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Souza Bonifacio, B.

Publications and source records attributed to Souza Bonifacio, B..

3 recordsLinked to original sources

Direct RNA sequencing reveals selective remodeling of the host m6A epitranscriptome during Leishmania infection

N6-methyladenosine (m6A) is the most abundant modification in eukaryotic mRNA, yet its role in host responses to protozoan infection remains poorly explored. Here, we provide the first characterization of the host m6A epitranscriptome during Leishmania amazonensis infection, integrating clinical data, in vitro macrophage models, and direct RNA sequencing. Analysis of publicly available transcriptomic datasets from patients with cutaneous and visceral leishmaniasis, validated in an independent cohort of patients with cutaneous leishmaniasis, revealed coordinated remodeling of the m6A regulatory machinery, characterized by significant upregulation of the writer METTL3 and downregulation of the eraser ALKBH5 and the reader YTHDF3. These changes were recapitulated in RAW264.7 macrophages infected in vitro, where METTL3 protein levels increased progressively between 2 and 8 hours post-infection (hpi), while ALKBH5 abundance declined, resulting in elevated global m6A levels detectable as early as the first post-internalization time point. Transcriptome-wide mapping by direct RNA sequencing at 8 hpi identified 1,998 m6A-modified transcripts harboring 7,132 high-confidence sites in non-infected macrophages, compared with 2,956 modified transcripts and 13,495 sites in infected cells. Beyond this quantitative expansion, infection was associated with increased modification occupancy at shared sites, a greater prevalence of multi-site and multi-region methylation, and selective remodeling of immune-related and immunometabolic transcripts, including Tlr4, Ccl2, Hmox1, Socs3, Rela, Hk1, Hk2, and Dicer1. Altogether, these findings establish that Leishmania infection drives extensive yet selective remodeling of the host m6A landscape and position the host epitranscriptome as a previously unrecognized regulatory axis in Leishmania-macrophage interactions, with implications for the development of host-directed therapeutic strategies. Impact StatementN6-methyladenosine (m6A) is the most abundant modification in eukaryotic mRNA, and emerging evidence links epitranscriptomic remodeling to host responses against diverse pathogens. However, whether m6A regulates host-macrophage responses during Leishmania infection remains unknown. Using Oxford Nanopore Direct RNA sequencing, we provided the first transcriptome-wide map of host m6A modifications during Leishmania amazonensis infection. Infection selectively remodels the m6A landscape of macrophages, targeting immune-regulatory and immunometabolic transcripts, establishing the host epistranscriptome as a previously unrecognized regulatory layer in Leishmania-macrophage interactions.

microbiology↗

Functional characterization of N-acetyltransferase 10 (NAT10) in Leishmania mexicana

Leishmania presents a complex life cycle that involves both invertebrate and vertebrate hosts. By regulating gene expression, protein synthesis, and metabolism, the parasite can adapt to various environmental conditions. This regulation occurs mainly at the post-transcriptional level and may involve epitranscriptomic modifications of RNAs. Recent studies have shown that mRNAs in humans undergo a modification known as N4-acetylcytidine (ac4C) catalyzed by the enzyme N-acetyltransferase (NAT10), impacting mRNAs stability and translation. Here, we characterized the NAT10 homologue of L. mexicana, finding that the enzyme exhibits all the conserved acetyltransferase domains and although failed to functionally complement the Kre33 mutant in Saccharomyces cerevisiae, has in vitro acetyltransferase activity. We also discovered that LmexNAT10 is nuclear, and seems essential, as evidenced by unsuccessful attempts to obtain null mutant parasites. Phenotypic characterization of single-knockout parasites revealed that LmexNAT10 affects the multiplication of procyclic forms and the promastigote-amastigote differentiation. Additionally, in vivo infection studies using the invertebrate vector Lutzomyia longipalpis showed a delay in the parasite differentiation into metacyclics. Finally, we observed changes in the cell cycle progression and protein synthesis in the mutant parasites. Together, these results suggest that LmexNAT10 might be important for parasite differentiation, potentially by regulating ac4C levels.

microbiology↗

Beyond Histones: Unveiling the Functional Roles of Protein Acetylation in Prokaryotes and Eukaryotes

Lysine acetylation plays a crucial role in cellular processes and is found across various evolutionary organisms. Recent advancements in proteomic techniques revealed the presence of acetylation in thousands of non-histone proteins. Here, we conducted extensive meta-analysis of 48 acetylomes spanning diverse organisms, including archaea, bacteria, fungi, protozoa, worms, plants, insects, crustacea, fish, and mammals. Our analyzes revealed a predominance of a single acetylation site in a protein detected in all studied organisms, and proteins heavily acetylated, with >5-10 acetylated-sites, were represented by Hsp70, histone or transcription GTP-biding domain. Moreover, using gene enrichment approaches we found that ATP metabolic processes, glycolysis, aminoacyl-tRNA synthetase pathways and oxidative stress response are among the most acetylated cellular processes. Finally, to better explore the regulatory function of acetylation in glycolysis and oxidative stress we used aldolase and superoxide dismutase A (SODA) enzymes as model. For aldolase, we found that K147 acetylation, responsible to regulate human enzyme, conserved in all phylogenic clade, suggesting that this acetylation might play the same role in other species; while for SODA, we identified many lysine residues in different species present in the tunnel region, which was demonstrated for human and Trypanosoma cruzi, as negative regulator, also suggesting a conserved regulatory mechanism. In conclusion, this study provides insights into the conservation and functional significance of lysine acetylation in different organisms emphasizing its roles in cellular processes, metabolic pathways, and molecular regulation, shedding light in the extensive function of non-histone lysine acetylation.

biochemistry↗