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Dive into the research topics where Scott E. Hensley is active.

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Featured researches published by Scott E. Hensley.


Science | 2009

Hemagglutinin receptor binding avidity drives influenza A virus antigenic drift.

Scott E. Hensley; Suman R. Das; Adam L. Bailey; Loren M. Schmidt; Heather D. Hickman; Akila Jayaraman; Karthik Viswanathan; Rahul Raman; Ram Sasisekharan; Jack R. Bennink; Jonathan W. Yewdell

Flus Tricky Tricks After vaccination against influenza A virus, single-point mutations are selected in hemagglutinin (the virus molecule that binds to sialic acid molecules on the surface of host cells) that escape neutralization by polyclonal antibody responses. Hensley et al. (p. 734) have discovered that in mice these mutations increased the viruss avidity for sialic acid. Amino acid substitutions that occur during reiterations of immune escape and avidity modulation can thus drive antigenic variation. This constant evolution of influenza viruses requires us to change vaccine components annually, and, for equine influenza, Park et al. (p. 726) show that as the match between virus and vaccine strains drifts apart with time, the probability of becoming infected and the length of the infectious period increase to the point where outbreaks occur. Nevertheless, even imperfect vaccines may be of benefit to a population because increasing the proportion of vaccinated individuals can supply enough herd immunity to offset a poor antigenic match, especially if used in conjunction with antiviral drugs. For humans, Yang et al. (p. 729, published online 10 September) estimate that the rate of transmission within U.S. households puts influenza A 2009 H1N1 (the current pandemic “swine flu”) in the higher range of transmissibility, compared to past seasonal and pandemic strains. Thus, to achieve mitigation this fall, children should be the first recipients of vaccine, followed by adults—aiming overall for 70% coverage of the population. Viruses escape antibody responses by changing surface protein structures to increase the strength of binding to host cells. Rapid antigenic evolution in the influenza A virus hemagglutinin precludes effective vaccination with existing vaccines. To understand this phenomenon, we passaged virus in mice immunized with influenza vaccine. Neutralizing antibodies selected mutants with single–amino acid hemagglutinin substitutions that increased virus binding to cell surface glycan receptors. Passaging these high-avidity binding mutants in naïve mice, but not immune mice, selected for additional hemagglutinin substitutions that decreased cellular receptor binding avidity. Analyzing a panel of monoclonal antibody hemagglutinin escape mutants revealed a positive correlation between receptor binding avidity and escape from polyclonal antibodies. We propose that in response to variation in neutralizing antibody pressure between individuals, influenza A virus evolves by adjusting receptor binding avidity via amino acid substitutions throughout the hemagglutinin globular domain, many of which simultaneously alter antigenicity.


Nature Immunology | 2008

Direct priming of antiviral CD8 + T cells in the peripheral interfollicular region of lymph nodes

Heather D. Hickman; Kazuyo Takeda; Cara N. Skon; Faith R. Murray; Scott E. Hensley; Joshua Loomis; Glen N. Barber; Jack R. Bennink; Jonathan W. Yewdell

It is uncertain how antiviral lymphocytes are activated in draining lymph nodes, the site where adaptive immune responses are initiated. Here, using intravital microscopy we show that after infection of mice with vaccinia virus (a large DNA virus) or vesicular stomatitis virus (a small RNA virus), virions drained to the lymph node and infected cells residing just beneath the subcapsular sinus. Naive CD8+ T cells rapidly migrated to infected cells in the peripheral interfollicular region and then formed tight interactions with dendritic cells, leading to complete T cell activation. Thus, antigen presentation at the lymph node periphery, not at lymphocyte exit sites in deeper lymph node venules, as dogma dictates, has a dominant function in antiviral CD8+ T cell activation.


Journal of Virology | 2007

Effect of Preexisting Immunity to Adenovirus Human Serotype 5 Antigens on the Immune Responses of Nonhuman Primates to Vaccine Regimens Based on Human- or Chimpanzee-Derived Adenovirus Vectors

Kimberly McCoy; Birgit Korioth-Schmitz; Marcio O. Lasaro; Scott E. Hensley; Shih-Wen Lin; Yan Li; Wynetta Giles-Davis; Ann Cun; Dongming Zhou; Zhiquan Xiang; Norman L. Letvin; Hildegund C.J. Ertl

ABSTRACT In this study we compared a prime-boost regimen with two serologically distinct replication-defective adenovirus (Ad) vectors derived from chimpanzee serotypes C68 and C1 expressing Gag, Pol, gp140, and Nef of human immunodeficiency virus type 1 with a regimen in which replication-defective Ad vectors of the human serotype 5 (AdHu5) were given twice. Experiments were conducted in rhesus macaques that had or had not been preexposed to antigens of AdHu5. There was no significant difference in T-cell responses tested from peripheral blood of the different groups, although responses were overall highest in nonpreexposed animals immunized with the chimpanzee Ad vectors. Preexisting immunity to AdHu5 completely inhibited induction of transgene product-specific antibodies by the AdHu5 vectors without affecting antibody responses to the chimpanzee vectors. Upon euthanasia, T-cell responses were tested from a number of tissues. Preexisting immunity to AdHu5, commonly found in humans, changed the homing pattern of vaccine-induced T cells. In AdHu5-preexposed animals vaccinated with the chimpanzee Ad vectors, frequencies of transgene-specific T cells were higher in spleens than in blood, and in most preexposed animals vaccinated either with AdHu5 vectors or chimpanzee adenovirus vectors, frequencies of such T cells were exceptionally high in livers. The latter results indicate that analysis of T-cell responses solely from blood mononuclear cells of vaccine recipients may not suffice to compare the potencies of different vaccine regimens.


Nature | 2017

Zika virus protection by a single low-dose nucleoside-modified mRNA vaccination

Norbert Pardi; Michael J. Hogan; Rebecca S. Pelc; Hiromi Muramatsu; Hanne Andersen; Christina R. DeMaso; Kimberly A. Dowd; Laura L. Sutherland; Richard M. Scearce; Robert Parks; Wendeline Wagner; Alex Granados; Jack Greenhouse; Michelle Walker; Elinor Willis; Jae-Sung Yu; Charles E. McGee; Gregory D. Sempowski; Barbara L. Mui; Ying K. Tam; Yan-Jang Huang; Dana L. Vanlandingham; Veronica M. Holmes; Harikrishnan Balachandran; Sujata Sahu; Michelle A. Lifton; Stephen Higgs; Scott E. Hensley; Thomas D. Madden; Michael J. Hope

Zika virus (ZIKV) has recently emerged as a pandemic associated with severe neuropathology in newborns and adults. There are no ZIKV-specific treatments or preventatives. Therefore, the development of a safe and effective vaccine is a high priority. Messenger RNA (mRNA) has emerged as a versatile and highly effective platform to deliver vaccine antigens and therapeutic proteins. Here we demonstrate that a single low-dose intradermal immunization with lipid-nanoparticle-encapsulated nucleoside-modified mRNA (mRNA–LNP) encoding the pre-membrane and envelope glycoproteins of a strain from the ZIKV outbreak in 2013 elicited potent and durable neutralizing antibody responses in mice and non-human primates. Immunization with 30 μg of nucleoside-modified ZIKV mRNA–LNP protected mice against ZIKV challenges at 2 weeks or 5 months after vaccination, and a single dose of 50 μg was sufficient to protect non-human primates against a challenge at 5 weeks after vaccination. These data demonstrate that nucleoside-modified mRNA–LNP elicits rapid and durable protective immunity and therefore represents a new and promising vaccine candidate for the global fight against ZIKV.


Proceedings of the National Academy of Sciences of the United States of America | 2007

A comprehensive archaeological map of the world's largest preindustrial settlement complex at Angkor, Cambodia

Damian Evans; Christophe Pottier; Roland Fletcher; Scott E. Hensley; Ian Tapley; Anthony K. Milne; Michael Barbetti

The great medieval settlement of Angkor in Cambodia [9th–16th centuries Common Era (CE)] has for many years been understood as a “hydraulic city,” an urban complex defined, sustained, and ultimately overwhelmed by a complex water management network. Since the 1980s that view has been disputed, but the debate has remained unresolved because of insufficient data on the landscape beyond the great temples: the broader context of the monumental remains was only partially understood and had not been adequately mapped. Since the 1990s, French, Australian, and Cambodian teams have sought to address this empirical deficit through archaeological mapping projects by using traditional methods such as ground survey in conjunction with advanced radar remote-sensing applications in partnership with the National Aeronautics and Space Administration (NASA)/Jet Propulsion Laboratory (JPL). Here we present a major outcome of that research: a comprehensive archaeological map of greater Angkor, covering nearly 3,000 km2, prepared by the Greater Angkor Project (GAP). The map reveals a vast, low-density settlement landscape integrated by an elaborate water management network covering >1,000 km2, the most extensive urban complex of the preindustrial world. It is now clear that anthropogenic changes to the landscape were both extensive and substantial enough to have created grave challenges to the long-term viability of the settlement.


PLOS Pathogens | 2010

Glycosylation Focuses Sequence Variation in the Influenza A Virus H1 Hemagglutinin Globular Domain

Suman R. Das; Pere Puigbò; Scott E. Hensley; Darrell E. Hurt; Jack R. Bennink; Jonathan W. Yewdell

Antigenic drift in the influenza A virus hemagglutinin (HA) is responsible for seasonal reformulation of influenza vaccines. Here, we address an important and largely overlooked issue in antigenic drift: how does the number and location of glycosylation sites affect HA evolution in man? We analyzed the glycosylation status of all full-length H1 subtype HA sequences available in the NCBI influenza database. We devised the “flow index” (FI), a simple algorithm that calculates the tendency for viruses to gain or lose consensus glycosylation sites. The FI predicts the predominance of glycosylation states among existing strains. Our analyses show that while the number of glycosylation sites in the HA globular domain does not influence the overall magnitude of variation in defined antigenic regions, variation focuses on those regions unshielded by glycosylation. This supports the conclusion that glycosylation generally shields HA from antibody-mediated neutralization, and implies that fitness costs in accommodating oligosaccharides limit virus escape via HA hyperglycosylation.


Proceedings of the National Academy of Sciences of the United States of America | 2014

Potential antigenic explanation for atypical H1N1 infections among middle-aged adults during the 2013–2014 influenza season

Susanne L. Linderman; Benjamin S. Chambers; Seth J. Zost; Kaela Parkhouse; Yang Li; Christin Herrmann; Ali H. Ellebedy; Donald M. Carter; Sarah F. Andrews; Nai-Ying Zheng; Min Huang; Yunping Huang; Donna Strauss; Beth H. Shaz; Richard L. Hodinka; Gustavo Reyes-Terán; Ted M. Ross; Patrick C. Wilson; Rafi Ahmed; Jesse D. Bloom; Scott E. Hensley

Significance Influenza viruses typically cause a higher disease burden in children and the elderly, who have weaker immune systems. During the 2013–2014 influenza season, H1N1 viruses caused an unusually high level of disease in middle-aged adults. Here, we show that recent H1N1 strains possess a mutation that allows viruses to avoid immune responses elicited in middle-aged adults. We show that current vaccine strains elicit immune responses that are predicted to be less effective in some middle-aged adults. We suggest that new viral strains should be incorporated into seasonal influenza vaccines so that proper immunity is elicited in all humans, regardless of age and pre-exposure histories. Influenza viruses typically cause the most severe disease in children and elderly individuals. However, H1N1 viruses disproportionately affected middle-aged adults during the 2013–2014 influenza season. Although H1N1 viruses recently acquired several mutations in the hemagglutinin (HA) glycoprotein, classic serological tests used by surveillance laboratories indicate that these mutations do not change antigenic properties of the virus. Here, we show that one of these mutations is located in a region of HA targeted by antibodies elicited in many middle-aged adults. We find that over 42% of individuals born between 1965 and 1979 possess antibodies that recognize this region of HA. Our findings offer a possible antigenic explanation of why middle-aged adults were highly susceptible to H1N1 viruses during the 2013–2014 influenza season. Our data further suggest that a drifted H1N1 strain should be included in future influenza vaccines to potentially reduce morbidity and mortality in this age group.


Cell Reports | 2015

Identification of Hemagglutinin Residues Responsible for H3N2 Antigenic Drift during the 2014–2015 Influenza Season

Benjamin S. Chambers; Kaela Parkhouse; Ted M. Ross; Kevin Alby; Scott E. Hensley

Influenza vaccines must be updated regularly because influenza viruses continuously acquire mutations in antibody binding sites of hemagglutinin (HA). The majority of H3N2 strains circulating in the Northern Hemisphere during the 2014-2015 season are antigenically mismatched to the A/Texas/50/2012 H3N2 vaccine strain. Recent H3N2 strains possess several new HA mutations, and it is unknown which of these mutations contribute to the 2014-2015 vaccine mismatch. Here, we use reverse genetics to demonstrate that mutations in HA antigenic site B are primarily responsible for the current mismatch. Sera isolated from vaccinated humans and infected ferrets and sheep had reduced hemagglutination inhibition and in vitro neutralization titers against reverse-genetics-derived viruses possessing mutations in the HA antigenic site B. These data provide an antigenic explanation for the low influenza vaccine efficacy observed during the 2014-2015 influenza season. Furthermore, our data support the World Health Organizations decision to update the H3N2 component of future vaccine formulations.


Journal of Experimental Medicine | 2013

Immune history shapes specificity of pandemic H1N1 influenza antibody responses

Yang Li; Jaclyn L. Myers; David L. Bostick; Colleen B. Sullivan; Susanne L. Linderman; Qin Liu; Donald M. Carter; Jens Wrammert; Susanna Esposito; Nicola Principi; Joshua B. Plotkin; Ted M. Ross; Rafi Ahmed; Patrick C. Wilson; Scott E. Hensley

The specificity of H1N1 antibody responses can be shifted to epitopes near the HA receptor–binding domain after sequential infections with viral strains that share homology in this region.


Science | 2009

Size and Shape of Saturn's Moon Titan

Howard A. Zebker; Bryan W. Stiles; Scott E. Hensley; Ralph D. Lorenz; Randolph L. Kirk; Jonathan I. Lunine

Global Analysis of Titan In its orbit around Saturn, the Cassini spacecraft passes regularly by the planets largest moon, Titan. Using a radar instrument to peer through the moons thick atmosphere, Zebker et al. (p. 921, published online 2 April) developed a global model of Titan. Titan is slightly oblate, so that its poles have lower elevations than the equator, which may explain why the moons hydrocarbon lakes are located at high latitudes. Titan’s poles lie at lower elevations than the equator, perhaps explaining its high-latitude hydrocarbon lakes. Cassini observations show that Saturn’s moon Titan is slightly oblate. A fourth-order spherical harmonic expansion yields north polar, south polar, and mean equatorial radii of 2574.32 ± 0.05 kilometers (km), 2574.36 ± 0.03 km, and 2574.91 ± 0.11 km, respectively; its mean radius is 2574.73 ± 0.09 km. Titan’s shape approximates a hydrostatic, synchronously rotating triaxial ellipsoid but is best fit by such a body orbiting closer to Saturn than Titan presently does. Titan’s lack of high relief implies that most—but not all—of the surface features observed with the Cassini imaging subsystem and synthetic aperture radar are uncorrelated with topography and elevation. Titan’s depressed polar radii suggest that a constant geopotential hydrocarbon table could explain the confinement of the hydrocarbon lakes to high latitudes.

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Kaela Parkhouse

University of Pennsylvania

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Jonathan W. Yewdell

National Institutes of Health

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E. John Wherry

University of Pennsylvania

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Jack R. Bennink

National Institutes of Health

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Suman R. Das

J. Craig Venter Institute

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Yang Li

University of Pennsylvania

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