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Dive into the research topics where Caroline Westwater is active.

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Featured researches published by Caroline Westwater.


Antimicrobial Agents and Chemotherapy | 2003

Use of Genetically Engineered Phage To Deliver Antimicrobial Agents to Bacteria: an Alternative Therapy for Treatment of Bacterial Infections

Caroline Westwater; Laura Kasman; David A. Schofield; Phillip Werner; Joseph W. Dolan; Michael G. Schmidt; James S. Norris

ABSTRACT The emergence and increasing prevalence of multidrug-resistant bacterial pathogens emphasizes the need for new and innovative antimicrobial strategies. Lytic phages, which kill their host following amplification and release of progeny phage into the environment, may offer an alternative strategy for combating bacterial infections. In this study, however, we describe the use of a nonlytic phage to specifically target and deliver DNA encoding bactericidal proteins to bacteria. To test the concept of using phage as a lethal-agent delivery vehicle, we used the M13 phagemid system and the addiction toxins Gef and ChpBK. Phage delivery of lethal-agent phagemids reduced target bacterial numbers by several orders of magnitude in vitro and in a bacteremic mouse model of infection. Given the powerful genetic engineering tools available and the present knowledge in phage biology, this technology may have potential use in antimicrobial therapies and DNA vaccine development.


Journal of Virology | 2002

Overcoming the Phage Replication Threshold: a Mathematical Model with Implications for Phage Therapy

Laura M. Kasman; Alex Kasman; Caroline Westwater; Joseph W. Dolan; Michael G. Schmidt; James S. Norris

ABSTRACT Prior observations of phage-host systems in vitro have led to the conclusion that susceptible host cell populations must reach a critical density before phage replication can occur. Such a replication threshold density would have broad implications for the therapeutic use of phage. In this report, we demonstrate experimentally that no such replication threshold exists and explain the previous data used to support the existence of the threshold in terms of a classical model of the kinetics of colloidal particle interactions in solution. This result leads us to conclude that the frequently used measure of multiplicity of infection (MOI), computed as the ratio of the number of phage to the number of cells, is generally inappropriate for situations in which cell concentrations are less than 107/ml. In its place, we propose an alternative measure, MOIactual, that takes into account the cell concentration and adsorption time. Properties of this function are elucidated that explain the demonstrated usefulness of MOI at high cell densities, as well as some unexpected consequences at low concentrations. In addition, the concept of MOIactual allows us to write simple formulas for computing practical quantities, such as the number of phage sufficient to infect 99.99% of host cells at arbitrary concentrations.


Eukaryotic Cell | 2005

Candida albicans-Conditioned Medium Protects Yeast Cells from Oxidative Stress: a Possible Link between Quorum Sensing and Oxidative Stress Resistance

Caroline Westwater; Edward Balish; David A. Schofield

ABSTRACT Candida albicans, the most frequent fungal pathogen of humans, encounters high levels of oxidants following ingestion by professional phagocytes and through contact with hydrogen peroxide-producing bacteria. In this study, we provide evidence that C. albicans is able to coordinately regulate the oxidative stress response at the global cell population level by releasing protective molecules into the surrounding medium. We demonstrate that conditioned medium, which is defined as a filter-sterilized supernatant from a C. albicans stationary-phase culture, is able to protect yeast cells from both hydrogen peroxide and superoxide anion-generating agents. Exponential-phase yeast cells preexposed to conditioned medium were able to survive levels of oxidative stress that would normally kill actively growing yeast cells. Heat treatment, digestion with proteinase K, pH adjustment, or the addition of the oxidant scavenger alpha-tocopherol did not alter the ability of conditioned medium to induce a protective response. Farnesol, a heat-stable quorum-sensing molecule (QSM) that is insensitive to proteolytic enzymes and is unaffected by pH extremes, is partly responsible for this protective response. In contrast, the QSM tyrosol did not alter the sensitivity of C. albicans cells to oxidants. Relative reverse transcription-PCR analysis indicates that Candida-conditioned growth medium induces the expression of CAT1, SOD1, SOD2, and SOD4, suggesting that protection may be mediated through the transcriptional regulation of antioxidant-encoding genes. Together, these data suggest a link between the quorum-sensing molecule farnesol and the oxidative stress response in C. albicans.


Journal of Clinical Microbiology | 2009

Diagnostic Bioluminescent Phage for Detection of Yersinia pestis

David A. Schofield; Ian J. Molineux; Caroline Westwater

ABSTRACT Yersinia pestis is the etiological agent of the plague. Because of the diseases inherent communicability, rapid clinical course, and high mortality, it is critical that an outbreak, whether it is natural or deliberate, be detected and diagnosed quickly. The objective of this research was to generate a recombinant luxAB (“light”)-tagged reporter phage that can detect Y. pestis by rapidly and specifically conferring a bioluminescent signal response to these cells. The bacterial luxAB reporter genes were integrated into a noncoding region of the CDC plague-diagnostic phage φA1122 by homologous recombination. The identity and fitness of the recombinant phage were assessed through PCR analysis and lysis assays and functionally verified by the ability to transduce a bioluminescent signal to recipient cells. The reporter phage conferred a bioluminescent phenotype to Y. pestis within 12 min of infection at 28°C. The signal response time and signal strength were dependent on the number of cells present. A positive signal was obtained from 102 cells within 60 min. A signal response was not detectable with Escherichia coli, although a weak signal (100-fold lower than that with Y. pestis) was obtained with 1 (of 10) Yersinia enterocolitica strains and 2 (of 10) Yersiniapseudotuberculosis strains at the restrictive temperature. Importantly, serum did not prevent the ability of the reporter phage to infect Y. pestis, nor did it significantly quench the resulting bioluminescent signal. Collectively, the results indicate that the reporter phage displays promise for the rapid and specific diagnostic detection of cultivated Y. pestis isolates or infected clinical specimens.


Bacteriophage | 2012

Phage-based platforms for the clinical detection of human bacterial pathogens

David A. Schofield; Natasha J. Sharp; Caroline Westwater

Bacteriophages (phages) have been utilized for decades as a means for uniquely identifying their target bacteria. Due to their inherent natural specificity, ease of use, and straightforward production, phage possess a number of desirable attributes which makes them particularly suited as bacterial detectors. As a result, extensive research has been conducted into the development of phage, or phage-derived products to expedite the detection of human pathogens. However, very few phage-based diagnostics have transitioned from the research lab into a clinical diagnostic tool. Herein we review the phage-based platforms that are currently used for the detection of Mycobacterium tuberculosis, Yersinia pestis, Bacillus anthracis and Staphylococcus aureus in the clinical field. We briefly describe the disease, the current diagnostic options, and the role phage diagnostics play in identifying the cause of infection, and determining antibiotic susceptibility.


The FASEB Journal | 2015

Commensal microbiota is hepatoprotective and prevents liver fibrosis in mice

Magdalena Mazagova; Lirui Wang; Andrew T. Anfora; Max Wissmueller; Scott A. Lesley; Yukiko Miyamoto; Lars Eckmann; Wimal Pathmasiri; Susan Sumner; Caroline Westwater; David A. Brenner; Bernd Schnabl

Translocation of bacteria and their products across the intestinal barrier is common in patients with liver disease, and there is evidence that experimental liver fibrosis depends on bacterial translocation. The purpose of our study was to investigate liver fibrosis in conventional and germ‐free (GF) C57BL/6 mice. Chronic liver injury was induced by administration of thioacetamide (TAA) in the drinking water for 21 wk or by repeated intraperitoneal injections of carbon tetrachloride (CCl4). Increased liver fibrosis was observed in GF mice compared with conventional mice. Hepatocytes showed more toxin‐induced oxidative stress and cell death. This was accompanied by increased activation of hepatic stellate cells, but hepatic mediators of inflammation were not significantly different. Similarly, a genetic model using Myd88/Trif‐deficient mice, which lack downstream innate immunity signaling, had more severe fibrosis than wild‐type mice. Isolated Myd88/Trif‐deficient hepatocytes were more susceptible to toxin‐induced cell death in culture. In conclusion, the commensal microbiota prevents fibrosis upon chronic liver injury in mice. This is the first study describing a beneficial role of the commensal microbiota in maintaining liver homeostasis and preventing liver fibrosis.—Mazagova, M., Wang, L., Anfora, A. T., Wissmueller, M., Lesley, S. A., Miyamoto, Y., Eckmann, L., Dhungana, S., Pathmasiri, W., Sumner, S., Westwater, C., Brenner, D. A., Schnabl, B., Commensal microbiota is hepatoprotective and prevents liver fibrosis in mice. FASEB J. 29, 1043–1055 (2015). www.fasebj.org


Infection and Immunity | 2005

Susceptibility of Germfree Phagocyte Oxidase- and Nitric Oxide Synthase 2-Deficient Mice, Defective in the Production of Reactive Metabolites of Both Oxygen and Nitrogen, to Mucosal and Systemic Candidiasis of Endogenous Origin

Edward Balish; Thomas F. Warner; Peter J. Nicholas; Emily E. Paulling; Caroline Westwater; David A. Schofield

ABSTRACT Mice deficient for phagocyte oxidase (Phox) and nitric oxide synthase 2 (NOS2) (gp91phox−/−/NOS2−/−), defective in the production of both reactive oxygen intermediates (ROI) and reactive nitrogen intermediates (RNI), were used to investigate the role of phagocytic cells during mucosal and systemic candidiasis of endogenous origin. The alimentary tracts of germfree mice were colonized with Candida albicans wild type or each of two hyphal signaling-defective mutants (efg1/efg1 and efg1/efg1 cph1/cph1). All Candida-colonized gp91phox−/−/NOS2−/− mice were moribund within 12 to 15 days after oral inoculation. C. albicans wild-type and mutant strains colonized the alimentary tracts equally well and were able to translocate, most likely via Peyers patches and mesenteric lymph nodes, to the internal organs and trigger the formation of abscesses; however, the wild-type and mutant strains did not survive in the abscessed murine tissues. Surprisingly, there was no significant difference in the ability of peritoneal exudate cells from gp91phox−/−/NOS2−/−, NOS2−/−, gp91phox−/−, or immunocompetent C57BL/6 mice to kill C. albicans in vitro. This suggests that anti-Candida factors other than ROI and RNI can control the growth of C. albicans and that gp91phox−/−/NOS2−/− mice die due to the inability of the host to control its inflammatory response to Candida. Correspondingly, reverse transcription-PCR analysis showed increased expression of the cytokines gamma interferon, tumor necrosis factor alpha, and the chemokines MIP-2 and KC at the site of infection, while interleukin-15 expression remained relatively unchanged between germfree and infected tissues. These studies indicate that defects in ROI and RNI enabled C. albicans to translocate and disseminate to the internal organs, resulting in an uncontrolled immune response, severe pathology, and death; however, ROI and RNI were not required for the killing of phagocytized C. albicans, indicating that other anti-Candida factors either compensate or are sufficient for the killing of phagocytized Candida.


The Journal of Infectious Diseases | 2003

Hydrolytic Gene Expression during Oroesophageal and Gastric Candidiasis in Immunocompetent and Immunodeficient Gnotobiotic Mice

David A. Schofield; Caroline Westwater; Thomas F. Warner; Peter J. Nicholas; Emily E. Paulling; Edward Balish

To investigate whether host immunocompetence influences hydrolytic gene expression, we compared secretory aspartyl proteinase gene (SAP) and phospholipase B gene (PLB) expression during gastric candidiasis in immunocompetent and defined immunodeficient gnotobiotic mice, by reverse-transcription polymerase chain reaction. The use of immunodeficient gnotobiotic mice with combined defects in T cells and natural killer cells enabled a comprehensive study of virulence gene expression in various mucosal sites during lethal oroesophageal (tongue, palate, and esophagus) and gastric candidiasis. All 10 SAP and both PLB genes were expressed in both immunocompetent and specific immunodeficient mice, which suggests that the absence of important components of the host defense did not alter gene expression during gastric candidiasis. Although similar patterns of gene expression were evident in different oral tissues, we detected specific differences between Candida albicans-infected oroesophageal and gastric tissues and differences at various time points during the progression of gastric candidiasis.


Genome Biology | 2015

Postnatal epigenetic regulation of intestinal stem cells requires DNA methylation and is guided by the microbiome

Da-Hai Yu; Manasi Gadkari; Quan Zhou; Shiyan Yu; Nan Gao; Yongtao Guan; Deborah Schady; Tony Roshan; Miao-Hsueh Chen; Eleonora Laritsky; Zhongqi Ge; Hui Wang; Rui Chen; Caroline Westwater; Lynn Bry; Robert A. Waterland; Chelsea Moriarty; Cindy S. Hwang; Alton Swennes; Sean R. Moore; Lanlan Shen

BackgroundDNA methylation is an epigenetic mechanism central to development and maintenance of complex mammalian tissues, but our understanding of its role in intestinal development is limited.ResultsWe use whole genome bisulfite sequencing, and find that differentiation of mouse colonic intestinal stem cells to intestinal epithelium is not associated with major changes in DNA methylation. However, we detect extensive dynamic epigenetic changes in intestinal stem cells and their progeny during the suckling period, suggesting postnatal epigenetic development in this stem cell population. We find that postnatal DNA methylation increases at 3′ CpG islands (CGIs) correlate with transcriptional activation of glycosylation genes responsible for intestinal maturation. To directly test whether 3′ CGI methylation regulates transcription, we conditionally disrupted two major DNA methyltransferases, Dnmt1 or Dnmt3a, in fetal and adult intestine. Deficiency of Dnmt1 causes severe intestinal abnormalities in neonates and disrupts crypt homeostasis in adults, whereas Dnmt3a loss was compatible with intestinal development. These studies reveal that 3′ CGI methylation is functionally involved in the regulation of transcriptional activation in vivo, and that Dnmt1 is a critical regulator of postnatal epigenetic changes in intestinal stem cells. Finally, we show that postnatal 3′ CGI methylation and associated gene activation in intestinal epithelial cells are significantly altered by germ-free conditions.ConclusionsOur results demonstrate that the suckling period is critical for epigenetic development of intestinal stem cells, with potential important implications for lifelong gut health, and that the gut microbiome guides and/or facilitates these postnatal epigenetic processes.


The Journal of Infectious Diseases | 2004

β-Defensin Expression in Immunocompetent and Immunodeficient Germ-Free and Candida albicans-Monoassociated Mice

David A. Schofield; Caroline Westwater; Edward Balish

BACKGROUND Defensins are important components of innate immunity and play a key role in the fight against infectious diseases; however, little is known about their role in resistance to fungal infection. METHODS We examined gene expression of mouse beta -defensins (mBDs) 1-4 in orogastric tissues from germ-free (gf) and Candida albicans-monoassociated immunocompetent (C57BL/6) and immunodeficient (Tg epsilon 26 or gp91(phox-/-)/NOS2(-/-)) mice, using competitive reverse-transcriptase polymerase chain reaction. RESULTS The basal levels of beta -defensin gene expression in orogastric tissues from gf mice varied significantly between immunodeficient and immunocompetent mice and by the particular tissue analyzed. During gastric and lethal oroesophageal candidiasis, expression of mBD1, -3, and -4 was induced at the infection sites (stomach and tongue) and was concomitant with an induction of tumor necrosis factor- alpha expression in Tg epsilon 26 mice, compared with that in tissues from gf mice. Induction of mBD4 expression in response to gastric candidiasis, however, was dependent on the immune competency of the host. A C. albicans mutant that lacked key genes important for filamentation and virulence also significantly induced expression of mBD1, -3, and -4 in Tg epsilon 26 mice. CONCLUSIONS These data not only demonstrate quantitative and qualitative differences in beta -defensin expression in gf and gnotobiotic mice, they also suggest a role for these peptides in resistance to gastric and lethal oroesophageal candidiasis.

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David A. Schofield

Medical University of South Carolina

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James S. Norris

Medical University of South Carolina

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Joseph W. Dolan

Medical University of South Carolina

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Michael G. Schmidt

Pennsylvania State University

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Edward Balish

Medical University of South Carolina

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Ian J. Molineux

University of Texas at Austin

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Brian Hoel

Medical University of South Carolina

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Emily E. Paulling

Medical University of South Carolina

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Peter J. Nicholas

Medical University of South Carolina

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Thomas F. Warner

University of Wisconsin-Madison

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