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Viegas, I.

Publications and source records attributed to Viegas, I..

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ZNK1 senses zinc and degrades zinc transporter mRNA in trypanosomes

Like other cells, parasitic and other trypanosomatids sense and regulate Zn2+ transport, but the mechanisms involved remained unknown. Here we identify a trypanosome RNA-binding protein which specifically eliminates ZIP3 Zn2+-transporter mRNA in Zn2+-replete conditions. We first demonstrated that Trypanosoma brucei ZIP3 mRNA abundance is subject to 3-untranslated region (3-UTR) and Zn2+-dependent negative control. A genome-wide RNA interference library screen, using a reporter associated with the ZIP3 3-UTR, identified Tb927.11.9510 as a candidate Zn2+-sensor. We name this protein Zinc Nuclear Knuckles 1 (ZNK1) since it localises to the nucleus and contains several Zn2+-knuckle motifs. ZNK1 is conserved among trypanosomatids, and a PIN-domain suggests a ribonuclease-based mechanism. We validate ZNK1 as a ZIP3 3-UTR dependent negative regulator and identify a GU-repeat motif in the ZIP3 3-UTR that is predictive of negative control by ZNK1. We use Cas9-editing to knockout ZNK1, and RNA-seq to assess the consequences, revealing highly specific accumulation of ZIP3 transcripts in znk1-null cells. We conclude that ZNK1 senses Zn2+-abundance and eliminates ZIP3 mRNA in a Zn2+-dependent manner. We suggest that trypanosomatid ZNK1 is an RNA-specific zinc finger nuclease that binds ZIP3 3-UTRs and degrades ZIP3 mRNA only when the tandem sensor modules are coordinated with Zn2+. Key pointsO_LITrypanosome Zinc Nuclear Knuckles 1 (ZNK1) is a zinc-sensor that eliminates zinc transporter mRNA. C_LIO_LIZNK1 negative control operates via the transporter mRNA 3-untranslated region. C_LIO_LIThe findings indicate that trypanosomatid ZNK1 is a conserved RNA-specific zinc finger nuclease. C_LI

microbiology↗

m6A landscape is more pervasive when Trypanosoma brucei exits the cell cycle

N6-methyladenosine (m6A) is a mRNA modification with important roles in gene expression. In African trypanosomes, this post-transcriptional modification is detected in hundreds of transcripts and it affects the stability of the variant surface glycoprotein (VSG) transcript in the proliferating blood stream form. However, how m6A landscape varies across the life cycle remains poorly defined. Using full-length, non-fragmented RNA, we immunoprecipitated and sequenced m6A-modified transcripts across three life cycle stages of Trypanosoma brucei - slender (proliferative), stumpy (quiescent), and procyclic forms (proliferative). We found that 1037 transcripts are methylated in at least one of these three life cycle stages. While 21% of methylated transcripts are common in the three stages of the life cycle, globally each stage has a distinct methylome. Interestingly, 47% of methylated transcripts are detected in the quiescent stumpy form only, suggesting a critical role for m6A when parasites exit the cell cycle and prepare for transmission by the Tsetse fly. In this stage, we found that a significant proportion of methylated transcripts encodes for proteins involved in RNA metabolism, which is consistent with their reduced transcription and translation. Moreover, we found that not all major surface proteins are regulated by m6A, as procyclins are not methylated, and that, within the VSG repertoire, not all VSG transcripts are demethylated upon parasite differentiation to procyclic form. This study reveals that the m6A regulatory landscape is specific to each life cycle stage, becoming more pervasive as T. brucei exits the cell cycle. SummaryAfrican trypanosome parasites adapt to mammalian and insect hosts by adjusting gene expression, morphology, and metabolism. In this study, we focus on how N6-methyladenosine (m6A), a post-transcriptional modification, affects the parasites transcriptome throughout its differentiation from the mammalian host to the fly. We found that methylation is differentially regulated as the life cycle progresses, being particularly prevalent in the non-proliferative stumpy form, as more methylated transcripts are found at this insect-infective stage than in slender and procyclic forms. We further show that the not all parasite surface proteins are regulated by m6A and that the previously identified link between m6A methylation and the expression level of the major surface protein of bloodstream forms applies to the active variant surface glycoprotein, but not always to silent genes, suggesting two distinct regulatory mechanisms of (de)methylation.

molecular biology↗