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Stress and survival of Enterobacteriaceae : studies of dehydration tolerance and polymyxin resistance / Annie I. Chen.
LIBRA R001 2019 .C42039
Available from offsite location
- Format:
- Book
- Manuscript
- Thesis/Dissertation
- Author/Creator:
- Chen, Annie I., author.
- Language:
- English
- Subjects (All):
- Penn dissertations--Cell and molecular biology.
- Cell and molecular biology--Penn dissertations.
- Local Subjects:
- Penn dissertations--Cell and molecular biology.
- Cell and molecular biology--Penn dissertations.
- Physical Description:
- x, 131 leaves : illustrations (some color) ; 29 cm
- Production:
- [Philadelphia, Pennsylvania] : University of Pennsylvania, 2019.
- Summary:
- The ability to adapt to diverse stresses is critical for the survival of bacteria in the environment. Here we address how Enterobacteriaceae adapt to dehydration and polymyxins. Dehydration is an environmental stress that many bacteria encounter in their ecological niches. However, the mechanisms involved in surviving dehydration are not well understood, particularly in Gram-negative bacteria. In Chapter 2 we develop a dehydration assay and conduct genetic screens to identify genes important for dehydration survival in Escherichia coli. We identify several key regulators that contribute to dehydration survival, including the transcriptional regulator DksA and the general stress response regulator RpoS. In addition to studying dehydration tolerance, we investigate resistance to polymyxins, which are cationic antimicrobial peptides used as last-resort antibiotics in Gram-negative bacteria. The polymyxin resistance network differs in network topology, which refers to how the regulators are connected to and interact with each other, across several genera of Enterobacteriaceae. These differences shape how this network can be activated and influence the types of mutations that give rise to spontaneous polymyxin resistance. In Chapter 3, we determine how network topology affects the relative importance of different regulators in polymyxin resistance and show how environmental conditions modulate the activity of a connector protein in this network. Taken together, these studies contribute to our understanding of how bacteria sense and respond to environmental stressors.
- Notes:
- Ph. D. University of Pennsylvania 2019.
- Department: Cell and Molecular Biology.
- Supervisor: Mark Goulian.
- Includes bibliographical references.
- Other Format:
- Online version: Chen, Annie I. Stress and survival of Enterobacteriaceae.
- OCLC:
- 1121080571
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