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Biomedical subjects

Thomas P Monath

Publications and source records attributed to Thomas P Monath.

At least 19 recordsLinked to original sources

Viral vectors for malaria vaccine development.

A workshop on viral vectors for malaria vaccine development, organized by the PATH Malaria Vaccine Initiative, was held in Bethesda, MD on October 20, 2005. Recent advancements in viral-vectored malaria vaccine development and emerging vector technologies were presented and discussed. Classic viral vectors such as poxvirus, adenovirus and alphavirus vectors have been successfully used to deliver malaria antigens. Some of the vaccine candidates have demonstrated their potential in inducing malaria-specific immunity in animal models and human trials. In addition, emerging viral-vector technologies, such as measles virus (MV), vesicular stomatitis virus (VSV) and yellow fever (YF) virus, may also be useful for malaria vaccine development. Studies in animal models suggest that each viral vector is unique in its ability to induce humoral and/or cellular immune responses. Those studies have also revealed that optimization of Plasmodium genes for mammalian expression is an important aspect of vaccine design. Codon-optimization, surface-trafficking, de-glycosylation and removal of toxic domains can lead to improved immunogenicity. Understanding the vector's ability to induce an immune response and the expression of malaria antigens in mammalian cells will be critical in designing the next generation of viral-vectored malaria vaccines.

Adenoviridae↗

A live, attenuated recombinant West Nile virus vaccine.

West Nile (WN) virus is an important cause of febrile exanthem and encephalitis. Since it invaded the U.S. in 1999, >19,000 human cases have been reported. The threat of continued epidemics has spurred efforts to develop vaccines. ChimeriVax-WN02 is a live, attenuated recombinant vaccine constructed from an infectious clone of yellow fever (YF) 17D virus in which the premembrane and envelope genes of 17D have been replaced by the corresponding genes of WN virus. Preclinical tests in monkeys defined sites of vaccine virus replication in vivo. ChimeriVax-WN02 and YF 17D had similar biodistribution but different multiplication kinetics. Prominent sites of replication were skin and lymphoid tissues, generally sparing vital organs. Viruses were cleared from blood by day 7 and from tissues around day 14. In a clinical study, healthy adults were inoculated with 5.0 log(10) plaque-forming units (PFU) (n = 30) or 3.0 log10 PFU (n = 15) of ChimeriVax-WN02, commercial YF vaccine (YF-VAX, n = 5), or placebo (n = 30). The incidence of adverse events in subjects receiving the vaccine was similar to that in the placebo group. Transient viremia was detected in 42 of 45 (93%) of ChimeriVax-WN02 subjects, and four of five (80%) of YF-VAX subjects. All subjects developed neutralizing antibodies to WN or YF, respectively, and the majority developed specific T cell responses. ChimeriVax-WN02 rapidly elicits strong immune responses after a single dose, and is a promising candidate warranting further evaluation for prevention of WN disease.

Adolescent↗

Live attenuated chimeric yellow fever dengue type 2 (ChimeriVax-DEN2) vaccine: Phase I clinical trial for safety and immunogenicity: effect of yellow fever pre-immunity in induction of cross neutralizing antibody responses to all 4 dengue serotypes.

A randomized double-blind Phase I Trial was conducted to evaluate safety, tolerability, and immunogenicity of a yellow fever (YF)-dengue 2 (DEN2) chimera (ChimeriVax-DEN2) in comparison to that of YF vaccine (YF-VAX). Forty-two healthy YF naïve adults randomly received a single dose of either ChimeriVax-DEN2 (high dose, 5 log plaque forming units [PFU] or low dose, 3 log PFU) or YF-VAX by the subcutaneous route (SC). To determine the effect of YF preimmunity on the ChimeriVax-DEN2 vaccine, 14 subjects previously vaccinated against YF received a high dose of ChimeriVax-DEN2 as an open-label vaccine. Most adverse events were similar to YF-VAX and of mild to moderate intensity, with no serious side-effects. One hundred percent and 92.3% of YF naïve subjects inoculated with 5.0 and 3.0 log10 PFU of ChimeriVax-DEN2, respectively, seroconverted to wt DEN2 (strain 16681); 92% of subjects inoculated with YF-VAX seroconverted to YF 17D virus but none of YF naïve subjects inoculated with ChimeriVax-DEN2 seroconverted to YF 17D virus. Low seroconversion rates to heterologous DEN serotypes 1, 3 and 4 were observed in YF naïve subjects inoculated with either ChimeriVax-DEN2 or YF-VAX. In contrast, 100% of YF immune subjects inoculated with ChimeriVax-DEN2 seroconverted to all 4 DEN serotypes. Surprisingly, levels of neutralizing antibodies to DEN 1, 2 and 3 viruses in YF immune subjects persisted after 1 year. These data demonstrated that (1) the safety and immunogenicity profile of the ChimeriVax-DEN2 vaccine is consistent with that of YF-VAX, and (2) preimmunity to YF virus does not interfere with ChimeriVax-DEN2 immunization, but induces a long lasting and cross neutralizing antibody response to all 4 DEN serotypes. The latter observation can have practical implications toward development of a dengue vaccine.

Adolescent↗

Experimental infection of Culex annulirostris, Culex gelidus, and Aedes vigilax with a yellow fever/Japanese encephalitis virus vaccine chimera (ChimeriVax-JE).

Australian mosquitoes from which Japanese encephalitis virus (JEV) has been recovered (Culex annulirostris, Culex gelidus, and Aedes vigilax) were assessed for their ability to be infected with the ChimeriVax-JE vaccine, with yellow fever vaccine virus 17D (YF 17D) from which the backbone of ChimeriVax-JE vaccine is derived and with JEV-Nakayama. None of the mosquitoes became infected after being fed orally with 6.1 log(10) plaque-forming units (PFU)/mL of ChimeriVax-JE vaccine, which is greater than the peak viremia in vaccinees (mean peak viremia = 4.8 PFU/mL, range = 0-30 PFU/mL of 0.9 days mean duration, range = 0-11 days). Some members of all three species of mosquito became infected when fed on JEV-Nakayama, but only Ae. vigilax was infected when fed on YF 17D. The results suggest that none of these three species of mosquito are likely to set up secondary cycles of transmission of ChimeriVax-JE in Australia after feeding on a viremic vaccinee.

Aedes↗

Growth characteristics of ChimeriVax-Den vaccine viruses in Aedes aegypti and Aedes albopictus from Thailand.

Four chimeric yellow fever (YF) 17D-dengue (DEN) candidate vaccine viruses (ChimeriVax-DEN; Acambis, Cambridge, MA) were characterized in Aedes aegypti and Ae. albopictus mosquitoes collected from Thailand. The four vaccine viruses contained the relevant prM and E genes of wild-type dengue viruses (DENV; serotypes 1-4) substituted for the equivalent genes in the YF vaccine virus (17D) backbone. Each chimera conferred protection against the homologous DENV serotype; a tetravalent mix of all four chimeras stimulates an immune response against all serotypes. Field-collected mosquitoes from Thailand were fed on blood containing each of the viruses under study and held 21 days after infection. Infection and dissemination rates were based on antigen detection in the body or head tissues, respectively. All four wild-type DENV serotypes infected and disseminated, but the candidate vaccine viruses were highly attenuated in mosquitoes with respect to infection and especially with respect to dissemination. Considering the low level viremias anticipated in humans vaccinated with these viruses, it is predicted that the risks of infection and transmission by mosquitoes in nature is minimal.

Aedes↗

Flow-cytometric detection of vaccinia-induced memory effector CD4(+), CD8(+), and gamma delta TCR(+) T cells capable of antigen-specific expansion and effector functions.

We developed a carboxyfluorescein succinimidyl ester (CFSE)-based flow-cytometric assay that can detect different subsets of vaccinia-specific T cells capable of both antigen-specific expansion and protective effector functions. Proliferation and effector functions were detected by CFSE dilution and intracellular staining, respectively. Absolute numbers of CD4(+)/CFSE(lo)/interferon (IFN)- gamma (+), CD8(+)/CFSE(lo)/IFN- gamma (+), CD8(+)/CFSE(lo)/granzyme A(+), and CD8(+)/CFSE(lo)/CD107a(+) T cells present after in vitro stimulation with live vaccinia were significantly higher in immunized individuals (P<.05). These CD4(+) and CD8(+) T cell increases were >2 log higher than increases detectable by standard lymphoproliferation and cytotoxicity assays. Vaccinia-specific CD8(+)/CFSE(lo)/IFN- gamma (+) and granzyme A(+) T cell responses were significantly correlated with the results of standard (51)Cr-release cytolytic assays (P<.05). Furthermore, vaccinia induced antigen-specific memory gamma delta T cells. We demonstrate that vaccinia induces robust memory effector CD4(+), CD8(+), and gamma delta T cells, all of which are relevant for protection against smallpox. CFSE-based flow-cytometric assays will be useful in evaluating cell-mediated immune responses induced by new smallpox vaccines.

CD4-Positive T-Lymphocytes↗

Yellow fever 17D vaccine safety and immunogenicity in the elderly.

The incidence of serious and severe multisystem adverse events (AEs) following yellow fever (YF) 17D vaccine is higher in persons of advanced age. One hypothesis for the occurrence of these AEs in the elderly is immunological senescence and a reduced ability to clear the vaccine virus infection. We determined age-specific rates of serious and nonserious AEs in two large clinical trials of two YF 17D vaccines from different manufacturers. In addition, we analyzed AEs reported in a large general practice data base in the United Kingdom. Neutralizing antibody responses were compared in young and elderly subjects. In the clinical trials, involving a total of 4,532 subjects, there were no neurological and viscerotropic AEs; interestingly, the incidence of common injection site and systemic AEs was significantly lower in elderly than in younger subjects. The neutralizing antibody categorical and quantitative responses were equivalent across younger and elderly subjects. In contrast, the larger retrospective analysis of 43,555 persons receiving YF 17D in the UK general practice database revealed a higher incidence of significant neurologic and multisystem AEs with advancing age. The age-specific reporting rate ratio (RRR) was approximately twice that in the 25-44 year-old reference group for subjects in the 45-64 year age group (RRR 1.82; 95% CI 0.88,3.77) and 3-fold higher for the 65-74 year-old age group (RRR 2.82; 95% CI 0.81, 9.81). These results are consistent with previous reports on YF vaccine safety in the US (Martin M, et al. Emerg Infect Dis 2001;6:945-51; Khromova et al., Vaccine 2005;23:3256-63). In elderly persons, YF 17D vaccine is associated with a higher frequency of significant AEs in the elderly but a lower incidence of common nonserious side-effects. The neutralizing antibody response, which is the mediator of protective immunity to YF, is not diminished in healthy, elderly persons.

Adaptation, Physiological↗

A novel, cell culture-derived smallpox vaccine in vaccinia-naive adults.

Despite the eradication of smallpox as a naturally occurring disease, concern persists over its potential use as a bioterrorist agent. The development of a new-generation smallpox vaccine represents an important contribution to a cogent biodefense strategy. We conducted a phase 2 randomized, double-blind, controlled trial at four sites in the United States to determine whether a clonal smallpox vaccine manufactured in cell culture, ACAM2000, is equivalent to the standard calf-lymph vaccine, Dryvax, in terms of cutaneous response rate, antibody responses and safety. Subjects received either Dryvax or one of four dose levels of ACAM2000 administered percutaneously using a bifurcated needle. All subjects in the highest ACAM2000 dose group and the Dryvax group experienced a successful vaccination. Dilution doses of ACAM2000 were associated with success rates below the 90% threshold established for efficacy. There were no differences in the proportion of subjects who developed neutralizing antibody: 94% in the highest ACAM2000 dose group (95% CI, 84-99) and 96% in the Dryvax group (95% CI, 86-100). No significant differences were seen between the effective ACAM2000 and Dryvax groups regarding the occurrence of adverse events. One subject who received ACAM2000 developed myopericarditis. In healthy, primary vaccines ACAM2000 has a similar vaccination success rate, antibody response, and safety profile to Dryvax.

Adolescent↗

Cutaneous delivery of a live, attenuated chimeric flavivirus vaccine against Japanese encephalitis (ChimeriVax)-JE) in non-human primates.

Flaviviral diseases such as yellow fever, Japanese encephalitis (JE) and dengue hemorrhagic fever cause enormous morbidity and mortality worldwide. There is an urgent need for alternative technologies for mass vaccination against these and other diseases, particularly in the developing world. Here, we administered a live attenuated, chimeric JE vaccine (ChimeriVax)-JE) to nonhuman primates by skin microabrasion and intradermal delivery using microneedles. Both cutaneous delivery methods induced mild viremia similar in magnitude to that observed following subcutaneous (SC) injection. The duration of viremia induced by cutaneous delivery (5-7 days), however, was substantially longer than via SC (0-3 days). In addition, mean neutralizing antibody titers in cutaneous delivery groups were up to 7-fold greater than via SC injection. There were no safety issues identified and both cutaneous delivery methods appeared to be well tolerated. Thus, cutaneous delivery may represent a minimally-invasive alternative approach for flavivirus vaccines that more closely resembles the natural route of viral infection.

Administration, Cutaneous↗

Exercise-induced serum enzyme elevations confounding the evaluation of investigational drug toxicity. Report of two cases in a vaccine trial.

Two subjects developed marked elevations in creatine kinase and other serum enzymes associated with mild myalgia during a randomized, double-blind, controlled Phase 1 clinical trial of an investigational live, attenuated vaccine against West Nile virus (ChimeriVax-WN02). One subject had received ChimeriVax-WN02 while the other subject was enrolled in an active control group and received licensed yellow fever 17D vaccine (YF-VAX). Subsequently, the clinical trial was interrupted, and an investigation was begun to evaluate the enzyme abnormalities. As daily serum samples were collected for determination of quantitative viremia, it was possible to define the enzyme elevations with precision and to relate these elevations to physical activity of the subjects, symptoms, and virological and serological measurements. Evaluation of both subjects clearly showed that skeletal muscle injury, and not cardiac or hepatic dysfunction, was responsible for the biochemical abnormalities. This investigation also implicated strenuous exercise as the cause of the apparent muscle injury rather than the study vaccines. As a result of this experience, subjects engaged in future early-stage trials of these live, attenuated viral vaccines will be advised not to engage in contact sports or new or enhanced exercise regimens for which they are not trained or conditioned. The inclusion of placebo control arm (in lieu of or addition to an active vaccine control) will also be useful in differentiating causally related serum enzyme elevations.

Adult↗

Safety testing for neurovirulence of novel live, attenuated flavivirus vaccines: infant mice provide an accurate surrogate for the test in monkeys.

Current requirements for control of live viral vaccines, including yellow fever 17D, produced from potentially neurotropic wild-type viruses include tests for neurovirulence in nonhuman primates. We have used yellow fever 17D virus as a live vector for novel flavivirus vaccines (designated ChimeriVax) against dengue, Japanese encephalitis (JE), and West Nile (WN) viruses. For control of these vaccines, it would be preferable to substitute a test in mice for the test in a higher species (monkeys). In this study, we compare the neurovirulence of ChimeriVax vaccine candidates in suckling mice inoculated by the intracerebral (IC) route with graded doses of the test article or yellow fever 17D vaccine as a reference control. Mortality ratio and survival distribution are the outcome measures. The monkey safety test is performed as described for control of yellow fever vaccines. In both mice and monkeys, all chimeric vaccines were significantly less neurovirulent than yellow fever 17D vaccine. The test in suckling mice discriminated between strains of two different vaccines (ChimeriVax-JE and ChimeriVax-DEN1) differing by a single amino acid change, and was more sensitive for detecting virulence differences than the test in monkeys. The results indicate that the suckling mouse test is simple to perform, highly sensitive and, with appropriate validation, could complement or possibly even replace the neurovirulence component of the monkey safety test. The test in infant mice is particularly useful as a means of demonstrating biological consistency across seed virus and vaccine lots.

Animal Use Alternatives↗

Clostridium difficile toxoid vaccine in recurrent C. difficile-associated diarrhea.

BACKGROUND & AIMS: Recurrent C difficile -associated diarrhea (CDAD) is associated with a lack of protective immunity to C difficile toxins. A parenteral C difficile vaccine containing toxoid A and toxoid B was reported previously to be safe and immunogenic in healthy volunteers. Our aim was to examine whether the vaccine is also well tolerated and immunogenic in patients with recurrent CDAD. METHODS: Subjects received 4, 50-microg intramuscular inoculations of the C difficile vaccine over an 8-week period. Serum antitoxin antibodies were measured by ELISA, and toxin neutralizing activity was evaluated using the tissue culture cytotoxin assay. RESULTS: Three patients with multiple episodes of recurrent CDAD were vaccinated. Two of the 3 showed an increase in serum IgG antitoxin A antibodies (3-fold and 4-fold increases, respectively) and in serum IgG antitoxin B antibodies (52-fold and 20-fold, respectively). Both also developed cytotoxin neutralizing activity against toxin A and toxin B. Prior to vaccination, the subjects had required nearly continuous treatment with oral vancomycin for 7, 9, and 22 months, respectively, to treat recurrent episodes of CDAD. After vaccination, all 3 subjects discontinued treatment with oral vancomycin without any further recurrence. CONCLUSIONS: A C difficile toxoid vaccine induced immune responses to toxins A and B in patients with CDAD and was associated with resolution of recurrent diarrhea. The results of this study support the feasibility of active vaccination against C difficile and its toxins in high-risk individuals but must be validated in larger, randomized, controlled trials.

Adult↗

New developments in flavivirus vaccines with special attention to yellow fever.

PURPOSE OF REVIEW: Here we review recent epidemiological trends in flavivirus diseases, findings related to existing vaccines, and new directions in flavivirus vaccine research. We emphasize the need for stepped-up efforts to stop further spread and intensification of these infections worldwide. RECENT FINDINGS: Although the incidence and geographic distribution of flavivirus diseases have increased in recent years, human vaccines are available only for yellow fever, Japanese encephalitis, tick-borne encephalitis and Kyasanur forest disease. Factors contributing to resurgence include insufficient supplies of available vaccines, incomplete vaccination coverage and relaxation in vector control. Research has been underway for 60 years to develop effective vaccines against dengue, and recent progress is encouraging. The development of vaccines against West Nile, virus recently introduced to North America, has been initiated. In addition, there is considerable interest in improving existing vaccines with respect to increasing safety (e.g. eliminating the newly recognized syndrome of yellow fever vaccine-associated viscerotropic adverse disease), and to reducing the cost and number of doses required for effective immunization. SUMMARY: Traditional approaches to flavivirus vaccines are still employed, while recent advancements in biotechnology produced new approaches to vaccine design, such as recombinant live virus, subunit and DNA vaccines. Live chimeric vaccines against dengue, Japanese encephalitis and West Nile based on yellow fever 17D virus (ChimeriVax) are in phase I/II trials, with encouraging results. Other chimeric dengue, tick-borne encephalitis and West Nile virus candidates were developed based on attenuated dengue backbones. To further reduce the impact of flavivirus diseases, vaccination policies and vector control programs in affected countries require revision.

Flavivirus↗

Yellow fever vaccine.

Yellow fever, a mosquito-borne viral hemorrhagic fever, is one of the most lethal diseases of humankind. The etiologic agent is the prototype member of the genus Flavivirus, family Flaviviridae, a group of small, enveloped, positive-sense, single-strand RNA viruses. Approximately one in seven people who become infected develop a rapidly progressive illness, with hepatitis, renal failure, hemorrhage and cardiovascular shock, with a case fatality rate of 20-50%. Yellow fever occurs in sub-Saharan Africa and tropical South America, where it remains a continuing public health problem of varying magnitude, depending on the level of vaccination coverage in the human population and cyclical, ecologic and climatic factors that influence virus transmission.

Animals↗