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Kakumanu, R.

Publications and source records attributed to Kakumanu, R..

3 recordsLinked to original sources

Allosteric feedback inhibition of deoxy-D-xylulose-5-phosphate synthase involves monomerization of the active dimer.

Isoprenoids are a very large and diverse family of metabolites required by all living organisms. All isoprenoids derive from the double-bond isomers isopentenyl diphosphate (IPP) and dimethylallyl diphosphate (DMAPP), which are produced by the methylerythritol 4-phosphate (MEP) pathway in bacteria and plant plastids. Understanding the regulation of the MEP pathway, probably the main metabolic pathway elucidated in this century, is a must for the rational design of biotechnological endeavors aimed at increasing isoprenoid contents in microbial and plant systems. It has been reported that IPP and DMAPP feedback regulate the activity of deoxyxylulose 5-phosphate (DXS), a dimeric enzyme catalyzing the main flux-controlling step of the MEP pathway. Here we provide experimental insights on the underlying mechanism. Our data show that direct allosteric binding of IPP and DMAPP to bacterial and plant DXS promotes monomerization of the enzyme. This allows a fast response to a sudden increase or decrease in IPP/DMAPP supply by rapidly shifting the dimer-monomer equilibrium accordingly. DXS monomers expose hydrophobic domains that are hidden in the dimer, resulting in aggregation and eventual degradation. Removal of monomers that would otherwise be available for dimerization and enzyme reactivation appears as a more drastic response in case of persistent IPP/DMAPP overabundance (e.g., by a blockage in their conversion to downstream isoprenoids). Our model provides a mechanistic explanation of how IPP and DMAPP supply can be adapted to changes in their demand and it also explains the changes in DXS protein levels observed after long-term interference of the MEP pathway flux. Significance StatementIsoprenoids are a vast family of organic compounds with essential roles in respiration, photosynthesis, photoprotection, membrane structure, and signaling. Many of them have great economic and nutritional relevance as pigments, aromas, drugs or phytonutrients. Despite their functional and structural diversity, they all derive from the same five-carbon precursors. We show that these precursors feedback-regulate their own synthesis in bacteria and plant plastids by allosterically shifting the dimer:monomer equilibrium of the enzyme that catalyzes the first step of their biosynthetic pathway towards the inactive monomeric form. This evolutionary conserved mechanism allows for both short-term (immediate) and long-term (sustained) control of the pathway flux, and its manipulation could be critical for the rational engineering of high-value isoprenoid products in bacterial and plant systems.

biochemistry↗

Nitrogen metabolism in Pseudomonas putida: functional analysis using random barcode transposon sequencing

Pseudomonas putida KT2440 has long been studied for its diverse and robust metabolisms, yet many genes and proteins imparting these growth capacities remain uncharacterized. Using pooled mutant fitness assays, we identified genes and proteins involved in the assimilation of 52 different nitrogen containing compounds. To assay amino acid biosynthesis, 19 amino acid drop- out conditions were also tested. From these 71 conditions, significant fitness phenotypes were elicited in 672 different genes including 100 transcriptional regulators and 112 transport-related proteins. We divide these conditions into 6 classes, and propose assimilatory pathways for the compounds based on this wealth of genetic data. To complement these data, we characterize the substrate range of three promiscuous aminotransferases relevant to metabolic engineering efforts in vitro. Furthermore, we examine the specificity of five transcriptional regulators, explaining some fitness data results and exploring their potential to be developed into useful synthetic biology tools. In addition, we use manifold learning to create an interactive visualization tool for interpreting our BarSeq data, which will improve the accessibility and utility of this work to other researchers. IMPORTANCEUnderstanding the genetic basis of P. putidas diverse metabolism is imperative for us to reach its full potential as a host for metabolic engineering. Many target molecules of the bioeconomy and their precursors contain nitrogen. This study provides functional evidence linking hundreds of genes to their roles in the metabolism of nitrogenous compounds, and provides an interactive tool for visualizing these data. We further characterize several aminotransferases, lactamases, and regulators--which are of particular interest for metabolic engineering.

microbiology↗

Engineering sorghum for higher 4-hydroxybenzoic acid content

Lignocellulosic biomass represents a renewable source of sugars for the manufacturing of bioproducts such as biofuels. The high cost associated with deconstruction of plant biomass to simple sugars remains one of the challenges preventing the deployment of economically sustainable advanced bioproducts. The accumulation in-planta of value-added coproducts such as platform chemicals can improve the economics of biofuels. Among other crops, sorghum is an ideal bioenergy feedstock due to its low input requirements, efficient nitrogen recycling, and high water use efficiency and biomass yields. In this work, we engineered sorghum to overproduce the valuable chemical 4-hydroxybenzoic acid (4-HBA) by co-expressing plastid-targeted versions of Escherichia coli chorismate pyruvate-lyase (UbiC) and feedback-resistant 3-deoxy-D-arabino-heptulonate-7-phosphate synthase (AroG*). Two independent lines containing the dual aroG*-ubiC construct were selected for characterization in the T2 generation. Using liquid chromatography-mass spectrometry, analysis of methanolic extracts obtained from biomass samples revealed an accumulation of 4-HBA in the two transgenic lines (corresponding to 1.56% and 1.72% dry weight, respectively), with 4-HBA glucose conjugates representing major forms. Measurements of biomass composition and several agronomic traits showed no significant difference between transgenic and wild-type control plants grown under controlled environment. This work demonstrates the transferability of the ubiC engineering approach to sorghum; generated lines will be useful to assess the agronomic performance of modified 4-HBA-rich sorghum under natural conditions.

plant biology↗