Related Experiment Video
Updated: May 8, 2026

A Concoction Pipeline for Generating Molecular Operational Taxonomic Units (MOTUs) Among Riparian and Aquatic Beetles
Published on: July 11, 2025
A general species delimitation method with applications to phylogenetic placements
Jiajie Zhang1, Paschalia Kapli, Pavlos Pavlidis
1The Exelixis Lab, Scientific Computing Group, Heidelberg Institute for Theoretical Studies, D-68159 Heidelberg, Germany, Graduate School for Computing in Medicine and Life Sciences, University of Lübeck, Institut für Neuro- und Bioinformatik, University of Lübeck, 23538 Lübeck, Germany, Natural History Museum of Crete, University of Crete, GR-71409 Irakleio, Crete, Greece and Institute of Molecular Biology and Biotechnology, Foundation for Research and Technology-Hellas-FORTH, GR-70013 Heraklion, Crete, Greece.
Motivation:
Sequence-based methods to delimit species are central to DNA taxonomy, microbial community surveys and DNA metabarcoding studies. Current approaches either rely on simple sequence similarity thresholds (OTU-picking) or on complex and compute-intensive evolutionary models. The OTU-picking methods scale well on large datasets, but the results are highly sensitive to the similarity threshold. Coalescent-based species delimitation approaches often rely on Bayesian statistics and Markov Chain Monte Carlo sampling, and can therefore only be applied to small datasets.
Results:
We introduce the Poisson tree processes (PTP) model to infer putative species boundaries on a given phylogenetic input tree. We also integrate PTP with our evolutionary placement algorithm (EPA-PTP) to count the number of species in phylogenetic placements. We compare our approaches with popular OTU-picking methods and the General Mixed Yule Coalescent (GMYC) model. For de novo species delimitation, the stand-alone PTP model generally outperforms GYMC as well as OTU-picking methods when evolutionary distances between species are small. PTP neither requires an ultrametric input tree nor a sequence similarity threshold as input. In the open reference species delimitation approach, EPA-PTP yields more accurate results than de novo species delimitation methods. Finally, EPA-PTP scales on large datasets because it relies on the parallel implementations of the EPA and RAxML, thereby allowing to delimit species in high-throughput sequencing data.
Availability And Implementation:
The code is freely available at www.exelixis-lab.org/software.html. .
Related Concept Videos
Evolutionary Relationships through Genome Comparisons
Phylogenetic Species Concept in Microbiology
Applications of Molecular Taxonomy
Phylogenetic Trees
Phylogenetic Trees
Microbial Phylogeny

