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Diaz-Ramirez, D.

Publications and source records attributed to Diaz-Ramirez, D..

3 recordsLinked to original sources

A historical cross-border Andes virus lineage reveals the origin of a cruise ship hantavirus pulmonary syndrome outbreak

Andes virus (ANDV) caused a multi-country outbreak of hantavirus pulmonary syndrome among passengers and crew of a cruise ship in 2026. To investigate the origin and evolutionary history of the virus responsible for the outbreak, we analyzed complete ANDV small (S), medium (M), and large (L) genome segment sequences from Chile alongside outbreak-associated and publicly available genome sequences. Across all three segment-specific phylogenies, the outbreak virus clustered within an ANDV Clade III cluster spanning southern Chile and northern Patagonia in Argentina and were most closely related to a human-derived ANDV (p1236) collected in Los Rios Region of Chile in 2012, representing the closest known historical relative of the outbreak-associated virus. Phylogeographic analysis showed that the genetically distinct ANDV Clade V lineage circulating in central Chile was not closely related to the cruise ship outbreak-associated genomes, thereby reducing the likelihood that the index cases acquired infection through zoonotic spillover while traveling through the Maule Region. These findings trace the geographic origin of the outbreak-associated virus to a defined corridor, the Hua Hum Pass, a cross-border zone connecting Province of Neuquen in Argentina with the Los Rios and La Araucania Regions of Chile.

evolutionary biology↗

The transcription factor NO TRANSMITTING TRACT / WIP2 regulates cytokinin homeostasis in Arabidopsis

NO TRANSMITTING TRACT / WIP2 (NTT/WIP2) is a zinc finger transcription factor that alters developmental programs in Arabidopsis when overexpressed. Loss of NTT function, alone or in combination with closely related genes, leads to developmental defects in gynoecia and roots, respectively. Its overexpression phenotype resembles the effects of cytokinin treatments, suggesting a potential connection to this hormonal pathway. To further investigate this connection, we conducted cytokinin content and response evaluations, and transcriptome analyses in an inducible NTT line. Alterations in cytokinin content and response, as evaluated with the TCSn::GFP line, were observed. In both cases, as in the global expression analyses, the observed changes were dependent on the tissue analyzed. Moreover, Y1H and transactivation assays suggested direct NTT binding to the IPT5, AHP6 and CKX7, regulatory regions. We propose that NTT, among other mechanisms, regulates development through the modulation of cytokinin homeostasis at different levels, including its local concentration. Since NTT is a target of AUXIN RESPONSE FACTOR 5 / MONOPTEROS, the results presented here indicate that NTT connects an auxin input to a change in cytokinin levels.

plant biology↗

ESR2 orchestrates cytokinin dynamics leading to developmental reprogramming and green callus formation

Callus formation and shoot regeneration are natural plant abilities triggered by stress and damage. They are also key components of tissue culture, which for many species is crucial for gene editing, transformation, propagation, and other technologies, and their study provides valuable insights into plant development. The transcription factor ENHANCER OF SHOOT REGENERATION 2 (ESR2/DRNL/BOL/SOB) promotes green callus formation in roots and shoot regeneration when overactive, while the phythormone cytokinin plays a prominent role in both phenomena. Yet, the positive action of ESR2 on the cytokinin pathway had not been previously described. We explored the effects of ESR2 and found that cytokinin content and the expression of the cytokinin biosynthesis gene ISOPENTENYLTRANSFERASE 5 (IPT5) increase in plants where ESR2 activity is induced. ESR2 also regulates the cytokinin signaling repressor ARABIDOPSIS HISTIDINE PHOSPHOTRANSFER 6 (AHP6), and surprisingly, the ESR2-stimulated green calli formation requires both IPT5 and AHP6. Therefore, ESR2 promotes both cytokinin biosynthesis and cytokinin signaling inhibition and requires a paradoxical combination of these two for green callus induction. This finding provides a foundation to better understand the processes involved in tissue reprogramming towards callus formation and the role of ESR2 in shoot regeneration and the development of new organs.

plant biology↗