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Biology subjects

Lopez, C. M. R.

Publications and source records attributed to Lopez, C. M. R..

2 recordsLinked to original sources

Grapevine Rootstock and Scion Genotypes' Symbiosis with Soil Microbiome: A Machine Learning Revelation for Climate-Resilient Viticulture

Given the impact of climate change on agriculture, the development of resilient crop cultivars is imperative. A healthy plant microbiota is key to plant productivity, influencing nutrient absorption, disease resistance, and overall vigor. The plant genetic factors controlling the assembly of microbial communities are still unknown. Here we examine if Machine Learning can predict grapevine rootstock and scion genotypes based on soil microbiota, despite environmental variability. The study utilized soil microbial bacteriome datasets from 281 vineyards across 13 countries and five continents, featuring 34 different Vitis vinifera cultivars grafted onto, often ambiguous, rootstocks. Random Forests, Adaptive Boost, Gradient Boost, Support Vector Machines, Gaussian and Bernoulli Naive Bayes, k-Nearest Neighbor, and Neural Networks algorithms were employed to predict continent, country, scion, and rootstock cultivar, under two filtering criteria: retaining sparse classes, ensuring class diversity, and excluding sparse classes assessing model robustness against overfitting. Both criteria showed remarkable F1-weighted scores (>0.8) for all classes, for most algorithms. Moreover, successful rootstock and scion genotype prediction from soil microbiomes confirms that genotypes of both plant parts shape the microbiome. These insights pave the way for identifying plant genes for use with breeding programs that enhance plant productivity and sustainability by improving the plant-microbiota relationship.

plant biology↗

Is developmental plasticity triggered by DNA methylation changes in the invasive cane toad (Rhinella marina)?

Many organisms can adjust their development according to environmental conditions, including the presence of conspecifics. Although this developmental plasticity is common in amphibians, its underlying molecular mechanisms remain largely unknown. Exposure during development to either cannibal cues from older conspecifics, or alarm cues from injured conspecifics, causes reduced growth and survival in cane toad (Rhinella marina) tadpoles. Epigenetic modifications, such as changes in DNA methylation patterns, are a plausible mechanism underlying these developmental plastic responses. Here we tested this hypothesis, and asked whether cannibal cues and alarm cues trigger the same DNA methylation changes in developing cane toads. We found that exposure to both cannibal cues and alarm cues induced local changes in DNA methylation patterns. These DNA methylation changes affected genes putatively involved in developmental processes, but in different genomic regions for different conspecific-derived cues. Genetic background explained most of the epigenetic variation among individuals. Overall, the molecular mechanisms triggered by exposure to cannibal cues seem to differ from those triggered by alarm cues. Studies linking epigenetic modifications to transcriptional activity are needed to clarify the proximate mechanisms that regulate developmental plasticity in cane toads.

molecular biology↗