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Biology subjects

Taylor, B. R.

Publications and source records attributed to Taylor, B. R..

3 recordsLinked to original sources

A Metabolic Sum Rule Dictates Bacterial Response to Short-Chain Fatty Acid Stress

Short-chain fatty acids (SCFAs) such as acetate accumulate in fermentative environments, inhibiting many types of bacteria. While it is known that cells accumulate SCFAs to high concentrations internally, the cause of SCFA toxicity is not understood. By forcing Escherichia coli cells to accumulate a variety of "useless metabolites", we establish via extensive omic analysis a metabolic sum rule, by which the accumulation of exogenous metabolites such as acetate forces the depletion of endogenous metabolites. The latter leads to bottlenecks in biosynthesis, manifested as a simple linear relation between useless metabolite accumulation and growth reduction. Guided by quantitative models, we show that acetate-stressed cells optimize growth by partially acidifying their own cytoplasm, which reduces acetate accumulation, restoring the endogenous metabolites as allowed by the sum rule.

microbiology↗

A sensitive and specific genetically encodable biosensor for potassium ions

Potassium ions (K+) play a critical role as an essential electrolyte in all biological systems. Here we report the crystal structure-guided optimization and directed evolution of an improved genetically encoded fluorescent K+ biosensor, GINKO2. GINKO2 is highly sensitive and specific for K+ and enables in vivo detection of K+ dynamics in multiple species.

bioengineering↗

Stress-induced cross-feeding of internal metabolites provides a dynamic mechanism of microbial cooperation

Metabolic cross-feeding plays vital roles in promoting ecological diversity. While some microbes depend on exchanges of essential nutrients for growth, forces driving the extensive cross-feeding needed to support the coexistence of free-living microbes are poorly understood. Here we characterize bacterial physiology under self-acidification, and establish that extensive excretion of key metabolites following acidification provides a collaborative, inter-species mechanism of stress resistance. This collaboration occurs not only between species isolated from the same community, but also between unrelated species with complementary (glycolytic vs. gluconeogenic) modes of metabolism. Cultures of such communities cycle through different phases in growth-dilution experiments, comprising of exponential growth, growth arrest upon acidification, collaborative stress relief, and growth recovery, with each phase involving distinct physiological states of individual species. Our findings challenge the static view of ecosystems commonly portrayed in ecological models, and offer an alternative dynamical view based on growth advantages of different species in different phases.

microbiology↗