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Tuberculosis conundrum-current and future scenarios:A proposed comprehensive approach combining laboratory,imaging,and computing advances 被引量:4
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作者 Suleman Adam Merchant Mohd Javed Saifullah Shaikh Prakash Nadkarni 《World Journal of Radiology》 2022年第6期114-136,共23页
Tuberculosis(TB)remains a global threat,with the rise of multiple and extensively drug resistant TB posing additional challenges.The International health community has set various 5-yearly targets for TB elimination:m... Tuberculosis(TB)remains a global threat,with the rise of multiple and extensively drug resistant TB posing additional challenges.The International health community has set various 5-yearly targets for TB elimination:mathematical modelling suggests that a 2050 target is feasible with a strategy combining better diagnostics,drugs,and vaccines to detect and treat both latent and active infection.The availability of rapid and highly sensitive diagnostic tools(Gene-Xpert,TB-Quick)will vastly facilitate population-level identification of TB(including rifampicin resistance and through it,multi-drug-resistant TB).Basicresearch advances have illuminated molecular mechanisms in TB,including the protective role of Vitamin D.Also,Mycobacterium tuberculosis impairs the host immune response through epigenetic mechanisms(histone-binding modulation).Imaging will continue to be key,both for initial diagnosis and follow-up.We discuss advances in multiple imaging modalities to evaluate TB tissue changes,such as molecular imaging techniques(including pathogen-specific positron emission tomography imaging agents),non-invasive temporal monitoring,and computing enhancements to improve data acquisition and reduce scan times.Big data analysis and Artificial Intelligence(AI)algorithms,notably in the AI subfield called“Deep Learning”,can potentially increase the speed and accuracy of diagnosis.Additionally,Federated learning makes multi-institutional/multi-city AI-based collaborations possible without sharing identifiable patient data.More powerful hardware designs-e.g.,Edge and Quantum Computing-will facilitate the role of computing applications in TB.However,“Artificial Intelligence needs real Intelligence to guide it!”To have maximal impact,AI must use a holistic approach that incorporates time tested human wisdom gained over decades from the full gamut of TB,i.e.,key imaging and clinical parameters,including prognostic indicators,plus bacterial and epidemiologic data.We propose a similar holistic approach at the level of national/international policy formulation and implementation,to enable effective culmination of TB’s endgame,summarizing it with the acronym“TB-REVISITED”. 展开更多
关键词 TUBERCULOSIS RADIOLOGY genxpert Artificial intelligence Molecular imaging Quantum computing
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GeneXpert检测在结核病诊断中的应用 被引量:3
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作者 曹鸥婕 《中外医疗》 2017年第28期28-29,33,共3页
目的评价Gen Xpert检测在结核病诊断中的应用价值。方法方便选取2014年2月—2017年3月云南省曲靖市第一人民医院感染科接收308例对象进行检查,以培养法作为诊断"金标准"。结果 GeneXpert诊断敏感性、特异性、阴性预测值、符... 目的评价Gen Xpert检测在结核病诊断中的应用价值。方法方便选取2014年2月—2017年3月云南省曲靖市第一人民医院感染科接收308例对象进行检查,以培养法作为诊断"金标准"。结果 GeneXpert诊断敏感性、特异性、阴性预测值、符合率高于PPD皮试、T-SPOT.TB,差异有统计学意义(P<0.05)。GeneXpert对结核病的诊断敏感性96.20%、特异度99.33%、阳性预测值99.35%、阴性预测值96.13%、符合率97.73%。相较于比例法,GeneXpert对利福平耐药的敏感性、特异度、阳性预测值、阴性预测值、符合率分别为66.67%、92.47%、42.11%、97.12%、90.51%。结论 GeneXpert检测诊断结核病效果较好,可作为初始诊断的标准技术。 展开更多
关键词 结核病 genxpert检测 诊断
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