Search bioRxiv⌕ Search

Biology subjects

Goyer, A.

Publications and source records attributed to Goyer, A..

2 recordsLinked to original sources

Growth and molecular responses of potato to lunar regolith simulants

BackgroundOn-site food production will be required to achieve NASAs goal of a sustainable Lunar habitat. Toward this end, the use of fine, soil-like material on the Lunar surface, known as regolith, has been proposed as a plant growth substrate. However, how this substrate may affect plant growth is not well understood. Lunar regolith is devoid of the organic materials that make soils on earth fertile for plant growth, and has been weathered by solar winds, cosmic rays, and micrometeorite impacts. Additionally, regolith at certain lunar sites may contain heavy metals. These metal ions may leech, thus posing challenges with accumulation in plant material. To address and verify the efficacy of regolith-based crop production, we used lunar regolith simulants (LRS). We investigated the effects of LRS on potato (Solanum tuberosum cv Modoc) plant and tuber development, gene expression, and nutrition profiles. ResultsGrowth in LRS negatively impacted the potato plant size and tuber yield. While the degree of impact differed between simulants, all plants grown in LRS were statistically significantly shorter in height than plants grown in control soil. Further experiments with the lunar mare simulant 1E (LMS-1E) show that these effects can be ameliorated through the addition of vermicompost, an organic component, with a 70:30 v/v ratio of LMS-1E to compost being virtually indistinguishable from controls. Changes in gene expression profiles also differed between simulants, with genes related to photosynthesis, biotic and abiotic stress responses, signaling, and terpenes and flavonoids metabolism being commonly altered. Despite these observed differences in transcription, broad changes in metabolite profiles were not observed. ConclusionsLRS are clearly stressful on plants. However, amendment of the substrate with composted materials appears to be a viable strategy to alleviate stress. Given these observations, regolith-based agriculture may not be viable for very early food production when organic matter content is low. However, this would improve over time with continual incorporation of organic matter to regolith. As such, we believe regolith-based agriculture is a viable long-term strategy.

plant biology↗

Thiamin priming to control early blight in potato: investigation of its effectiveness and molecular mechanisms

BackgroundPrevious reports in several plant species have shown that thiamin applied on foliage primes plant immunity and is effective in controlling fungal, bacterial, and viral diseases. However, the effectiveness of thiamin against potato (Solanum tuberosum) pathogens has seldom been investigated. Additionally, the transcriptomics and metabolomics of immune priming by thiamin have not previously been investigated. Here, we tested the effect of thiamin application against Alternaria solani, a necrotrophic fungus that causes early blight disease on potato foliage, and identified associated changes in gene expression and metabolite content. ResultsFoliar applications of thiamin reduced lesion size by approximately 33% when applied at an optimal concentration of 10 mM. However, the effect of thiamin on preventing lesion growth was temporally limited, as we observed a reduction of lesion size when leaves were inoculated 4 h, but not 24 h, following thiamin treatment. Additionally, we found that the effect of thiamin on lesion size was restricted to the site of application and was not systemic. Gene expression analysis via RNA-seq showed that thiamin induced the expression of genes involved in the synthesis of salicylic acid (SA) and phenylpropanoids to higher levels than the pathogen alone, as well as fatty acid metabolism genes that may be related to jasmonic acid biosynthesis. Thiamin also delayed the downregulation of photosynthesis-associated genes in plants inoculated with A. solani, which is a typical plant response to pathogens, but could also induce a similar repression of primary metabolic pathways in non-infected leaves. Metabolite analyses revealed that thiamin treatment in the absence of pathogen decreased the amounts of several organic compounds involved in the citric acid cycle as well as sugars, sugar alcohols, and amino acids. ConclusionsOur study indicates that thiamin priming of plant defenses may occur through perturbation of primary metabolic pathways and a re-allocation of energy resources towards defense activities.

plant biology↗