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Lauer, W.

Publications and source records attributed to Lauer, W..

3 recordsLinked to original sources

Disruption of a CCR5-like immunoglobulin gene is linked to plague susceptibility in black-footed ferrets

Black-footed ferrets (Mustela nigripes) are among the worlds most endangered mammals and remain highly vulnerable to sylvatic plague caused by Yersinia pestis, yet the genetic basis of this susceptibility has remained unknown. Current conservation strategies rely on vaccination of captive-bred animals and large-scale flea control with insecticides, approaches that are costly, labor-intensive, and difficult to implement across the species natural range. Several closely related mustelid species, including the domestic ferret, are substantially more resistant to plague, providing an opportunity to identify naturally evolved immune mechanisms through comparative immunogenomics. Here we identify a conserved class of immunoglobulin lambda variable genes encoding unusually long antigen-binding loops with CCR5-mimicking sequence features that are widespread among Caniformia species. Because CCR5 has been implicated in host interactions with Yersinia species, we hypothesized that antibodies encoded by these germline genes contribute to plague resistance through receptor-like molecular mimicry. Consistent with this hypothesis, we show that these genes are under strong purifying selection in mustelids, are actively expressed in antibody repertoires, and monoclonal antibodies encoded by them reduced intracellular Y. pestis survival in macrophages. In contrast, all analyzed black-footed ferrets carried a frameshifting deletion resulting in loss of gene expression. These findings identify a naturally disrupted germline antibody gene as a candidate determinant of plague susceptibility in black-footed ferrets, demonstrating that variation in germline immunoglobulin genes can influence susceptibility to a lethal infectious disease. Ultimately, these findings lay the groundwork for genetically informed conservation management and the development of new antibody-based anti-plague strategies. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=200 SRC="FIGDIR/small/734856v2_ufig1.gif" ALT="Figure 1"> View larger version (60K): org.highwire.dtl.DTLVardef@19d8ac1org.highwire.dtl.DTLVardef@a37aorg.highwire.dtl.DTLVardef@1ecd1e0org.highwire.dtl.DTLVardef@c6fd67_HPS_FORMAT_FIGEXP M_FIG C_FIG

immunology↗

DNA 6mA marks transcriptionally active chromatin in malaria parasites

DNA N6-methyladenine (6mA) has emerged as a significant epigenetic modification across a broad range of eukaryotes, from unicellular protists to metazoa. However, its role in unicellular eukaryotic parasites with highly AT-rich genomes, such as malaria-causing Plasmodium falciparum, remains unclear. Using mass spectrometry, South-western blotting, and Single Molecule Real-Time sequencing (Pacific Biosciences) across four stages of P. falciparum intra-erythrocytic development (IED), we confirmed that 0.02-0.04% of genomic adenines are modified to 6mA, with over 60% of the sites being stably maintained during the IED cycle. Notably, 6mA is enriched at transcription start sites, with genes bearing 6mA marks within their 5 and 3 untranslated regions exhibiting significantly elevated steady-state transcript levels. Consistent with this, 6mA loci show a strong positive correlation with activating histone post-translational modifications, while showing no significant association with repressive histone marks. Furthermore, in contrast to unicellular ciliates such as Oxytricha and Tetrahymena - organisms that share ancestry with Plasmodium - 6mA-marked genomic regions do not occlude nucleosomes. Lastly, we identified a putative 6mA methyltransferase belonging to the METTL4 family in P. falciparum, PfN6AMT encoded by the PF3D7_1303100 gene, and demonstrate that recombinant PfN6AMT exhibits robust methyltransferase activity in vitro, with mutation of its active site residues abolishing catalytic activity. Collectively, our findings demonstrate that 6mA is a low-abundance, yet reproducible, feature of the P. falciparum epigenome that is associated with transcriptionally active chromatin, and that the molecular mechanisms governing DNA adenine methylation may have undergone substantial evolutionary divergence, even among closely related eukaryotic lineages.

genomics↗

A Broad Survey and Functional Analysis of Immunoglobulin Loci Variation in Rhesus Macaques

Rhesus macaques (RMs) are a vital model for studying human disease and invaluable to pre-clinical vaccine research, particularly for the study of broadly neutralizing antibody responses. Such studies require robust genetic resources for antibody-encoding genes within the immunoglobulin (IG) loci. The complexity of the IG loci has historically made them challenging to characterize accurately. To address this, we developed novel experimental and computational methodologies to generate the largest collection to date of integrated antibody repertoire and long-read genomic sequencing data in 106 Indian origin RMs. We created a comprehensive resource of IG heavy and light chain variable (V), diversity (D), and joining (J) alleles, as well as leader, intronic, and recombination signal sequences (RSSs), including the curation of 1474 novel alleles, unveiling tremendous diversity, and expanding existing IG allele sets by 60%. This publicly available, continually updated resource (https://vdjbase.org/reference_book/Rhesus_Macaque) provides the foundation for advancing RM immunogenomics, vaccine discovery, and translational research.

immunology↗