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Charfeddine, S.

Publications and source records attributed to Charfeddine, S..

2 recordsLinked to original sources

Integrated phenomic and transcriptomic analyses unveil superior drought plasticity of North African durum wheat landraces

Drought is a major constraint on the productivity of durum wheat across Mediterranean and North African regions. To elucidate the mechanisms underlying drought resilience, we employed a combination of scenario-controlled phenomics and flag leaf transcriptomics across ten durum wheat genotypes. These included the Tunisian landraces Chili and Mahmoudi, seven breeding lines, and the reference cultivar Svevo. The plants were grown to maturity under well-watered or long-term drought conditions in pots and rhizotrons, enabling a comprehensive assessment of growth, yield components, root architecture, physiological traits, and reaction norm plasticity. Drought markedly reduced performance, yet Chili and Mahmoudi consistently maintained superior biomass, grain number and intrinsic water use efficiency (iWUE). This was supported by balanced C/N allocation, strong osmotic adjustment, and the ability to sustain robust root systems under stress, albeit through partly divergent physiological strategies. Transcriptomic profiling revealed highly genotype specific responses, with drought tolerance unrelated to the number of differentially expressed genes. Instead, the landraces displayed distinct regulatory programs involving mainly photosynthesis protection, ABA-related transporters, osmotic adjustment pathways, and stress-responsive transcription factors. These mechanistic insights identify actionable physiological and molecular determinants of drought plasticity and provide high value targets for accelerating the breeding of climate resilient durum wheat. HighlightsIntegrated phenomics and transcriptomics revealed landrace-specific physiological and molecular mechanisms enabling superior drought resilience and identifying actionable targets for durum wheat improvement.

plant biology↗

Endothelial Function: A Novel Marker to Evaluate the Prognosis of Heart Failure with Reduced Ejection Fraction

BackgroundEndothelial function, a key determinant of prognosis in heart failure with reduced ejection fraction (HFrEF), is still frequently under-assessed in clinical practice. The present study aimed to assess endothelial function in patients with HFrEF and investigate its association with echography and hemodynamics over a 3-month medical treatment. Additionally, this study aimed to investigate the association between changes in endothelial function and the incidence of cardiovascular rehospitalizations or deaths. MethodsThis prospective longitudinal study included 120 patients with HFrEF. Hemodynamic parameters were assessed using impedance cardiography. Endothelial function was evaluated using digital thermal monitoring to calculate the Endothelial Quality Index (EQI) at baseline and after 3 months. Patients were followed for 12 months. ResultsThe mean age was 61.9 {+/-} 10.2 years, with a sex ratio of 5:1. 42.5% of patients tend to experience endothelial dysfunction at baseline. After 3 months of optimized therapy, EQI improved significantly (p<0.001), correlating with improved echography and hemodynamic parameters. Over 12 months, there were 5 deaths (4.16%) and 44 heart failure rehospitalizations (36.6%), predominantly among those with severe endothelial dysfunction (p=0.008). Improved EQI was associated with reduced mortality (AUC = 0.82) and rehospitalization risk (AUC = 0.837). A {Delta}EQI [&ge;] 0.2 predicted better prognosis (HR: 0.157, 95% CI: 0.054-0.454, p=0.001). ConclusionPatients with HFrEF exhibited endothelial dysfunction. The improvement in endothelial function after an optimized treatment is associated with an enhancement in echography and hemodynamic parameters. Additionally, endothelial function was a strong prognostic marker.

physiology↗