40 research outputs found

    Concerted loop motion triggers induced fit of FepA to ferric enterobactin

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    Spectroscopic analyses of fluorophore-labeled Escherichia coli FepA described dynamic actions of its surface loops during binding and transport of ferric enterobactin (FeEnt). When FeEnt bound to fluoresceinated FepA, in living cells or outer membrane fragments, quenching of fluorophore emissions reflected conformational motion of the external vestibular loops. We reacted Cys sulfhydryls in seven surface loops (L2, L3, L4, L5, L7 L8, and L11) with fluorophore maleimides. The target residues had different accessibilities, and the labeled loops themselves showed variable extents of quenching and rates of motion during ligand binding. The vestibular loops closed around FeEnt in about a second, in the order L3 > L11 > L7 > L2 > L5 > L8 > L4. This sequence suggested that the loops bind the metal complex like the fingers of two hands closing on an object, by individually adsorbing to the iron chelate. Fluorescence from L3 followed a biphasic exponential decay as FeEnt bound, but fluorescence from all the other loops followed single exponential decay processes. After binding, the restoration of fluorescence intensity (from any of the labeled loops) mirrored cellular uptake that depleted FeEnt from solution. Fluorescence microscopic images also showed FeEnt transport, and demonstrated that ferric siderophore uptake uniformly occurs throughout outer membrane, including at the poles of the cells, despite the fact that TonB, its inner membrane transport partner, was not detectable at the poles

    Amplification and demultiplexing in insulin-regulated Akt protein kinase pathway in adipocytes.

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    Akt plays a major role in insulin regulation of metabolism in muscle, fat, and liver. Here, we show that in 3T3-L1 adipocytes, Akt operates optimally over a limited dynamic range. This indicates that Akt is a highly sensitive amplification step in the pathway. With robust insulin stimulation, substantial changes in Akt phosphorylation using either pharmacologic or genetic manipulations had relatively little effect on Akt activity. By integrating these data we observed that half-maximal Akt activity was achieved at a threshold level of Akt phosphorylation corresponding to 5-22% of its full dynamic range. This behavior was also associated with lack of concordance or demultiplexing in the behavior of downstream components. Most notably, FoxO1 phosphorylation was more sensitive to insulin and did not exhibit a change in its rate of phosphorylation between 1 and 100 nm insulin compared with other substrates (AS160, TSC2, GSK3). Similar differences were observed between various insulin-regulated pathways such as GLUT4 translocation and protein synthesis. These data indicate that Akt itself is a major amplification switch in the insulin signaling pathway and that features of the pathway enable the insulin signal to be split or demultiplexed into discrete outputs. This has important implications for the role of this pathway in disease

    Principles of genetic circuit design

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    Cells navigate environments, communicate and build complex patterns by initiating gene expression in response to specific signals. Engineers seek to harness this capability to program cells to perform tasks or create chemicals and materials that match the complexity seen in nature. This Review describes new tools that aid the construction of genetic circuits. Circuit dynamics can be influenced by the choice of regulators and changed with expression 'tuning knobs'. We collate the failure modes encountered when assembling circuits, quantify their impact on performance and review mitigation efforts. Finally, we discuss the constraints that arise from circuits having to operate within a living cell. Collectively, better tools, well-characterized parts and a comprehensive understanding of how to compose circuits are leading to a breakthrough in the ability to program living cells for advanced applications, from living therapeutics to the atomic manufacturing of functional materials.National Institute of General Medical Sciences (U.S.) (Grant P50 GM098792)National Institute of General Medical Sciences (U.S.) (Grant R01 GM095765)National Science Foundation (U.S.). Synthetic Biology Engineering Research Center (EEC0540879)Life Technologies, Inc. (A114510)National Science Foundation (U.S.). Graduate Research FellowshipUnited States. Office of Naval Research. Multidisciplinary University Research Initiative (Grant 4500000552

    Size Doesn't Matter: Towards a More Inclusive Philosophy of Biology

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    notes: As the primary author, O’Malley drafted the paper, and gathered and analysed data (scientific papers and talks). Conceptual analysis was conducted by both authors.publication-status: Publishedtypes: ArticlePhilosophers of biology, along with everyone else, generally perceive life to fall into two broad categories, the microbes and macrobes, and then pay most of their attention to the latter. ‘Macrobe’ is the word we propose for larger life forms, and we use it as part of an argument for microbial equality. We suggest that taking more notice of microbes – the dominant life form on the planet, both now and throughout evolutionary history – will transform some of the philosophy of biology’s standard ideas on ontology, evolution, taxonomy and biodiversity. We set out a number of recent developments in microbiology – including biofilm formation, chemotaxis, quorum sensing and gene transfer – that highlight microbial capacities for cooperation and communication and break down conventional thinking that microbes are solely or primarily single-celled organisms. These insights also bring new perspectives to the levels of selection debate, as well as to discussions of the evolution and nature of multicellularity, and to neo-Darwinian understandings of evolutionary mechanisms. We show how these revisions lead to further complications for microbial classification and the philosophies of systematics and biodiversity. Incorporating microbial insights into the philosophy of biology will challenge many of its assumptions, but also give greater scope and depth to its investigations

    Chemistry of a Simple Behavioral System\u27

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    (This information was taken from the Distinguished Scientist Lecture Series Program 1987-1988). Dr. Koshland is professor of biochemistry at the University of California at Berkeley and editor of Science magazine. Born in New York City, Dr. Koshland earned the B.S. degree from the University of California at Berkeley, and the Ph.D. degree from the University of Chicago. After two postdoctoral years at Harvard University, he joined the staff of Brookhaven National Laboratory and held joint appointments at Rockefeller University and Brookhaven until 1965, when he joined the faculty at the University of California at Berkeley. Dr. Koshland is a member of the National Academy of Sciences, the American Academy of Arts and Sciences, the American Chemical Society, and the American Society of Biological Chemists, where he has served as president. Among his honors are the Edgar Fahs Smith Award and the Pauling Award of the American Chemical Society, the Rosenstiel Award of Brandeis University, and the T. Duckett Jones Award of the Helen Hay Whitney Foundation. He has been a Guggenheim Fellow and a Visiting Fellow of All Souls College at Oxford University, and was elected an honorary foreign member of the Japanese Biochemical Society and the Royal Swedish Academy of Sciences. As founding member and chairman of the Academy Forum, a committee of the National Academy of Sciences, he helped develop policy on issues that pose dilemmas between science and societal problems. Currently chairman of the editorial board of the Proceedings of the National Academy of Sciences, Dr. Koshland has served on the editorial boards of Accounts of Chemical Research, The Journal of Biological Chemistry, and the Journal of Molecular Biology. His Work: Dr. Koshland\u27s early work focused on enzyme mechanisms and protein chemistry leading to the concept of single and double displacement reactions, the development of reagents for carboxyl groups and tryptophan, and the analysis of factors explaining the high catalytic power of enzymes. This work led to his concept of the induced fit theory, the general work on cooperativity mechanisms, and the discovery of negative cooperativity. His recent work has focused on mechanisms of behavior using bacterial chemotaxis as a model system. His Lecture April 30, 1988: Chemistry of a Simple Behavioral Systemhttps://digitalcommons.bard.edu/dsls_1987_1988/1006/thumbnail.jp
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