bioRxiv Science⌕ Search

Biology subjects

Horton, A. L.

Publications and source records attributed to Horton, A. L..

3 recordsLinked to original sources

Lateral gene transfer introduced the microbial anaerobiosis-related gene rquA into early animals

Lateral gene transfer (LGT) enables rapid metabolic innovation in microbes, but its evolutionary importance in animals remains debated. Among metabolic traits with major ecological consequences, adaptations to low-oxygen conditions often involve modifications of mitochondrial electron transport and the quinones that mediate electron flow. Rhodoquinone-based anaerobic metabolism occurs in several eukaryotic lineages, yet the evolutionary routes by which animals acquired this capability are poorly understood. Here we show that freshwater sponges possess a rhodoquinone biosynthesis gene, rquA, previously restricted to microbial lineages, which was acquired by lateral gene transfer and functionally integrated into sponge metabolism. Heterologous expression of rquA from the model freshwater sponge Ephydatia muelleri enables rhodoquinone production in yeast, consistent with functional conservation. In E. muelleri, the rquA gene is upregulated under hypoxia and rhodoquinone is detectable across all lifestages, however, it is most abundant in early development in the pluiripotent gemmules. Using comparative genomics, we find that the presence of rquA in freshwater sponges correlates with loss of key genes of the ubiquinone biosynthesis pathway, suggesting these animals cannot synthesize ubiquinone de novo and we show that E. muelleri can convert exogenous ubiquinone to rhodoquinone. Rhodoquinone levels were significantly higher in rquA-encoding freshwater sponges compared to marine sponges that were sampled from natural environments. This study reveals that an early animal lineage acquired a microbial metabolism-related gene via lateral gene transfer during or before the transition to freshwater environments, enabling rhodoquinone utilization and potentially enhancing tolerance to oxygen fluctuations. Thereby, demonstrating how LGT shapes energy metabolism even in multicellular organisms.

evolutionary biology↗

Transcriptomic Analysis of CAD Cell Differentiation

CAD cells were derived from Cath.a cells, a mouse central nervous system catecholaminergic cell line. Serum-starved CAD cells undergo morphological changes and resemble isolated neurons when observed by microscopy. We carried out an RNAseq transcriptomic analysis to examine differentiated CAD cells for expression signatures related to neuronal functions, identifying [~]1900 transcripts whose expression changed with differentiation. Pathview analysis identified [~]80 KEGG pathway gene sets that were differentially expressed, including upregulation of at least 13 neuron-related pathways. This dataset can be explored more deeply, allowing further investigation into expression changes relevant to studying neuronal functions in this easy-to-culture model system.

neuroscience↗

Genomic connectivity and adaptation signals of the freshwater sponge Ephydatia muelleri across its distribution

1.Freshwater sponges fulfill critical ecological functions, including maintaining water quality, regulating nutrient dynamics, offering habitats for diverse taxa, and serving as a vital food source for various species. However, their patterns of dispersal and genetic connectivity remain inadequately understood, posing significant challenges to effective conservation assessments. We examined genetic connectivity and genetic adaptation to local environmental conditions in Ephydatia muelleri across its geographic range using ddRADseq-derived SNPs from 106 individuals collected from 11 localities spanning North America, Europe, and Asia. Analysis of 3,182 neutral SNPs revealed low connectivity and strong genetic structure among regions within two main genetic clusters of North America and Eurasia, while 115 SNPs identified to be under selection showed considerable evidence for differentiated, polygenic adaptation to light and temperature conditions across sampled locations, as well as selection on gene regulatory processes. These findings align with the "monopolization hypothesis", suggesting that historical climatic and geological conditions of the Last Glacial Maximum, including habitat expansion, contraction, and natural barriers, have contributed more to the current genetic structure of E. muelleri populations than contemporary gene flow, which is restricted by monopolistic habitat colonization by this species. Our results provide novel support for ecological theory on dispersal in aquatic invertebrates, as well as insights into the plasticity of E. muelleri in the face of varying environmental conditions that are fundamentally important for freshwater ecosystem conservation.

evolutionary biology↗