Large scale similarity search across digital reconstructions of neural morphology.

Neurosci Res

Center for Neural Informatics, Structures, & Plasticity and Bioengineering Department, George Mason University, Mail Stop 2A1, 4400 University Dr, Fairfax, VA, United States of America. Electronic address:

Published: August 2022

AI Article Synopsis

  • Advances in imaging techniques have enhanced our understanding of neuronal and glial structure, leading to 3D reconstructions that aid in studying brain function.
  • A new software developed using the NeuroMorpho.Org database allows for fast comparison of neural morphologies across various species and brain regions, addressing the lack of efficient ranking methods.
  • The study compares different morphological measurements and the use of principal component analysis to improve the characterization of neural structures, with the best results achieved through a combination of metrics and PCA, now available as open-source software.

Article Abstract

Most functions of the nervous system depend on neuronal and glial morphology. Continuous advances in microscopic imaging and tracing software have provided an increasingly abundant availability of 3D reconstructions of arborizing dendrites, axons, and processes, allowing their detailed study. However, efficient, large-scale methods to rank neural morphologies by similarity to an archetype are still lacking. Using the NeuroMorpho.Org database, we present a similarity search software enabling fast morphological comparison of hundreds of thousands of neural reconstructions from any species, brain regions, cell types, and preparation protocols. We compared the performance of different morphological measurements: 1) summary morphometrics calculated by L-Measure, 2) persistence vectors, a vectorized descriptor of branching structure, 3) the combination of the two. In all cases, we also investigated the impact of applying dimensionality reduction using principal component analysis (PCA). We assessed qualitative performance by gauging the ability to rank neurons in order of visual similarity. Moreover, we quantified information content by examining explained variance and benchmarked the ability to identify occasional duplicate reconstructions of the same specimen. We also compared two different methods for selecting the number of principal components using this benchmark. The results indicate that combining summary morphometrics and persistence vectors with applied PCA using maximum likelihood based automatic dimensionality selection provides an information rich characterization that enables efficient and precise comparison of neural morphology. We have deployed the similarity search as open-source online software both through a user-friendly graphical interface and as an API for programmatic access.

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Source
http://www.ncbi.nlm.nih.gov/pmc/articles/PMC9960175PMC
http://dx.doi.org/10.1016/j.neures.2022.05.004DOI Listing

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