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Altcheh, J.

Publications and source records attributed to Altcheh, J..

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Lineage-specific tprK diversification and Treponema pallidum transmission dynamics in Buenos Aires, Argentina

BackgroundSyphilis rates are rising globally, with increases in congenital syphilis in South America particularly concerning. The characterization of contemporary South American Treponema pallidum (Tp) strains is crucial to syphilis vaccine development, yet few genomic epidemiology studies have focused on this region. Here, we performed whole genome sequencing (WGS) of Tp from Buenos Aires, Argentina, as well as deep sequencing of the hypervariable tprK locus, which is critical to Tp immune evasion. MethodsPeople with primary, secondary, or congenital syphilis were enrolled at two clinics in Buenos Aires between October 2018 and January 2023, including individuals associated with intra-household transmission. Hybrid capture WGS was performed and a core genome phylogeny generated. K-mer-based methods using full-length tprK PacBio long reads were used to uncover differences in diversity and detect Tp transmission. FindingsTp genomes were recovered from 70 individuals in Buenos Aires and primarily belonged to globally dominant SS14 sublineage-1 and Nichols sublineage-8, as did Tp from Brazil (n=8). Peruvian samples (n=3) all belonged to sublineage-1. Two individuals from Argentina had co-infections with Nichols- and SS14-lineage strains. Macrolide resistance via A2058G occurred in 27/70 (38.6%) samples. Across 56 samples, tprK allelic diversity was significantly increased in secondary syphilis, oral lesions, and SS14-lineage strains compared to primary syphilis, anogenital lesions, and Nichols-lineage strains, respectively. Increased diversity in SS14-lineage strains is driven by an enhanced repertoire of V7-specific donor sequences. tprK sequences from intra-household transmissions were more similar than unrelated samples with identical core genomes. InterpretationTp circulating in South America is closely related to dominant global sublineages. Increased tprK diversity in the SS14 lineage may influence Tps ability to escape host immunity. tprK profiling is a promising tool to elucidate syphilis transmission networks. This study underscores the utility of genomics to yield insights into Tp pathogenesis. Research in contextO_ST_ABSEvidence before this studyC_ST_ABSAlthough whole genome sequencing (WGS) and genomic epidemiology have contributed to an understanding of the global diversity of Treponema pallidum (Tp), very few strains from South America have been sequenced to date. On January 6th, 2026, we performed a PubMed search including terms "syphilis genomic epidemiology", "South America", "Treponema pallidum", and "Argentina". We excluded studies of ancient Tp samples found in South American archeological sites. A single Tp sample from Argentina was originally sequenced in 2016 and included in subsequent analyses of global diversity. Nine Peruvian samples were previously sequenced in a study of global diversity on six continents. Thirty-three samples from Cali, Colombia were predominantly SS14-lineage and genotypic macrolide resistance was found in half of strains. Additionally, studies of Tp in Buenos Aires using a multi-locus sequence typing approach have shown circulation of strains belonging to both Nichols and SS14 lineages, with an increasing rate of macrolide resistance over time. Five previous studies have examined tprK in clinical specimens and consistently shown increased tprK diversity in specimens associated with secondary syphilis compared to primary syphilis lesions. One study has shown that loss of tprK donor cassettes is associated with reduced tprK diversity, consistent with results from in vitro experiments. A single study has shown that tprK sequence content is more similar in samples with a suspected epidemiologic link, though no prior studies have looked at tprK diversity in the context of known syphilis transmission events. Added value of this studyThis study is the first to use WGS to comprehensively examine Tp transmission in a large South American city, yielding 96 samples from 70 individuals. We also add the first contemporary Tp genomes from Brazil. In contrast to findings from England, Australia, and other high-income countries, no Tp sublineages are associated with demographic groups or sexual networks in Buenos Aires. Two of seventy patients were co-infected with both Nichols- and SS14-lineage strains, showing the previously unappreciated frequency of conditions that permit inter-strain recombination-driven diversification of Tp. This study also reveals novel aspects of Tp pathogenesis, including lineage-specific differences in tprK diversity. We also develop methods for the analysis of tprK relatedness between samples and demonstrate that tprK sequences are more similar in samples from individuals within intra-household syphilis transmission chains compared to those from epidemiologically unrelated individuals. Implications of all the available evidenceTp strains circulating in Buenos Aires are genetically similar to those circulating worldwide and in Brazil and Peru but are noteworthy for the low (but rising) rate of macrolide resistance. Lineage-specific patterns of tprK antigenic variation could result in differences between Nichols- and SS14-lineage strains interactions with the host immune system. Finally, we show that tprK profiling holds promise to identify samples from within a syphilis transmission chain and could play an important role in public health.

microbiology↗

Conjugates of α-d-Galp-(1->3)-β-d-Galp for the serological diagnosis of Chagas disease.

BackgroundChagas disease (ChD), caused by the parasitic protozoan Trypanosoma cruzi, is a lifelong, neglected tropical disease with substantial medical and socioeconomic impact. Despite this situation, currently available diagnostic and therapeutic methods display serious limitations. A promising strategy to improve ChD serodiagnosis involves targeting parasite carbohydrate antigens, particularly the -galactosyl-rich mucins that coat the surface of bloodstream trypomastigotes (tGPI-mucins). Methods/Principle FindingsHere, we present a concise and efficient protocol for the chemical synthesis of a tGPI-mucin-derived glycotope, the disaccharide -O_SCPLOWDC_SCPLOW-Galp-(1[->]3)-{beta}-O_SCPLOWDC_SCPLOW-Galp, and its functional conjugation to different scaffolds using the squarate method. A neoglycoprotein made upon a bovine serum albumin (BSA) carrier decorated with [~]28 units of the disaccharide, termed BSA-Di, was interrogated with sera of chronic ChD patients and healthy individuals from Argentina using an in-house enzyme-linked immunosorbent assay (ELISA). BSA-Di exhibited excellent sensitivity and effectively discriminated between ChD-positive and negative sera with high accuracy (AUC = 0.905), though its specificity was partially affected by cross-reactivity of some non-ChD sera containing natural -Gal antibodies. Conjugation of -O_SCPLOWDC_SCPLOW-Galp-(1[->]3)-{beta}-O_SCPLOWDC_SCPLOW-Galp to T. cruzi antigenic peptides, instead of BSA, corroborated these findings and enabled the generation of bivalent ChD diagnostic reagents combining glycan- and peptide-based epitopes. Conclusions/SignificanceOverall, our results identify -O_SCPLOWDC_SCPLOW-Galp-(1[->]3)-{beta}-O_SCPLOWDC_SCPLOW-Galp as a robust and reliable biomarker of T. cruzi infection. The methodologies and tools described here, together with optimized derivatives, are expected to positively impact ChD serological applications. AUTHOR SUMMARYDespite the enormous burden imposed by Chagas disease, diagnostic and therapeutic methods still present serious deficiencies. Towards filling this gap, we herein developed a protocol for the chemical synthesis of -O_SCPLOWDC_SCPLOW-Galp-(1[->]3)-{beta}-O_SCPLOWDC_SCPLOW-Galp, a major glycotope present on the Trypanosoma cruzi surface coat. This disaccharide was conjugated with different molecular scaffolds and serologically evaluated using an in-house enzyme-linked immunosorbent assay (ELISA). Our results indicate that -O_SCPLOWDC_SCPLOW-Galp-(1[->]3)-{beta}-O_SCPLOWDC_SCPLOW-Galp provides an overall robust and reliable biomarker of T. cruzi infection, with excellent sensitivity and only minor concerns regarding its potential cross-reactivity with natural -Gal antibodies. These findings indicate that the tools developed here, as well as optimized versions derived from them, should have a positive impact on the diagnosis and clinical management of Chagas disease and on the identification and/or clinical validation of novel drug/vaccine candidates for the treatment of T. cruzi infections.

microbiology↗

A Trypanosoma cruzi Antigen and Epitope Atlas: deep characterization of antibody specificities in Chagas Disease patients across the Americas

During an infection, the immune system produces pathogen-specific antibodies. With time, these antibody repertoires become specific to the history of infections and represent a rich source of diagnostic markers. However, the specificities of these antibodies are mostly unknown. Here, using high-density peptide arrays we examined the specificities of human antibody repertoires of Chagas disease patients. Chagas disease is a neglected disease caused by Trypanosoma cruzi, a protozoan parasite that evades immune mediated elimination and mounts long-lasting chronic infections. We describe here the first proteome-wide search for antigens and epitopes and their seroprevalence at the individual level and across human populations. In a first discovery screening of 2.84 million short peptides spanning two T. cruzi proteomes we found 3,868 distinct antigenic protein regions. Further analysis of repertoires from 71 individuals provided information on their seroprevalence and showed a large fraction of private epitopes of low seroprevalence (<20%), and novel high seroprevalence antigens. Using single-residue mutagenesis we found the core epitopes required for antibody binding for 232 of these epitopes. These datasets enable the study of the Chagas antibody repertoire at an unprecedented depth and granularity, while also providing a rich source of novel serological biomarkers. IMPACT STATEMENTThis work reveals the diversity and extent of antibody specificities in Chagas Disease and provides a wealth of well-defined antigenic markers for diagnosis and development of serological applications for this neglected infectious disease.

immunology↗