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Cooper, M. D.

Publications and source records attributed to Cooper, M. D..

3 recordsLinked to original sources

Ancient IL-6-STAT5 signaling orchestrates inflammation in jawless vertebrates

Interleukin-6 (IL-6) is a central regulator of vertebrate immunity, yet its existence in jawless vertebrates has remained obscure because of extreme sequence divergence. The extant jawless vertebrates (lampreys and hagfish), which deploy variable lymphocyte receptors (VLRs) instead of immunoglobulins and T cell receptors, provide a unique window into the earliest interface between cytokines and adaptive immunity. Here, we identify IL-6-like genes in jawless vertebrates by combining computational structural comparisons, phylogenetic reconstruction, and conserved local and long-range synteny analyses. The encoded proteins adopt the canonical four-helix bundle characteristic of immune-related IL-6 family cytokines and align topologically with mammalian IL-6. In sea lamprey, three IL-6 paralogs show distinct leukocyte and tissue expression patterns and are differentially induced by pathogen-associated molecular patterns and skin injury, indicating early functional diversification of IL-6-mediated inflammatory responses. Stimulation of myeloid peritoneal leukocytes with recombinant lamprey IL-6 induces STAT5 phosphorylation and rapid upregulation of SOCS1/3 genes, consistent with an IL-6/STAT5/SOCS regulatory axis. These findings extend the repertoire of immune-related four-helix bundle cytokines to jawless vertebrates and indicate that IL-6-dependent inflammatory programs were already in place before the divergence of VLR-based and Ig/TCR-based adaptive immune systems in vertebrates.

immunology↗

An ancient evolutionary origin for IL-1 cytokines as mediators of immunity

Inflammation is a hallmark of immune responses. Its mechanistic underpinnings in mammals are well-defined: pro-inflammatory cytokines of the interleukin 1 (IL-1) superfamily establish and support microenvironments that promote immune cell activities. Despite a growing number of reports on inflammatory processes and components of the IL-1 signaling axis in several invertebrate lineages, orthologs of these central cytokines have not been detected outside of the jawed vertebrates. Here, protein structure prediction algorithms were applied to identify genes encoding a family of IL-1 proteins with homologs throughout Eumetazoa (termed "IL-1anc" to reflect their ancestral evolutionary origin). Using Petromyzon marinus (sea lamprey) and Strongylocentrotus purpuratus (purple sea urchin) as model systems, we demonstrate that IL-1anc proteins share important features with mammalian IL-1/IL-1{beta} including expression patterns, protein localization, and processing. Together, our data indicate that the IL-1 superfamily and associated circuitry represent a foundational module of animal immunity that far predates the jawed vertebrates.

immunology↗

Hagfish genome illuminates vertebrate whole genome duplications and their evolutionary consequences

Whole genome duplications (WGDs) are major events that drastically reshape genome architecture and are causally associated with organismal innovations and radiations1. The 2R Hypothesis suggests that two WGD events (1R and 2R) occurred during early vertebrate evolution2, 3. However, the veracity and timing of the 2R event relative to the divergence of gnathostomes (jawed vertebrates) and cyclostomes (jawless hagfishes and lampreys) is unresolved4-6 and whether these WGD events underlie vertebrate phenotypic diversification remains elusive7. Here we present the genome of the inshore hagfish, Eptatretus burgeri. Through comparative analysis with lamprey and gnathostome genomes, we reconstruct the early events in cyclostome genome evolution, leveraging insights into the ancestral vertebrate genome. Genome-wide synteny and phylogenetic analyses support a scenario in which 1R occurred in the vertebrate stem-lineage during the early Cambrian, and the 2R event occurred in the gnathostome stem-lineage in the late Cambrian after its divergence from cyclostomes. We find that the genome of stem-cyclostomes experienced two additional, independent genome duplications (herein CR1 and CR2). Functional genomic and morphospace analyses demonstrate that WGD events generally contribute to developmental evolution with similar changes in the regulatory genome of both vertebrate groups. However, appreciable morphological diversification occurred only after the 2R event, questioning the general expectation that WGDs lead to leaps of morphological complexity7.

genomics↗