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Arce, H.

Publications and source records attributed to Arce, H..

2 recordsLinked to original sources

Genomic and Functional Characterization of Priestia megaterium MOD5IV isolated from the rhizosphere of Caesalina spinosa (Mol.): Enhancing Phytoremediation Potential in Multi-Metal Contaminated Soils

AimsMetal contamination poses a global threat due to its widespread occurrence and the high toxicity of these elements. Phytoremediation has emerged as a preferred approach for the bioremediation of metal-contaminated soils. The search for microorganisms facilitating phytoremediation, especially plant-growth-promoting bacteria (PGPB), has become critical to advance ecosystem remediation efforts. This research aimed to characterize in-depth a Priestia megaterium strain isolated from multimetal contaminated soils located at the Atacama Desert, showing potential for bacteria-assisted phytoremediation. Methods and ResultsThe strain MOD5IV exhibited notable PGPB features: phosphate and potassium solubilization, nitrogen fixation, phytohormone production, and growth promotion of Arabidopsis thaliana. Genomic analysis revealed a 5,254,635 bp chromosome plus nine plasmids, hosting over 6,000 genes. Functional annotation identified genes associated with resistance to copper, cadmium, lead, mercury, zinc, and cobalt. Also, genes linked to PGPB capabilities as siderophore-production, nutrient-solubilization, IAA-synthesis, and nitrogen-fixation. Accordingly, MOD5IV exhibited robust tolerance to multiple metals and enhanced the phytoremediation potential of Caesalpinia Spinosa (Mol.) in laboratory trials. ConclusionsMOD5IV proved to have promising traits for microbe-assisted phytoremediation of metal-contaminated soils. Impact StatementThis study contributed to the characterization of new native multi-metal-resistant PGPR bacteria for phytoremediation of metal-contaminated soils. Increasing the evidence of the Atacama Desert as a source of microbiological solutions for climate adaptation and environmental remediation.

microbiology↗

Tig1 regulates proximo-distal identity during salamander limb regeneration

Salamander limb regeneration is an accurate process which gives rise exclusively to the missing structures, irrespective of the amputation level. This suggests that cells in the stump have an awareness of their spatial location, a property termed positional identity. Little is known about how positional identity is encoded, in salamanders or other biological systems. Through single-cell RNAseq analysis, we identified Tig1/Rarres1 as a potential determinant of proximal identity. Tig1 encodes a conserved cell surface molecule, is regulated by retinoic acid and exhibits a graded expression along the proximo-distal axis of the limb. Its overexpression leads to regeneration defects in the distal elements and elicits proximal displacement of blastema cells, while its neutralisation blocks proximo-distal cell surface interactions. Critically, Tig1 reprogrammes distal cells to a proximal identity, upregulating Prod1 and inhibiting Hoxa13 and distal transcriptional networks. Thus, Tig1 is a central cell surface determinant of proximal identity in the salamander limb.

developmental biology↗