Paediatric sleep diagnostics in the 21st century: the era of "sleep-omics"?

IF 9 1区 医学 Q1 RESPIRATORY SYSTEM European Respiratory Review Pub Date : 2024-06-26 Print Date: 2024-04-01 DOI:10.1183/16000617.0041-2024
Hannah Vennard, Elise Buchan, Philip Davies, Neil Gibson, David Lowe, Ross Langley
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Abstract

Paediatric sleep diagnostics is performed using complex multichannel tests in specialised centres, limiting access and availability and resulting in delayed diagnosis and management. Such investigations are often challenging due to patient size (prematurity), tolerability, and compliance with "gold standard" equipment. Children with sensory/behavioural issues, at increased risk of sleep disordered breathing (SDB), often find standard diagnostic equipment difficult.SDB can have implications for a child both in terms of physical health and neurocognitive development. Potential sequelae of untreated SDB includes failure to thrive, cardiopulmonary disease, impaired learning and behavioural issues. Prompt and accurate diagnosis of SDB is important to facilitate early intervention and improve outcomes.The current gold-standard diagnostic test for SDB is polysomnography (PSG), which is expensive, requiring the interpretation of a highly specialised physiologist. PSG is not feasible in low-income countries or outwith specialist sleep centres. During the coronavirus disease 2019 pandemic, efforts were made to improve remote monitoring and diagnostics in paediatric sleep medicine, resulting in a paradigm shift in SDB technology with a focus on automated diagnosis harnessing artificial intelligence (AI). AI enables interrogation of large datasets, setting the scene for an era of "sleep-omics", characterising the endotypic and phenotypic bedrock of SDB by drawing on genetic, lifestyle and demographic information. The National Institute for Health and Care Excellence recently announced a programme for the development of automated home-testing devices for SDB. Scorer-independent scalable diagnostic approaches for paediatric SDB have potential to improve diagnostic accuracy, accessibility and patient tolerability; reduce health inequalities; and yield downstream economic and environmental benefits.

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21 世纪的儿科睡眠诊断:"睡眠组学 "时代?
儿科睡眠诊断是在专业中心使用复杂的多通道测试进行的,这限制了儿科睡眠诊断的可及性,并导致诊断和管理的延误。由于患者体型(早产儿)、耐受性以及是否符合 "黄金标准 "设备等原因,此类检查往往具有挑战性。有感官/行为问题的儿童患睡眠呼吸紊乱(SDB)的风险更高,他们通常很难使用标准诊断设备。未经治疗的 SDB 可能带来的后遗症包括发育不良、心肺疾病、学习障碍和行为问题。目前 SDB 的黄金标准诊断测试是多导睡眠图(PSG),但其价格昂贵,需要高度专业的生理学家进行解读。在低收入国家或专业睡眠中心以外的地区,多导睡眠图并不可行。在 2019 年冠状病毒疾病大流行期间,人们努力改进儿科睡眠医学中的远程监测和诊断,导致 SDB 技术的范式发生转变,其重点是利用人工智能 (AI) 进行自动诊断。人工智能可对大型数据集进行分析,为 "睡眠组学 "时代的到来创造了条件,通过利用遗传、生活方式和人口信息,确定 SDB 的内型和表型基石。美国国家健康与护理卓越研究所最近宣布了一项针对 SDB 的家庭自动测试设备开发计划。与评分无关的儿科 SDB 可扩展诊断方法有可能提高诊断准确性、可及性和患者耐受性;减少健康不平等;并产生下游经济和环境效益。
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来源期刊
European Respiratory Review
European Respiratory Review Medicine-Pulmonary and Respiratory Medicine
CiteScore
14.40
自引率
1.30%
发文量
91
审稿时长
24 weeks
期刊介绍: The European Respiratory Review (ERR) is an open-access journal published by the European Respiratory Society (ERS), serving as a vital resource for respiratory professionals by delivering updates on medicine, science, and surgery in the field. ERR features state-of-the-art review articles, editorials, correspondence, and summaries of recent research findings and studies covering a wide range of topics including COPD, asthma, pulmonary hypertension, interstitial lung disease, lung cancer, tuberculosis, and pulmonary infections. Articles are published continuously and compiled into quarterly issues within a single annual volume.
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