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Macedo Silva, T.

Publications and source records attributed to Macedo Silva, T..

2 recordsLinked to original sources

Nutrient stress dramatically increases malaria parasite clag2 copy number to increase host cell permeability and enable pathogen survival

To grow and replicate in erythrocytes, malaria parasites must increase the host cells permeability to a broad range of nutrients. The plasmodial surface anion channel (PSAC) mediates this increased permeability and has been linked to CLAG3, a protein encoded by a multigene family conserved in Plasmodium spp. Surprisingly, an CLAG3 knockout parasite produced in P. falciparum exhibits incomplete reductions in PSAC activity, propagates normally in standard nutrient-rich media, but is unable to expand in modified media with more physiological levels of key nutrients. To explore these unexpected findings, we used in vitro selections on a CLAG3-null parasite and obtained a mutant capable of expansion under nutrient-limiting conditions. This growth was associated with restored solute uptake despite absence of CLAG3 protein. The mutant parasite expressed channels with characteristics of PSAC though with altered solute selectivity and lack of protease susceptibility, suggesting a modified channel and genome-level changes in the pathogen. Whole-genome sequencing revealed a dramatically increased clag2 copy number without other relevant changes. Quantitative PCR and DNA transfection confirmed increased production of the clag2 gene product. These findings implicate CLAG2 in direct formation of nutrient channels, suggest a new model that accounts for variable expansion of clag genes in Plasmodium spp., and uncover a dramatic genome plasticity available to malaria parasites. Author SummaryMalaria parasites grow within circulating red blood cells and acquire nutrients from human and animal plasma via a pore they insert in the host membrane. This pore is linked to CLAG3, a protein conserved in all examined malaria parasites. Surprisingly, deletion of CLAG3 only partially reduces formation of the nutrient pores, allowing parasites to grow normally under standard culture conditions that provide high levels of nutrients. This CLAG3-null parasite could not grow in modified media with two nutrients reduced to levels resembling those in human plasma. Here, we used prolonged culture of the CLAG3-null parasite in nutrient-limited medium to produce a mutant that can grow at near-normal rates. Despite its inability to express CLAG3, this mutant increased its nutrient uptake using pores with altered properties. Molecular studies revealed DNA-level amplification of the gene encoding CLAG2, a closely related protein from another parasite chromosome. Our findings suggest that the human malaria parasite can change its DNA to increase nutrient uptake and grow in malnourished hosts.

microbiology↗

The pseudogene SURFIN 4.1 is vital for merozoite formation in blood stage P. falciparum

The surf gene family of the human malaria parasite Plasmodium falciparum encodes for antigens with largely unknown functions. Three of the ten surf genes found in the P. falciparum 3D7 genome are annotated as pseudogenes, and one of these - surf4.1 (PF3D7_0402200) - was continuously transcribed in P. falciparum 3D7 blood stage forms. GFP-tagging revealed that despite several stop codons a full-length protein was expressed, which localized to developing merozoites. Analysis of cDNAs showed that no specific editing occurred pointing to readthrough of stop codons during translation. Intriguingly, attempts to generate parasite lines containing an additional artificial stop codon failed. Transcript knockdown revealed that surf4.1 is essential for merozoite formation in late trophozoite/schizont stages while DNA replication seemed not to be influenced. SURFIN4.1 is the first example of a plasmodial multigene family member of which a knockout is deleterious and may pose as a novel target for anti-malarial therapy.

microbiology↗