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Biology subjects

Ashok, N.

Publications and source records attributed to Ashok, N..

2 recordsLinked to original sources

Characterization of new thermophilic antibiotic resistance markers

The genetic engineering of thermophilic bacteria is constrained by limited availability of thermostable antibiotic resistance markers for selection. Clostridium thermocellum, a promising candidate for consolidated bioprocessing of lignocellulosic biomass, requires reliable selection systems that function at elevated temperatures. Here, we systematically evaluated antibiotic susceptibility profiles and identified novel resistance markers for this thermophile through bioinformatic screening and experimental validation. We screened 823 thermophilic genomes against the Comprehensive Antibiotic Resistance Database, identifying 1,115 antibiotic resistance genes. From these, we selected candidates with highest homology to resistance determinants for rifampicin, tetracycline, erythromycin, thiamphenicol, and neomycin. We identified three novel antibiotic resistance systems that function in this organism: tetracycline/tet(45), erythromycin/cmeC, and rifampicin/rbpA. Of these, the rifampicin/rbpA provided the highest selection range , > 10,000-fold. Our results establish rbpA as an outstanding selectable marker for thermophilic genetic engineering and provide a validated workflow for discovering thermostable resistance determinants in high-temperature microorganisms. ImportanceThermophilic bacteria like Clostridium thermocellum hold tremendous potential for sustainable biofuel production from plant biomass, but their genetic manipulation has been severely limited by the lack of selection markers that work at high temperatures. Many existing antibiotic resistance systems do not function at thermophilic temperatures, and many approaches to genetic manipulation require multiple antibiotic resistance markers. Currently only two markers are available for C. thermocellum, and only one (cat) functions well. The newly-developed rbpA marker functions well in C. thermocellum and is likely to provide dramatic new opportunities for engineering thermophilic host organisms.

microbiology↗

Engineering Clostridium thermocellum for production of 2,3-butanediol from cellulose

Clostridium thermocellum is a promising host for consolidated bioprocessing due to its ability to directly ferment cellulose into fuels and chemicals. However, natural product formation in this organism is limited. Here, we report engineering C. thermocellum for the production of 2,3-butanediol (23BD), a valuable industrial chemical. We functionally expressed a thermophilic 23BD pathway in this organism resulting in a 23BD titer of 19.7 mM from cellulose, representing a metabolic yield of 24%. We used a cell-free systems biology approach to identify limiting steps in the 23BD pathway, revealing that exogenous 23BD dehydrogenase (BDH) activity was essential for production, while native acetolactate synthase (ALS) and acetolactate decarboxylase (ALDC) activities were present but limiting in the parent strain. This approach also revealed redox balance limitations. We demonstrated that this improved understanding of redox balance limitations could be used to increase 23BD titer in vivo, showing that adding acetate could be used to increase 23BD yield. This work establishes a foundation for developing C. thermocellum into a robust platform for 23BD production directly from cellulose and highlights the utility of cell-free systems for guiding metabolic engineering in non-model organisms.

synthetic biology↗