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Biomedical subjects

Jan T Poolman

Publications and source records attributed to Jan T Poolman.

5 recordsLinked to original sources

Passive immunization with human anti-protein D antibodies induced by polysaccharide protein D conjugates protects chinchillas against otitis media after intranasal challenge with Haemophilus influenzae.

Passive transfer of a pediatric human serum pool generated against polysaccharide-protein D conjugate vaccines conferred approximately 34% protection against development of ascending NTHI-induced OM when used in a chinchilla viral-bacterial co-infection model. These data are in line with results obtained using a similar 11-valent-protein D conjugate vaccine in a pediatric clinical trial, wherein a vaccine efficacy of 35.6% was shown against acute OM episodes caused by NTHI. These observations strongly support the chinchilla passive transfer-superinfection model as one that could predict clinical trials outcomes for vaccines to prevent NTHI-induced OM.

Administration, Intranasal↗

Vaccine potential of the Neisseria meningitidis lactoferrin-binding proteins LbpA and LbpB.

The vaccine potential of the Neisseria meningitidis lactoferrin-binding proteins LbpA and LbpB was evaluated. Sequencing and sequence alignments suggested that LbpA is relatively well conserved with variability largely restricted to two surface-exposed loops in a proposed topology model. Consistently, antisera raised against synthetic peptides corresponding to exposed loops generally recognized the LbpA proteins of many different strains. Hence, LbpA was considered an attractive vaccine candidate. LbpB shows a higher degree of sequence variability. For immunisation studies, LbpA was overproduced in N. meningitidis and a histidine-tagged LbpB protein was produced in Escherichia coli. Outer membrane vesicles carrying overproduced LbpA and purified LbpB were used to immunise laboratory animals. The bactericidal activity and cross-reactivity of the antibodies was evaluated using meningococcal strains of various clonal lineages. In addition, LbpB-specific monoclonal antibodies were analysed by Western blots and whole-cell enzyme-linked immunosorbent assays. Our results show that both proteins are immunogenic and able to induce bactericidal antibodies, but that the cross-reactivity of these antibodies is limited.

Amino Acid Sequence↗

Pneumococcal vaccine development.

A 7-valent pneumococcal conjugate vaccine has demonstrated an impact on pneumococcal bacteremia in the immunized pediatric population, extending to nonimmunized adults via herd immunity. A considerable reduction of all-cause pediatric pneumonia has also been found. The impact on all-cause pediatric otitis is limited, but postlicensure data suggests stronger reductions. Higher valency conjugate vaccines are now under development (11V or more). Licensed 23-valent pneumococcal polysaccharide vaccines have been available since 1983 with a demonstrated impact on adult pneumococcal bacteremia. The burden of adult nonbacteremic pneumococcal pneumonia has remained high and efforts to develop improved adult pneumococcal vaccines have been initiated that include conjugates and pneumococcal proteins.

Adult↗

The genetic basis of the phase variation repertoire of lipopolysaccharide immunotypes in Neisseria meningitidis.

Neisseria meningitidis strains express a diverse range of lipopolysaccharide (LPS) structures that have been classified into 12 immunotypes. A feature of meningococcal LPS is the reversible, high-frequency switching of expression (phase variation) of terminal LPS structures. A number of studies are strongly suggestive of a key role for these terminal structures, and their phase-variable expression, in pathogenesis. In a previous study, a locus of three LPS biosynthetic genes, IgtABE, involved in the biosynthesis of one of these terminal structures, lacto-N-neotetraose, was described. The molecular mechanism of phase-variable expression of this structure is by high-frequency mutation in a homopolymeric tract of G residues in the IgtA gene. To investigate the genetic basis of the structural differences between the immunotypes, and the potential for strains to express alternative immunotypes, this locus was examined in all of the immunotype strains. Initially, the Igt locus of strain 126E, an L1 immunotype strain, was cloned and sequenced, revealing two active genes, IgtC and IgtE. The remnants of the IgtA and IgtB genes and an inactive IgtD gene were also present, indicating that the locus may have once contained five active genes, similar to a locus previously reported in Neisseria gonorrhoeae strain F62. Probes based on each of the Igt genes (ABCDE), and the recently reported IgtG gene, were used to determine the presence or absence of Igt genes within individual strains, allowing the prediction of the phase variation repertoire of these strains. Sequencing to determine the nature of homopolymeric tract regions within the Igt genes was carried out to establish the potential for LPS switching. In general, the set of strains examined could be sorted into two distinct groups: one group which phase-vary the alpha-chain extension via IgtA or IgtC but cannot make beta-chain; the second group phase-vary the beta-chain extension via IgtG but do not vary alpha-chain (lacto-N-neotetraose).

Bacterial Proteins↗