Search bioRxiv⌕ Search

Biology subjects

Panagiotou, K.

Publications and source records attributed to Panagiotou, K..

3 recordsLinked to original sources

WitChi: Efficient Detection and Pruning of Compositional Bias in Phylogenomic Alignments Using Empirical Chi-Squared Testing

Convergent evolution, where unrelated taxa independently evolve similar nucleotide or amino acid compositions, can introduce compositional bias into biological sequence data. Such biases distort phylogenetic inference, particularly in deep or unevenly sampled phylogenomic datasets. While composition-aware models can mitigate this issue, their computational demands often preclude their use in large-scale analyses. We present WitChi, a computationally efficient tool for identifying and removing compositionally biased alignment columns using empirical significance testing. WitChi calculates taxon-specific chi-squared ({chi}{superscript 2}) scores and compares them to null distributions derived from permutations within alignment columns that preserve the phylogenetic structure of the alignment. Sites most responsible for deviation from the expected null are iteratively pruned using one of three scoring algorithms until the bias is no longer statistically detectable. Z-scores and p-values are provided for both taxa and alignments, offering interpretable metrics of the magnitude of compositional bias. Pruning of simulated compositional heterogeneous alignments show that WitChi reliably restores correct topologies under standard, compositionally stationary models. In benchmarks, WitChi outperforms BMGEs stationary-based trimming while scaling linearly with taxon number. Applied to the archaeal GTDB r220 dataset (5,869 taxa; 10,101 sites), WitChi completes pruning in under one hour on four CPU cores. The resulting phylogeny recovers key clades previously resolved only by in-depth analyses using complex models of sequence evolution. WitChi provides an efficient, scalable solution for detecting and removing compositional bias in phylogenomic datasets comprising thousands to tens of thousands of taxa, enabling more accurate phylogenetic inference across the tree of life.

bioinformatics↗

Structure-based inference of eukaryotic complexity in Asgard archaea

Asgard archaea played a key role in the origin of the eukaryotic cell. While previous studies found that Asgard genomes encode diverse eukaryotic signature proteins (ESPs), representing homologs of proteins that play important roles in the complex organization of eukaryotic cells, the cellular characteristics and complexity of the Asgard archaeal ancestor of eukaryotes remain unclear. Here, we used de novo protein structure modeling and sensitive sequence similarity detection algorithms within an expanded Asgard archaeal genomic dataset to build a structural catalogue of the Asgard archaeal pangenome and identify 908 new isomorphic ESPs (iESPs), representing clusters of protein structures most similar to eukaryotic proteins and that likely underwent extensive sequence divergence. While most previously identified ESPs were involved in cellular processes and signaling, iESPs are enriched in information storage and processing functions, with several being potentially implicated in facilitating cellular complexity. By expanding the complement of eukaryotic proteins in Asgard archaea, this study indicates that the archaeal ancestor of eukaryotes was more complex than previously assumed.

evolutionary biology↗

Oxygen metabolism in descendants of the archaeal-eukaryotic ancestor

Asgard archaea were pivotal in the origin of complex cellular life. Hodarchaeales (Asgardarchaeota class Heimdallarchaeia) were recently shown to be the closest relatives of eukaryotes. However, limited sampling of these archaea constrains our understanding of their ecology and evolution1-3, including their anticipated role in eukaryogenesis. Here, we nearly double the number of Asgardarchaeota metagenome-assembled genomes (MAGs) to 869, including 136 new Heimdallarchaeia (49 Hodarchaeales) and several novel lineages. Examining global distribution revealed Hodarcheales are primarily found in coastal marine sediments. Detailed analysis of their metabolic capabilities revealed guilds of Heimdallarchaeia are distinct from other Asgardarchaeota. These archaea encode hallmarks of aerobic eukaryotes, including electron transport chain complexes (III and IV), biosynthesis of heme, and response to reactive oxygen species (ROS). The predicted structural architecture of Heimdallarchaeia membrane-bound hydrogenases includes additional Complex-I-like subunits potentially increasing the proton motive force and ATP synthesis. Heimdallarchaeia genomes encode CoxD, which regulates the electron transport chain (ETC) in eukaryotes. Thus, key hallmarks for aerobic respiration may have been present in the Asgard-eukaryotic ancestor. Moreover, we found that Heimdallarchaeia is present in a variety of oxic marine environments. This expanded diversity reveals these Archaea likely conferred energetic advantages during early stages of eukaryogenesis, fueling cellular complexity.

microbiology↗