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Dorner, L. P.

Publications and source records attributed to Dorner, L. P..

3 recordsLinked to original sources

A non-canonical Arp2/3 complex is essential for Plasmodium DNA segregation and transmission of malaria.

The malaria-causing parasite Plasmodium has a complex life cycle involving both vertebrate and mosquito hosts. Sexual stages or gametocytes are the only stage competent for transmission to mosquitoes. Formation of flagellated male gametes from gametocytes requires rapid rounds of genome replication. Here we discovered a non-canonical Plasmodium actin-related protein 2/3 (Arp2/3) complex essential for DNA segregation during male gametogenesis. Plasmodium Arp2/3 dynamically localizes within the nucleus to the endomitotic spindles and interacts with a kinetochore protein. Deletion of key Arp2/3 subunits or interfering with actin polymerisation leads to the formation of sub-haploid male gametes and a complete block in transmission through delayed developmental arrest at the oocyst stage. Our work identified an evolutionary divergent protein complex in malaria parasites that offers potential targets for transmission-blocking interventions.

microbiology↗

Microtubule inner proteins of Plasmodium are essential for transmission of malaria parasites

Microtubule inner proteins, MIPs, are microtubule associated proteins that bind to tubulin from the luminal side. MIPs can be found in axonemes to stabilize flagellar beat or within cytoplasmic microtubules. Plasmodium spp. are the causative agents of malaria that feature different forms across a complex life cycle with both unique and divergent microtubule-based arrays. Here we investigate the role of four MIPs in a rodent malaria parasite for their role in transmission to and from the mosquito. We show by single and double gene deletions that SPM1 and TrxL1, MIPs associated with the subpellicular microtubules are dispensable for transmission from the vertebrate host to the mosquito and back. In contrast, FAP20 and FAP52, MIPs associated with the axonemes of gametes, are essential for transmission to mosquitoes but only if both genes are deleted. In the absence of both, FAP20 and FAP52 the B-tubule of the axoneme partly detaches from the A-tubule resulting in the deficiency of axonemal beating and hence gamete formation and egress. Our data suggest that a high level of redundancy ensures microtubule stability in the transmissive stages of Plasmodium, which is important for parasite transmission.

microbiology↗

A microtubule associated protein is essential for malaria parasite transmission

Mature gametocytes of Plasmodium (P.) falciparum display a banana (falciform) shape conferred by a complex array of subpellicular microtubules (SPMT) associated to the inner membrane complex (IMC). Microtubule associated proteins (MAPs) define MT populations and modulate interaction to pellicular components. Several MAPs have been identified in Toxoplasma gondii and homologues can be found in the genome of Plasmodium species, but the function of these proteins for asexual and sexual development of malaria parasites is still unknown. Here we identified a novel subpellicular MAP, termed SPM3, that is conserved within the genus Plasmodium., especially within the Laverania subgenus, but absent in other Apicomplexa. Conditional knockdown and targeted gene disruption of Pfspm3 in P. falciparum cause severe morphological defects during gametocytogenesis leading to round, non-falciform gametocytes with an aberrant SPMT pattern. In contrast, Pbspm3 knockout in P. berghei, a species with round gametocytes, caused no defect in gametocytogenesis, but sporozoites displayed an aberrant motility and a dramatic defect in sporozoite invasion of salivary glands leading to a decreased efficiency in transmission. Electron microscopy revealed a dissociation of the SPMT from the IMC in Pbspm3 knockout parasites suggesting a function of SPM3 in anchoring MTs to the IMC. Overall, our results highlight SPM3 as a pellicular component with essential functions for malaria parasite transmission. IMPORTANCEA key structural feature driving the transition between different life cycle stages of the malaria parasite is the unique three membrane "pellicle", consisting of the parasite plasma membrane (PPM) and a double membrane structure underlying the PPM termed the "inner membrane complex" (IMC). Additionally, there are numerous linearly arranged intramembranous particles (IMPs) linked to the IMC, which likely link the IMC to the subpellicular microtubule cytoskeleton. Here we identify, localize and characterize a novel subpellicular microtubule associated protein unique to the genus Plasmodium (P.). The knockout of this protein in the human infecting P. falciparum species result in malformed gametocytes and aberrant microtubules. We confirmed the microtubule association in the P. berghei rodent malaria homologue and show that its knockout results in a perturbated microtubule architecture, aberrant sporozoite motility and decreased transmission efficiency.

molecular biology↗