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Washington, T. A.

Publications and source records attributed to Washington, T. A..

3 recordsLinked to original sources

Antibiotic dose-response curves can measure antibiotic activity against Mycobacterium abscessus and Mycobacterium peregrinum

Mycobacterium abscessus is a drug-resistant pathogen associated with poor clinical outcomes despite treatment with multidrug antibiotic regimens. Apart from clarithromycin, antimicrobial susceptibility testing (AST) results for Mycobacterium abscessus cannot guide antibiotic selection. AST involves measuring the minimum inhibitory concentration (MIC), which is allowed to span a four-fold range in concentration. This accepted variability of the MIC limits the clinical utility of AST. Antimicrobial dose-response curves, obtained by measuring the growth inhibition of a given organism to increasing concentrations of an antibiotic, can yield metrics of antibiotic activity that are less variable than the MIC. We used Clinical and Laboratory Standards Institute growth conditions for rapid-grower nontuberculous mycobacteria to generate 990 dose-response curves across three time points (72 hours, 96 hours, and 120 hours) for six guideline-recommended (clarithromycin, amikacin, cefoxitin, linezolid, tigecycline, and clofazimine) and five new (omadacycline, tedizolid, SPR719, SQ109, and bedaquiline) antibiotics against Mycobacterium abscessus subspecies abscessus ATCC 19977 and Mycobacterium peregrinum ATCC 700686. We established the fit of the dose-response curve (R2) as a quality control metric. Using the geometric standard deviation and median coefficient of variation, we demonstrated that the IC50 and IC75 (antibiotic concentrations corresponding to 50% and 75% growth inhibition, respectively) are less variable than the MIC. We identified time-dependent changes in dose-response curve metrics that allow the detection of inducible clarithromycin resistance with only five days of incubation. This study demonstrates the potential of dose-response curves in measuring antibiotic activity against Mycobacterium abscessus.

microbiology↗

The Time-Course of Cancer Cachexia Onset Reveals Biphasic Transcriptional Disruptions in Female Skeletal Muscle Distinct from Males

BackgroundCancer-cachexia (CC) is experienced by 80% of cancer patients, representing 40% of cancer-related deaths. Evidence suggests biological sex dimorphism is associated with CC. Assessments of the female transcriptome in CC are lacking and direct comparisons between biological sex are scarce. The purpose of this study was to define the time course of LLC-induced CC in females using transcriptomics, while directly comparing the effects of biological sex. MethodsEight-week-old female mice were injected with LLC cells (1x106) or sterile PBS to the hind flank. Tumors developed for 1, 2, 3 or 4-weeks. Due to dimorphism between tumor weight in 3- and 4-weeks of development, these were reorganized as low-tumor weight (LT, tumor-weight [&le;]1.2g), or high-tumor weight (HT, tumor-weight [&ge;]2g). Gastrocnemius muscle was collected for RNA-sequencing (RNA-seq). Differentially expressed genes (DEGs) were defined as FDR<0.05. Data were further compared to RNA-seq of male mice from a previous study. ResultsGlobal gene expression of female gastrocnemius muscle reveals consistent DEGs at all timepoints, all associated with type-II interferon signaling (FDR<0.05). Early transcriptomic upregulation of extracellular-matrix pathways was noted at 1wk (p<0.05), JAK-STAT pathway was upregulated in 2wk, LT, and HT. Type II interferon signaling was downregulated in 1wk, LT, and HT (p<0.05). A second major transcriptomic downregulation in oxidative phosphorylation, electron transport chain and TCA cycle were noted in cachectic (HT) muscle only (p<0.05). Male-female comparison of cachectic groups revealed 69% of DEGs were distinct between sex (FDR<0.05). Comparison of the top 10-up and down DEGs revealed downregulation of type-II Interferon genes was unique to female, while males show upregulation of interferon-signaling pathways. ConclusionWe demonstrate biphasic disruptions in transcriptome of female LLC tumor-bearing mice: an early phase associated with ECM remodeling and a late phase, accompanied by onset of systemic cachexia, affecting overall skeletal muscle energy metabolism. Comparison of cachectic female-male mice reveals ~2/3 of DEGs are biological sex specific, providing evidence of dimorphic mechanisms of cachexia between sexes. Alterations to Type-II Interferon signaling appears specific to CC development in females, suggesting a new biological sex-specific marker of CC. Our data support biological sex dimorphisms in development of CC. HighlightsO_LIWhile males show impairments in skeletal muscle energy metabolism in early stages of CC, early transcriptomic alterations impact ECM remodeling that precedes impairments in skeletal muscle energy metabolism in female tumor-bearing mice. C_LIO_LI2/3 of differently expressed genes in skeletal muscle undergoing cachexia are biological sex specific. C_LIO_LIDownregulation of Type-II Interferon genes is unique to female mice, which displayed preserved gastrocnemius mass despite systemic cachexia, representing a potential therapeutic target for muscle mass maintenance in cancer-induced atrophy. C_LIO_LIMechanisms of LLC-induced cachexia appear to be biological sex specific which needs to be considered in further study of mechanisms and therapeutic modalities. C_LI

bioinformatics↗

The branched chain aminotransferase IlvE promotes growth, stress resistance, and pathogenesis of Listeria monocytogenes

The bacterial plasma membrane is a key interface during pathogen-host interactions, and membrane composition enhances resistance against host antimicrobial defenses. Branched chain fatty acids (BCFAs) are the major plasma membrane component in the intracellular Gram-positive pathogen Listeria monocytogenes (Lm) and BCFA metabolism is essential for Lm growth and virulence. BCFA synthesis requires branched chain amino acids (BCAAs), and the BCAA Isoleucine (Ile) is a necessary substrate for the predominant membrane anteiso-BCFAs (ai-BCFAs) as well as an environmental signal for virulence regulation in Lm. In this study, we explored how two proteins that metabolize or sense Ile contribute to Lm growth, BCFA metabolism, and virulence. The IlvE aminotransferase incorporates Ile into ai-BCFAs, while CodY is an Ile-sensing regulator that coordinates BCAA synthesis and virulence gene expression. Analysis of deletion mutants lacking IlvE ({Delta}ilvE) or CodY ({Delta}codY) revealed a major role for IlvE under nutrient restriction and stress conditions. Cultures of the {Delta}ilvE mutant contained proportionally less ai-BCFAs relative to wild type, while of the {Delta}codY mutant had a lower proportion of ai-BCFAs in stationary phase, despite containing more cell-associated Ile. Both {Delta}ilvE and {Delta}codY mutants required exogenous Ile for optimal growth, but the {Delta}ilvE mutant had an absolute requirement for Valine and Leucine when Ile was absent. IlvE was also necessary for resistance to membrane stress, cell-to-cell spread, infection of primary macrophages, and virulence in mice. Our findings implicate IlvE as an integral aspect of Lm stress resistance and emphasize the central importance of Ile in Lm growth and virulence.

microbiology↗