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Arana, M. V.

Publications and source records attributed to Arana, M. V..

4 recordsLinked to original sources

What Large Language Models Know About Plant Molecular Biology

Large language models (LLMs) are rapidly permeating scientific research, yet their capabilities in plant molecular biology remain largely uncharacterized. Here, we present MOBIPLANT, the first comprehensive benchmark for evaluating LLMs in this domain, developed by a consortium of 112 plant scientists across 19 countries. MOBIPLANT comprises 565 expert-curated multiple-choice questions and 1,075 synthetically generated questions, spanning core topics from gene regulation to plant-environment interactions. We benchmarked seven leading chat-based LLMs using both automated scoring and human evaluation of open-ended answers. Models performed well on multiple-choice tasks (exceeding 75% accuracy), although most of them exhibited a consistent bias towards option A. In contrast, expert reviews exposed persistent limitations, including factual misalignment, hallucinations, and low self-awareness. Critically, we found that model performance strongly correlated with the citation frequency of source literature, suggesting that LLM knowledge inherits the visibility distribution of the underlying scientific corpus. Consequently, models tend to be more reliable on consolidated topics and less reliable on under-cited or recently emerging ones. We also benchmarked agents equipped with web-search and additional tools in more complex tasks involving DNA sequence analysis. These agents were outperformed by domain specific models in sequence classification and regression tasks, indicating an opportunity for joint agentic systems that combine both the reasoning power of LLMs and the dedicated processing of DNA models. This understanding is key to guiding both the development of next-generation models and the informed use of current tools in the everyday work of plant researchers. MOBIPLANT is publicly available online in this link.

plant biology↗

Effect of temperature on circadian clock functioning of trees in the context of global warming

Plant survival in a warmer world requires the timely adjustment of biological processes to cyclical changes in the new environment. Circadian oscillators have been proposed to contribute to thermal adaptation and plasticity in plants, due to their ability to maintain periodicity in biological rhythms over a wide temperature range, promoting fitness. However, the influence of temperature and circadian clock performance on plant behaviour in natural ecosystems is not well understood. Here we used two co-occurring Nothofagus tree species from the Patagonian forests that are adapted to contrasting thermal environments derived from their different altitudinal profiles. We revealed that the upper thermal limits for accurate clock function are linked to the species thermal niches and contribute to seedling plasticity in natural environments. We computationally identified 24 circadian clock-related genes, which showed a high degree of structural conservation with clock genes from both annual and perennial species, and very similar patterns of gene expression to those of Arabidopsis thaliana. Warm temperatures produced a strong transcriptomic rearrangement, which affected the expression of clock-related genes and direct clock targets, evidencing the extent of clock functioning disruption by temperature. N. pumilio, the species from colder environments, showed reduced ability to keep rhythmicity at high temperatures compared to N. obliqua, which inhabits warmer zones. Accordingly, N. pumilio, but not N. obliqua, showed a limited oscillator function in warmer zones of the forest, reduced survival, and growth. Together, our results highlight the potential role of a resonating oscillator in ecological adaptation to a warming environment.

plant biology↗

Temperature and day length drive local adaptation in the Patagonian foundation tree species Nothofagus pumilio

Climate change alters relationships among environmental conditions and thus has the potential to change the selection pressures acting on adaptive gene variants. Using a landscape genomic approach, we show that the southern beech species Nothofagus pumilio has notable genetic adaptations to climate along its 2000-kilometer-long range in the Andes. We screened 47,336 SNP loci in 1,632 contigs and found that high-latitude sampling sites have lower genetic diversity, likely due to greater impact of glacial oscillations at high latitudes. Using four genome scan methods, we identified 457 outlier SNPs that are either strongly differentiated among subpopulations or associated with environmental covariates related to temperature, day length, and precipitation. Temperature and day length parameters were associated with notably more outliers than precipitation (n = 133, 113, and 61 outliers, respectively), and almost half of all annotated outliers were related to stress response (n=38, 21%) or catabolism-metabolism (n=43, 24%). Our findings suggest that Nothofagus pumilio is an ideal Andean model of genetic adaptation to climate change because it is locally adapted to extant climate conditions, and shifting patterns among environmental parameters may be detrimental to its future survival and adaptation potential.

genetics↗

Deciphering the transcriptomic regulation of heat stress responses in Nothofagus pumilio

Global warming is predicted to exert negative impacts on plant growth due to the damaging effect of high temperatures on plant physiology. Revealing the genetic architecture underlying the heat stress response is therefore crucial for the development of conservation strategies, and for breeding heat-resistant plant genotypes. Here we investigated the transcriptional changes induced by heat in Nothofagus pumilio, an emblematic tree species of the sub-Antarctic forests of South America. Through the performance of RNA-seq of leaves of plants exposed to 20{degrees}C (control) or 34{degrees}C (heat shock), we generated the first transcriptomic resource for the species. We also studied the changes in protein-coding transcripts expression in response to heat. We found 5,214 contigs differentially expressed between temperatures. The heat treatment resulted in a down-regulation of genes related to photosynthesis and carbon metabolism, whereas secondary metabolism, protein re-folding and response to stress were up-regulated. Moreover, several transcription factor families like WRKY or ERF were promoted by heat, alongside spliceosome machinery and hormone signaling pathways. Through a comparative analysis of gene regulation in response to heat in Arabidopsis thaliana, Populus tomentosa and N. pumilio we provide evidence of the existence of shared molecular features of heat stress responses across angiosperms, and identify genes of potential biotechnological application.

plant biology↗