610 Medizin und Gesundheit
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Background
During development in human erythrocytes, Plasmodium falciparum parasites display a remarkable number of adhesive proteins on their plasma membrane. In the invasive merozoites, these include members of the PfMSP1 and PfAMA1/RON complexes, which facilitate contact between merozoites and red blood cells. In gametocytes, sexual precursor cells mediating parasite transmission to the mosquito vector, plasma membrane-associated proteins primarily belong to the PfCCp and 6-cys families with roles in fertilization. This study describes a newly identified WD40-repeat protein unique to Plasmodium species that associates with adhesion protein complexes of both merozoites and gametocytes.
Methods
The WD40-repeat protein-like protein PfWLP1 was identified via co-immunoprecipitation assays followed by mass spectrometry and characterized using biochemical and immunohistochemistry methods. Reverse genetics were employed for functional analysis.
Results
PfWLP1 is expressed both in schizonts and gametocytes. In mature schizonts, the protein localizes underneath the merozoite micronemes and interacts with PfAMA1, while in gametocytes PfWLP1 primarily accumulates underneath the plasma membrane and associates with PfCCp1 and Pfs230. Reverse genetics failed to disrupt the pfwlp1 gene, while haemagglutinin-tagging was feasible, suggesting a crucial function for PfWLP1 during blood stage replication.
Conclusions
This is the first report on a plasmodial WD40-repeat protein associating with cell adhesion proteins. Since WD40 domains are known to mediate protein–protein contact by serving as a rigid scaffold for protein interactions, the presented data suggest that PfWLP1 supports the stability of adhesion protein complexes of the plasmodial blood stages.
Background: The transmission of the malaria parasite Plasmodium falciparum from the human to the mosquito is mediated by dormant sexual precursor cells, the gametocytes, which become activated in the mosquito midgut. Because gametocytes are the only parasite stages able to establish an infection in the mosquito, they play a crucial role in spreading the tropical disease. The human-to-mosquito transmission triggers important molecular changes in the gametocytes, which initiate gametogenesis and prepare the parasite for life-cycle progression in the insect vector.
Results: To better understand gene regulations during the initial phase of malaria parasite transmission, we focused on the transcriptome changes that occur within the first half hour of parasite development in the mosquito. Comparison of mRNA levels of P. falciparum gametocytes before and 30 min following activation using suppression subtractive hybridization (SSH) identified 126 genes, which changed in expression during gametogenesis. Among these, 17.5% had putative functions in signaling, 14.3% were assigned to cell cycle and gene expression, 8.7% were linked to the cytoskeleton or inner membrane complex, 7.9% were involved in proteostasis and 6.4% in metabolism, 12.7% were cell surface-associated proteins, 11.9% were assigned to other functions, and 20.6% represented genes of unknown function. For 40% of the identified genes there has as yet not been any protein evidence. For a subset of 27 genes, transcript changes during gametogenesis were studied in detail by real-time RT-PCR. Of these, 22 genes were expressed in gametocytes, and for 15 genes transcript expression in gametocytes was increased compared to asexual blood stage parasites. Transcript levels of seven genes were particularly high in activated gametocytes, pointing at functions downstream of gametocyte transmission to the mosquito. For selected genes, a regulated expression during gametogenesis was confirmed on the protein level, using quantitative confocal microscopy.
Conclusions: The obtained transcriptome data demonstrate the regulations of gene expression immediately following malaria parasite transmission to the mosquito. Our findings support the identification of proteins important for sexual reproduction and further development of the mosquito midgut stages and provide insights into the genetic basis of the rapid adaption of Plasmodium to the insect vector.
Monoallelic expression within a gene family is found in pathogens exhibiting antigenic variation and in mammalian olfactory neurons. Trypanosoma brucei, a lethal parasite living in the human bloodstream, expresses variant surface glycoprotein (VSG) from 1 of 15 bloodstream expression sites (BESs) by virtue of a multifunctional RNA polymerase I. The active BES is transcribed in an extranucleolar compartment termed the expression site body (ESB), whereas silent BESs, located elsewhere within the nucleus, are repressed epigenetically. The regulatory mechanisms, however, are poorly understood. Here we show that two essential subunits of the basal class I transcription factor A (CITFA) predominantly occupied the promoter of the active BES relative to that of a silent BES, a phenotype that was maintained after switching BESs in situ. In these experiments, high promoter occupancy of CITFA was coupled to high levels of both promoter-proximal RNA abundance and RNA polymerase I occupancy. Accordingly, fluorescently tagged CITFA-7 was concentrated in the nucleolus and the ESB. Because a ChIP-seq analysis found that along the entire BES, CITFA-7 is specifically enriched only at the promoter, our data strongly indicate that monoallelic BES transcription is activated by a mechanism that functions at the level of transcription initiation.
Die Hälfte der Weltbevölkerung lebt mit dem Risiko, an einer schweren Malaria tropica zu erkranken. Zunehmende Resistenzen von Plasmodium falciparum gegen gängige Therapeutika erschweren eine Behandlung, und es existiert keine Möglichkeit frühzeitig die Wirksamkeit der angewandten Medikation festzustellen. Die Bestimmung der Parasitämie als einzig verfügbarer Parameter kann auch bei erfolgreicher Therapie noch über den ersten Tag ansteigen. Das Ziel dieser Studie war, lichtmikroskopische Parameter zu finden, mit denen der Erfolg einer Therapie frühzeitig festgestellt werden kann. So wurden im Rahmen einer Fallstudie die Plasmodien eines an einer schweren Malaria tropica erkrankten Patienten auf morphologische Veränderungen im Verlauf der Chinin-Therapie untersucht. Die Beurteilung der Plasmodien erfolgte durch eine Einteilung nach ihrer Lage im Erythrozyten und der Kern-Plasma-Relation der Ringformen, anschliessend wurden die Ergebnisse durch eine Vermessung der Plasmodien am Computer verifiziert. Es zeigte sich, dass ein Therapieerfolg anhand der Veränderung in der Morphologie der Ringformen bereits in den ersten Stunden nach Therapiebeginn festgestellt werden kann. So lässt sich innerhalb der ersten drei Stunden ein Wechsel von kleinen Ringformen mit dünnem, homogenem Zytoplasmaband zu vergrösserten Ringformen mit einem verbreiterten und inhomogenen Zytoplasma finden. Im weiteren konnten ab der 7. Therapiestunde eine zunehmende Lageveränderungen der Plasmodien im Erythrozyten aufgezeigt werden. So waren ab diesem Zeitpunkt zunehmend Plasmodien, die die Erythrozyten-Membran hervorwölben (Arbeitstitel „Accentué“-Formen), im peripheren Blutausstrich des Patienten zu sehen. Dass die Änderung der Kern-Plasma-Relation der Ringformen ursächlich einer direkten Medikamentenwirkung zuzuschreiben sind, konnte in einem abschliessenden „in vitro“-Studienteil gezeigt werden, in welchem Plasmodien-Kulturen unter Chinin-Einfluss mit Kontrollkulturen ohne Medikamenteneinfluss verglichen wurden.