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Antibiotic responses in bacteria are highly dynamic and heterogeneous, with sudden exposure of bacterial colonies to high drug doses resulting in the coexistence of recovered and arrested cells. The dynamics of the response is determined by regulatory circuits controlling the expression of resistance genes, which are in turn modulated by the drug's action on cell growth and metabolism. Despite advances in understanding gene regulation at the molecular level, we still lack a framework to describe how feedback mechanisms resulting from the interdependence between expression of resistance and cell metabolism can amplify naturally occurring noise and create heterogeneity at the population level. To understand how this interplay affects cell survival upon exposure, we constructed a mathematical model of the dynamics of antibiotic responses that links metabolism and regulation of gene expression, based on the tetracycline resistanceoperon in. We use this model to interpret measurements of growth and expression of resistance in microfluidic experiments, both in single cells and in biofilms. We also implemented a stochastic model of the drug response, to show that exposure to high drug levels results in large variations of recovery times and heterogeneity at the population level. We show that stochasticity is important to determine how nutrient quality affects cell survival during exposure to high drug concentrations. A quantitative description of how microbes respond to antibiotics in dynamical environments is crucial to understand population-level behaviors such as biofilms and pathogenesis.
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http://dx.doi.org/10.1088/1478-3975/ad2d64 | DOI Listing |
Mol Cancer Ther
September 2025
Case Western Reserve University School of Medicine, Cleveland, OH, United States.
The estrogen receptor (ER or ERα) remains the primary therapeutic target for luminal breast cancer, with current treatments centered on competitive antagonists, receptor down-regulators, and aromatase inhibitors. Despite these options, resistance frequently emerges, highlighting the need for alternative targeting strategies. We discovered a novel mechanism of ER inhibition that targets the previously unexplored interface between the DNA-binding domain (DBD) and ligand-binding domain (LBD) of the receptor.
View Article and Find Full Text PDFAnn Med
December 2025
Department of Hospital Pathology, Seoul St. Mary's Hospital, College of Medicine, The Catholic University of Korea, Seoul, Republic of Korea.
Background: Small cell lung cancer (SCLC) is a highly aggressive neuroendocrine carcinoma (NEC) with poor prognosis due to chemotherapy resistance. Molecular subtypes, including ASCL1, NEUROD1, YAP1 and POU2F3, have distinct clinical implications. POU2F3, linked to a tuft cell-like lineage, represents a non-neuroendocrine subtype found in SCLC and extrapulmonary NECs.
View Article and Find Full Text PDFFASEB J
September 2025
Intensive Care Unit, Dongguan Traditional Chinese Medicine Hospital, Dongguan, Guangdong Province, China.
This study aimed to evaluate the quality of multidisciplinary team (MDT) management in healthcare-associated infection (HAI) prevention and control, as well as its impact on multidrug-resistant organism (MDRO) infections. This was a retrospective, single-center study with a small sample size. A total of 400 patients admitted to the Departments of Critical Care Medicine or Orthopedics between January 2022 and December 2023 were divided into a control group (n = 200, receiving conventional HAI management) and an experimental group (n = 200, undergoing MDT management).
View Article and Find Full Text PDFMycoses
September 2025
Grupo Infección e Inmunidad, Facultad Ciencias de la Salud, Universidad Tecnológica de Pereira, Pereira, Risaralda, Colombia.
Background: Malassezia genus includes lipodependent commensal yeasts of humans and animals' skin and mucous membranes. It can cause dermatological pathologies, and azoles are mainly used for treatment. However, in vitro susceptibility testing has shown decreased sensitivity to these antifungals.
View Article and Find Full Text PDFBr J Pharmacol
September 2025
Department of Physiology and Medical Physics, RCSI University of Medicine and Health Sciences, Dublin, Ireland.
Background And Purpose: Neuroinflammation is increasingly recognised to contribute to drug-resistant epilepsy. Activation of ATP-gated P2X7 receptors has emerged as an important upstream mechanism, and increased P2X7 receptor expression is present in the seizure focus in rodent models and patients. Pharmacological antagonists of P2X7 receptors attenuate seizures in rodents, but this has not been explored in human neural networks.
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