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Biology subjects

Caldwell, S. K.

Publications and source records attributed to Caldwell, S. K..

3 recordsLinked to original sources

Biological foundation models illuminate annotation blind spots in evolutionarily divergent genomes

Chromosome-scale assemblies are increasingly available for non-model organisms, but functional annotation remains limited when deep evolutionary divergence erodes primary amino-acid sequence identity even though protein structural similarity can remain conserved. We present a hybrid annotation framework that decouples gene-model discovery from cross-species similarity assignment by combining Evo2-based ab initio prediction of exon-intron structures with ESM-2 protein-embedding-based structural similarity mapping. Applied to the sea lamprey, the framework derives high- or medium-confidence cross-species similarity assignments for 73,485 Evo2-derived translated protein models, including 35,395 high-confidence calls, and expands the deduplicated structural catalog to 31,286 loci, including 20,871 additions absent from the Ensembl baseline. A joint alignment-structure classification identifies 21,391 structurally supported catalog loci that a fixed human DIAMOND protein search does not confidently assign on its own, including 21,184 loci with no detectable human protein-sequence match and 207 loci with only low-confidence matches in the classical 20-30% amino-acid-identity twilight zone. These rescue-space totals describe catalog loci rather than validated one-to-one human-absent genes. In a single-cell RNA sequencing application, a stricter UTR-aware Ensembl+Evo2 reference improves gene recovery and expands the interpretable feature space of the lamprey immune compartment relative to the Ensembl baseline. This enables more resolved annotation of four transcriptionally defined immune cell states, including VLRA+-associated T-like and VLRB+-associated B-like programs together with oxidative iron-handling and iron-associated VLR-linked states. Together, these results show that structural protein signal often persists beyond the limits of pairwise sequence alignment and that an embedding-based annotation layer can extend that signal to improve downstream comparative and single-cell analyses in evolutionarily divergent genomes.

bioinformatics↗

The circadian clock regulates scavenging of fluid-borne substrates by brain border-associated macrophages

Circadian disruptions perturb the brain and immune system and increase the risk of developing Alzheimers Disease (AD), yet whether this involves dysregulation of brain immunity remains less clear. Here, we perform single-cell RNA sequencing of the brain immune compartment around the day-night cycle and identify brain border-associated macrophages (BAMs) as highly rhythmic cells. During the rest phase, we find that BAMs exhibit coordinated upregulation of endocytic genes and enhanced uptake of extracellular fluid-borne material including amyloid-beta (A{beta}). Rhythmicity in BAM scavenging is regulated by the clock gene Bmal1, mediated by the endocytic receptor CD206, and perturbed with age. In a mouse model of AD, we show that deletion of Bmal1 in BAMs worsens perivascular and leptomeningeal A{beta} plaque burden. Our results identify endocytosis as a specialized and rhythmic BAM function and identify perturbed timing of brain border immune functions as a potential mechanism by which circadian disruptions precipitate amyloidosis.

neuroscience↗

Early-life stromal niches orchestrate B lymphopoiesis at the brain's borders

The dura mater serves as a critical immunological niche for the central nervous system, yet the mechanisms governing the emergence of this niche in early life remain understudied. Here, we chart the trajectory of dural immune development, uncovering a distinctive function for the murine dura as a transient niche for B lymphopoiesis in the early-postnatal window. Shared embryonic progenitors initiate dural B cell development in concert with a multi-organ wave of extramedullary lymphopoiesis that contributes distinctively to the peripheral B cell pool. In the dura, B cells develop locally in discrete sinus-proximal foci, occupying an anatomically defined and developmentally restricted fibroblast niche. Sinus-proximal fibroblasts express the pro-hematopoietic chemokine CXCL12, and local deletion of this crucial factor severely impairs dural B lymphopoiesis. These data reveal a critical function for dural fibroblasts in shaping the early-life B cell compartment and provide a model for how extramedullary niches may support early-life leukocyte production.

immunology↗