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◆ Functional & integrative genomics2026-09-23

Single-cell and spatial transcriptomics inform mechanistic physiology in non-model animals.

Adnan Amin, Wajid Zaman

一句话结论 · In one sentence

This study provides a donor-aware single-cell transcriptomic atlas of the inflammatory CSF immune microenvironment in TBM and PM. The findings highlight substantial inter-individual heterogeneity, broad innate immune-cell patterns, overlapping CD4+ T-cell transcriptional states, and multicompartment MIF/CD74-related communication. These transcriptome-inferred findings are hypothesis-generating and require validation in larger cohorts using protein-level and functional approaches.

原始摘要(英文原文)· Original abstract
Comparative physiology increasingly requires cellular resolution at the level of cell types, tissue microenvironments, and regulatory programs that associate genotype with function under environmental variation. Bulk transcriptomics and tissue-level assays have revealed pathways associated with stress responses, metabolic shifts, and developmental transitions; however, they average signals across heterogeneous cell populations and frequently obscure which cells contribute to physiological phenotypes. Single-cell RNA sequencing (scRNA-seq), single-nucleus RNA sequencing (snRNA-seq), and spatial transcriptomics (ST) address complementary aspects of this limitation by resolving transcriptional heterogeneity and, for spatial approaches, preserving tissue context. These technologies are extending beyond classical biomedical models to non-model animals, enabling discovery of cell states, comparison of cell-type evolution, and spatially informed hypotheses concerning ionoregulation, respiration, immune defense, endocrine signaling, regeneration, and symbiosis. This review provides a physiology-centered blueprint for applying these approaches to non-model species and critically evaluates dissociation and preservation bias, genome annotation, seasonal and ecological variation, biological replication, pseudoreplication, cross-species integration, and spatial resolution. We distinguish descriptive mapping, replicate-aware association, mechanistic hypothesis generation, and causal validation because expression patterns, colocalization, trajectories, and ligand-receptor predictions do not by themselves demonstrate mechanism. Practical reporting and validation standards are proposed to improve reproducibility and connect cellular maps with independent physiological measurements and perturbation experiments.
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Single-cell and spatial transcriptomics inform mechanistic physiology in non-model animals. — 科研速览 Science Skim