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Madala, N. E.

Publications and source records attributed to Madala, N. E..

4 recordsLinked to original sources

Fermentation-Induced Molecular Remodeling in African Indigenous Tubers: Cassava and Cocoyam

Cassava and cocoyam are major dietary staples in sub-Saharan Africa, commonly processed by natural fermentation before consumption. Although fermentation reduces antinutritional compounds and improves food quality, its molecular effects remain poorly characterized. We used untargeted mass spectrometry-based metabolomics with a computational annotation pipeline to compare fermentation-induced molecular remodeling in the two tubers, which showed distinct responses. In cassava, 718 of 773 significant features (92.9%) were depleted, indicating a predominantly catabolic process. In cocoyam, the response was more balanced, with 385 of 1,013 features (38.0%) enriched, including di- and tripeptides consistent with proteolytic processing. Class analysis, molecular networking, and pathway enrichment revealed tuber-specific signatures: cassava was dominated by purine metabolism, whereas cocoyam showed stronger enrichment of amino acid pathways. Cyanogenic glycoside-related features were depleted, consistent with detoxification. Biotransformation prediction also suggested putative fermentation products absent from current databases, highlighting the under-characterized chemistry of these tubers.

biochemistry↗

Pseudomonas syringae pv. tomato and the fall armyworm modulate the morpho-physiology and the metabolome of potato plants

Potato seedlings were challenged with two parasites, namely, the fall armyworm and Pseudomonas syringae pv. tomato, in combination and individually. Alone, the fall armyworm reduced plant height but not when combined with the bacterium. Administered individually, the parasites administered reduced total tuber weight. The fall armyworm also reduced stomatal conductance and transpiration efficiency either combined with the bacterium or alone. Only when combined with the bacterium did the pest reduce intercellular CO2 and the ratio of intercellular to ambient CO2 concentration (Ci/Ca). Combined with the bacterium the pest also increased water use efficiency. Exhaustive correlation of all measured parameters showed a strong and positive relationship between plant height and total tuber weight, plant height and stem diameter, photosynthesis rate and transpiration efficiency, photosynthesis rate and stomatal conductance, photosynthesis rate and intercellular CO2 concentration, stomatal conductance vs Ci/Ca ratio, transpiration efficiency and intercellular CO2 concentration, intercellular CO2 concentration Ci/Ca ratio, transpiration efficiency and finally transpiration efficiency and Ci/Ca ratio. Strong and negative correlations were found in the correlations of water use efficiency vs stomatal conductance, intercellular CO2 concentration, transpiration efficiency and Ci/Ca. The bacterium may deter the fall armyworm as shown by the failure of the insect to reduce plant height in the presence of the bacterium but not when administered alone. On the effect on tuber, both parasites deter each other. Some physiological responses of the plant, intercellular CO2 concentration, Ci/Ca and water use efficiency revealed synergy between the two parasites. It was further discovered that the pest induces metabolomic changes in the leaves of potato albeit that these were less in the co-challenged plants. In conclusion, the pest and the bacterium induce morpho-physiological and metabolomic changes in potato seedlings, their effects on the measured parameters vary, and finally the two parasites interact, with the bacterium likely deterring the pest.

plant biology↗

Charting the Cannabis plant chemical space with computational metabolomics

IntroductionThe chemical classification of Cannabis is typically confined to the cannabinoid content, whilst Cannabis encompasses diverse chemical classes that vary in abundance among all its varieties. Hence, neglecting other chemical classes within Cannabis strains results in a restricted and biased comprehension of elements that may contribute to chemical intricacy and the resultant medicinal qualities of the plant. ObjectivesThus, herein, we report a computational metabolomics study to elucidate the Cannabis metabolic map beyond the cannabinoids. MethodsMass spectrometry-based computational tools were used to mine and evaluate the methanolic leaf and flower extracts of two Cannabis cultivars: Amnesia haze (AMNH) and Royal dutch cheese (RDC). ResultsThe results revealed the presence of different chemical compound classes including cannabinoids, but extending it to flavonoids, polyketides, and phospholipids at varying distributions across the cultivar plant tissues. Therefore, the two cultivars were differentiated based on the overall chemical content of their plant tissues where AMNH was observed to be more dominant in the flavonoid content while RDC was more dominant in the lipid-like molecules. Additionally, in silico molecular docking studies in combination with biological assay studies indicated the potentially differing anti-cancer properties of the two cultivars resulting from the elucidated chemical profiles. ConclusionThese findings highlight distinctive chemical profiles beyond cannabinoids in Cannabis strains. This novel mapping of the metabolomic landscape of Cannabis provides actionable insights into plant biochemistry and justifies selecting certain varieties for medicinal use.

systems biology↗

A Taxonomically-informed Mass Spectrometry Search Tool for Microbial Metabolomics Data

MicrobeMASST, a taxonomically-informed mass spectrometry (MS) search tool, tackles limited microbial metabolite annotation in untargeted metabolomics experiments. Leveraging a curated database of >60,000 microbial monocultures, users can search known and unknown MS/MS spectra and link them to their respective microbial producers via MS/MS fragmentation patterns. Identification of microbial-derived metabolites and relative producers, without a priori knowledge, will vastly enhance the understanding of microorganisms role in ecology and human health.

microbiology↗