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Hinne, I. A.

Publications and source records attributed to Hinne, I. A..

3 recordsLinked to original sources

Copy Number Variation-Based Molecular Sexing of Ixodes scapularis and Rhipicephalus microplus Immature Stages Using qPCR and ddPCR Approaches

Accurate sex identification of immature ticks is essential for understanding sex-specific ecological dynamics, pathogen transmission, and reproductive biology. However, tick larvae and nymphs lack morphological sexual dimorphisms, limiting the studies. Here, we report the development and validation of copy number variation (CNV)-based molecular sexing approach for two important hard tick species, Ixodes scapularis, a major public health vector of human pathogens, and Rhipicephalus microplus, a pest responsible for significant economic losses in cattle industry. Using newly published chromosomal-level genome assemblies and whole-genome resequencing data, we identified female-enriched CNVs in two genes, calcium/calmodulin-dependent 3,5-cyclic nucleotide phosphodiesterase 1A-like (NPD) and rap guanine nucleotide exchange factor 2-like (RAPGEF2), and developed SYBR-Green based and probe-based qPCR, and droplet digital PCR (ddPCR) assays using DNA extracted non-destructively from a single leg, preserving ticks for continued feeding, molting, and behavioral analysis. In I. scapularis, we were able to assign the sex of 87% of nymphs based on results from at least two molecular tests, and these assignments were confirmed when the nymphs later molted into adults. In R. microplus, two qPCR assays revealed clear, sex-linked differences in gene copy number, despite the species having an XX: XO sex system. Together, these findings indicate that CNV-based markers are a reliable and widely applicable method for sex determination in immature ticks. Graphical Abstract O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=126 SRC="FIGDIR/small/695610v1_ufig1.gif" ALT="Figure 1"> View larger version (21K): org.highwire.dtl.DTLVardef@14616c5org.highwire.dtl.DTLVardef@80e758org.highwire.dtl.DTLVardef@d46484org.highwire.dtl.DTLVardef@1324e5_HPS_FORMAT_FIGEXP M_FIG C_FIG

molecular biology↗

Developmental system drift in the patterning of the arthropod tarsus

The current understanding of proximodistal axis patterning in arthropod legs is grounded in insect models. The paradigm for appendage evolution in this phylum is that the gene regulatory network responsible for leg subdivision and patterning is broadly conserved. Recent surveys of these genes have suggested that chelicerate exemplars exhibit divergent appendage patterning dynamics, though functional data remain limited. One salient mismatch in expression occurs in homologs of the homeobox gene clawless. In insects, clawless is expressed in the distalmost leg territory, specifying the claw-bearing pretarsus. In the harvestman, Phalangium opilio, clawless occupies a broad tarsal domain early in development, localizing later to the metatarsus-tarsus boundary, suggestive of a tarsal patterning function. Here, we tested the function of harvestman clawless using RNAi. Unlike insects, we show that clawless knockdown results in disrupted tarsal growth and patterning of its proximal segmental boundary, with no effect on the claw. Truncation of the tarsus is associated with defective tarsomere formation. We additionally surveyed clawless homologs in exemplars of chelicerate diversity, which suggests that the tarsal-patterning function for clawless was likely present in the chelicerate common ancestor. These results, alongside available expression data, suggest panarthropod appendage patterning exhibits numerous cases of developmental system drift.

evolutionary biology↗

A novel expression domain of extradenticle underlies the evolutionary developmental origin of the chelicerate patella

Neofunctionalization of duplicated gene copies is thought to be an important process underlying the origin of evolutionary novelty and provides an elegant mechanism for the origin of new phenotypic traits. One putative case where a new gene copy has been linked to a novel morphological trait is the origin of the arachnid patella, a taxonomically restricted leg segment. In spiders, the origin of this segment has been linked to the origin of the paralog dachshund-2, suggesting that a new gene facilitated the expression of a new trait. However, various arachnid groups that possess patellae do not have a copy of dachshund-2, disfavoring the direct link between gene origin and trait origin. We investigated the developmental genetic basis for patellar patterning in the harvestman Phalangium opilio, which lacks dachshund-2. Here, we show that the harvestman patella is established by a novel expression domain of the transcription factor extradenticle. Leveraging this definition of patellar identity, we surveyed targeted groups across chelicerate phylogeny to assess when this trait evolved. We show that a patellar homolog is present in Pycnogonida (sea spiders) and various arachnid orders, suggesting a single origin of the patella in the ancestor of Chelicerata. A potential loss of the patella is observed in Ixodida. Our results suggest that the modification of an ancient gene, rather than the neofunctionalization of a new gene copy, underlies the origin of the patella. Broadly, this work underscores the value of comparative data and broad taxonomic sampling when testing hypotheses in evolutionary developmental biology.

evolutionary biology↗