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Duque-Pedraza, J. J.

Publications and source records attributed to Duque-Pedraza, J. J..

4 recordsLinked to original sources

Characterization of six environmental coli-phages isolated in Astana, Kazakhstan, during the School of Molecular and Theoretical Biology

Bacteriophage (phage) collections are essential resources for studying virus-host interactions in bacterial species. Here, we report six Escherichia coli-infecting phages that expand the Lund Collection of Bacteriophages. These phages were isolated in 2025 within the framework of the School of Molecular and Theoretical Biology for high-school students, from samples collected in Lake Taldykol, Astana, Kazakhstan, using E. coli strains MG1655{Delta}RM and EV36 as hosts. The isolated phages comprise Taldykol (LuPh6), a member of the genus Kagunavirus; Aidakhar (LuPh7) of the genus Phapecoctavirus; Samruk (LuPh8) of the genus Tequintavirus; the T-odd-like phage Baiterek (LuPh9) of the genus Vequintavirus; and two T-even-like phages Tulpar (LuPh10) and Shurale (LuPh11) that belong to the Tequatrovirus genus. This expanded phage collection enhances the toolkit for investigating phage-host interactions and their molecular mechanisms and highlights the use of phage isolation as a component of high school research education. ImportancePhage collections are a key resource for studying phage biology, phage-bacteria interactions and bacterial immune systems. Here, we extend the Lund Phage Collection through the isolation and characterisation of six E. coli-infecting phages, including three novel species (LuPh6, LuPh8 and LuPh11) as well as a member of the genus Phapecoctavirus that not represented in widely used collections such as BASEL (LuPh7). This study expands the resources available for probing phage-host interactions and demonstrates an example of integrating phage research into education of high school students.

microbiology↗

Nucleoid-associated proteins sense phage-induced genome damage to elicit abortive infection

Bacteria have evolved diverse immune strategies to detect and neutralize bacteriophage infection. Here, we describe an unprecedented paradigm in which a chromosome-architecting nucleoid-associated protein (NAP) is repurposed as a viral infection sensor. When phage attack leads to genome degradation, the NAP sensor is released from the nucleoid to the cytoplasm, where it binds and activates diverse immune effectors. One such effector is a nucleotide-modifying toxin normally existing as an inactive homotetramer. NAP binding converts it into a catalytically active heterotrimer that halts both transcription and translation. Phylogenetic analyses unveiled the high modularity, polyphyletic origin, and wide distribution of NAP-mediated defenses. Collectively, we define a distinct class of defense systems in which bacteria sense phage-induced genome damage through NAP relocation, highlighting an unexpected but essential role for these proteins as sentinels of genome integrity.

microbiology↗

Characterization of five environmental phages infecting Escherichia coli K-12 isolated during a phage biology training course

Phage collections are essential tools for discovering and dissecting bacterial anti-phage defense systems. Here, we report the isolation and characterization of five environmental Escherichia coli-infecting phages, obtained during the 2023 Fundamentals of Basic and Applied Phage Biology course at Lund University. The phages were isolated using a motile E. coli K-12 BW25113 strain, whose motility is conferred by an IS5 insertion upstream of the flhDC operon, the master regulator of flagellar synthesis. The isolated Escherichia phages include Lubas (LuPh1) and Lucat (LuPh2) of the genus Tequatrovirus; Lupin (LuPh3) and Lucris (LuPh4) of the genus Tequintavirus; and Kompetensportalen (LuPh5) of the genus Chivirus. Transmission electron microscopy confirmed myovirus and siphovirus morphologies consistent with these genera. As expected for phages in the flagellotropic Chivirus genus, LuPh5 failed to infect a poorly motile BW25113 strain lacking the IS5 element upstream of flhDC. By testing a panel of eight previously described anti-phage defense systems, we found that LuPh1 and LuPh2 are inhibited by the toxin-antitoxin-chaperone CmdTAC system; LuPh5 is inhibited by both the restriction-modification system EcoRI and the abortive infection reverse transcriptase AbiK; and all five phages are sensitive to the hybrid artificial CmdTA-HigC system. Collectively, our findings expand the toolkit for probing phage-host interactions and underscore the pedagogical value of incorporating phage isolation into practical training for emerging researchers.

microbiology↗

The structural basis of hyperpromiscuity in a core combinatorial network of Type II toxin-antitoxin and related phage defence systems

Toxin-antitoxin (TA) systems are a large group of small genetic modules found in prokaryotes and their mobile genetic elements. Type II TAs are encoded as bicistronic (two-gene) operons that encode two proteins: a toxin and a neutralising antitoxin. Using our tool NetFlax (standing for Network-FlaGs for toxins and antitoxins) we have performed a large-scale bioinformatic analysis of proteinaceous TAs, revealing interconnected clusters constituting a core network of TA-like gene pairs. To understand the structural basis of toxin neutralisation by antitoxins, we have predicted the structures of 3,419 complexes with AlphaFold2. Together with mutagenesis and functional assays, our structural predictions provide insights into the neutralising mechanism of the hyperpromiscuous Panacea antitoxin domain. In antitoxins composed of standalone Panacea, the domain mediates direct toxin neutralisation, while in multidomain antitoxins the neutralisation is mediated by other domains, such as PAD1, Phd-C and ZFD. We hypothesise that Panacea acts as a sensor that regulates TA activation. We have experimentally validated 16 new NetFlax TA systems. We used functional domain annotations and with metabolic labelling assays to predict their potential mechanisms of toxicity (such as disruption of membrane integrity, inhibition of cell division and abrogation of protein synthesis) as well as biological functions (such as antiphage defence). The interactive version of the NetFlax TA network that includes structural predictions can be accessed at http://netflax.webflags.se/. Significance statementToxin-antitoxin systems are enigmatic components of microbial genomes, with their biological functions being a conundrum of debate for decades. Increasingly, TAs are being found to have a role in defence against bacteriophages. By mapping and experimentally validating a core combinatorial network of TA systems and high-throughput prediction of structural interfaces, we uncover the evolutionary scale of TA partner swapping and discover new toxic effectors. We validate the predicted toxin:antitoxin complex interfaces of four TA systems, uncovering the evolutionary malleable mechanism of toxin neutralisation by Panacea-containing PanA antitoxins. We find TAs are evolutionarily related to several other phage defence systems, cementing their role as important molecular components of the arsenal of microbial warfare.

microbiology↗