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Levin, D. B.

Publications and source records attributed to Levin, D. B..

2 recordsLinked to original sources

Optimizing a Culture-Enriched Hybrid Metagenomics Pipeline to Assess the AMR Footprint of Livestock Manure in Anaerobic Digestate

The role of environmental samples from livestock production systems, including manure and anaerobic digestate, as reservoirs of antimicrobial resistance genes (ARGs) is likely underestimated because conventional metagenomic approaches can overlook low-abundance ARGs and often lack the resolution needed to reliably associate these genes with their microbial hosts and linked mobile genetic elements (MGEs). Here, we evaluated whether culture-enriched metagenomics (CEMG), with and without antibiotic selection, enhances ARG detection in anaerobic digestate and improves the resolution of ARG-MGE-host associations using hybrid short- and long-read metagenomic assembly. Culture enrichment substantially increased ARG recovery, mean ARG abundance rose from 15.4 counts per million (CPM) in culture-independent direct metagenomes from fresh digestate (FD) to 124 CPM in CEMG without antibiotics and 160.0 CPM in antibiotic-selective CEMG, corresponding to an approximately 10.4-fold increase over FD. In FD, only 9 unique ARGs were detected, whereas enrichment recovered 112, including ARGs of clinical importance such as glycopeptide resistance, {beta}-lactamase genes of the CTX-M, OXA, and TEM families, and the cfr 23S rRNA methyltransferase conferring cross- resistance to multiple antibiotic classes. Oxygen availability was the strongest factor structuring enriched community compositions and ARG profiles, with aerobic and anaerobic communities forming distinct clusters. Antibiotic selection induced targeted, class-specific shifts in ARG profiles, with ARGs associated with tetracycline resistance consistently enriched across treatments. Hybrid metagenomic assembly resolved the genomic context of 784 ARGs, of which 59.3% were co-localized with at least one class of mobile genetic element (MGE), predominantly plasmids, insertion sequences, and integrative and conjugative/mobilizable elements (ICEs/IMEs). Biocide and metal resistance genes frequently co-occurred with ARGs on the same contigs, highlighting the potential for co-selection. Together, these findings demonstrate that antibiotic-selective culture enrichment enhances resistome surveillance by improving detection of low-abundance ARGs, while hybrid assembly provides critical genomic context for assessing their mobility and host associations. IMPORTANCELivestock manure and its byproducts, such as anaerobic digestate, are recognized as important environmental reservoirs of antimicrobial resistance genes and resistant bacteria, yet current metagenomic approaches may underestimate this risk by failing to detect low abundance but clinically relevant ARGs. Here, we show that integrating culture enrichment with hybrid metagenomics improves ARG recovery and reveals ARG co-localization with mobile genetic elements and putative bacterial hosts. This approach captures a cultivable and condition- responsive fraction of the resistome that is not readily accessible through direct metagenomic sequencing alone, providing a more informative framework for environmental AMR surveillance.

microbiology↗

Burkholderia Genes Involved in Extracellular Bioplastic Degradation Revealed by Tn-seq and CRISPR-Cas

Bioplastics represent promising alternatives to petroleum-based plastics, yet their biodegradation remains insufficiently understood. Identifying bacteria capable of degrading bioplastics extracellularly could enhance end-of-life management practices. To investigate Burkholderias capacities for the degradation of medium-chain-length polyhydroxyalkanoate (mcl-PHA), we screened a panel of Burkholderia strains and identified such capacity in strains of B. gladioli, B. multivorans, and B. vietnamiensis. To elucidate the genetic basis of this activity, we performed transposon mutagenesis followed by activity-based screening and Tn-seq on B. vietnamiensis LMG 16232. Disrupted genetic elements in transposon mutants with negative phenotypes were further investigated using a CRISPR-associated transposase (CAST) system. These included a lipase production gene cluster, encoding two putative triacylglycerol lipases and a chaperone, and genes coding for a a A24 family peptidase, a TetR/AcrR family transcriptional regulator and a type II secretion system (T2SS) protein. Complete loss or reduced extracellular mcl-PHA depolymerase activity was observed in the CAST mutants, validating their involvement in mcl-PHA degradation. Notably, only one of the two lipases encoded in the lipase production gene cluster was responsible for mcl-PHA degradation, suggesting that while lipases may show substrate promiscuity, lipase functional annotation does not necessarily imply mcl-PHA depolymerization. Docking experiments using the amino acid sequences of the two lipases supported these findings. Together, we identify a gene coding for an active mcl-PHA depolymerase in B. vietnamiensis and demonstrate the power of combining activity-based screening, Tn-seq, and CAST to rapidly establish gene-to-function links. ImportanceDue to their versatile metabolism, Burkholderia strains play critical roles in degradation of multiple compounds in the environment. Here we show that several Burkholderia species can extracellularly degrade medium-chain-length polyhydroxyalkanoates (mcl-PHAs), a promising class of bioplastics. By integrating transposon mutagenesis, Tn-seq, and CRISPR-associated transposase (CAST) technologies, we identify and validate key genetic determinants involved in mcl-PHA degradation in B. vietnamiensis. These genes encode a lipase, a secretion system component, and regulatory factors, underscoring the complexity and specificity of microbial bioplastic degradation pathways. These findings not only advance our understanding of PHA biodegradation but also identifies B. vietnamiensis as as a source of enzymes capable of degrading extracellular mcl-PHA.

microbiology↗