Development of a Chimeric Syphilis Vaccine Candidate to Combat Local, Disseminated and Congenital Syphilis Infection

NIH Pandemic-Era Grants

Pandemic Era Grants

2024

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Principal Investigator: CAROLINE E CAMERON
Organization: UNIVERSITY OF VICTORIA
Fiscal Year: 2024
Award: $1,622,474
Funding agency: National Institute of Allergy and Infectious Diseases

PROJECT SUMMARY
 In several high-income nations, including the United States, infectious syphilis has been resurgent for
over two decades now, while syphilis is still endemic in low- and middle-income countries. Syphilis is therefore
still a public global health concern, particularly because it can lead to neurological sequelae such as dementia
and stroke-like syndromes, as well as cardiovascular manifestations potentially leading to death. Furthermore,
about half a million pregnancies are adversely affected by congenital transmission of the pathogen every year.
The partial success of recent syphilis control campaigns promoted by the CDC and WHO clearly highlights the
necessity of devising novel ways to control this serious infection.
 The availability of an effective syphilis vaccine could make a significant difference in the global effort to
control the spread of this serious infection. Over the last decade, our research programs have had the focus of
identifying vaccine candidates among the surface-exposed antigens of the syphilis agent, Treponema pallidum
subsp. pallidum (T. pallidum). These studies have led to the discovery that the T. pallidum repeat (Tpr) protein
family and the Tp0751 vascular adhesin are critical proteins in the processes of chancre development/immune
evasion and systemic dissemination, respectively. When tested in immunization/challenge experiments in the
rabbit model of syphilis, these antigens were shown to provide significant protection against infection.
Furthermore, within these antigens, we have been able to pinpoint the epitopes necessary to generate a
protective host response.
 To reduce the complexity and production costs of our vaccine candidates, we have developed a
chimeric protein platform where the non-functional loops of the Tp0751 protein are exchanged with conserved
epitopes from the Tpr proteins. This approach provides a single construct that retains the critical Tp0751
epitopes while allowing presentation of protective epitopes from other antigens in a stable and soluble scaffold.
This proposal encompasses the next phase of this research endeavor consisting of Investigational New Drug
(IND)-enabling pre-clinical studies. To this end, we will create future generations of the chimera vaccine
candidate to assess the level of induced immunoreactivity and protection, after which the vaccine delivery
formulation will be optimized with the lead candidate by performing in vivo immunization/challenge
experiments, toxicity and stability tests, and studies investigating compatibility with scale-up production.
 Collectively these studies are anticipated to provide us with an efficacious syphilis vaccine candidate
that is ready for clinical studies.

Terms: <Adjuvant><Affect><Amentia><Animal Model><Animal Models and Related Studies><Antigen Variation><Antigenic Determinants><Antigenic Variability><Antigenic Variation><Antigens><Assay><Bacterial Adhesins><Binding Determinants><Bioassay><Biological Assay><Blood Serum><Blood Vessels><Cardiovascular Manifestation><Cessation of life><Chancre><Chimera><Chimera Protein><Chimera organism><Chimeric Proteins><Clinical Research><Clinical Study><Collaborations><Congenital Syphilis><Cyclic GMP><Death><Dementia><Developing fetus><Development><Distant><Domestic Rabbit><Economic Income><Economical Income><Engineering><Epitopes><Exhibits><Fetal Development><Formulation><Funding><Fusion Protein><Future Generations><Generations><Gestation><Goals><Guanosine Cyclic Monophosphate><Hand><Immune><Immune Evasion><Immune response><Immunes><Immunization><Immunize><Immunological response><Income><Infection><Investigation><Investigational Drugs><Investigational New Drugs><LMIC><Lead><Membrane><Membrane Protein Gene><Membrane Proteins><Membrane-Associated Proteins><Modeling><Molecular><NIH><National Institutes of Health><Neurologic><Neurological><Organ><Oryctolagus cuniculus><Pathogenesis><Pathway interactions><Pb element><Persons><Phase><Position><Positioning Attribute><Pregnancy><Process><Production><Protein Family><Proteins><RNA vaccine><RNA-based vaccine><Rabbits><Rabbits Mammals><Research><Running><Sequence Homology><Serum><Subunit Vaccines><Surface><Surface Proteins><Syphilis><Syphilitic chancre><Testing><Toxic effect><Toxicities><Toxicity Testing><Toxicity Tests><Transmission><Treponema pallidum subsp. pallidum><Treponema pallidum subspecies pallidum><United States><United States National Institutes of Health><Universities><Vaccines><Vesicle><Washington><adhesin><bacteria pathogen><bacterial pathogen><beta barrel><cGMP><chimeras><clinical trial readiness><combat><commercial scale manufacturing><congenital infection><cost><deliver vaccines><developmental><efficacy testing><experience><experiment><experimental research><experimental study><experiments><global health><great pox><hands><heavy metal Pb><heavy metal lead><host response><immune evasive><immune system response><immunogen><immunogenicity><immunoreactivity><immunoresponse><in vivo><incomes><industrial partnership><industry partner><industry partnership><lead candidate><low and middle-income countries><mRNA vaccine><mRNA-based vaccine><manufacture><manufacturing ramp-up><manufacturing scale-up><membrane structure><model of animal><novel><pathogen><pathogenic bacteria><pathway><pre-clinical study><preclinical study><prevent><preventing><programs><protective efficacy><safety assessment><scaffold><scaffolding><scale up><scale up batch><scale up production><stability testing><stroke-like challenge><stroke-like condition><stroke-like disorder><stroke-like outcome><stroke-like symptoms><stroke-like syndrome><success><syphilis vaccine><transmission process><upscale manufacturing><vaccine candidate><vaccine delivery><vascular>