Diffusive topology preserving manifold distances for single-cell data analysis

J Jiangyong Wei (Guangdong Institute of Intelligence Science and Technology) B Bin Zhang Q Qiu Wang T Tianshou Zhou (School of Mathematics and Statistics) T Tianhai Tian (School of Mathematics) L Luonan Chen

Abstract

Manifold learning techniques have emerged as crucial tools for uncovering latent patterns in high-dimensional single-cell data. However, most existing dimensionality reduction methods primarily rely on 2D visualization, which can distort true data relationships and fail to extract reliable biological information. Here, we present DTNE (diffusive topology neighbor embedding), a dimensionality reduction framework that faithfully approximates manifold distance to enhance cellular relationships and dynamics. DTNE constructs a manifold distance matrix using a modified personalized PageRank algorithm, thereby preserving topological structure while enabling diverse single-cell analyses. This approach facilitates distribution-based cellular relationship analysis, pseudotime inference, and clustering within a unified framework. Extensive benchmarking against mainstream algorithms on diverse datasets demonstrates DTNE’s superior performance in maintaining geodesic distances and revealing significant biological patterns. Our results establish DTNE as a powerful tool for high-dimensional data analysis in uncovering meaningful biological insights.

Article Details

Volume / Issue Vol. 122, Issue 4
Published January 28, 2025
ISSN 0027-8424
Publisher National Academy of Sciences

Authors (6)

J

Jiangyong Wei

Guangdong Institute of Intelligence Science and Technology

B

Bin Zhang

Q

Qiu Wang

T

Tianshou Zhou

School of Mathematics and Statistics

T

Tianhai Tian

School of Mathematics

L

Luonan Chen