EAGS: efficient and adaptive Gaussian smoothing applied to high-resolved spatial transcriptomics

Author:

Lv Tongxuan12ORCID,Zhang Ying1ORCID,Li Mei13ORCID,Kang Qiang1ORCID,Fang Shuangsang14ORCID,Zhang Yong1ORCID,Brix Susanne4ORCID,Xu Xun12ORCID

Affiliation:

1. BGI Research , Shenzhen 518083 , China

2. College of Life Sciences, University of Chinese Academy of Sciences , Beijing 100049 , China

3. Department of Biotechnology and Biomedicine, Technical University of Denmark , 2800 Kgs. Lyngby , Denmark

4. BGI Research , Beijing 102601 , China

Abstract

Abstract Background The emergence of high-resolved spatial transcriptomics (ST) has facilitated the research of novel methods to investigate biological development, organism growth, and other complex biological processes. However, high-resolved and whole transcriptomics ST datasets require customized imputation methods to improve the signal-to-noise ratio and the data quality. Findings We propose an efficient and adaptive Gaussian smoothing (EAGS) imputation method for high-resolved ST. The adaptive 2-factor smoothing of EAGS creates patterns based on the spatial and expression information of the cells, creates adaptive weights for the smoothing of cells in the same pattern, and then utilizes the weights to restore the gene expression profiles. We assessed the performance and efficiency of EAGS using simulated and high-resolved ST datasets of mouse brain and olfactory bulb. Conclusions Compared with other competitive methods, EAGS shows higher clustering accuracy, better biological interpretations, and significantly reduced computational consumption.

Funder

National Key Research and Development Program of China

Publisher

Oxford University Press (OUP)

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