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Martinkus, J.

Publications and source records attributed to Martinkus, J..

2 recordsLinked to original sources

Jam2 Signaling Functions Downstream of Hand2 To Initiate The Formation Of Organ-Specific Vascular Progenitors In Zebrafish

The mechanisms regulating the formation of organ-specific vasculature are still poorly understood. We have previously identified a population of late-forming endothelial progenitor cells in zebrafish embryos (termed secondary vascular field, SVF), which emerge from the lateral plate mesoderm after 24 hpf stage, when blood circulation has already been initiated. Here, we investigate the functional role of SVF cells and the molecular mechanisms that govern the emergence of these SVF cells and their contribution to vasculature. We found that the bHLH transcription factor Hand2 and junctional adhesion molecule Jam2b are expressed in the SVF-forming region and are required for the emergence of SVF cells in zebrafish embryos. Time-lapse imaging and jam2b:Cre-based lineage tracing showed that SVF cells serve as the major source of the intestinal vasculature, including the supraintestinal artery (SIA) and subintestinal vein (SIV), which are subsequently remodeled to provide blood flow to many internal organs. To analyze the functional role of jam2b and the related jam2a gene in vascular development, we generated double maternal-zygotic jam2a; jam2b mutants, which display a greatly reduced number of SVF cells and show defects in the development of the intestinal vasculature. Further analysis showed that hand2 functions in the SVF-forming region upstream of jam2b and is required to induce expression of the transcription factor etv2/etsrp, a known master regulator of vasculogenesis. In summary, our results identify new roles for Jam2 signaling and Hand2 function in the emergence of organ-specific vascular progenitors. The presence of similar progenitors in mammalian embryos suggests that this mechanism is evolutionarily conserved.

developmental biology↗

Widespread repurposing of the human CD38 ADP-ribosyl cyclase fold for toxicity in antibacterial and anti-eukaryotic bacterial polymorphic toxins

Bacterial polymorphic toxins are modular weapons that mediate inter-microbial competition and host interactions by delivering diverse cytotoxic domains through specialized secretion systems. Here, we identify and characterize a novel toxin domain in Pantoea ananatis that displays remarkable structural and functional conservation with the human enzyme CD38. This bacterial toxin, fused to the type VI secretion system (T6SS) PAAR domain, harbors a C-terminal ADP-ribosyl cyclase (ARC) domain that hydrolyzes NAD+ and NADP+ in vitro and in vivo, leading to growth inhibition in both bacterial and eukaryotic cells. The 1.6-[A] resolution structure of ARC reveals that it adopts a globular fold nearly identical to the human CD38 ADP ribosyl cyclase, with key catalytic residues conserved. ARC toxicity is neutralized in P. ananatis by a dedicated immunity protein. Comparative genomics reveals that CD38-like ARC domains are widespread in bacteria, fused to diverse delivery modules including T6SS, T7SS, and CDI systems. Functional assays demonstrate that these domains act as NAD-depleting toxins, with cross-immunity observed between non-cognate toxin-immunity pairs. Taken together, our findings reveal that a eukaryotic-like NAD+ hydrolase fold has been adapted in bacteria to generate a novel class of metabolic toxins, expanding the functional scope of polymorphic effectors and illustrating how conserved host-like enzymes can be co-opted for microbial warfare.

microbiology↗