FP-Zernike: An Open-source Structural Database Construction Toolkit for Fast Structure Retrieval

Author:

Qi Junhai12ORCID,Feng Chenjie13ORCID,Shi Yulin1ORCID,Yang Jianyi1ORCID,Zhang Fa4ORCID,Li Guojun1ORCID,Han Renmin1ORCID

Affiliation:

1. Research Center for Mathematics and Interdisciplinary Sciences, Shandong University , Qingdao 266237, China

2. BioMap Research , Menlo Park, CA 94025, USA

3. College of Medical Information and Engineering, Ningxia Medical University , Yinchuan 750004, China

4. Institute of Engineering Medicine, Beijing Institute of Technology , Beijing 100081, China

Abstract

Abstract The release of AlphaFold2 has sparked a rapid expansion in protein model databases. Efficient protein structure retrieval is crucial for the analysis of structure models, while measuring the similarity between structures is the key challenge in structural retrieval. Although existing structure alignment algorithms can address this challenge, they are often time-consuming. Currently, the state-of-the-art approach involves converting protein structures into three-dimensional (3D) Zernike descriptors and assessing similarity using Euclidean distance. However, the methods for computing 3D Zernike descriptors mainly rely on structural surfaces and are predominantly web-based, thus limiting their application in studying custom datasets. To overcome this limitation, we developed FP-Zernike, a user-friendly toolkit for computing different types of Zernike descriptors based on feature points. Users simply need to enter a single line of command to calculate the Zernike descriptors of all structures in customized datasets. FP-Zernike outperforms the leading method in terms of retrieval accuracy and binary classification accuracy across diverse benchmark datasets. In addition, we showed the application of FP-Zernike in the construction of the descriptor database and the protocol used for the Protein Data Bank (PDB) dataset to facilitate the local deployment of this tool for interested readers. Our demonstration contained 590,685 structures, and at this scale, our system required only 4–9 s to complete a retrieval. The experiments confirmed that it achieved the state-of-the-art accuracy level. FP-Zernike is an open-source toolkit, with the source code and related data accessible at https://ngdc.cncb.ac.cn/biocode/tools/BT007365/releases/0.1, as well as through a webserver at http://www.structbioinfo.cn/.

Publisher

Oxford University Press (OUP)

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