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Prostova, M.

Publications and source records attributed to Prostova, M..

3 recordsLinked to original sources

DNA-targeting short Argonaute triggers effector nuclease to protect bacteria from invaders

Two prokaryotic defence systems, Argonautes (pAgos) and CRISPR-Cas, detect invader nucleic acids using complementary guides. Upon recognition, the target is cleaved through nuclease activities of pAgo or Cas proteins thus protecting the cell from invasion. However, not all pAgos are active nucleases. Members of a large clade of short pAgos bind nucleic acid guides but lack nuclease activity suggesting a different mechanism of action. Here, we have investigated short pAgo from Novosphingopyxis baekryungensis (NbaAgo). We have shown that NbaAgo forms a heterodimeric complex, SPARDA, with a co-encoded effector nuclease. RNA-guided target DNA recognition unleashes the nuclease activity of SPARDA leading to indiscriminate collateral cleavage of DNA and RNA. Activation of SPARDA results in cell death during plasmid transformation or phage infection, thus protecting bacterial population from invaders. The collateral activity of SPARDA allows highly sensitive detection of specific DNA targets. SPARDA expands the list of prokaryotic immune systems that elicit suicidal cell response with a unique range of nuclease activities, creating additional opportunities for biotechnologies.

molecular biology↗

Bacterial Argonaute nucleases reveal different modes of DNA targeting in vitro and in vivo

Prokaryotic Argonaute proteins (pAgos) are homologs of eukaryotic Argonautes (eAgos) that were similarly proposed to play a role in cell defense against invaders. However, pAgos are much more diverse than eAgos and very little is known about their functional activity and target specificity in vivo. Here, we describe five pAgo proteins from mesophilic bacteria that act as DNA-guided DNA endonucleases and analyze their ability to target chromosomal and invader DNA. In vitro, the analyzed proteins use small guide DNAs for precise cleavage of single-stranded DNA at a wide range of temperatures. Upon their expression in Escherichia coli, all five pAgos are loaded with small DNAs preferentially produced from plasmid DNA and from chromosomal regions of replication termination. One of the tested pAgos, EmaAgo from Exiguobacterium marinum can induce DNA interference between multicopy sequences resulting in targeted processing of homologous plasmid and chromosomal loci. EmaAgo also protects bacteria from bacteriophage infection and is preferentially loaded with phage guide DNAs suggesting that the ability of pAgos to target multicopy elements may be crucial for their protective function. The wide spectrum of pAgo activities suggests that they may have diverse functions in vivo and paves the way for their use in biotechnology.

molecular biology↗

Specific targeting of plasmids with Argonaute enables genome editing

Prokaryotic Argonautes (pAgos) are programmable nucleases involved in cell defense against invading DNA. Recent studies showed that pAgos can bind small single-stranded guide DNAs (gDNAs) to recognize and cleave complementary DNA in vitro. In vivo pAgos preferentially target plasmids, phages and multicopy genetic elements. Here, we reveal that CbAgo nuclease from Clostridium butyricum can be used for genomic DNA cleavage and engineering in bacteria. CbAgo-dependent targeting of genomic loci with plasmid-derived gDNAs promotes recombination between plasmid and chromosomal DNA. Efficient genome cleavage and recombineering depends on the catalytic activity of CbAgo, its interactions with gDNAs, and the extent of homology between plasmid and chromosomal sequences. Specific targeting of plasmids with Argonautes can be used to integrate plasmid-encoded sequences into the chromosome thus enabling genome editing. One-Sentence SummaryProkaryotic Argonaute nuclease induces DNA interference between plasmid and chromosomal DNA to promote genome recombineering.

molecular biology↗