Network


Latest external collaboration on country level. Dive into details by clicking on the dots.

Hotspot


Dive into the research topics where Mark G. Lewis is active.

Publication


Featured researches published by Mark G. Lewis.


Nature Medicine | 2000

Protection of macaques against vaginal transmission of a pathogenic HIV-1/SIV chimeric virus by passive infusion of neutralizing antibodies.

John R. Mascola; Gabriela Stiegler; Thomas C. VanCott; Hermann Katinger; Calvin B. Carpenter; Chris E. Hanson; Holly Beary; Deborah Hayes; Sarah S. Frankel; Deborah L. Birx; Mark G. Lewis

The development of the human immunodeficiency virus-1 (HIV-1)/simian immunodeficiency virus (SIV) chimeric virus macaque model (SHIV) permits the in vivo evaluation of anti-HIV-1 envelope glycoprotein immune responses. Using this model, others, and we have shown that passively infused antibody can protect against an intravenous challenge. However, HIV-1 is most often transmitted across mucosal surfaces and the intravenous challenge model may not accurately predict the role of antibody in protection against mucosal exposure. After controlling the macaque estrous cycle with progesterone, anti-HIV-1 neutralizing monoclonal antibodies 2F5 and 2G12, and HIV immune globulin were tested. Whereas all five control monkeys displayed high plasma viremia and rapid CD4 cell decline, 14 antibody-treated macaques were either completely protected against infection or against pathogenic manifestations of SHIV-infection. Infusion of all three antibodies together provided the greatest amount of protection, but a single monoclonal antibody, with modest virus neutralizing activity, was also protective. Compared with our previous intravenous challenge study with the same virus and antibodies, the data indicated that greater protection was achieved after vaginal challenge. This study demonstrates that antibodies can affect transmission and subsequent disease course after vaginal SHIV-challenge; the data begin to define the type of antibody response that could play a role in protection against mucosal transmission of HIV-1.


Nature | 2002

Eventual AIDS vaccine failure in a rhesus monkey by viral escape from cytotoxic T lymphocytes

Dan H. Barouch; Jennifer Kunstman; Marcelo J. Kuroda; Jörn E. Schmitz; Sampa Santra; Fred W. Peyerl; Georgia R. Krivulka; Kristin Beaudry; Michelle A. Lifton; Darci A. Gorgone; David C. Montefiori; Mark G. Lewis; Steven M. Wolinsky; Norman L. Letvin

Potent virus-specific cytotoxic T lymphocyte (CTL) responses elicited by candidate AIDS vaccines have recently been shown to control viral replication and prevent clinical disease progression after pathogenic viral challenges in rhesus monkeys. Here we show that viral escape from CTL recognition can result in the eventual failure of this partial immune protection. Viral mutations that escape from CTL recognition have been previously described in humans infected with human immunodeficiency virus (HIV) and monkeys infected with simian immunodeficiency virus (SIV). In a cohort of rhesus monkeys that were vaccinated and subsequently infected with a pathogenic hybrid simian–human immunodeficiency virus (SHIV), the frequency of viral sequence mutations within CTL epitopes correlated with the level of viral replication. A single nucleotide mutation within an immunodominant Gag CTL epitope in an animal with undetectable plasma viral RNA resulted in viral escape from CTLs, a burst of viral replication, clinical disease progression, and death from AIDS-related complications. These data indicate that viral escape from CTL recognition may be a major limitation of the CTL-based AIDS vaccines that are likely to be administered to large human populations over the next several years.


Nature | 2013

Therapeutic efficacy of potent neutralizing HIV-1-specific monoclonal antibodies in SHIV-infected rhesus monkeys

Dan H. Barouch; James B. Whitney; Brian Moldt; Florian Klein; Thiago Y. Oliveira; Jinyan Liu; Kathryn E. Stephenson; Hui-Wen Chang; Karthik Shekhar; Sanjana Gupta; Joseph P. Nkolola; Michael S. Seaman; Kaitlin M. Smith; Erica N. Borducchi; Crystal Cabral; Jeffrey Y. Smith; Stephen Blackmore; Srisowmya Sanisetty; James R. Perry; Matthew Beck; Mark G. Lewis; William Rinaldi; Arup K. Chakraborty; Pascal Poignard; Michel C. Nussenzweig; Dennis R. Burton

Human immunodeficiency virus type 1 (HIV-1)-specific monoclonal antibodies with extraordinary potency and breadth have recently been described. In humanized mice, combinations of monoclonal antibodies have been shown to suppress viraemia, but the therapeutic potential of these monoclonal antibodies has not yet been evaluated in primates with an intact immune system. Here we show that administration of a cocktail of HIV-1-specific monoclonal antibodies, as well as the single glycan-dependent monoclonal antibody PGT121, resulted in a rapid and precipitous decline of plasma viraemia to undetectable levels in rhesus monkeys chronically infected with the pathogenic simian–human immunodeficiency virus SHIV-SF162P3. A single monoclonal antibody infusion afforded up to a 3.1 log decline of plasma viral RNA in 7 days and also reduced proviral DNA in peripheral blood, gastrointestinal mucosa and lymph nodes without the development of viral resistance. Moreover, after monoclonal antibody administration, host Gag-specific T-lymphocyte responses showed improved functionality. Virus rebounded in most animals after a median of 56 days when serum monoclonal antibody titres had declined to undetectable levels, although, notably, a subset of animals maintained long-term virological control in the absence of further monoclonal antibody infusions. These data demonstrate a profound therapeutic effect of potent neutralizing HIV-1-specific monoclonal antibodies in SHIV-infected rhesus monkeys as well as an impact on host immune responses. Our findings strongly encourage the investigation of monoclonal antibody therapy for HIV-1 in humans.


Nature Medicine | 2010

A virus-like particle vaccine for epidemic Chikungunya virus protects nonhuman primates against infection

Wataru Akahata; Zhi Yong Yang; Hanne Andersen; Siyang Sun; Heather A. Holdaway; Wing Pui Kong; Mark G. Lewis; Stephen Higgs; Michael G. Rossmann; Srinivas S. Rao; Gary J. Nabel

Chikungunya virus (CHIKV) has infected millions of people in Africa, Europe and Asia since this alphavirus reemerged from Kenya in 2004. The severity of the disease and the spread of this epidemic virus present a serious public health threat in the absence of vaccines or antiviral therapies. Here, we describe a new vaccine that protects against CHIKV infection of nonhuman primates. We show that selective expression of viral structural proteins gives rise to virus-like particles (VLPs) in vitro that resemble replication-competent alphaviruses. Immunization with these VLPs elicited neutralizing antibodies against envelope proteins from alternative CHIKV strains. Monkeys immunized with VLPs produced high-titer neutralizing antibodies that protected against viremia after high-dose challenge. We transferred these antibodies into immunodeficient mice, where they protected against subsequent lethal CHIKV challenge, indicating a humoral mechanism of protection. Immunization with alphavirus VLP vaccines represents a strategy to contain the spread of CHIKV and related pathogenic viruses in humans.


Nature | 2014

Rapid seeding of the viral reservoir prior to SIV viraemia in rhesus monkeys

James B. Whitney; Alison L. Hill; Srisowmya Sanisetty; Pablo Penaloza-MacMaster; Jinyan Liu; Mayuri Shetty; Lily Parenteau; Crystal Cabral; Jennifer Shields; Stephen Blackmore; Jeffrey Y. Smith; Amanda L. Brinkman; Lauren Peter; Sheeba Mathew; Kaitlin M. Smith; Erica N. Borducchi; Daniel I. S. Rosenbloom; Mark G. Lewis; Jillian Hattersley; Bei Li; Joseph Hesselgesser; Romas Geleziunas; Merlin L. Robb; Jerome H. Kim; Nelson L. Michael; Dan H. Barouch

The viral reservoir represents a critical challenge for human immunodeficiency virus type 1 (HIV-1) eradication strategies. However, it remains unclear when and where the viral reservoir is seeded during acute infection and the extent to which it is susceptible to early antiretroviral therapy (ART). Here we show that the viral reservoir is seeded rapidly after mucosal simian immunodeficiency virus (SIV) infection of rhesus monkeys and before systemic viraemia. We initiated suppressive ART in groups of monkeys on days 3, 7, 10 and 14 after intrarectal SIVMAC251 infection. Treatment with ART on day 3 blocked the emergence of viral RNA and proviral DNA in peripheral blood and also substantially reduced levels of proviral DNA in lymph nodes and gastrointestinal mucosa as compared with treatment at later time points. In addition, treatment on day 3 abrogated the induction of SIV-specific humoral and cellular immune responses. Nevertheless, after discontinuation of ART following 24 weeks of fully suppressive therapy, virus rebounded in all animals, although the monkeys that were treated on day 3 exhibited a delayed viral rebound as compared with those treated on days 7, 10 and 14. The time to viral rebound correlated with total viraemia during acute infection and with proviral DNA at the time of ART discontinuation. These data demonstrate that the viral reservoir is seeded rapidly after intrarectal SIV infection of rhesus monkeys, during the ‘eclipse’ phase, and before detectable viraemia. This strikingly early seeding of the refractory viral reservoir raises important new challenges for HIV-1 eradication strategies.


Journal of Virology | 2002

ALVAC-SIV-gag-pol-env-Based Vaccination and Macaque Major Histocompatibility Complex Class I (A*01) Delay Simian Immunodeficiency Virus SIVmac-Induced Immunodeficiency

Ranajit Pal; David Venzon; Norman L. Letvin; Sampa Santra; David C. Montefiori; N. R. Miller; Elzbieta Tryniszewska; Mark G. Lewis; Thomas C. VanCott; Vanessa M. Hirsch; Ruth Woodward; A. Gibson; M. Grace; E. Dobratz; Phillip D. Markham; Zdeněk Hel; Janos Nacsa; Michèl R. Klein; Jim Tartaglia; Genoveffa Franchini

ABSTRACT T-cell-mediated immune effector mechanisms play an important role in the containment of human immunodeficiency virus/simian immunodeficiency virus (HIV/SIV) replication after infection. Both vaccination- and infection-induced T-cell responses are dependent on the host major histocompatibility complex classes I and II (MHC-I and MHC-II) antigens. Here we report that both inherent, host-dependent immune responses to SIVmac251 infection and vaccination-induced immune responses to viral antigens were able to reduce virus replication and/or CD4+ T-cell loss. Both the presence of the MHC-I Mamu-A*01 genotype and vaccination of rhesus macaques with ALVAC-SIV-gag-pol-env (ALVAC-SIV-gpe) contributed to the restriction of SIVmac251 replication during primary infection, preservation of CD4+ T cells, and delayed disease progression following intrarectal challenge exposure of the animals to SIVmac251 (561). ALVAC-SIV-gpe immunization induced cytotoxic T-lymphocyte (CTL) responses cumulatively in 67% of the immunized animals. Following viral challenge, a significant secondary virus-specific CD8+ T-cell response was observed in the vaccinated macaques. In the same immunized macaques, a decrease in virus load during primary infection (P = 0.0078) and protection from CD4 loss during both acute and chronic phases of infection (P = 0.0099 and P = 0.03, respectively) were observed. A trend for enhanced survival of the vaccinated macaques was also observed. Neither boosting the ALVAC-SIV-gpe with gp120 immunizations nor administering the vaccine by the combination of mucosal and systemic immunization routes increased significantly the protective effect of the ALVAC-SIV-gpe vaccine. While assessing the role of MHC-I Mamu-A*01 alone in the restriction of viremia following challenge of nonvaccinated animals with other SIV isolates, we observed that the virus load was not significantly lower in Mamu-A*01-positive macaques following intravenous challenge with either SIVmac251 (561) or SIVSME660. However, a significant delay in CD4+ T-cell loss was observed in Mamu-A*01-positive macaques in each group. Of interest, in the case of intravenous or intrarectal challenge with the chimeric SIV/HIV strains SHIV89.6P or SHIVKU2, respectively, MHC-I Mamu-A*01-positive macaques did not significantly restrict primary viremia. The finding of the protective effect of the Mamu-A*01 molecule parallels the protective effect of the B*5701 HLA allele in HIV-1-infected humans and needs to be accounted for in the evaluation of vaccine efficacy against SIV challenge models.


Science | 2016

Protective efficacy of multiple vaccine platforms against Zika virus challenge in rhesus monkeys

Peter Abbink; Rafael A. Larocca; Rafael De La Barrera; Christine A. Bricault; Edward T. Moseley; Michael Boyd; Marinela Kirilova; Zhenfeng Li; David Ng’ang’a; Ovini Nanayakkara; Ramya Nityanandam; Noe B. Mercado; Erica N. Borducchi; Arshi Agarwal; Amanda L. Brinkman; Crystal Cabral; Abishek Chandrashekar; Patricia B. Giglio; David Jetton; Jessica Jimenez; Benjamin C. Lee; Shanell Mojta; Katherine Molloy; Mayuri Shetty; George H. Neubauer; Kathryn E. Stephenson; Jean Pierre Schatzmann Peron; Paolo Marinho de Andrade Zanotto; Johnathan Misamore; Brad Finneyfrock

Zika virus (ZIKV) is responsible for a major ongoing epidemic in the Americas and has been causally associated with fetal microcephaly. The development of a safe and effective ZIKV vaccine is therefore an urgent global health priority. Here we demonstrate that three different vaccine platforms protect against ZIKV challenge in rhesus monkeys. A purified inactivated virus vaccine induced ZIKV-specific neutralizing antibodies and completely protected monkeys against ZIKV strains from both Brazil and Puerto Rico. Purified immunoglobulin from vaccinated monkeys also conferred passive protection in adoptive transfer studies. A plasmid DNA vaccine and a single-shot recombinant rhesus adenovirus serotype 52 vector vaccine, both expressing ZIKV premembrane and envelope, also elicited neutralizing antibodies and completely protected monkeys against ZIKV challenge. These data support the rapid clinical development of ZIKV vaccines for humans.


Science | 2016

Rapid development of a DNA vaccine for Zika virus

Kimberly A. Dowd; Sung-Youl Ko; Kaitlyn M. Morabito; Eun Sung Yang; Rebecca S. Pelc; Christina R. DeMaso; Leda R. Castilho; Peter Abbink; Michael Boyd; Ramya Nityanandam; David N. Gordon; John R. Gallagher; Xuejun Chen; John-Paul Todd; Yaroslav Tsybovsky; Audray K. Harris; Yan-Jang S. Huang; Stephen Higgs; Dana L. Vanlandingham; Hanne Andersen; Mark G. Lewis; Rafael De La Barrera; Kenneth H. Eckels; Richard G. Jarman; Martha Nason; Dan H. Barouch; Mario Roederer; Wing-Pui Kong; John R. Mascola; Theodore C. Pierson

A DNA vaccine candidate for Zika The ongoing Zika epidemic in the Americas and the Caribbean urgently needs a protective vaccine. Two DNA vaccines composed of the genes that encode the structural premembrane and envelope proteins of Zika virus have been tested in monkeys. Dowd et al. show that two doses of vaccine given intramuscularly completely protected 17 of 18 animals against Zika virus challenge. A single low dose of vaccine was not protective but did reduce viral loads. Protection correlated with serum antibody neutralizing activity. Phase I clinical trials testing these vaccines are already ongoing. Science, this issue p. 237 DNA-vaccine–induced neutralizing antibodies largely protect monkeys after experimental challenge by virus infection. Zika virus (ZIKV) was identified as a cause of congenital disease during the explosive outbreak in the Americas and Caribbean that began in 2015. Because of the ongoing fetal risk from endemic disease and travel-related exposures, a vaccine to prevent viremia in women of childbearing age and their partners is imperative. We found that vaccination with DNA expressing the premembrane and envelope proteins of ZIKV was immunogenic in mice and nonhuman primates, and protection against viremia after ZIKV challenge correlated with serum neutralizing activity. These data not only indicate that DNA vaccination could be a successful approach to protect against ZIKV infection, but also suggest a protective threshold of vaccine-induced neutralizing activity that prevents viremia after acute infection.


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.


Science | 2015

Protective Efficacy of Adenovirus/Protein Vaccines Against SIV Challenges in Rhesus Monkeys

Dan H. Barouch; Galit Alter; Thomas A. Broge; Caitlyn Linde; Margaret E. Ackerman; Eric P. Brown; Erica N. Borducchi; Kaitlin M. Smith; Joseph P. Nkolola; Jinyan Liu; Jennifer Shields; Lily Parenteau; James B. Whitney; Peter Abbink; David Ng’ang’a; Michael S. Seaman; Christy L. Lavine; James R. Perry; Wenjun Li; Arnaud D. Colantonio; Mark G. Lewis; Bing Chen; Holger Wenschuh; Ulf Reimer; Michael Piatak; Jeffrey D. Lifson; Scott A. Handley; Herbert W. Virgin; Marguerite Koutsoukos; Clarisse Lorin

To defeat SIV, add a protein boost Despite 30 years of effort, no HIV-1 vaccine exists. Barouch et al. evaluated one promising strategy in rhesus macaques, a preclinical model commonly used to test potential HIV-1 vaccine candidates. They immunized monkeys with adenovirus-36 vectors engineered to express SIV (simian immunodeficiency virus) genes and then boosted them with a recombinant gp120 envelope glycoprotein (Env) from SIV. This regimen afforded greater protection than a strategy that instead used a viral vector–based boost. A parallel trial using a SHIV (simian/human immunodeficiency virus)–based vaccine and challenge model produced similar results. Whether this particular approach will be equally successful in humans remains to be tested. Science, this issue p. 320 A viral vector–recombinant envelope glycoprotein–based HIV-1 vaccine strategy protected 50% of monkeys from infection. Preclinical studies of viral vector–based HIV-1 vaccine candidates have previously shown partial protection against neutralization-resistant virus challenges in rhesus monkeys. In this study, we evaluated the protective efficacy of adenovirus serotype 26 (Ad26) vector priming followed by purified envelope (Env) glycoprotein boosting. Rhesus monkeys primed with Ad26 vectors expressing SIVsmE543 Env, Gag, and Pol and boosted with AS01B-adjuvanted SIVmac32H Env gp140 demonstrated complete protection in 50% of vaccinated animals against a series of repeated, heterologous, intrarectal SIVmac251 challenges that infected all controls. Protective efficacy correlated with the functionality of Env-specific antibody responses. Comparable protection was also observed with a similar Ad/Env vaccine against repeated, heterologous, intrarectal SHIV-SF162P3 challenges. These data demonstrate robust protection by Ad/Env vaccines against acquisition of neutralization-resistant virus challenges in rhesus monkeys.

Collaboration


Dive into the Mark G. Lewis's collaboration.

Top Co-Authors

Avatar
Top Co-Authors

Avatar

Jean D. Boyer

University of Pennsylvania

View shared research outputs
Top Co-Authors

Avatar

Dan H. Barouch

Beth Israel Deaconess Medical Center

View shared research outputs
Top Co-Authors

Avatar
Top Co-Authors

Avatar

Erica N. Borducchi

Beth Israel Deaconess Medical Center

View shared research outputs
Top Co-Authors

Avatar

Wendeline Wagner

Southern Research Institute

View shared research outputs
Top Co-Authors

Avatar

Genoveffa Franchini

National Institutes of Health

View shared research outputs
Top Co-Authors

Avatar

Norman L. Letvin

Beth Israel Deaconess Medical Center

View shared research outputs
Top Co-Authors

Avatar

Jian Yan

University of Pennsylvania

View shared research outputs
Top Co-Authors

Avatar
Researchain Logo
Decentralizing Knowledge