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Updated: May 28, 2025

Phage Phenomics: Physiological Approaches to Characterize Novel Viral Proteins
Published on: June 11, 2015
Discovery, structural characteristics and evolutionary analyses of functional domains in Acinetobacter baumannii
Shenshen Liu1, Tao Lei2, Yujing Tan1
1School of Biomedical and Pharmaceutical Sciences, Guangdong University of Technology, Guangzhou, 510006, China.
Background:
The global rise in multidrug-resistant Acinetobacter baumannii infections poses a significant healthcare challenge. Bacteriophage offer a promising alternative to antibiotics for treating A. baumannii infections. Phage tail fiber and spike proteins are essential for host recognition, with some exhibiting depolymerase activity that aids in degrading the bacterial cell wall, facilitating infection. Detailed studies of the functional domains responsible for depolymerase activity and receptor-binding in phage tail fiber/spike proteins are a crucial step toward developing effective phage treatments.
Results:
A total of 32 functional domains were identified across 313 tail fiber and spike proteins from 204 publicly available Acinetobacter baumannii phages using InterPro and AlphaFold3. Domains associated with depolymerase function were Pectin lyase-like domain (PLD), phage_tailspike_middle domain (PTMD), Transglycosidases domain (TGD), and SGNH hydrolase domain (SHD). These domains were primarily found in phages from the Autographiviridae family, specifically within the Friunavirus genus. The predominant PLD domain displayed high variability, with its sequence conserved only in a 25-amino-acid region among two closely related fiber/spike protein lineages. All enzymatic domains exhibit high sequence diversity yet retain structural stability, which is essential for enzymatic function. As for receptor-binding domains, four types of pyocin_knob domains (PKD) were initially identified, characterized by unique β-sheet and α-helix configurations. Each type of PKD exhibited distinct potential receptor-binding sites, primarily located within the α-helix region, and was closely associated with the Obolenskvirus genus, as well as the Autographiviridae and Straboviridae families. The G3DSA:2.60.40.3940 domain, exhibiting minor structural variations, was predominantly found in phages of the Obolenskvirus genus. Additionally, a novel Obo-β-sandwich structure, identified as a potential receptor-binding domain, was discovered within Obolenskvirus genus cluster. The structural diversity of these receptor-binding domains accounts for their interactions with various receptors.
Conclusions:
This research deepens the understanding of the relationship between A. baumannii phage genera and the functional domains within their tail fiber/spike proteins, emphasizing the compatibility between structural characteristics and functional roles. The data obtained could serve as a reference for the targeted modification of phages or their tail fiber/spike proteins, enhancing their therapeutic applications.
Insights
Multidrug-resistant Acinetobacter baumannii infections are a growing threat. Bacteriophage, specifically their tail fiber and spike proteins, show promise for treatment by targeting bacterial cell walls and receptors, aiding in phage therapy development.
Area of Science:
- Microbiology
- Virology
- Structural Biology
Background:
- Rising global incidence of multidrug-resistant Acinetobacter baumannii infections presents a critical healthcare challenge.
- Bacteriophage therapy is a promising alternative to conventional antibiotics for treating A. baumannii infections.
- Phage tail fiber and spike proteins are key to host recognition and bacterial cell wall degradation via depolymerase activity.
Purpose of the Study:
- To identify and characterize functional domains within Acinetobacter baumannii phage tail fiber and spike proteins.
- To investigate the relationship between these domains, their depolymerase or receptor-binding functions, and specific phage genera.
- To provide a foundation for engineering phages with enhanced therapeutic efficacy against A. baumannii.
Main Methods:
- Bioinformatic analysis of 313 tail fiber and spike proteins from 204 A. baumannii phages using InterPro and AlphaFold3.
- Identification and classification of depolymerase-associated domains (Pectin lyase-like domain, phage_tailspike_middle domain, Transglycosidases domain, SGNH hydrolase domain).
- Characterization of receptor-binding domains (pyocin_knob domains, G3DSA:2.60.40.3940, novel Obo-β-sandwich structure) and their structural features.
Main Results:
- 32 functional domains were identified, including four depolymerase-associated domains (PLD, PTMD, TGD, SHD) predominantly in Autographiviridae family phages (Friunavirus genus).
- The Pectin lyase-like domain (PLD) showed high variability but conserved regions within specific lineages.
- Four types of pyocin_knob domains (PKD) and other receptor-binding domains (G3DSA:2.60.40.3940, Obo-β-sandwich) were identified, associated with Obolenskvirus genus and Autographiviridae/Straboviridae families, exhibiting structural diversity for receptor interaction.
Conclusions:
- This study elucidates the link between A. baumannii phage genera and the functional domains of their tail proteins, highlighting structural-functional correlations.
- The identified functional domains and their characteristics offer insights into phage-host interactions.
- The findings can guide the targeted engineering of phages and their proteins to improve phage therapy for A. baumannii infections.
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