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Figueroa, D.

Publications and source records attributed to Figueroa, D..

5 recordsLinked to original sources

The Diverse Phenotypic and Mutational Landscape Induced by Fluoroquinolone Treatment

Despite extensive research on antibiotic resistance, the potential effects of antibiotic treatments on bacterial tolerance and resistance remain a significant concern. Although bacterial cells adopt a variety of mutational strategies to resist unfavorable circumstances, it is still unclear how antibiotic tolerance and resistance mechanisms affect bacterial fitness characteristics and whether evolved mutants exhibit similar properties across different cell populations subjected to the same conditions. Here, we used Escherichia coli, a fluoroquinolone antibiotic (ofloxacin), and adaptive laboratory evolutionary experiments to demonstrate that ofloxacin tolerance and resistance can evolve independently across different cell populations exposed to identical conditions. Fitness attributes, such as lag score, doubling time, competition score, and other metabolic features, were variably affected by antibiotic tolerance and resistance mechanisms. However, we did not observe strong and apparent correlations between fitness trade-offs and antibiotic tolerance and resistance. While our whole-genome sequencing identified some shared mutations, such as single nucleotide polymorphisms in the icd gene (a crucial citric acid cycle gene), evolved cell populations exhibited diverse genetic mutations without a clear pattern of a conserved evolutionary pathway. Our study also identifies unique phenotypes, such as those displaying significantly lower minimum inhibitory concentration levels compared to the parental strain yet showing remarkably high tolerance to the same antibiotic. Altogether, our study, examining the phenotypic and mutational landscapes of fluoroquinolone-induced strains, contributes to our understanding of complex bacterial adaptation mechanisms.

microbiology↗

Optogenetic control of a horizontally acquired region in yeast prevent stuck fermentations

Nitrogen limitations in the grape must is the main cause of stuck fermentations during the winemaking process. In Saccharomyces cerevisiae, a genetic segment known as region A, which harbors 12 protein-coding genes, was acquired horizontally from a phylogenetically distant yeast species. This region is mainly present in the genome of wine yeast strains, carrying genes that have been associated with nitrogen utilization. Despite the putative importance of region A in yeast fermentation, its contribution to the fermentative process is largely unknown. In this work, we used a wine yeast strain to evaluate the contribution of region A to the fermentation process. To do this, we first sequenced the genome of the wine yeast strain known as ALL using long-read sequencing and determined that region A is present in a single copy with two possible subtelomeric locations. We then implemented an optogenetic system in this wine yeast strain to precisely regulate the expression of each gene inside this region, generating a collection of 12 strains that allow for light- activated gene expression. To evaluate the role of these genes during fermentation, we assayed this collection using microculture and fermentation experiments in synthetic must with varying amounts of nitrogen concentration. Our results show that changes in gene expression for genes within this region can impact growth parameters and fermentation rate. We additionally found that the expression of various genes in region A is necessary to complete the fermentation process and prevent stuck fermentations under low nitrogen conditions. Altogether, our optogenetics-based approach demonstrates the importance of region A in completing fermentation under nitrogen-limited conditions. IMPORTANCEStuck fermentations due to limited nitrogen availability in grape must represents one of the main problems in the winemaking industry. Nitrogen limitation in grape musts reduce yeast biomass and fermentation rate, resulting in incomplete fermentations with high levels of residual sugar, undesired by-products, and microbiological instability. Here, we used an optogenetic approach to demonstrate that expression of genes within region A is necessary to complete fermentations under low nitrogen availability. Overall, our results support the idea that region A is a genetic signature for wine yeast strains adapted to low nitrogen conditions.

microbiology↗

Long-term efficacy of adoptive cell therapy is determined by host CD8+ T cells and undermined by lymphodepleting preconditioning

Adoptive T cell therapy (ACT) has demonstrated remarkable efficacy in treating hematological cancers. However, its efficacy against solid tumors remains limited and the emergence of cancer cells that lose expression of targeted antigens often promotes resistance to ACT. Importantly, the mechanisms underlying effective and durable ACT-mediated tumor control are incompletely understood. Here, we show that adoptive transfer of TCR-transgenic CD8+ T cells eliminates established murine melanoma tumors, with concomitant accumulation of tumor-infiltrating CD8+ T cells exhibiting both progenitor-exhausted and terminally-differentiated phenotypes. Interestingly, host CD8+ T cells contributed to ACT-mediated elimination of primary tumors and rejected ACT-resistant melanoma cells lacking the targeted antigen. Mechanistically, ACT induced TNF-- and cross-presenting dendritic cell-dependent tumor accumulation of endogenous CD8+ T cells and effective tumor elimination. Importantly, although lymphodepleting preconditioning enhanced ACT-mediated tumor elimination, it abrogated host antitumor immunity and protection against ACT-resistant melanoma cells. Enrichment of transcriptional signatures associated with TNF- signaling, cross-presenting dendritic cells and tumor-specific CD8+ T cells in human melanoma tumors correlated with favorable responses to ACT and increased survival. Our findings reveal that long-term efficacy of ACT is determined by the interplay between transferred and endogenous CD8+ T cells and is undermined by lymphodepleting preconditioning, which ultimately favors ACT resistance.

immunology↗

Transmission dynamics of MERS-CoV in a transgenic human DPP4 mouse model

Since 2002, three novel coronavirus outbreaks have occurred: severe acute respiratory syndrome coronavirus (SARS-CoV-1), Middle East respiratory syndrome coronavirus (MERS-CoV), and SARS-CoV-2. A better understanding of the transmission potential of coronaviruses will result in adequate infection control precautions and an early halt of transmission within the human population. Experiments on the stability of coronaviruses in the environment, as well as transmission models, are thus pertinent. Here, we show that transgenic mice expressing human DPP4 can be infected with MERS-CoV via the aerosol route. Exposure to 5x106 TCID50 and 5x104 TCID50 MERS-CoV per cage via fomites resulted in transmission in 15 out of 20 and 11 out of 18 animals, respectively. Exposure of sentinel mice to donor mice one day post inoculation with 105 TCID50 MERS-CoV resulted in transmission in 1 out of 38 mice via direct contact and 4 out of 54 mice via airborne contact. Exposure to donor mice inoculated with 104 TCID50 MERS-CoV resulted in transmission in 0 out of 20 pairs via direct contact and 0 out of 5 pairs via the airborne route. Our model shows limited transmission of MERS-CoV via the fomite, direct contact, and airborne routes. The hDPP4 mouse model will allow assessment of the ongoing evolution of MERS-CoV in the context of acquiring enhanced human-to-human transmission kinetics and will inform the development of other transmission models.

microbiology↗

Nuanced role for dendritic cell intrinsic IRE1 RNase in the regulation of antitumor adaptive immunity.

The IRE1/XBPls axis of the unfolded protein response (UPR) plays divergent roles in dendritic cell (DC) biology in steady state versus tumor contexts. Whereas tumor associated DCs show dysfunctional IRE1/XBP1s activation that curtails their function, the homeostasis of conventional type 1 DCs (cDC1) in tissues requires intact IRE1 RNase activity. Considering that cDC1s are key orchestrators of antitumor immunity, it is relevant to understand the functional versus dysfunctional roles of IRE1/XBP1s in tumor DC subtypes. Here, we show that cDC1s constitutively activate IRE1 RNase within subcutaneous B16 melanoma and MC38 adenocarcinoma tumor models. Mice lacking XBP1s in DCs display increased melanoma tumor growth, reduced T cell effector responses and accumulation of terminal exhausted CD8+ T cells. Transcriptomic studies revealed that XBP1 deficiency in tumor cDCls decreased expression of mRNAs encoding XBPls and regulated IRE1 dependent decay (RIDD) targets. Finally, we find that the dysregulated melanoma growth and impaired T cell immunity noticed in XBP1 deficient mice are attributed to RIDD induction in DCs. This work indicates that IREl RNase activity in melanoma/MC38-associated DCs fine tunes aspects of antitumor immunity independently of XBP1s, revealing a differential role for the UPR axis that depends on the DC subtype and cancer model.

immunology↗