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Biology subjects

Jimenez, B.

Publications and source records attributed to Jimenez, B..

2 recordsLinked to original sources

p73 controls cell junction dynamics during sprouting angiogenesis and acts via Angiomotin

Preservation of blood vessels integrity, which is critical for normal physiology and organ function, is controlled at multiple levels, including endothelial junctions. However, the mechanism that controls the adequate assembly of endothelial cell junctions is not fully defined. Here we uncover TAp73 transcription factor as a vascular architect that orchestrates transcriptional programs involved in cell junction establishment and developmental blood vessel morphogenesis and identify Angiomotin (AMOT) as a TAp73 direct transcriptional target. Knockdown of p73 in endothelial cells not only results in decreased Angiomotin expression and localization at intercellular junctions, but also affects its downstream function regarding Yes-Associated Protein (YAP) cytoplasmic sequestration upon cell-cell contact. Analysis of adherens junctional morphology after p73-knockdown in human endothelial cells revealed striking alterations, particularly a sharp increase in serrated junctions and actin bundles appearing as stress fibers, both features associated with enhanced barrier permeability. In turn, stabilization of Angiomotin levels rescued those junctional defects, confirming that TAp73 controls endothelial junction dynamics, at least in part, through the regulation of Angiomotin. The observed defects in monolayer integrity were linked to hyperpermeability and reduced transendothelial electric resistance. Moreover, p73-knockout retinas showed a defective sprout morphology coupled to hemorrhages, highlighting the physiological relevance of p73 regulation in the maintenance of vessel integrity in vivo. We propose a new model in which TAp73 acts as a vascular architect integrating transcriptional programs that will impinge with Angiomotin/YAP signaling to maintain junctional dynamics and integrity, whilst balancing endothelial cell rearrangements in angiogenic vessels.

cell biology↗

Nitrogen-fixing Klebsiella variicola in feces from herbivorous tortoises

Animals feeding on plants (herbivorous) may have nutritional deficiencies and use bacterial nitrogen fixation in guts to compensate unbalanced diets with high carbon and low nitrogen. Using the acetylene reduction assay we searched for nitrogen fixation in the feces from several herbivorous animals in captivity. We detected acetylene reduction in feces from two African spurred tortoises, Centrochelys sulcata and in feces from six Gopherus berlandieri tortoises and isolated nitrogen-fixing klebsiellas from them. Additionally, we performed a gut metagenomic study with Illumina sequencing from a healthy Mexican G. berlandieri tortoise, and the nif genes identified in the feces microbiome matched those from Klebsiella variicola. Fecal bacterial composition from tortoises was similar to that reported from other reptilian guts.

microbiology↗