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Appukuttan, D.

Publications and source records attributed to Appukuttan, D..

2 recordsLinked to original sources

The catabolic nature of fermentative substrates influence proteomic rewiring in Escherichia coli under anoxic growth

During anaerobic batch fermentation by Escherichia coli, there is a decline in cell proliferation rates and a huge demand is placed on cellular proteome to cater its catabolic and anabolic needs under anoxic growth. Previous studies have established a direct relationship between E. coli growth rate and cellular ribosomal content for fast proliferating cells. In this study, we integrated experimental findings with a systemic coarse-grained model of proteome allocation, to characterize the physiological outcomes at slow growth rate during anaerobic fermentative catabolism of different glycolytic and non-glycolytic substrates. The anaerobic catabolism of substrates favored high ribosomal abundances at lower growth rates. Interestingly, a modification of previously discussed "growth law", the ratio of active to inactive ribosomal proteome was found to be linearly related to growth rate for cells proliferating in slow to moderate regime (growth rate < 0.8 h-1). Also, under nutrient- and oxygen-limited growth conditions, the proteome proportion allocated for ribosomal activity was reduced, and resources were channelized towards catabolic and metabolic activities to overcome the limitations imposed while uptake and metabolizing substrate. The energy intensive uptake mechanism or lower substrate affinity, expended more catabolic proteome, which reduced its availability to other cellular functions. Conclusively, the nature of catabolic substrates imposed either uptake limitation or metabolic limitation coupled with ribosomal limitation (arising due to anoxic and nutritional stress), which resulted in higher proteome expenditure leading to sub-optimal phenotype.

systems biology↗

CRISPRi in Deinococcus radiodurans

The extremely radiation resistant bacterium, Deinococcus radiodurans, is a microbe of importance, both, for studying stress tolerance mechanisms and as a chassis for industrial biotechnology. However, the molecular tools available for use in this organism continue to be limiting. In view of this, the CRISPR-Cas tools provide a large repertoire of applications for gene manipulation. We show the utility of the type I-E Cascade system for knocking down gene expression in this organism. A single-vector system was designed for expression of the Cascade components as well as the crRNA. The type I-E Cascade system was better tolerated than the type II-A Cas9 system in D. radiodurans. An assayable acid phosphatase gene, phoN integrated into the genome of this organism could be knocked down to 10% of its activity using the Cascade system. Cascade-based knockdown of ssb, a gene important for radiation resistance resulted in poor recovery post irradiation. Targeting the Radiation and Desiccation Resistance Motif (RDRM), upstream of the ssb, prevented de-repression of its expression upon radiation exposure. In addition to this, multi-locus targeting was demonstrated on the deinococcal genome, by knocking down both phoN and ssb expression simultaneously. The programmable CRISPRi tool developed in this study will facilitate study of essential genes, hypothetical genes, cis-elements involved in radiation response as well as enable metabolic engineering in this organism. Further the tool is amenable for implementing high-throughput approaches for such studies.

molecular biology↗