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Biology subjects

Mewalal, R.

Publications and source records attributed to Mewalal, R..

4 recordsLinked to original sources

TOR inhibition drives accumulation of amino acids through transcriptional activation in algae

Cellular homeostasis is maintained by the balance between energy production and breakdown and is fundamental to all forms of life. The conserved, ancient target of rapamycin (TOR) kinase is a central metabolic regulator in eukaryotes that integrates carbon and nitrogen to maintain homeostasis and promote growth and development through protein synthesis. While TOR regulatory mechanisms of amino acid accumulation are well known in yeast and mammals, they remain unknown in photosynthetic organisms. Here, we developed the unicellular green alga Chromochloris zofingiensis as a simpler model system for understanding TOR function. Multiomics experiments showed that TOR inhibition leads to an increase in amino acid levels independent of hexokinase-mediated glucose signaling. We observed upregulation of selective amino acid biosynthesis pathways at the transcript and protein levels as potential mechanisms driving the increase in amino acids. Transcriptomics and proteomics experiments identified a basic helix-loop-helix (bHLH) transcription factor with rapid upregulation during TOR inhibition. DAP-seq analysis demonstrated that bHLH can bind directly to the promoters of amino acid biosynthesis genes, potentially regulating their transcription in response to TOR inhibition. We found high conservation of the bHLH-binding motif in the genomes of other green algae and plants, suggesting a conserved regulatory mechanism for amino acid biosynthesis across Viridiplantae. Phosphoproteomics experiments also revealed novel conserved targets that are not currently recognized as part of the TOR pathway. Altogether, our findings elucidate the transcriptional regulation of amino acid metabolism and explain how TOR regulates nitrogen metabolism to support growth and development in photosynthetic organisms. Significance StatementCarbon and nitrogen metabolism play key roles in enhancing plant yield and reducing fertilizer use. Thus, improving nitrogen utilization can significantly boost crop productivity and algal biotechnology. From yeast to plants to mammals, the protein target of rapamycin (TOR) kinase is an essential metabolic regulator. Here, we developed the unicellular green alga Chromochloris zofingiensis as a simpler system to study conserved mechanisms in TOR signaling. Using a multiomics approach, we showed transcriptional regulation of amino acid accumulation upon TOR inhibition and identified a transcription factor with evolutionarily conserved DNA binding sites in nitrogen metabolism genes. We also discovered novel conserved targets of TOR. Our study demonstrates the role of TOR in regulating nitrogen metabolism to support growth and development in photosynthetic organisms.

plant biology↗

Sorghum Metabolic Atlas: Large-Scale Mapping of Subcellular Enzyme Localization in Sorghum bicolor

Plant metabolism drives traits essential for productivity and resilience, yet understanding metabolic networks requires subcellular, cellular, and tissue-level spatial context that remains limited, particularly in crop species. Experimentally-derived subcellular localization data for enzymes are sparse, constraining analyses of metabolic organization in the cell. We developed a high-throughput protoplast transformation and fluorescent protein (FP) tagging system optimized for Sorghum bicolor, a climate-resilient C4 crop. Using this platform, we experimentally determined the subcellular localization of 234 metabolic enzymes spanning 184 pathways. The sorghum enzymes we characterized localize to 12 subcellular compartments. Comparison with computational predictions highlights variable accuracy across compartments, and cross-species comparison with Arabidopsis thaliana shows partial agreement with available experimental data. All data are accessible through the Sorghum Metabolic Atlas (www.sorghummetabolicatlas.org) web platform, enabling search, visualization, and download. This study presents a large-scale experimental dataset of enzyme localization in sorghum, providing a resource for studies of plant metabolic organization and comparative analyses.

plant biology↗

Enzymatic carbon-fluorine bond cleavage by human gut microbes

Fluorinated compounds are used for agrochemical, pharmaceutical, and numerous industrial applications, resulting in global contamination. In many molecules, fluorine is incorporated to enhance the half-life and improve bioavailability. Fluorinated compounds enter the human body through food, water, and xenobiotics including pharmaceuticals, exposing gut microbes to these substances. The human gut microbiota is known for its xenobiotic biotransformation capabilities, but it was not previously known whether gut microbial enzymes could break carbon-fluorine bonds, potentially altering the toxicity of these compounds. Here, through the development of a rapid, miniaturized fluoride detection assay for whole-cell screening, we discovered active gut microbial defluorinases. We biochemically characterized enzymes from diverse human gut microbial classes including Clostridia, Bacilli, and Coriobacteriia, with the capacity to hydrolyze (di)fluorinated organic acids and a fluorinated amino acid. Whole-protein alanine scanning, molecular dynamics simulations, and chimeric protein design enabled the identification of a disordered C-terminal protein segment involved in defluorination activity. Domain swapping exclusively of the C-terminus conferred defluorination activity to a non-defluorinating dehalogenase. To advance our understanding of the structural and sequence differences between defluorinating and non-defluorinating dehalogenases, we trained machine learning models which identified protein termini as important features. Models trained on 41-amino acid segments from protein C-termini alone predicted defluorination activity with 83% accuracy (compared to 95% accuracy based on full-length protein features). This work is relevant for therapeutic interventions and environmental and human health by uncovering specificity-determining signatures of fluorine biochemistry from the gut microbiome. SignificanceHumans have introduced carbon-fluorine bonds into numerous manufactured compounds, including pharmaceuticals, leading to the formation of toxic fluorinated byproducts. While the human gut microbiota is known for its ability to metabolize drugs, its encoded capacity to break the strong carbon-fluorine chemical bond was previously unknown. Here we discovered that human gut microbial enzymes are capable of cleaving carbon-fluorine bonds. We developed a 96-well colorimetric fluoride assay amenable to bacterial culture-based screening. We additionally conducted whole-protein alanine scanning mutagenesis and identified through machine learning that flexible C-terminal loop residues were predictive of defluorination. Taken in the context of flexible regions of other enzyme families known to perform fluorine chemistry, this work supports using convergent structural features to predict defluorination specificity.

biochemistry↗

Functional genomic screening in Komagataella phaffii enabled by high-activity CRISPR-Cas9 library

CRISPR-based high-throughput genome-wide loss-of-function screens are a valuable approach to functional genetics and strain engineering. The yeast Komagataella phaffii is a host of particular interest in the biopharmaceutical industry and as a metabolic engineering host for proteins and metabolites. Here, we design and validate a highly active 6-fold coverage genome-wide sgRNA library for this biotechnologically important yeast containing 30,848 active sgRNAs targeting over 99% of its coding sequences. Conducting fitness screens in the absence of functional non-homologous end joining (NHEJ), the dominant DNA repair mechanism in K. phaffii, provides a quantitative means to assess the activity of each sgRNA in the library. This approach allows for the experimental validation of each guides targeting activity, leading to more precise screening outcomes. We used this approach to conduct growth screens with glucose as the sole carbon source and identify essential genes. Comparative analysis of the called gene sets identified a core set of K. phaffii essential genes, many of which relate to protein production, secretion, and glycosylation. The high activity, genome-wide CRISPR library developed here enables functional genomic screening in K. phaffii, applied here to gene essentiality classification, and promises to enable other genetic screens. HighlightsO_LIDesigned and validated a high activity genome-wide CRISPR-Cas9 library for K. phaffii C_LIO_LIDisabling NHEJ DNA repair enables the generation of genome-wide guide activity profiles C_LIO_LIActivity-corrected fitness screens identify a high confidence set of essential genes in K. phaffii C_LIO_LIProtein production, secretion, and glycosylation pathways are essential in K. phaffii but not in other yeasts C_LI

systems biology↗