4 resultados para MARCM
Resumo:
Diese Arbeit charakterisiert die Funktion und das Expressionmuster der beiden Zinkfinger-Homöodomänentranskriptionsfaktoren zfh1 und zfh2 von Drosophila melanogaster. Das zfh2 Gen wurde hierbei vor allem molekular charakterisiert. Es wurden eine Vielzahl möglicher Spleißformen identifiziert, welche das regulatorische Potential von Zfh2 enorm erweitern. Für Überexpressionsexperimente wurde zudem erstmalig die cDNA des längsten zfh2-Transkriptes kloniert. Durch Analysen an zfh1 Mutanten konnte gezeigt werden, dass zfh1 sowohl notwendig ist für die embryonale Entwicklung von Motoneuronen, als auch das larvale Wachstum motoneuronaler Endplatten reguliert. Wegen weit reichender pleiotroper Effekte, die zfh1 Funktionsverlustmutanten haben, war es notwendig, neben dem Einsatz hypomorpher Allele auf die Analyse genetischer Mosaike auszuweichen. Die als MARCM-Technik (Lee und Luo, 1999) bezeichnete Methode zur Erzeugung genetischer Mosaike wurde modifiziert um in dieser Arbeit erstmals für die Analyse mutanter larvaler Motoneurone eingesetzt werden zu können. Weitergehend konnte gezeigt werden, dass Zfh1 notwendig ist für die larvale Expression des Neuropeptides FMRFamid. Anhand von Sequenzvergleichen und durch Verwendung eines fmrfamid-Promoterkonstruktes (Benveniste et al., 1998) konnten Hinweise dafür gesammelt werden, dass die Zfh1-abhängige Regulation sehr wahrscheinlich direkter Natur ist. Bei fmrfamid handelt es sich somit um das erste identifizierte neurale Zielgen von Zfh1, an dem sich zudem modellhaft der molekulare Wirkmechanismus von Zfh1 erforschen lässt.
Resumo:
An often-overlooked aspect of neural plasticity is the plasticity of neuronal composition, in which the numbers of neurons of particular classes are altered in response to environment and experience. The Drosophila brain features several well-characterized lineages in which a single neuroblast gives rise to multiple neuronal classes in a stereotyped sequence during development. We find that in the intrinsic mushroom body neuron lineage, the numbers for each class are highly plastic, depending on the timing of temporal fate transitions and the rate of neuroblast proliferation. For example, mushroom body neuroblast cycling can continue under starvation conditions, uncoupled from temporal fate transitions that depend on extrinsic cues reflecting organismal growth and development. In contrast, the proliferation rates of antennal lobe lineages are closely associated with organismal development, and their temporal fate changes appear to be cell-cycle dependent, such that the same numbers and types of uniglomerular projection neurons innervate the antennal lobe following various perturbations. We propose that this surprising difference in plasticity for these brain lineages is adaptive, given their respective roles as parallel processors versus discrete carriers of olfactory information.
Resumo:
This study uses a molecular technique called MARCM (Mosaic Analysis with a Repressible Cell Marker) to label neuronal lineages that overexpress the Hox gene Ultrabithorax (Ubx) in an unlabeled, wild type background. The results indicate that the overexpression of Ubx is sufficient to transform more anterior neuronal lineages to themorphology of their more posterior counterparts. The data presented here begin to elucidate the role that the Hox genes have in shaping segment-specific neural connections in the post-embryonic ventral nervous system.
Resumo:
A major unresolved question in developmental neurobiology is how the nervous system is adapted to the specific needs of the organism at different life stages. In the holometabolous insect Drosophila melanogaster, the larval ventral nervous system (VNS) is comprised of similar repeating segments, as opposed to the adult VNS, which varies greatly from segment to segment both in number and types of neurons. The adult-specific neurons of each segment are generated by 25 distinct types of neuronal progenitor cells called neuroblasts (NBs) that appear in a stereotyped array (Truman et al., 2004). Each NB divides repeatedly to produce a distinct set of daughter cells termed a lineage, which is bilaterally symmetric but present to varying degrees in each segment. These daughter cells can be distinguished by their position within the nervous system as well as by their axonal projections. Each of the 25 NBs produces neurons; if both daughter cells are present in a lineage then both sibling populations survived, whereas if only one projection is seen cell death occurred, leaving a hemilineage (half lineage). In some lineages, the same sibling type survives in all segments in which the lineage appears, but in others, the surviving sibling type varies across segments, resulting in a different morphology for the same lineage in different segments. How are these differences in survival and morphology controlled? The Hox genes provide positional information for developing structures along the anterior-posterior (AP) axis of animals. They encode transcription factors, thereby controlling the activity of genes down stream. In the postembryonic VNS, each NB lineage features its own characteristic expression pattern of Hox genes Antp and Ubx, which can vary from segment-to-segment, and can thereby cause variation in the number of neural cells and axonal projections that survive. This study defines the wild-type expression pattern of Antp and elucidates the role of Antp in gain of function studies. These studies are possible due to the MARCM (Mosaic Analysis with a Repressible Cell Marker) method, which allows the genetically manipulated cells to be specifically labeled in an otherwise normal, unlabeled organism. The results indicate that Antp is expressed in a segment-, lineage-, and hemilineage-specific manner. Antp is sufficient for both anterior and posterior transformations of particular lineages, including promotion of cell death and/or survival as well as axon guidance.