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Immune monitoring of T-cell responses in cancer vaccine development.

Monitoring cellular immune responses is one prerequisite for rational development of cancer vaccines. The primary objective of immune monitoring is to determine the efficacy of a vaccine to induce or augment a specific T-cell response. Further questions relate to the prevalence and functional relevance of spontaneous tumor-directed immune responses, the functional characteristics of T-cell responses, and, finally and most importantly, the relationship between immune monitoring assay results and clinical end points. The issue of T-cell monitoring has become more complex as different types and generations of assays have been adopted during the past decade and both standardization and validation of assays have often been insufficient. Because the development of assays parallel the clinical development of cancer vaccines, technical advances have been achieved simultaneously with broadening understanding of cancer immunity. Suitable animal models for immune monitoring are, however, lacking, because preclinical vaccine development in rodents does not allow serial immune monitoring of the peripheral blood, as is commonly used in patients. The current situation is characterized by a lack of universal standards for T-cell assessment, uncertainty about the association between immune monitoring assay results and clinical antitumor end points, and lack of knowledge regarding the contribution of different aspects of T-cell function to clinical efficacy. It is acknowledged that T-cell monitoring will have to be validated in large trials with clinically effective vaccines, but this necessity should not discourage the current application of novel assays within clinical trials of all stages.

Animals↗

Post-genomic vaccine development.

For over a century, vaccines were developed according to Pasteur's principles of isolating, inactivating and injecting the causative agent of an infectious disease. The availability of a complete microbial genome sequence in 1995 marked the beginning of a genomic era that has allowed scientists to change the paradigm and approach vaccine development starting from genomic information, a process named reverse vaccinology. This can be considered as one of the most powerful examples of how genomic information can be used to develop therapeutic interventions, which were difficult or impossible to tackle with conventional approaches. As the genomic era progressed, it became apparent that multi-strain genome analysis is fundamental to the design of universal vaccines. In the post-genomic era, the next challenge of the vaccine biologist will be the merging of the vaccinology with structural biology.

Genome↗

Recombinant adeno-associated virus expressing the receptor-binding domain of severe acute respiratory syndrome coronavirus S protein elicits neutralizing antibodies: Implication for developing SARS vaccines.

Development of an effective vaccine for severe acute respiratory syndrome (SARS) remains to be a priority to prevent possible re-emergence of SARS coronavirus (SARS-CoV). We previously demonstrated that the receptor-binding domain (RBD) of SARS-CoV S protein is a major target of neutralizing antibodies. This suggests that the RBD may serve as an ideal vaccine candidate. Recombinant adeno-associated virus (rAAV) has been proven to be an effective system for gene delivery and vaccine development. In this study, a novel vaccine against SARS-CoV was developed based on the rAAV delivery system. The gene encoding RBD was cloned into a pAAV-IRES-hrGFP plasmid. The immunogenicity induced by the resulting recombinant RBD-rAAV was evaluated in BALB/c mice. The results demonstrated that (1) a single dose of RBD-rAAV vaccination could induce sufficient neutralizing antibody against SARS-CoV infection; (2) two more repeated doses of the vaccination boosted the neutralizing antibody to about 5 times of the level achieved by a single dose of the immunization and (3) the level of the antibody continued to increase for the entire duration of the experiment of 5.5 months. These results suggested that RBD-rAAV is a promising SARS candidate vaccine.

Animals↗

Second annual meeting of the National Cooperative Vaccine Development Groups for AIDS. 15-18 October 1989; Fort Lauderdale, Florida.

In this short review of the three-day meeting on AIDS vaccine development where numerous scientific advances were described for the first time, it is nearly impossible to capture all of the highlights. Thus, areas such as advances in vaccine adjuvant development, standardized challenge pools for vaccine testing, novel approaches with retroviral vectors for construction of target cells for cellular immune assays, summaries from all of the international AIDS vaccine development programmes, and other topics which were covered at the meeting are not discussed above. In closing the meeting, W. Koff (NIAID) noted that 1989 represented the turning point for AIDS vaccine development, that pessimism had given way to cautious optimism, and that the fundamental focus had changed from 'if a vaccine could be developed' to 'when'. While several challenges still remain in the path toward development of a safe and effective vaccine, the meeting served both to focus the direction of the research agenda for the next year and to build new and stronger collaborations among the international network of scientists dedicated to the common goal of developing a safe and effective AIDS vaccine.

Acquired Immunodeficiency Syndrome↗

Opportunities and constraints in schistosomiasis vaccine development: infection characteristics and industry realities.

The notes provided in this article relate to two components of the development of vaccines against schistosomiasis: (1) The characteristics of schistosome infections (eg. features of the schistosome life cycle), and the parasite itself, that have implications for vaccination strategies; (2) The characteristics of the biopharmaceutical industry that have implications for product development. As will be seen, these two topic areas are not vastly disparate.

Animals↗

Tuberculosis vaccine development: research, regulatory and clinical strategies.

In the past decade, while the global tuberculosis (TB) epidemic has continued to devastate mankind, considerable progress has nevertheless been made in the development of new and improved vaccines for this ancient disease. Recombinant bacillus Calmette-Guerin strains, DNA-based vaccines, live attenuated Mycobacterium tuberculosis vaccines and subunit vaccines formulated with novel adjuvants have shown promise in preclinical animal challenge models. Three of these vaccines are being evaluated at present in human clinical studies, and several other vaccine preparations are being targeted for clinical trials in the near future. Although the preclinical characterisation and testing of new TB vaccines has clearly led to exciting new findings, complex regulatory and clinical trial design issues remain as a challenge to TB vaccine development. This report reviews some of the exciting advances in TB research that have led to the development of new TB vaccines, and addresses the unique regulatory and clinical issues associated with the testing of novel anti-TB preparations in human populations.

Adult↗

Newer directions in vaccine development and utilization.

The gradually evolving technology for vaccine development from Jenner to recombinant genetics has provided both solid accomplishment and possible bases for prophylactic control of essentially all the infectious diseases of humans. The present review gives a prospective view of future vaccines and the new biotechnology as illustrated mainly in the examples of vaccines for control of hepatitis and of herpesvirus infections. Although vaccines offer great benefit for human health, their use is restricted in developing countries by lack of funds and in developed countries such as the United States by failure of application, mainly in adults. Practical matters relating to vaccine use must be resolved if there is to be justification for vaccine development.

Adjuvants, Immunologic↗

The role of "go no-go" decisions in TB vaccine development.

"Go no-go" decisions play a critical role in the product development plan of any TB vaccine at several points. Go no-go decisions are designed to serve the fundamental maxim in vaccine development that killing a bad vaccine project as early as possible is the hallmark of a successful overall program; in development, unlike in basic research, costs and skilled manpower requirements rise exponentially as the program proceeds. The opportunity costs in resources, manpower and equipment utilized on bad vaccine projects are unavailable to other vaccine programs. The go no-go decision is a fundamental piece of the process that balances risk, time and resources. An example of a go no-go decision development program is presented.

Clinical Trials as Topic↗

Paradigm shifts in vaccine development: lessons learned about antigenicity, pathogenicity and virulence of Brucellae.

As part of a program to support the USDA Animal Plant Health Inspection Service Bovine Brucellosis Eradication Program, the Brucellosis Research Unit of the National Animal Disease Center (NADC) sought to develop a bovine brucellosis vaccine that would allow vaccinated animals to be distinguished from virulent field infected animals. In order to meet that goal, several avenues of research were undertaken to construct and test candidate vaccines, including Brucella abortus RB51. In early vaccine development studies, a subunit preparation obtained by extracting B. abortus with salts was studied as a candidate subunit vaccine. Later, molecular biological techniques were used both to clone genes encoding products found in the salt extract (BCSP31 and Cu-Zn SOD) and genes encoding proteins of B. abortus that were antigenic (HtrA) or possibly essential (two-component systems) for full virulence of B. abortus. In vitro systems using mammalian cells lines such as HeLa and macrophage-related were used along with the mouse model and host animal models. Results obtained at NADC and in other Brucellosis research laboratories, using survival in mammalian cell lines and the mouse model to access pathogenicity and virulence of genetically engineered strains, do not necessarily identify loci that are essential for full virulence or pathogenicity in the natural host, the bovine. Studies at NADC and other brucellosis laboratories showed that antigenicity was not a predictor of the effectiveness of a protein as a subunit vaccine.

Animals↗

Malaria vaccine development: progress and challenges.

A safe and effective malaria vaccine would contribute greatly to the control and prevention of the disease. Although a review of global activity in malaria vaccine development does reflect significant activity, progress has remained slow. This article discusses the current vaccine candidates, with emphasis on those in the clinic, and explains the numerous challenges to making and evaluating malaria vaccines, which have resulted in only a few approaches being adopted and repeatedly evaluated. Against a parasite with more than 5200 genes, the lack of definitive knowledge regarding the nature of protective immunity and absence of reliable surrogates of protection are among the key challenges to a rational evaluation and prioritization of candidate vaccines. Pursuing the current R&D strategies may not result in the availability of a vaccine with characteristics suitable to impact significantly on disease morbidity in developing countries. Therefore, it is critical that the main challenges to malaria vaccine development be unambiguously identified and collectively addressed.

Humans↗

Inhibition of murine sperm-oolemma binding by antibodies to an oocyte membrane (OM) antigen: implication in contraceptive vaccine development.

PROBLEM: The present study was conducted to investigate the oocyte membrane protein(s) that is involved in sperm binding in the mouse, and whether or not it can be used for the development of a contraceptive vaccine. METHOD OF STUDY: The zona-free oocytes were treated with Triton X-100 and the extract was analyzed for homogeneity in the sodium dodecylsulfate (SDS)-polyacrylamide gel electrophoresis (PAGE) after staining with silver nitrate. The appropriate band of 50+/-4 kD, designated as OM antigen, was excised from the gel and used for the immunization. The female rabbits were immunized with the excised band per se and the female mice were immunized with the OM antigen after conjugation to keyhole limpet hemocyanin (KLH). The affinity-purified antibodies were analyzed in the enzyme-linked immunosorbent assay (ELISA), immunoprecipitation procedure, western blot procedure, indirect immunofluorescence technique (IFT), and spermoolemma binding assay. Actively-immunized mice were analyzed for in vivo fertility. RESULTS: The Triton X-100 extract of zona-free oocytes predominantly showed a single protein band of 50+/-4 kD in the SDS-PAGE. Active immunization of female rabbits and of female mice with OM antigen raised high antibody titers (ELISA titer > 1:4096) that specifically recognized the OM antigen in the immunoprecipitation and Western blot procedures, and reacted with the oocyte in the IFT. These antibodies demonstrated a significant (P < 0.05) up to a complete block of sperm-oolemma binding in the in vitro binding assay. Binding of both the acrosome-intact and acrosome-reacted sperm was inhibited. Mice actively immunized with OM antigen also showed a significant reduction in vivo fertility as seen by the 9-day implants in uteri. Preliminary data indicate that the antibodies to OM antigen were tissue-specific and did not react with the specific band in any tissue extract in the western blot procedure. CONCLUSIONS: These results indicate that the OM antigen is involved in spermoolemma binding and constitute an attractive molecule that needs further investigation for examining its utility in the contraceptive vaccine development.

Animals↗

Computer analysis of antigenic domains and RGD-like sequences (RGWG) in the E glycoprotein of flaviviruses: an approach to vaccine development.

Antigenic domains and RGD-like sequences in the E glycoprotein of the flaviviruses Japanese encephalitis virus, yellow fever virus, West Nile virus, dengue type 4 virus, and tick-borne encephalitis virus were analyzed by computer programs that provide information on the physical properties of the polypeptides. The use of computer programs for the development of vaccines based on the synthesis of antigenic peptides is discussed. Synthetic viral peptides are proposed to be used for topical application so as to interfere with the virus-cell interaction. Viral peptides with antigenic epitopes to protect against dengue virus infection without enhancing pathogenesis may also be developed on the basis of the computer analysis.

Amino Acid Sequence↗

Global burden of Shigella infections: implications for vaccine development and implementation of control strategies.

Few studies provide data on the global morbidity and mortality caused by infection with Shigella spp.; such estimates are needed, however, to plan strategies of prevention and treatment. Here we report the results of a review of the literature published between 1966 and 1997 on Shigella infection. The data obtained permit calculation of the number of cases of Shigella infection and the associated mortality occurring worldwide each year, by age, and (as a proxy for disease severity) by clinical category, i.e. mild cases remaining at home, moderate cases requiring outpatient care, and severe cases demanding hospitalization. A sensitivity analysis was performed to estimate the high and low range of morbid and fatal cases in each category. Finally, the frequency distribution of Shigella infection, by serogroup and serotype and by region of the world, was determined. The annual number of Shigella episodes throughout the world was estimated to be 164.7 million, of which 163.2 million were in developing countries (with 1.1 million deaths) and 1.5 million in industrialized countries. A total of 69% of all episodes and 61% of all deaths attributable to shigellosis involved children under 5 years of age. The median percentages of isolates of S. flexneri, S. sonnei, S. boydii, and S. dysenteriae were, respectively, 60%, 15%, 6%, and 6% (30% of S. dysenteriae cases were type 1) in developing countries; and 16%, 77%, 2%, and 1% in industrialized countries. In developing countries, the predominant serotype of S. flexneri is 2a, followed by 1b, 3a, 4a, and 6. In industrialized countries, most isolates are S. flexneri 2a or other unspecified type 2 strains. Shigellosis, which continues to have an important global impact, cannot be adequately controlled with the existing prevention and treatment measures. Innovative strategies, including development of vaccines against the most common serotypes, could provide substantial benefits.

Adolescent↗

Ramifications of HLA class I polymorphism and population genetics for vaccine development.

HLA polymorphism can complicate the design and development of vaccines, especially those that contain a selected number of epitopes and are directed at pathogens prevalent worldwide. Because of HLA class I restricted antigen recognition and ethnic variation in HLA distribution, such vaccines may not be uniformly effective across populations. We, therefore, considered whether it is possible to assemble a panel of HLA-A and/or HLA-B alleles that would allow the formulation of a single vaccine for a set of Caucasian, Black, or Asian populations. In applying an algorithm to predict levels of favorable response, we identified predominant alleles in 15 representative populations. Approximately 80% of the individuals in one African Black population and five Asian populations were positive for at least one of three HLA-A alleles. Eighty percent coverage was also theoretically possible in five Caucasian populations with only five HLA-A alleles. Four of five Black populations analyzed also required five alleles, but the allelic combinations differed. Our findings suggest that HLA-A alleles may be preferred targets because of the increased heterogeneity at HLA-B, although addition of a single HLA-B allele to a set of HLA-A alleles improved coverage. This approach provides for the identification of combinations of alleles that represent a desired percentage of a population and that could be targeted in designing vaccines. For vaccines with known HLA-restricted epitopes, it allows a prediction of theoretical levels of "responder" and "non-responder" status. Finally, these results might be used in the analysis of protein sequences to identify potential CD8+ T-cell epitopes in populations of interest. Biologic variables that may have further relevance are discussed.

Algorithms↗

Vector-parasite interactions for vaccine development.

The ingestion of blood by arthropod vectors of disease can be exploited in order to either kill the vector or render it incapable of disease transmission. This paper examines some approaches to identifying target molecules of vector origin, against which immunisation could result in blocking parasite transmission. Manipulation of the blood meal of vectors through such techniques as membrane feeding can help identify true target sites for attack, but just as useful, can identify structures or molecules that play no significant role in parasite development. Examples, mostly derived from the interactions between the malaria parasite, Plasmodium, and the mosquito midgut, illustrate the real need to understand the multiple aspects of vector-parasite interactions before they can be exploited for control purposes. The approaches outlined are however applicable directly to any vector-borne disease. Careful examination of the parasite life cycle in the vector, and comparisons with other parasites, vectors, non-vector insects and analogous vertebrate systems (the latter being often relatively well advanced) can result in the identification of specific and definable interactions which can then be further developed for vaccine purposes.

Animals↗

Vaccine development for HIV infection.

The immune response that develops subsequent to infection with human immunodeficiency virus (HIV) consists of both humoral and cellular elements that, when tested in vitro, can inhibit virus infection and syncytium formation and lyse virus-infected target cells. The antiviral immune response may thus represent one of the primary host-defense mechanisms responsible for the protracted asymptomatic phase of the disease that, in most patients, can last several years. An important question to be answered in the development of vaccine strategies against HIV is whether this response might be an effective barrier to de novo HIV infection.

DNA, Viral↗

Studies of hepatitis C virus in chimpanzees and their importance for vaccine development.

Persistent infection with hepatitis C virus (HCV) is an important cause of chronic liver disease worldwide. Therefore, the development of vaccines to prevent HCV infection, or at least to prevent progression to chronicity, is a major goal. Potential HCV vaccine candidates include recombinant proteins, recombinant viruses, DNA constructs, synthetic peptides and virus-like particles. Various vaccine candidates have been shown to generate humoral and cellular immune responses in animals, primarily in mice. However, the efficacy of most vaccine candidates in protecting against HCV has not been tested because the chimpanzee, the only animal other than humans that is susceptible to HCV, is not readily available, requires special facilities, and is very expensive. The course of infection in chimpanzees is similar in its diversity to that in humans and detailed studies in this model are beginning to define the immune responses that can terminate HCV infection. Of relevance for vaccine evaluation was the titration in chimpanzees of different HCV variants to provide well-characterized challenge pools. In addition, monoclonal virus pools generated from chimpanzees infected with cloned viruses make it possible now to examine immunity to HCV without the confounding factor of antigenic diversity of the challenge virus (quasispecies). The vaccine trials performed in chimpanzees to date all have tested the efficacy of immunizations with various forms of the envelope proteins of HCV.

Animals↗