Search bioRxiv⌕ Search

Biology subjects

Fernandez-Prada, C.

Publications and source records attributed to Fernandez-Prada, C..

2 recordsLinked to original sources

Pioneer factor IRF1 unlocks latent enhancers to rewire chromatin and immunometabolism in inflammatory macrophages

Macrophages undergo extensive chromatin and metabolic remodeling to mount effective inflammatory responses. Here, we identify Interferon Regulatory Factor 1 (IRF1) as a pioneer factor that orchestrates these processes during IFN{gamma}-driven macrophage activation. Integrative ATAC-seq, ChIP-seq, Hi-ChIP, and nascent RNA-seq demonstrated that IRF1 rapidly engages closed chromatin, initiates enhancer remodeling, and drives removal of repressive histone marks followed by deposition of activating modifications. IRF1-established enhancers form long-range chromatin interactions with target promoters, activating transcriptional programs that control immune effector functions, chromatin regulation, and cellular metabolism. Notably, IRF1 coordinates the IFN{gamma}-induced metabolic switch from oxidative phosphorylation to aerobic glycolysis by transcriptionally regulating key metabolic enzymes, with metabolite profiles consistent with increased glycolysis and pentose phosphate pathway engagement, while remodeling the tricarboxylic acid (TCA) cycle to support immunometabolic outputs. IRF1-deficient macrophages fail to execute this coordinated metabolic reprogramming. High-density IRF1 motif arrays promote enhanced chromatin occupancy and recruitment of the BRG1-containing chromatin remodeling SWI/SNF complex. Pharmacologic inhibition of SWI/SNF ATPase activity (SMARCA2/4) disrupts IRF1-dependent chromatin remodeling and gene induction. Moreover, IRF1-induced enhancer states persist after IFN{gamma} withdrawal, establishing durable epigenetic memory. Together, these findings establish IRF1 as a central integrator of chromatin remodeling, transcriptional control, and metabolic adaptation, linking pioneer-factor activity to macrophage plasticity and innate immune memory.

genomics↗

Genomic Flexibility Through Extrachromosomal Amplifications: A Leishmania Survival Strategy

Leishmania parasites modulate gene copy number through extrachromosomal DNA (ecDNA) amplification, enabling adaptation to environmental stress. Under drug pressure, both linear and circular ecDNA amplifications (amplicons) carrying resistance genes emerge. However, how these ecDNA structures form, diversify, and coexist remains poorly understood. Here, using experimental evolution and Oxford Nanopore long-read sequencing, we show that a single clonal population of drug resistant Leishmania produces a variety of linear and circular amplicons. As antimonial pressure increases, linear amplicons transition into circular forms, with high-stress conditions favoring circular amplicons carrying at least two copies of the resistance gene. Using the Nanopore long reads, we map recombination events driving linear and circular amplicon formation. Our model suggests that gene duplication in the amplicons originates from inter-chromatid homologous recombination, leading to an intermediate intra-chromosomal duplication, followed by a second homologous recombination event. Additionally, different Leishmania species exhibited distinct biases toward linear or circular amplification under identical drug conditions, suggesting species-specific adaptive strategies. Together, these findings define recombination-driven ecDNA dynamics as a central axis of genomic plasticity in Leishmania and underscore the potential for targeting ecDNA in therapeutic and diagnostic strategies against Leishmania and related pathogens.

microbiology↗