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LOD 悖论:在生物传感器研究与开发中,低灵敏度并不总是更好。

The LOD paradox: When lower isn't always better in biosensor research and development.

机构信息

Biochemistry Department, Faculty of Science, Ege University, 35100, Izmir, Turkiye.

Biochemistry Department, Faculty of Science, Ege University, 35100, Izmir, Turkiye.

出版信息

Biosens Bioelectron. 2024 Nov 15;264:116670. doi: 10.1016/j.bios.2024.116670. Epub 2024 Aug 13.

DOI:10.1016/j.bios.2024.116670
PMID:39151260
Abstract

Biosensor research has long focused on achieving the lowest possible Limits of Detection (LOD), driving significant advances in sensitivity and opening up new possibilities in analysis. However, this intense focus on low LODs may not always meet the practical needs or suit the actual uses of these devices. While technological improvements are impressive, they can sometimes overlook important factors such as detection range, ease of use, and market readiness, which are vital for biosensors to be effective in real-world applications. This review advocates for a balanced approach to biosensor development, emphasizing the need to align technological advancements with practical utility. We delve into various applications, including the detection of cancer biomarkers, pathology-related biomarkers, and illicit drugs, illustrating the critical role of LOD within these contexts. By considering clinical needs and broader design aspects like cost-effectiveness, sustainability, and regulatory compliance, we argue that integrating technical progress with practicality will enhance the impact of biosensors. Such an approach ensures that biosensors are not only technically sound but also widely useable and beneficial in real-world applications. Addressing the diverse analytical parameters alongside user expectations and market demands will likely maximize the real-world impact of biosensors.

摘要

生物传感器研究长期以来一直专注于实现尽可能低的检测限(LOD),这推动了灵敏度的显著提高,并为分析开辟了新的可能性。然而,这种对低 LOD 的强烈关注并不总是满足实际需求或适合这些设备的实际用途。虽然技术改进令人印象深刻,但它们有时可能会忽略检测范围、易用性和市场准备等重要因素,而这些因素对于生物传感器在实际应用中有效至关重要。

本综述倡导在生物传感器开发中采取平衡的方法,强调需要将技术进步与实际用途相结合。我们深入探讨了各种应用,包括癌症生物标志物、病理相关生物标志物和非法药物的检测,说明了 LOD 在这些背景下的关键作用。通过考虑临床需求和更广泛的设计方面,如成本效益、可持续性和法规遵从性,我们认为将技术进步与实用性相结合将增强生物传感器的影响力。这种方法确保生物传感器不仅在技术上合理,而且在实际应用中广泛可用且有益。

同时考虑分析参数的多样性以及用户期望和市场需求,可能会最大限度地提高生物传感器在实际中的应用效果。

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