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Dive into the research topics where Mike Flint is active.

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Featured researches published by Mike Flint.


Microbiology | 2013

A novel approach to generate a recombinant toxoid vaccine against Clostridium difficile.

Robert G.K. Donald; Mike Flint; Erik Johnson; Susan E. Witko; Cheryl S. Kotash; Ping Zhao; Shakuntala Megati; Irina Yurgelonis; Phillip Kwok Lee; Yury V. Matsuka; Elena Severina; Anne M. Deatly; Mini Sidhu; Kathrin U. Jansen; Nigel P. Minton; Annaliesa S. Anderson

The Clostridium difficile toxins A and B are primarily responsible for symptoms of C. difficile associated disease and are prime targets for vaccine development. We describe a plasmid-based system for the production of genetically modified toxins in a non-sporulating strain of C. difficile that lacks the toxin genes tcdA and tcdB. TcdA and TcdB mutations targeting established glucosyltransferase cytotoxicity determinants were introduced into recombinant plasmids and episomally expressed toxin mutants purified from C. difficile transformants. TcdA and TcdB mutants lacking glucosyltransferase and autoproteolytic processing activities were ~10u200a000-fold less toxic to cultured human IMR-90 cells than corresponding recombinant or native toxins. However, both mutants retained residual cytotoxicity that could be prevented by preincubating the antigens with specific antibodies or by formalin treatment. Such non-toxic formalin-treated mutant antigens were immunogenic and protective in a hamster model of infection. The remaining toxicity of untreated TcdA and TcdB mutant antigens was associated with cellular swelling, a phenotype consistent with pore-induced membrane leakage. TcdB substitution mutations previously shown to block vesicular pore formation and toxin translocation substantially reduced residual toxicity. We discuss the implications of these results for the development of a C. difficile toxoid vaccine.


Journal of Virology | 2011

The Major Determinant of Attenuation in Mice of the Candid1 Vaccine for Argentine Hemorrhagic Fever Is Located in the G2 Glycoprotein Transmembrane Domain

César G. Albariño; Brian H. Bird; Ayan K. Chakrabarti; Kimberly A. Dodd; Mike Flint; Éric Bergeron; David M. White; Stuart T. Nichol

ABSTRACT Candid1, a live-attenuated Junin virus vaccine strain, was developed during the early 1980s to control Argentine hemorrhagic fever, a severe and frequently fatal human disease. Six amino acid substitutions were found to be unique to this vaccine strain, and their role in virulence attenuation in mice was analyzed using a series of recombinant viruses. Our results indicate that Candid1 is attenuated in mice through a single amino acid substitution in the transmembrane domain of the G2 glycoprotein. This work provides insight into the molecular mechanisms of attenuation of the only arenavirus vaccine currently available.


Antimicrobial Agents and Chemotherapy | 2009

Selection and Characterization of Hepatitis C Virus Replicons Dually Resistant to the Polymerase and Protease Inhibitors HCV-796 and Boceprevir (SCH 503034)

Mike Flint; Stanley Mullen; Anne M. Deatly; Wei Chen; Lynn Z. Miller; Robert Ralston; Colin Broom; Emilio A. Emini; Anita Y. M. Howe

ABSTRACT HCV-796 is a nonnucleoside inhibitor of the hepatitis C virus (HCV) nonstructural protein 5B (NS5B) polymerase, and boceprevir is an inhibitor of the NS3 serine protease. The emergence of replicon variants resistant to the combination of HCV-796 and boceprevir was evaluated. Combining the inhibitors greatly reduced the frequency with which resistant colonies arose; however, some resistant replicon cells could be isolated by the use of low inhibitor concentrations. These replicons were approximately 1,000-fold less susceptible to HCV-796 and 9-fold less susceptible to boceprevir. They also exhibited resistance to anthranilate nonnucleoside inhibitors of NS5B but were fully sensitive to inhibitors of different mechanisms: a pyranoindole, Hsp90 inhibitors, an NS5B nucleoside inhibitor, and pegylated interferon (Peg-IFN). The replicon was cleared from the combination-resistant cells by extended treatment with Peg-IFN. Mutations known to confer resistance to HCV-796 (NS5B C316Y) and boceprevir (NS3 V170A) were present in the combination-resistant replicons. These changes could be selected together and coexist in the same genome. The replicon bearing both changes exhibited reduced sensitivity to inhibition by HCV-796 and boceprevir but had a reduced replicative capacity.


Emerging Infectious Diseases | 2016

Prognostic Indicators for Ebola Patient Survival

Samuel J. Crowe; Matthew J. Maenner; Solomon Kuah; Bobbie R. Erickson; Megan Coffee; Barbara Knust; John D. Klena; Joyce Foday; Darren Hertz; Veerle Hermans; Jay Achar; Grazia Caleo; Michel Van Herp; César G. Albariño; Brian R. Amman; Alison J. Basile; Scott W. Bearden; Jessica A. Belser; Éric Bergeron; Dianna M. Blau; Aaron C. Brault; Shelley Campbell; Mike Flint; Aridth Gibbons; Christin H. Goodman; Laura K. McMullan; Christopher D. Paddock; Brandy J. Russell; Johanna S. Salzer; Angela J. Sanchez

Odds of survival were greatest when first Ebola virus–positive blood sample collected had low viral load.


Journal of Virology | 2013

Host mTORC1 Signaling Regulates Andes Virus Replication

Shannon McNulty; Mike Flint; Stuart T. Nichol; Christina F. Spiropoulou

ABSTRACT Hantavirus pulmonary syndrome (HPS) is a severe respiratory disease characterized by pulmonary edema, with fatality rates of 35 to 45%. Disease occurs following infection with pathogenic New World hantaviruses, such as Andes virus (ANDV), which targets lung microvascular endothelial cells. During replication, the virus scavenges 5′-m7G caps from cellular mRNA to ensure efficient translation of viral proteins by the host cell cap-dependent translation machinery. In cells, the mammalian target of rapamycin (mTOR) regulates the activity of host cap-dependent translation by integrating amino acid, energy, and oxygen availability signals. Since there is no approved pharmacological treatment for HPS, we investigated whether inhibitors of the mTOR pathway could reduce hantavirus infection. Here, we demonstrate that treatment with the FDA-approved rapamycin analogue temsirolimus (CCI-779) blocks ANDV protein expression and virion release but not entry into primary human microvascular endothelial cells. This effect was specific to viral proteins, as temsirolimus treatment did not block host protein synthesis. We confirmed that temsirolimus targeted host mTOR complex 1 (mTORC1) and not a viral protein, as knockdown of mTORC1 and mTORC1 activators but not mTOR complex 2 components reduced ANDV replication. Additionally, primary fibroblasts from a patient with tuberous sclerosis exhibited increased mTORC1 activity and increased ANDV protein expression, which were blocked following temsirolimus treatment. Finally, we show that ANDV glycoprotein Gn colocalized with mTOR and lysosomes in infected cells. Together, these data demonstrate that mTORC1 signaling regulates ANDV replication and suggest that the hantavirus Gn protein may modulate mTOR and lysosomal signaling during infection, thus bypassing the cellular regulation of translation.


Antiviral Research | 2015

Inhibitors of cellular kinases with broad-spectrum antiviral activity for hemorrhagic fever viruses ☆

Emma L. Mohr; Laura K. McMullan; Michael K. Lo; Jessica R. Spengler; Éric Bergeron; César G. Albariño; Punya Shrivastava-Ranjan; Cheng-Feng Chiang; Stuart T. Nichol; Christina F. Spiropoulou; Mike Flint

Host cell kinases are important for the replication of a number of hemorrhagic fever viruses. We tested a panel of kinase inhibitors for their ability to block the replication of multiple hemorrhagic fever viruses. OSU-03012 inhibited the replication of Lassa, Ebola, Marburg and Nipah viruses, whereas BIBX 1382 dihydrochloride inhibited Lassa, Ebola and Marburg viruses. BIBX 1382 blocked both Lassa and Ebola virus glycoprotein-dependent cell entry. These compounds may be used as tools to understand conserved virus-host interactions, and implicate host cell kinases that may be targets for broad spectrum therapeutic intervention.


The Journal of Infectious Diseases | 2015

Ebola Virus Diagnostics: The US Centers for Disease Control and Prevention Laboratory in Sierra Leone, August 2014 to March 2015

Mike Flint; Christin H. Goodman; Scott W. Bearden; Dianna M. Blau; Brian R. Amman; Alison J. Basile; Jessica A. Belser; Eric Bergeron; Michael D. Bowen; Aaron C. Brault; Shelley Campbell; Ayan K. Chakrabarti; Kimberly A. Dodd; Bobbie R. Erickson; Molly M. Freeman; Aridth Gibbons; Lisa Wiggleton Guerrero; John D. Klena; R. Ryan Lash; Michael K. Lo; Laura K. McMullan; Gbetuwa Momoh; James L. Massally; Augustine Goba; Christopher D. Paddock; Rachael A. Priestley; Meredith Pyle; Mark Rayfield; Brandy J. Russell; Johanna S. Salzer

In August 2014, the Viral Special Pathogens Branch of the US Centers for Disease Control and Prevention established a field laboratory in Sierra Leone in response to the ongoing Ebola virus outbreak. Through March 2015, this laboratory tested >12 000 specimens from throughout Sierra Leone. We describe the organization and procedures of the laboratory located in Bo, Sierra Leone.


Antiviral Research | 2016

The lipid moiety of brincidofovir is required for in vitro antiviral activity against Ebola virus.

Laura K. McMullan; Mike Flint; Julie Dyall; César G. Albariño; Gene G. Olinger; Scott Foster; Phiroze Sethna; Lisa E. Hensley; Stuart T. Nichol; E. Randall Lanier; Christina F. Spiropoulou

Brincidofovir (BCV) is the 3-hexadecyloxy-1-propanol (HDP) lipid conjugate of the acyclic nucleoside phosphonate cidofovir (CDV). BCV has established broad-spectrum activity against double-stranded DNA (dsDNA) viruses; however, its activity against RNA viruses has been less thoroughly evaluated. Here, we report that BCV inhibited infection of Ebola virus in multiple human cell lines. Unlike the mechanism of action for BCV against cytomegalovirus and other dsDNA viruses, phosphorylation of CDV to the diphosphate form appeared unnecessary. Instead, antiviral activity required the lipid moiety and in vitro activity against EBOV was observed for several HDP-nucleotide conjugates.


Antimicrobial Agents and Chemotherapy | 2014

Inhibitors of the Tick-Borne, Hemorrhagic Fever-Associated Flaviviruses

Mike Flint; Laura K. McMullan; Kimberly A. Dodd; Brian H. Bird; Marina L. Khristova; Stuart T. Nichol; Christina F. Spiropoulou

ABSTRACT No antiviral therapies are available for the tick-borne flaviviruses associated with hemorrhagic fevers: Kyasanur Forest disease virus (KFDV), both classical and the Alkhurma hemorrhagic fever virus (AHFV) subtype, and Omsk hemorrhagic fever virus (OHFV). We tested compounds reported to have antiviral activity against members of the Flaviviridae family for their ability to inhibit AHFV replication. 6-Azauridine (6-azaU), 2′-C-methylcytidine (2′-CMC), and interferon alpha 2a (IFN-α2a) inhibited the replication of AHFV and also KFDV, OHFV, and Powassan virus. The combination of IFN-α2a and 2′-CMC exerted an additive antiviral effect on AHFV, and the combination of IFN-α2a and 6-azaU was moderately synergistic. The combination of 2′-CMC and 6-azaU was complex, being strongly synergistic but with a moderate level of antagonism. The antiviral activity of 6-azaU was reduced by the addition of cytidine but not guanosine, suggesting that it acted by inhibiting pyrimidine biosynthesis. To investigate the mechanism of action of 2′-CMC, AHFV variants with reduced susceptibility to 2′-CMC were selected. We used a replicon system to assess the substitutions present in the selected AHFV population. A double NS5 mutant, S603T/C666S, and a triple mutant, S603T/C666S/M644V, were more resistant to 2′-CMC than the wild-type replicon. The S603T/C666S mutant had a reduced level of replication which was increased when M644V was also present, although the replication of this triple mutant was still below that of the wild type. The S603 and C666 residues were predicted to lie in the active site of the AHFV NS5 polymerase, implicating the catalytic center of the enzyme as the binding site for 2′-CMC.


Antiviral Research | 2016

In vitro antiviral activity of adenosine analog NITD008 against tick-borne flaviviruses.

Michael K. Lo; Pei Yong Shi; Yen Liang Chen; Mike Flint; Christina F. Spiropoulou

There are currently no antiviral therapies available for the tick-borne flaviviruses associated with hemorrhagic fevers: Kyasanur Forest disease virus (KFDV), both classical and the Alkhurma hemorrhagic fever virus (AHFV) subtype, and Omsk hemorrhagic fever virus (OHFV). In this brief study, we describe the inxa0vitro antiviral activity of adenosine analog NITD008 against KFDV, AHFV, OHFV, as well as Tick-borne Encephalitis virus (TBEV). Alongside the well-established activity of NITD008 against mosquito-borne flaviviruses, our results have demonstrated the feasibility of identifying nucleoside analog inhibitors that have pan-flavivirus activity.

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Christina F. Spiropoulou

Centers for Disease Control and Prevention

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Stuart T. Nichol

Centers for Disease Control and Prevention

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César G. Albariño

Centers for Disease Control and Prevention

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Ayan K. Chakrabarti

Centers for Disease Control and Prevention

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Laura K. McMullan

Centers for Disease Control and Prevention

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Éric Bergeron

Centers for Disease Control and Prevention

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Aaron C. Brault

Centers for Disease Control and Prevention

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Alison J. Basile

Centers for Disease Control and Prevention

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Aridth Gibbons

Centers for Disease Control and Prevention

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