生物
计算生物学
适应性
序列(生物学)
遗传多样性
克雷伯菌
多样性(政治)
遗传学
酶
序列比对
领域(数学分析)
细菌
噬菌体展示
噬菌体
序列分析
肽序列
重组DNA
蛋白质结构域
功能多样性
底物特异性
保守序列
肠杆菌科
微生物学
细菌蛋白
扩展(谓词逻辑)
肽图谱
互动者
作者
Aleksandra Otwinowska,Sebastian Olejniczak,Agnieszka Latka,Maria Pozniak,Grażyna Majkowska-Skrobek,Barbara Maciejewska,Janusz Koszucki,Vyshakh R. Panicker,Sara Jablonska,Mathilde Hulsens,Jana Stender,Maha Niazi,S. K. Green,Joachim J. Bugert,Régis Tournebize,Stan J. J. Brouns,Flavia Squeglia,Rita Berisio,Jens A. Hammerl,Rob Lavigne
标识
DOI:10.1038/s41467-026-73570-7
摘要
Our understanding of how depolymerase sequence and structure determine substrate specificity is fragmentary due to the limited number of experimentally characterized enzymes. Here we show DepoCatalog - an experimentally validated collection of 129 recombinantly prepared Klebsiella phage depolymerases (90 enzymes produced in this study and 39 homologs from the literature), with specificity spanning 75 KL-types. Enzymes originated from podo-, sipho-, myo-, jumbo phages, and prophages. Using activity profiling, structural modeling, and domain dissection, we propose a five‑class framework that captures the architectural and functional diversity of these enzymes. DepoCatalog uncovers cross-reactivity and taxa‑specific enzymes. Structural comparisons indicate that specificity switching or extension is associated with modifications to the C‑terminal domain. We further hypothesize that podoviruses encoding up to two RBPs show greater receptor adaptability than jumbo phages with multiple specialized RBPs. Finally, we develop a publicly accessible, DepoCat dataset (https://depocat.uwr.edu.pl) for specificity, structural classification and comparison of newly identified depolymerases.
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