Mycobacterium tuberculosis fluorescent and bioluminescent imaging technologies: addressing the issue of sensitivity.

IF 2.7
Expert review of respiratory medicine Pub Date : 2026-03-01 Epub Date: 2025-10-30 DOI:10.1080/17476348.2025.2581338
Amanda C Zangirolami, Aaron B Benjamin, Hatice Ceylan Koydemir, Wenshe R Liu, Jeffrey D Cirillo
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Abstract

Introduction: Tuberculosis (TB), caused by Mycobacterium tuberculosis (Mtb), is a common cause of death in humans worldwide. The slow growth rate of Mtb (~20 hours) makes progress in research slow and diagnosis difficult.

Areas covered: Imaging technologies that can quantify viability and infectious load can have a profound impact on progress toward new therapeutics and vaccines and allow rapid diagnosis. Although imaging can quantify bacterial loads throughout an entire animal in real-time, sensitivity is a key limitation. Fluorescent and bioluminescent recombinant strains have been used within the TB field and in other bacteria but have a threshold of ~103 bacteria in mice. Reporter enzyme fluorescence (REF) is a new and very sensitive Mtb imaging technology that uses BlaC, a highly specific surface-localized β-lactamase, in combination with fluorogenic or bioluminescent probes. As such, REF can reduce the threshold to 10-100 bacteria in vivo and detect 10 bacteria within 10 minutes in vitro.

Expert opinion: Recombinant reporter systems for imaging bacteria should continue to improve and may reach similar thresholds, but at present, REF remains the most sensitive approach. Furthermore, new more sensitive probes can be readily developed, suggesting that REF will ultimately allow detection of single bacteria in an infected host.

结核分枝杆菌荧光和生物发光成像技术:解决敏感性问题。
结核(TB)由结核分枝杆菌(Mtb)引起,是世界范围内人类死亡的常见原因。结核分枝杆菌生长速度慢(~20小时),使研究进展缓慢,诊断困难。涵盖领域:能够量化生存能力和感染负荷的成像技术可以对新疗法和疫苗的进展产生深远影响,并允许快速诊断。虽然成像可以实时量化整个动物体内的细菌负荷,但灵敏度是一个关键的限制。荧光和生物发光重组菌株已在结核病领域和其他细菌中使用,但在小鼠中的阈值为~103细菌。报告酶荧光(REF)是一种新的、非常敏感的结核显像技术,它使用了一种高特异性的表面定位β-内酰胺酶BlaC,结合荧光或生物发光探针。因此,REF在体内可将阈值降低到10-100个细菌,在体外可在10分钟内检测到10个细菌。专家意见:用于细菌成像的重组报告系统应该继续改进,并可能达到类似的阈值,但目前,REF仍然是最敏感的方法。此外,可以很容易地开发出新的更敏感的探针,这表明REF最终将能够检测受感染宿主中的单个细菌。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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