检验医学 ›› 2026, Vol. 41 ›› Issue (3): 299-306.DOI: 10.3969/j.issn.1673-8640.2026.03.015
陈添1, 蔡秦真2, 陶宇煊2, 王军2, 商宇2, 伍墨2, 庹文彬2, 袁纯辉2, 向贇1(
)
收稿日期:2025-04-23
修回日期:2025-11-07
出版日期:2026-03-30
发布日期:2026-04-14
通讯作者:
向贇
作者简介:向 贇,E-mail:xiangyun5272008@163.com。基金资助:
CHEN Tian1, CAI Qinzhen2, TAO Yuxuan2, WANG Jun2, SHANG Yu2, WU Mo2, TUO Wenbin2, YUAN Chunhui2, XIANG Yun1(
)
Received:2025-04-23
Revised:2025-11-07
Online:2026-03-30
Published:2026-04-14
Contact:
XIANG Yun
摘要:
肺炎支原体(MP)是呼吸道感染主要的病原体之一,由MP引发的社区获得性肺炎(CAP)在儿童和青少年人群中发病率较高。MP实验室检测方法主要包括病原学检测、血清学检测和分子生物学检测,不同方法各有优缺点。MP分离培养耗时长、特异性不高,临床实验室已较少常规开展。目前主要采用MP特异性抗原、抗体和聚合酶链反应(PCR)检测MP 。近年来,环介导等温扩增(LAMP)、成簇规律间隔短回文重复序列/关联蛋白(CRISPR/Cas)技术、纳米生物传感器等新型检测方法在MP诊断领域取得显著进展,给临床提供了更多选择。文章对MP常用检测方法和新型实验室诊断技术的发展现状、优缺点、应用价值进行综述,旨在为MP的临床诊断和应用场景选择提供参考。
中图分类号:
陈添, 蔡秦真, 陶宇煊, 王军, 商宇, 伍墨, 庹文彬, 袁纯辉, 向贇. 肺炎支原体实验室诊断方法研究进展[J]. 检验医学, 2026, 41(3): 299-306.
CHEN Tian, CAI Qinzhen, TAO Yuxuan, WANG Jun, SHANG Yu, WU Mo, TUO Wenbin, YUAN Chunhui, XIANG Yun. Research progress on laboratory diagnostic methods for Mycoplasma pneumonia[J]. Laboratory Medicine, 2026, 41(3): 299-306.
| 方法 | 目标 | 优点 | 缺点 | 样本类型 | 参考文献 |
|---|---|---|---|---|---|
| ICA | 核糖体蛋白L7/L12、 | 经济、快速、操作简便 | 不同检测方法之间敏感性差异较大(62.5%~97.4%)、易与其他呼吸道病原体产生交叉反应 | 咽拭子 | [ |
| P1黏附蛋白、 | 咽拭子/痰 | [ | |||
| GroES分子伴侣蛋白 | MP分离株/GroES重组蛋白 | [ | |||
| CFT | IgM | 成本低、适用范围广、特异性较高(97.0%) | 操作复杂、敏感性较低(58.8%)、 无法区分抗体类型 | 血清 | [ |
| PA | IgM/IgG | 快速、操作相对简便、无需专业仪器 | 易受非特异性凝集干扰、不同抗体滴度条件下的诊断灵敏度和特异性存在差异、主观判读易产生误差 | 血清 | [ |
| ELISA | IgA/IgM/IgG | 经济、特异性较高(74.8%~ 96.0%),可区分抗体类型,可定量分析,通量高 | 不同品牌试剂盒灵敏度差异大(57.9%~91%)、耗时较长、对仪器性能和操作人员的熟练度要求高 | 血清 | [ |
| CLIA | IgM/IgG | 自动化检测、检测线性范围广,敏感性(62.1%~74.3%)和特异性(72.9%~87.0%)较高 | 设备成本高、未被临床大量验证 | 血清 | [ |
| ELISpot | Mp-IgM-ASC | 可以区分携带和感染 | 灵敏度低、耗时长 | 全血 | [ |
表1 MP不同免疫学检测方法优缺点
| 方法 | 目标 | 优点 | 缺点 | 样本类型 | 参考文献 |
|---|---|---|---|---|---|
| ICA | 核糖体蛋白L7/L12、 | 经济、快速、操作简便 | 不同检测方法之间敏感性差异较大(62.5%~97.4%)、易与其他呼吸道病原体产生交叉反应 | 咽拭子 | [ |
| P1黏附蛋白、 | 咽拭子/痰 | [ | |||
| GroES分子伴侣蛋白 | MP分离株/GroES重组蛋白 | [ | |||
| CFT | IgM | 成本低、适用范围广、特异性较高(97.0%) | 操作复杂、敏感性较低(58.8%)、 无法区分抗体类型 | 血清 | [ |
| PA | IgM/IgG | 快速、操作相对简便、无需专业仪器 | 易受非特异性凝集干扰、不同抗体滴度条件下的诊断灵敏度和特异性存在差异、主观判读易产生误差 | 血清 | [ |
| ELISA | IgA/IgM/IgG | 经济、特异性较高(74.8%~ 96.0%),可区分抗体类型,可定量分析,通量高 | 不同品牌试剂盒灵敏度差异大(57.9%~91%)、耗时较长、对仪器性能和操作人员的熟练度要求高 | 血清 | [ |
| CLIA | IgM/IgG | 自动化检测、检测线性范围广,敏感性(62.1%~74.3%)和特异性(72.9%~87.0%)较高 | 设备成本高、未被临床大量验证 | 血清 | [ |
| ELISpot | Mp-IgM-ASC | 可以区分携带和感染 | 灵敏度低、耗时长 | 全血 | [ |
| 方法 类型 | 信号策略 | 系统名称 | 效应蛋白 | 信号放大方式 | 目标分子 | 灵敏度 | 单碱基分辨率 | 检测周期 | 参考文献 |
|---|---|---|---|---|---|---|---|---|---|
| CRISPR/Cas+等温扩增 | 可视化/荧光 | ERA①/CRISPR-Cas12a双系统 | LbCas12a | ERA① | DNA | 100 拷贝·mL-1,1 拷贝·mL-1 | 是 | 30.0 min | [ |
| 荧光 | LAMP-CRISPR/Cas12b | Cas12b | LAMP | DNA | 33.7 拷贝·tesP分离培养耗时较长 | 是 | [ | ||
| 荧光 | RPA②-CRISPR/Cas12a | Cas12a | RPA② | DNA | 2 拷贝·test-1 | 是 | <1 h | [ | |
| 荧光 | RPA②-CRISPR | Cas12b | RPA② | DNA | 5 fg | 是 | [ | ||
| CRISPR/Cas+等温扩增+生物传感器 | 荧光 | CHAMP系统 | Cas12b | LAMP | DNA | 0.5 拷贝·μL-1 | 是 | 23.5 min | [ |
| 可视化 | CRISPR/Cas9-LFB | Cas9 | RPA② | DNA | 3 拷贝 | 是 | 30.0 min | [ | |
| 荧光 | PDTCTR | Cas12f_ge4.1 | RPA② | DNA | 10 拷贝·μL-1 | 是 | 50.0 min | [ | |
| 质谱 | CRISPR/ Cas12a增强型DNA纳米机 | Cas12a | DNA | 38 amol | 是 | [ |
表2 基于CRISPR/Cas系统的核酸检测技术在MP检测中的应用
| 方法 类型 | 信号策略 | 系统名称 | 效应蛋白 | 信号放大方式 | 目标分子 | 灵敏度 | 单碱基分辨率 | 检测周期 | 参考文献 |
|---|---|---|---|---|---|---|---|---|---|
| CRISPR/Cas+等温扩增 | 可视化/荧光 | ERA①/CRISPR-Cas12a双系统 | LbCas12a | ERA① | DNA | 100 拷贝·mL-1,1 拷贝·mL-1 | 是 | 30.0 min | [ |
| 荧光 | LAMP-CRISPR/Cas12b | Cas12b | LAMP | DNA | 33.7 拷贝·tesP分离培养耗时较长 | 是 | [ | ||
| 荧光 | RPA②-CRISPR/Cas12a | Cas12a | RPA② | DNA | 2 拷贝·test-1 | 是 | <1 h | [ | |
| 荧光 | RPA②-CRISPR | Cas12b | RPA② | DNA | 5 fg | 是 | [ | ||
| CRISPR/Cas+等温扩增+生物传感器 | 荧光 | CHAMP系统 | Cas12b | LAMP | DNA | 0.5 拷贝·μL-1 | 是 | 23.5 min | [ |
| 可视化 | CRISPR/Cas9-LFB | Cas9 | RPA② | DNA | 3 拷贝 | 是 | 30.0 min | [ | |
| 荧光 | PDTCTR | Cas12f_ge4.1 | RPA② | DNA | 10 拷贝·μL-1 | 是 | 50.0 min | [ | |
| 质谱 | CRISPR/ Cas12a增强型DNA纳米机 | Cas12a | DNA | 38 amol | 是 | [ |
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