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Dill, R.

Publications and source records attributed to Dill, R..

4 recordsLinked to original sources

GC-MS Profiling of Compounds produced by endophytic fungi ex-situ and from their host plants, Azadirachta indica and Melia azedarach collected in Kenya, Africa

Endophytic fungi residing within medicinal plants are emerging as prolific sources of structurally diverse bioactive secondary metabolites with applications in drug discovery. Azadirachta indica (Neem) and Melia azedarach (Melia), members of the Meliaceae family, are renowned for their rich phytochemical composition; however, the contribution of their endophytic fungi communities to this chemical diversity remains largely unexplored. Herein, endophytic fungi were isolated from leaves and bark of Neem and Melia collected in Kenya and cultured under distinct physical conditions, solid (plates) and liquid (broth) media to assess how culture environment influences compound production. Compounds were extracted and analyzed using gas chromatography-mass spectrometry (GCMS) to profile the chemical diversity associated with each endophytic fungi, physical culturing state and host plant. GCMS analysis revealed that while the host plant identity influences the presence of specific compounds, the dominant determinant of chemical diversity was intrinsic biosynthetic capacity of the endophytic fungi themselves. Several compounds were unique to endophytic fungi cultures, highlighting their role as independent sources of bioactive compounds. Culture conditions moderately influence metabolite profiles, demonstrating the importance of optimizing growth environments in experimental design and natural product bioprospecting. From the Neem samples, we found 53 compounds uniquely present in the broth samples (consisting of Neem powder and endophytic fungi), 22 found exclusively with the endophytic fungi from the Neem, and 31 compounds shared between the broth and the endophytic fungi samples. In Melia samples, 109 compounds were uniquely present in broth samples from Melia plant (consisting of Melia powder and endophytic fungi), 22 compounds were found exclusively with the endophytic fungi from the Melia, and 55 were shared between the broth and the endophytic fungi samples. Our comparative analysis assessed the Neem and Melia endophytic fungi exclusive samples and reported 12 shared compounds. 10 compounds were unique to Neem and 10 unique to Melia; however, their identities varied between the two categories. While GCMS enabled the identification of volatile and semi-volatile metabolites, future studies employing complementary metabolomic approaches, such as liquid chromatography-mass spectrometry (LCMS), ultra-high-performance liquid chromatography MS/MS (UHPLC MS/MS), or nuclear magnetic resonance (NMR) spectroscopy, would expand coverage to non-volatile, polar, and high molecular weight compounds, providing a more comprehensive understanding of endophyte-derived chemical diversity. These findings provide insights into the interplay between medicinal plants and their endophytes and establish a foundation for leveraging endophytic fungi from Neem and Melia as scalable sources of structurally complex natural products for pharmaceutical and biotechnological applications while minimizing ecological impact.

plant biology↗

GC-MS Based Comparative Metabolomics of Host Plants and Insect Gut Extracts

Herbivorous insects exhibit pronounced metabolic plasticity, enabling adaptation to diverse host plants which complicates pest management strategies. Understanding how plant metabolites are transformed during insect digestion is critical for elucidating plant-insect interactions. We combined gas chromatography-mass spectrometry (GC-MS)-based untargeted metabolomics with UV-Vis quantification of total phenols and flavonoids to compare host plant tissues and insect gut extracts in three systems: fall armyworm (Spodoptera frugiperda) larvae on maize (Zea mays), silkworm (Bombyx mori) on mulberry (Morus alba) and desert locust (Schistocerca gregaria) on wheatgrass (Triticum aestivum). UV-Vis analysis revealed consistent enrichment of total phenols in insect gut relative to host plants ([~]1.4-.35-fold), while flavonoids were reduced ([~]2-7-fold). GC-MS analyses showed clear separation of gut and plant metabolomes, with <35% shared metabolites and the majority unique to insect guts. Insect extracts were enriched in hydrocarbons, fatty acids, sterols, and terpenoid derivatives, reflecting extensive biochemical transformation. Sex-specific metabolite differences were observed in silkworm and desert locust guts despite identical diets. These findings indicate that herbivorous insect guts act as dynamic biochemical reactors, selectively restructuring plant metabolomes through flavonoid turnover, phenolic enrichment, sterol bioconversion, and lipid assimilation. This conserved metabolic strategy across phylogenetically distinct insects underscores adaptive mechanisms for nutrient acquisition and detoxification, a pathway that can be exploited in plant pest control.

plant biology↗

A Multi-lensed Comparative Analysis of Select Secondary Metabolites Produced by Kale, Brassica oleracea, in Simulated Microgravity Versus Gravity Conditions

Extended journeys through space are a goal of NASA. Yet, astronauts will face elevated health risks from microgravity and radiation as journeys continue for longer time periods. Approaches to combatting these health risks consist of growing fresh super foods in space for astronaut consumption while in flight. However, while a great deal is known about the effects of microgravity of humans, little is known about its effects on the nutrient profiles of plants. Endeavors towards understanding more about these effects are currently funded by NASA grants. Kale, a metabolite and specifically a flavonoid-rich crop, stands as a promising candidate for growth on space flights. We observed the effects of simulated microgravity broadly on the F1 cultivar, Starbor Kale metabolomics, and further focused on flavonoid content, using a 2-D clinostat. Extracts of kale were analyzed by proton nuclear magnetic resonance (1H NMR), and high-performance thin layer chromatography (HPTLC). 1H NMR spectra of clinostat-grown kale showed that samples from simulated microgravity conditions had an increased number of peaks in the aromatic region (6.5 to 8.5 ppm) when compared with gravity grown kale. HPTLC confirmed greater banding in medium- and high-polarity solvent systems, while low-polarity extracts showed no differences. Overall, we noted that the microgravity grown kale had greater amounts of bands present. These results signal that microgravity stressors may be connected to the increased secondary metabolite production in kale. Our findings underscore kale to be a prospective crop to be grown in space flight to combat effects of microgravity.

plant biology↗