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Selby, K. G.

Publications and source records attributed to Selby, K. G..

4 recordsLinked to original sources

Benchmarking Spectral Library Prediction Platforms for Neuropeptidomics Applications

Data-independent acquisition (DIA) mass spectrometry has emerged as a powerful tool for neuropeptidomics, but its success relies heavily on the quality of spectral libraries used for peptide identification. There are inherent challenges to mass spectrometry analysis of crustacean neuropeptides, including the endogenous nature in which they are analyzed, extensive post-translational modification (PTM), and atypical fragmentation patterns. Thus, general-purpose proteomic spectral prediction tools may not perform optimally in the endogenous peptide domain. In this study, we benchmark four widely used spectral prediction platforms, Prosit, MS2PIP, AlphaPeptDeep, and UniSpec, to evaluate their performance in predicting the fragmentation of neuropeptides. Using an empirically derived spectral library from crustacean tissues as reference, we assess model compatibility, dot-product similarity, Pearson correlation, and DIA-based identifications across brain, sinus gland, and pericardial organ samples. Our results reveal that no single model comprehensively captures neuropeptide fragmentation characteristics. While UniSpec showed unexpected strengths due to its inclusion of neutral loss ions, AlphaPeptDeep demonstrated the highest spectral similarity, and MS2PIP and Prosit outperformed in DIA-NN identifications. We further highlight the critical impact of neutral loss fragments, present in over 50% of empirical spectra, and emphasize the need for hybrid spectral libraries that integrate complementary strengths across models. This work provides a foundational framework for optimizing spectral library selection in neuropeptidomics and underscores the importance of model-specific biases when analyzing structurally diverse endogenous peptides.

neuroscience↗

12-plex DiLeu enables robust quantification of the feeding neuropeptidome

Understanding the feeding-induced neuropeptidome cascade requires analytical strategies capable of quantifying low-abundance, highly modified peptides across multiple tissues and time points. Herein, we apply 12-plex N,N-dimethyl leucine (DiLeu) isobaric labeling to perform the first multiplexed, tissue-wide, temporal quantitation of the Cancer borealis feeding neuropeptidome. This approach enabled sensitive measurement of neuropeptides across five tissues over six timepoints, revealing distinct regulatory patterns. The pericardial organ (PO) showed rapid early upregulation followed by suppression aligned with foregut emptying, whereas the thoracic ganglion (TG) displayed inverse and strongly condition-dependent responses, indicating previously unrecognized neuromodulatory roles. Single-residue variants and post-translational modifications, including pyro-Glu formation and amidation, produced markedly different temporal profiles, underscoring the functional specificity of closely related isoforms. We further identify differential regulation of proctolin and its amidated form, suggesting modified variants may contribute uniquely to feeding physiology. Collectively, these results establish multiplexed DiLeu labeling as a powerful platform for quantitative neuropeptidomics and reveal new dimensions of peptide-mediated feeding regulation.

neuroscience↗

Bridging genomes and peptidomes: hybrid sequencing reveals conserved bioactive peptides in crustaceans

Endogenous peptides are critical regulators of signaling and immunity but remain difficult to characterize in organisms with incomplete genomic annotation. We developed a hybrid discovery platform that integrates transformer-based de novo sequencing (Casanovo), neuropeptide-focused database searching (EndoGenius), and empirical false discovery rate estimation via NovoBoard. This pipeline enables confident identification of endogenous peptides while expanding coverage beyond conventional database-only or de novo-only approaches. Applied to neuroendocrine tissues from Callinectes sapidus and Cancer borealis, the workflow revealed numerous high-abundance novel peptides and provided structural and genomic support for their biological relevance. Notably, we report the first histone-2A-derived antimicrobial peptide in the C. sapidus and characterize naturally occurring sequence variants. We also identified unexpected peptide homologies between crustaceans and Rattus norvegicus, enabling annotation of conserved housekeeping proteins in sparsely annotated genomes. This hybrid platform establishes a scalable, open-source strategy for advancing neuropeptidomics and endogenous peptide discovery in emerging model organisms.

bioinformatics↗

Quantitative Neuropeptidomics Reveals Thermal Acclimation-Induced Remodeling of Peptidergic Signaling in the American Lobster Homarus americanus

Global warming and rising ocean temperatures pose substantial challenges to marine ecosystems and crustacean populations. As an ectothermic species, the American lobster (Homarus americanus) relies on physiological and neurochemical mechanisms to maintain homeostasis under varying environmental conditions. To elucidate the role of neuropeptides in neuronal plasticity and systemic adaptation to temperature fluctuations, we employed a quantitative mass spectrometry-based approach to probe key neuropeptides involving thermal adaptation in four lobster neural tissues at three temperatures: 4 {degrees}C (cold), 11 {degrees}C (control), and 18 {degrees}C (warm). Peptidomic profiling revealed a global reduction in peptide abundance during cold exposure, alongside coordinated, tissue-specific reconfigurations of the neuropeptidome between experimental groups. Cold exposure led to a significant downregulation of RFamide, leucokinin, and pyrokinin peptides in the commissural ganglia, whereas B-type allatostatin (AST-B), natalisin, and RYamide peptides were drastically elevated in the brain of warm-acclimated animals, with comparatively fewer detectable peptide abundance changes in the sinus gland and the stomatogastric ganglion. Collectively, our findings elucidate neuropeptide signaling pathways underlying thermal tolerance and adaptive resilience in Homarus americanus, offering insights into the survival mechanism and neurochemical basis of neural circuits in response to thermal acclimation. O_FIG O_LINKSMALLFIG WIDTH=200 HEIGHT=108 SRC="FIGDIR/small/710231v1_ufig1.gif" ALT="Figure 1"> View larger version (24K): org.highwire.dtl.DTLVardef@a3d24borg.highwire.dtl.DTLVardef@1434aaaorg.highwire.dtl.DTLVardef@db11cforg.highwire.dtl.DTLVardef@6e5995_HPS_FORMAT_FIGEXP M_FIG C_FIG

neuroscience↗