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Couble, J.

Publications and source records attributed to Couble, J..

3 recordsLinked to original sources

N6-methyladenosine primes the malaria parasite for transmission

Sudden environmental changes are a recurring challenge for unicellular organisms, but a necessity for many to progress through their lifecycle. To transmit from its human host to mosquito vector, malaria parasites differentiate into male and female, semi-quiescent stages that can re-initiate development within seconds after transmission. Here, we identify the RNA modification N6-methyladenosine (m6A) as the mediator of a rapid, sex-specific, and temperature-sensitive mechanism to restructure protein synthesis during transmission. We find that male parasites maintain high levels of translation during their semi-quiescence that are rapidly repressed following mosquito uptake. This translational shutdown is essential for the continuation of male parasite development and depends on the m6A-binding protein YTH.2. We further show that m6A and YTH.2 are already present prior to transmission, but that their repressive interaction requires a temperature drop accompanying the exit from the human host. Hence, m6A appears to prime the parasite transcriptome and subsequently converts an environmental shift into a rapid translational response.

molecular biology↗

A metabolism-chromatin axis promotes ribosome heterogeneity in the human malaria parasite

The transmission of the most virulent human malaria parasite, Plasmodium falciparum, relies on its survival in the contrasting environments of the human host and mosquito vector. One of the most fascinating adaptations to this lifestyle is the specific silencing of individual rDNA genes in the human host that are de-repressed following host-to-vector transmission. In this study, we defined the epigenetic signatures of rRNA transcription and found that rDNA silencing relies on aerobic glycolysis, the sole energy-generating pathway in the human host. We show that disruption of NAD+ regeneration during lactate fermentation promotes rDNA de-repression and identify the sirtuin histone deacetylase Sir2a as the mediator between fluctuating NAD+ levels and a functional transcriptional outcome. Hence, rDNA activation appears to be coupled to the metabolic state of the parasite as it transitions from aerobic glycolysis to mitochondrial respiration during host-to-vector transmission.

microbiology↗

Micro-C reveals MORC/ApiAP2-mediated links between distant, functionally related genes in the human malaria parasite

Genome organization plays a significant role in silencing heterochromatinized genes in the most virulent human malaria parasite, Plasmodium falciparum. However, it remains unclear how heterochromatinized genes spatially cluster or if active genes are also organized in a specific manner. We used Micro-C to achieve a near-nucleosome resolution DNA-DNA contact map, which revealed new inter- and intrachromosomal heterochromatic and euchromatic structures in the blood stage parasite. We observed subtelomeric fold structures that facilitate interactions amongst heterochromatinized genes involved in antigenic variation. In addition, we identified long-range intra- and interchromosomal interactions amongst active, stage-specific genes. Both structures are mediated by AP2-P, an ApiAP2 transcription factor, and a putative MORC chromatin remodeler, and functional specificity is achieved via combinatorial binding with other sequence-specific DNA-binding factors. This study provides unprecedented insight into the organizational machinery used by this medically important eukaryotic parasite to spatially coordinate genes underlying antigenic variation and to co-activate stage-specific genes.

molecular biology↗