, husbandry routines are planned according to keeper’s schedule, not to the endogenous rhythms of the koalas. Therefore it is necessary to investigate activity pattern in captive koalas and the signals influencing them. These signals have to be assessed on the strength and quality of their impact. A total of 17 koalas have been observed in three zoological gardens in Australia and Europe. Koalas kept in outdoor enclosures with little human contact (Koala Walkabout, Taronga Zoo, Sydney) showed a uniform activity pattern, which was clearly entrained by light. Activity levels were higher during the night, and there was a pronounced resting period in the morning which corresponds with low body temperature measured by Degabriele and Dawson (1979). Activity peaks were related to twilight and changed during the year related to day lengths. However, there was a clear influence from the introduction of fresh browse which resulted in a distinct feeding peak in the afternoon. With short day lengths, this stimulus competed with dusk. Activity patterns from koalas in indoor enclosures (Zoo Duisburg, Vienna Zoo) varied between individuals and in some cases lacked a detectable rhythm. Though activity peaks were related to light, entrainment to sunlight was weak. In winter, koalas reacted primarily to the artificial light, but some also showed activity peaks related to sunlight. Activity patterns in these koalas were less structured and differed severely from patterns expected according to literature. Activity was often related to the keeper’s presence and food introduction. Frequency of feeding bouts was considerably higher at Vienna Zoo compared to the other zoos and the bouts were shorter in duration. Time budgets of the koalas were within the range given in free-range studies. Feeding showed seasonal changes and was increased in lactating females. Koalas at Vinna Zoo had a high level of locomotor activity compared to the size of the enclosure. Koalas at Koala Walkabout were not used to handling, so they resisted the keeper. The koalas at the two European zoos were handled regularly and settled down quickly. However, handling took place in the morning; in most koalas, there was no activity prior to it. In Vienna, resting periods were interrupted daily due to weighing. Food introduction at KoalaWalkabout took place in the afternoon. It was preceded by locomotor activity and triggered a long feeding bout in the koalas. It is not clear, whether food had true Zeitgeber properties or masked the endogenous rhythm. In the two European zoos, food was introduced in the morning. The peaks related to this were smaller than those at Koala Walkabout. Activity was rarely observed prior to food introduction. The koalas at Koala Encounter, Taronga Zoo (Sydney),were regularly confronted with visitors, though no contact was allowed. Direct observation by the keepers did rarely show any stress signs. Activity patterns at night were strikingly similar to Koala Walkabout, but differed dramatically during the day. Food was introduced three times a day, which usually resulted in activity that interrupted a resting period. Generally, the koalas at Koala Encounter were more active than those at KoalaWalkabout. They also displayed a high level of locomotor activity, especially on the ground, which is an accepted sign of discomfort in koalas (Wood 1978; Zoological Society of San Diego 2001; Yusuf& Rosenthal unpublished data). In summary, this chronoethological study of the captive koalas showed that there are several problems with koala husbandry. Artificial light regimes for koalas are not sufficient for entrainment and result in unstructured activity pattern. This is especially the case in winter, when the day in Europe is artificially extended. Due to the mainly nocturnal behaviour of koalas, such an extension might not be necessary and therefore should be avoided. Handling in Europe took place during the physiological resting time of the koalas. Interruptions of resting times are considered as stressors (Wood 1978) and should be avoided. Handling in the afternoon would be more suitable for the koalas and triggered activity in the two koalas at Vienna Zoo. It is also arguable if daily weighing is necessary to monitor health in captive koalas or if the frequent interruption of resting countervail the advantages of constant monitoring. Frequent contact with visitors, evenwithout the so-called cuddling, has a considerable impact on activity patterns and time budget of koalas, even if no immediate stress signs are displayed. Such contact should therefore be reduced to a minimum and chronoethological observations of the koalas should be used. A study on koalas with direct visitor contact is also advisable to revise the current legislation on “koala cuddling”. Koalas frequently rested in living trees if they had access to it. Since no food-poisoning has been reported from koalas using living non-food trees, the provision of living trees with an appropriate canopy should be included in the husbandry guidelines. Increased locomotor activity has been shown to be related to conditions of discomfort or stress and possibly to oestrus. This is in accordance with literature (Wood 1978; Zoological Society of San Diego 2001). Further observation, combined with hormone analysis, are advisable to establish this parameter for evaluation of well-being. Chronoethology has proven to be useful for the evaluation of husbandry conditions and group dynamics. Different to other, traditional ethologicalmethods, it indicated problems and enabled me to advise more appropriate times for handling and food introduction. It is desirable that zoos already using 24-hour video observation include chronoethological aspects into their analysis.
Background The cell cycle of all organisms includes mass increase by a factor of two, replication of the genetic material, segregation of the genome to different parts of the cell, and cell division into two daughter cells. It is tightly regulated and typically includes cell cycle-specific oscillations of the levels of transcripts, proteins, protein modifications, and signaling molecules. Until now cell cycle-specific transcriptome changes have been described for four eukaryotic species ranging from yeast to human, but only for two prokaryotic species. Similarly, oscillations of small signaling molecules have been identified in very few eukaryotic species, but not in any prokaryote. Results A synchronization procedure for the archaeon Halobacterium salinarum was optimized, so that nearly 100% of all cells divide in a time interval that is 1/4th of the generation time of exponentially growing cells. The method was used to characterize cell cycle-dependent transcriptome changes using a genome-wide DNA microarray. The transcript levels of 87 genes were found to be cell cycle-regulated, corresponding to 3% of all genes. They could be clustered into seven groups with different transcript level profiles. Cluster-specific sequence motifs were detected around the start of the genes that are predicted to be involved in cell cycle-specific transcriptional regulation. Notably, many cell cycle genes that have oscillating transcript levels in eukaryotes are not regulated on the transcriptional level in H. salinarum. Synchronized cultures were also used to identify putative small signaling molecules. H. salinarum was found to contain a basal cAMP concentration of 200 uM, considerably higher than that of yeast. The cAMP concentration is shortly induced directly prior to and after cell division, and thus cAMP probably is an important signal for cell cycle progression. Conclusions The analysis of cell cycle-specific transcriptome changes of H. salinarum allowed to identify a strategy of transcript level regulation that is different from all previously characterized species. The transcript levels of only 3% of all genes are regulated, a fraction that is considerably lower than has been reported for four eukaryotic species (6% - 28%) and for the bacterium C. crescentus (19%). It was shown that cAMP is present in significant concentrations in an archaeon, and the phylogenetic profile of the adenylate cyclase indicates that this signaling molecule is widely distributed in archaea. The occurrence of cell cycle-dependent oscillations of the cAMP concentration in an archaeon and in several eukaryotic species indicates that cAMP level changes might be a phylogenetically old signal for cell cycle progression.
Synaptopodin is the founding member of a family of actin-associated proline-rich proteins. It is present in a subset of telencephalic dendritic spines, where it is tightly associated with the dendritic spine apparatus, a putative calcium store. Synaptopodin-deficient mice lack the spine apparatus and show deficits in long-term potentiation and spatial memory. Thus, synaptopodin appears to play a role in synaptic plasticity. In the present thesis, three major questions were addressed: (1) What is the distribution of synaptopodin and the spine apparatus in identified hippocampal neurons? (2) Is the distribution of synaptopodin affected by denervation? (3) Is synaptopodin involved in the regulation of denervation-induced spine loss? The major findings of this thesis are: (1) Immunohistochemistry in the hippocampus of wildtype and EGFP-transgenic mice revealed significant layer-specific differences in the prevalence of synaptopodin at the level of individual neurons. (2) Light and electron microscopic analysis also revealed the presence of synaptopodin in axon initial segments of cortical and hippocampal principal neurons. There, it was found to be an essential component of the cisternal organelle, a putative axonal homologue of the dendritic spine apparatus. (3) Immunohistochemistry in the rat fascia dentata before and following entorhinal deafferentation revealed changes in synaptopodin expression in denervated and non-denervated layers of the hippocampus, suggesting that the distribution of synaptopodin in hippocampal neurons is regulated by presynaptic signals. (4) The dynamics of denervation-induced spine plasticity were studied in vitro using confocal live imaging of organotypic entorhino-hippocampal slice cultures. Whereas spines were remarkably stable under control conditions, spine loss and spine formation were seen following denervation. No significant differences were observed between cultures from wildtype and synaptopodin-deficient mice, suggesting that synaptopodin is not involved in lesion-induced spine plasticity. (5) Finally, a set of transgenic mice expressing fluorescently tagged synaptopodin were generated to facilitate future experiments on the dynamics and function of synaptopodin. In summary, this thesis presents novel findings on (1) the subcellular distribution of synaptopodin in spines and the axon initial segment, (2) the molecular composition of the cisternal organelle, and (3) the dynamics of spines and the spine apparatus organelle following deafferentation in vivo and in vitro.
Compared to all other organisms with 1 to 3 heat stress transcription factors (Hsfs) or Hsf-related factors, plants have extraordinarily large Hsf families with more than 20 Hsfs. Plant Hsfs are classified into three classes according to their oligomerization domains which is built of hydrophobic heptad repeats (HR) in two parts, HR-A and HR-B. Both parts may be immediately adjacent (class B), or they are separated by insertion of 21 (class A) and 7 amino acid residues (class C). In plant Hsf family, detailed investigations are so far limited to Hsfs A1a, A2, A3, A4d, A9, and B1. They strongly indicate functional diversification to be the main reason for the coexistence of multiple Hsfs. As an example the functional triad of HsfA1a, HsfA2, and HsfB1 is essential for all three phases of the hs response, (i) the triggering of the response by HsfA1a as master regulator, (ii) the maintenance and high efficiency of hs gene transcription by cooperation of HsfA1a with Hsfs A2 and B1, and finally, (iii) the restoration of house-keeping gene transcription during the recovery phase mediated by HsfB1 in cooperation with house-keeping transcription factors. The results presented in this thesis for Hsfs A4 and A5 open completely different aspects of functional diversification and cooperation of Hsfs. HsfA4 and HsfA5 homooligomerize and bind to corresponding HSE motifs. But in contrast to the highly active HsfA4, HsfA5 is completely inactive as transcriptional activator. Yeast two hybrid and GST pull-down techniques showed that both Hsfs have strong tendency for heterooligomerization. Using fluorescence microscopy the HsfA4/A5 heterooligomers were found to localize in the nucleus. These complexes are transcriptionally inactive due to the impairment of DNA binding. The repressor function of HsfA5 requires only its OD and no additional factors, e.g. a putative co-repressor recruited by the C-terminal domain, are involved. Evidently, the repressor effect mainly results from the interference with the oligomeric state of HsfA4b, which is essential for efficient DNA binding and activator functions. EST database search revealed that plants have a single HsfA5 and usually two A4-type Hsfs. Using bioinformatics tools, Hsfs A4 and A5 were found to be phylogenetically closely related and clearly distinct from the other members of the Hsf family. On the basis of RT-PCR and Microarray data the representatives of the A4/A5 group are well expressed in different plant tissues albeit at very different levels which change with the developmental stages and stress conditions In rice and Arabidopsis, HsfA4 functions as an anti-apoptotic factor for stress induced oxidative damages. Based on my results, I hypothesize that HsfA5 functions as a novel type of selective repressor, regulating the function of A4-type Hsfs in plants. Considering the high sequence conservation with in plant Hsf family, it is tempting to speculate that this role of Hsf4/A5 pair is a fundamental feature of the Hsf system in plants.
Eine Einschränkung des Hörvermögens durch Schäden der Sinnesrezeptoren im Innenohr gilt beim Menschen sowie bei allen anderen Säugetieren als irreversibel. Die Hörforschung ist an der Frage interessiert, ob durch Plastizität in zentralen Teilen des auditorischen Systems Kompensationsmechanismen die Folgen mildern können. Die vorliegende Arbeit befasst sich mit der Frage, ob und in welchem Umfang nach peripheren Hörschäden durch zentrale Kompensationsmechanismen eine Erholung des Hörvermögens auftritt auf der Basis von plastischen Änderungen der neuronalen Verarbeitung der Eingangssignale aus dem geschädigten Hörorgan. Schäden des Sinnesepithels im Innenohr, z.B. durch überlaute Beschallung oder ototoxische Substanzen, betreffen in der Regel zunächst die äußeren Haarzellen und führen zu einem Verlust der Empfindlichkeit und Frequenzspezifität des Hörvermögens. Eine primäre selektive Schädigung der inneren Haarzellen (IHZ) tritt im Tiermodell, aus unbekannten Gründen nur bei einer Spezies auf, dem Chinchilla (Chinchilla laniger) und zwar nach Gabe des antineoplastischen Medikament Carboplatin. Das gute Tieffrequenzhören der Chinchillas (0.1-20 kHz) ermöglicht außerdem Aussagen zur akustischen Signalverarbeitung in einem für das menschliche Gehör relevanten Frequenzbereich (0.02-16 kHz). Dieses Tiermodell bietet somit die Gelegenheit, die Veränderungen in zentralen Teilen des auditorischen Systems nach einer definierten sensorischen Schädigung zu untersuchen. Hierfür kommt u.a. das auditorische Mittelhirn, der Colliculus Inferior (IC) in Frage. Der IC wird als Hauptintegrationszentrum der Hörbahn angesehen weil er Eingänge von fast allen vor ihm liegenden auditorischen Kernen (z.B. Nucleus cochlearis, Nucleus olivaris und Leminscus lateralis) bekommt. Ein weiterer Grund für die Wahl des IC als Untersuchungsgebiet der vorliegenden Arbeit ist, die Frage zu beantworten, ob die auf der Ebene des auditorischen Kortex bereits nachgewiesene funktionelle Plastizität auch auf der Ebene des IC schon realisiert oder vorbereitet wird. Die vorliegende Arbeit untersucht das Antwortverhalten der Neurone im ICc an wachen Tieren vor und nach einem selektiven Teilverlust der IHZ bei Erhalt der äußeren Haarzellen. Die Arbeitshypothese ist, dass es nach einem abgeschwächten sensorischen Eingang zu Veränderungen der exzitatorischen und inhibitorischen Antwortfelder kommt, die als funktionelle Plastizität bzw. als Kompensation verstanden werden können. Anhand elektrophysiologischer Ableitungen im ICc von wachen, chronisch implantierten Tieren wurden die exzitatorischen und die inhibitorischen Antwortfelder der Neurone durch Einton- und Zweiton- Stimulation getrennt gemessen und bestimmt. Die Resultate zeigen, dass die exzitatorischen und inhibitorischen Antworteigenschaften im IC bei wachen und narkotisierten Tieren unterschiedlich sind. In wachen Tieren weist die Inhibition generell höhere Variation auf als in narkotisierten Tieren und ist unabhängiger von der Art der Exzitation. Eine Carboplatinbehandlung führte bei allen Tieren nach 3-7 Tagen zu einer Abnahme der Amplituden und einer Erhöhung der Schwellen der akustisch evozierten Hirnstammpotentiale (ABRs). Die histologische Untersuchung des Innenohres (10 Wochen nach Carboplatinbehandlung), zeigte bei allen Tieren Verluste der IHZ (zwischen 20 und 60%) entlang der gesamten Basilarmembran. Es wurden aber keine Verluste von ÄHZ festgestellt. Die Gehirn-Schnitte zeigten, dass die Registrierungen aus dem zentralen Teil des Colliculus Inferior stammen. Die physiologische Untersuchung der Antworteigenschaften der Neurone im IC 4-6 Wochen nach der carboplatinbedingten Schädigung der IHZ zeigte eine Reduktion der Inhibition, die u.a. deutlich an dem Verlauf der Intensitätskennlinien zu beobachten war. Nach dem Teilverlust der IHZ wurden viel weniger nichtmonotone Kennlinien gefunden als vor der Innenohrschädigung. Darüber hinaus beobachteten wir eine Reduzierung der inhibitorischen Regionen und eine signifikante Ausweitung der exzitatorischen Antwortfelder nach dem Teilverlust der IHZ. Die Resultate der vorliegenden Arbeit führen zu der Schlussfolgerung, dass nach einer Teilschädigung der inneren Haarzellen, unter Erhalt der ÄHZ nur ein geringer Sensitivitätsverlust in der zentralen Hörbahn auftritt. Der Verlust von 20-60% der IHZ und der damit einhergehende reduzierte afferente Informationsfluss führt zu physiologischen Veränderungen in der Hörbahn, die im IC von wachen Tieren vor allem durch eine Reduktion der Inhibition hervortritt. Dies deutet daraufhin, dass zentrale Kompensationsmechanismen bei peripheren Hörschäden nicht, wie bisher vermutet, erst in kortikalen sondern zum Teil bereits in subkortikalen Arealen (im Mittelhirn) stattfinden.
Rhythmic changes in environmental lighting conditions have ever been the most reliable environmental cue for life on earth. Nature has therefore selected a genetically encrypted endogenous clock very early in evolution, as it provided cells and subsequently organisms with the ability to anticipate persevering periods of light and darkness. Rhythm generation within the mammalian circadian system is achieved by clock genes and their protein products. The mammalian endogenous master clock, which synchronizes the body to environmental time, is located in the suprachiasmatic nucleus (SCN) of the hypothalamus. As an integral part of the time-coding system, the pineal gland serves the need to tune the body to the temporal environment by the rhythmic nocturnal synthesis and immediate release of the hormone melatonin. In contrast to the transcriptional regulation of melatonin synthesis in rodents, a post-translational shaping is indicated in the human pineal gland. Another important mediator of circadian time and seasonality to the body is the pituitary gland. The aim of this work was to elucidate regulation of melatonin synthesis in the human pineal gland. Furthermore, presence and regulation of clock genes in the human pineal and pituitary gland, and in the SCN were analyzed. Therefore, human tissue, taken from regular autopsies, was analyzed simultaneously for different parameters involved in melatonin biosynthesis and circadian rhythm generation. Presented data demonstrate that post-mortem brain tissue can be used to detect the remnant profile of pre-mortem adaptive changes in neuronal activity. In particular, our results give strong experimental support for the idea that transcriptional mechanisms are not dominant for the generation of rhythmic melatonin synthesis in the human pineal gland. Together with data obtained for clock genes and their protein products in the pituitary, data presented here offer 1) a new working hypothesis for post-translational regulation of melatonin biosynthesis in the human pineal gland, and 2) a novel twist in the molecular competence of clock gene proteins, achieved by nucleo-cytoplasmic shuttling in neuronal and neuroendocrine human tissue. Furthermore, in this study, oscillations in abundance of clock gene proteins were demonstrated for the first time in the human SCN.