金黄色葡萄球菌
微生物学
噬菌体展示
生物
烯醇化酶
抗体
表位
单链可变片段
淘选
重组DNA
病毒学
肽库
细菌
单克隆抗体
肽序列
免疫学
生物化学
遗传学
基因
免疫组织化学
作者
W Wang,Chi‐Hsin Lee,Chao‐Jung Wu,Sy‐Jye Leu,Pei‐Shih Kao,Bor‐Yu Tsai,Ko‐Jiunn Liu,Liao-Chun Chiang,Hsiu‐Jung Lo,Yan‐Chiao Mao,Yi‐Yuan Yang
摘要
ABSTRACT Staphylococcus aureus , a prevalent gram‐positive bacterium in human populations, poses a significant risk for causing serious opportunistic infections and increasing antibiotic resistance. Alpha‐enolase in S. aureus plays important roles in extracellular matrix binding and biofilm formation. These functions enable S. aureus to invade host tissues and cause infections. The aim of this study was to develop specific alpha‐enolase chicken antibodies through phage display technology targeting S. aureus surface proteins as a potential alternative to antibiotic therapy. A chicken was immunized with recombinant S. aureus alpha‐enolase, leading to the construction of two phage display single‐chain variable fragment libraries of 3.32 × 10 6 and 8.60×10 5 transformants with different linker lengths. After four rounds of biopanning, five single‐chain variable fragment antibody clones, including three with high binding affinities (SaS1, SaS2, and SaL2), were selected. These clones exhibited distinct binding patterns in epitope mapping and cross‐reaction assays, with SaS1 and SaS2 specifically recognizing S. aureus alpha‐enolase and SaL2 cross‐reacting with Streptococcus pneumoniae alpha‐enolase. Furthermore, the specificity of these antibody clones toward clinical S. aureus strains, including methicillin‐sensitive and methicillin‐resistant strains, was validated through cell‐based enzyme‐linked immunosorbent assays (ELISA) and flow cytometry assays. The identification of SaS1, SaS2, and SaL2 underscores their diagnostic and therapeutic potential, offering promising alternatives to traditional antibiotic therapies.
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