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Huang, A. D.

Publications and source records attributed to Huang, A. D..

2 recordsLinked to original sources

ROCker models for reliable detection and typing of short-read sequences carrying mcr, erm, mph, and lnu antibiotic resistance genes

Quantitative monitoring of emerging antimicrobial resistance genes (ARGs) using short-read sequences remains challenging due to the high frequency of amino acid functional domains and motifs shared with related but functionally distinct (non-target) proteins. To facilitate ARG monitoring efforts using unassembled short-reads, we present novel ROCker models for mcr, mph, erm, and lnu ARG families as well as models for variants of special public health concern within these families including mcr-1, mphA, ermB, lnuF, lnuB, and lnuG genes. For this, we curated target gene sequence sets for model training and built these models using the recently updated ROCker V2 pipeline (Gerhardt et al., in review). To validate our models, we simulated reads from the whole genome of ARG-carrying isolates spanning a range of common read lengths and used them to challenge the filtering efficacy of ROCker vs. common static filtering approaches such as similarity searches using BLASTx with various e-value thresholds or hidden Markov models. ROCker models consistently showed F1 scores up to 10x higher (31% higher on average) and lower false-positive (by 30%, on average) and false-negative (by 16%, on average) rates based on 250 bp-long reads compared to alternative methods. The ROCker models and all related reference material and data are freely available through http://enve-omics.ce.gatech.edu/rocker/models, further expanding the available model collection developed previously for other genes. Their application to short-read metagenomes, metatranscriptomes, and PCR amplicon data should facilitate more accurate classification and quantification of unassembled short-read sequences for these ARG families and specific genes. SignificanceAntimicrobial resistance gene families encoding erm and mph genes confer resistance to the macrolide class of antimicrobials used to treat a wide range of infections. Similarly, the mcr gene family confers resistance to polymyxin E (colistin), a drug of last resort for many serious drug-resistant bacterial infections, and the lnu gene family confers resistance to lincomycin, reserved for patients allergic to penicillin or where bacteria have developed resistance to other antimicrobials. Assessing the prevalence of these genes in clinical or environmental samples and monitoring their spreading to new pathogens are thus important for quantifying the associated public health risk. However, detecting these and other resistance genes in short-read sequence data is technically challenging. Our ROCker bioinformatic pipeline achieves reliable detection and typing of broad-range target gene sequences in complex data sets, and thus contributes toward solving an important problem in ongoing surveillance efforts of antimicrobial resistance.

microbiology↗

Genetic and lipidomic identification of tuberculostearic acid as a controller of mycobacterial membrane compartmentalization

Mycobacteria diverge in a basic way from other bacterial and eukaryotic cells based on their distinct membrane structures. Here we report genome-wide transposon sequencing to discover the controllers of membrane compartmentalization in Mycobacterium smegmatis. cfa, a gene that encodes a putative cyclopropane-fatty-acyl-phospholipid synthase, shows the most significant effect on recovery from a membrane destabilizer, dibucaine. Lipidomic analysis of cfa deletion mutants demonstrates an essential role of Cfa in the synthesis of specific membrane lipids containing a C19:0 monomethyl-branched stearic acid. This molecule, also known as tuberculostearic acid (TBSA), has been intensively studied for decades due to its high level and genus-specific expression in mycobacteria. The proposed Cfa-mediated conversion of an unsaturation to a methylation matched well with its proposed role in lateral membrane organization, so we used new tools to determine the non-redundant effects of Cfa and TBSA in mycobacterial cells. cfa expression regulated major classes of membrane lipids including phosphatidylinositols, phosphatidylethanolamines and phosphatidylinositol mannosides. Cfa localized within the intracellular membrane domain (IMD), where it controls both cellular growth and recovery from membrane fluidization by facilitating subpolar localization of the IMD. Overall, cfa controls lateral membrane partitioning but does not detectably alter orthogonal transmembrane permeability. More generally, these results support the proposed role of the subpolar IMD as a subcellular site of mycobacterial control of membrane function. SignificanceMycobacteria remain major causes of disease worldwide based in part on their unusual membrane structures, which interface with the host. Here we discover the long sought biosynthetic origin of tuberculostearic acid (TBSA), a major fatty acid found selectively in mycobacteria, as well as its role in mycobacterial cells. The lipid is produced by an enzyme called Cfa, whose loss causes a growth defect and slow reformation of a membrane domain near the pole of the rod-shaped cell. Thus, our study offers mechanistic insights to the intrinsic molecular factors critical for mycobacterial plasma membrane partitioning.

microbiology↗