用于急性肾损伤成像的反应型与酶激活型探针策略
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1)中国科学院深圳先进技术研究院,中国科学院深港生物材料联合实验室,广东省纳米医药重点实验室,深圳 518055;2)深圳市宝安区人民医院肾内科,深圳 518100;3)北京生命科技研究院,北京 102299

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国家重点研发计划(2023YFA0915400),深圳市医学科研基金(A2303057),国家自然科学基金(82470719,22574170)和深圳市科技计划(KQTD20210811090115019)资助项目。


Reactive and Enzyme-activated Probe Strategies for Imaging Acute Kidney Injury
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1)Guangdong Key Laboratory of Nanomedicine, CAS-HK Joint Lab of Biomaterials, Shenzhen Institutes of Advanced Technology,Chinese Academy of Sciences, Shenzhen 518055, China;2)Department of Nephrology,Shenzhen Bao’an People’s Hospital, Shenzhen 518100, China;3)Beijing Life Science Academy (BLSA), Beijing 102299, China

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This work was supported by grants from the National Key Research and Development Program of China (2023YFA0915400), Shenzhen Medical Research Funding (A2303057), The National Natural Science Foundation of China (82470719, 22574170), and the Shenzhen Science and Technology Program (KQTD20210811090115019).

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    摘要:

    急性肾损伤(AKI)是住院患者常见的危重症,临床上主要依赖血清肌酐和尿量进行诊断,但这些指标往往存在反应滞后和信息维度有限的问题,因而不利于早期识别与精准分型。本文综述了AKI成像中两类主要分子探针策略,包括反应型探针与酶激活型探针。反应型探针通过响应氧化还原相关化学物质实现早期损伤的可视化,并按成像模态归纳为荧光、磁共振与核医学和光声成像3类,其中部分探针已在临床样本中完成初步验证,提示一定转化潜力。酶激活型探针则利用肾小管功能酶,凋亡相关酶及其他酶类的特异性切割或催化反应产生信号,本文按酶类别进行整理,同时总结了该方向由单酶检测向多靶点、多模态与诊疗一体化发展的趋势。此外,本文讨论了纳米探针在肾脏靶向递送与多模态整合中的应用价值,并分析其临床转化面临的主要障碍,包括AKI状态下体内药代动力学变化带来的解释复杂性、长期安全性证据不足,以及制备与评价标准尚不统一等问题。结合临床靶点的验证基础、成像模态的临床可及性与探针设计的可转化性等要素,本文进一步梳理了分子探针走向临床应用的可能路径。通过汇总代表性探针及其特点,本文旨在为AKI精准影像诊断体系的构建提供参考。

    Abstract:

    Acute kidney injury (AKI) is a prevalent and life-threatening clinical syndrome characterised by a rapid decline in renal function and diverse pathological etiologies. The condition has been demonstrated to be associated with elevated mortality rates and an increased risk of progression to chronic kidney disease. At present, clinicians depend heavily on conventional functional markers, such as serum creatinine and urine output, for the diagnosis and staging of the disease. It is evident that these conventional indicators characteristically manifest a considerable temporal delay and only undergo modification subsequent to considerable tissue damage. This severely restricts the timeframe for early detection and timely therapeutic intervention. Furthermore, standard markers fail to provide specific biological information regarding the underlying cellular injury mechanisms. The utilisation of advanced probe technologies in molecular imaging offers a robust alternative to overcome these inherent diagnostic limitations.This comprehensive review systematically evaluates recent progress in the design and application of two primary categories of molecular imaging tools for acute kidney disease, specifically reactive probes and enzyme-activated probes. Reactive probes are engineered to specifically interact with redox-active chemical species, including hydrogen peroxide, peroxynitrite, hypochlorous acid, and sulfur dioxide. Because oxidative stress constitutes a primary early event in acute renal tubular damage, these probes enable researchers and clinicians to visualize early cellular injury and radical accumulation well before global renal functional decline becomes evident. We discuss the application of these reactive probes across multiple imaging modalities including fluorescence imaging, magnetic resonance imaging (MRI), positron emission tomography (PET), and photoacoustic techniques. Photoacoustic imaging combines high spatial resolution with deep tissue penetration and has successfully demonstrated the ability to provide diagnostic alerts up to 12 h before any detectable rise in serum creatinine levels. Additionally, specific reactive probes have shown promising translational potential when tested by high-throughput screening in clinical human urine samples. Enzyme-activated probes target the specific catalytic activity of disease-relevant enzymes. These include well-documented renal tubular structural biomarkers such as NAG, GGT, and ALP, along with apoptosis-related caspases and specific nitroreductases. By responding only to enzymatic cleavage, these tools provide highly specific and pathology-directed imaging readouts. Recent structural design strategies in this field have advanced significantly beyond single-enzyme detection. Researchers are now focusing on sophisticated dual-target recognition to minimize background noise, multimodal integration to cross-validate imaging signals, and theranostic applications where probes simultaneously deliver diagnostic feedback and therapeutic agents to injured tissues. Nanotechnology serves as a fundamental enabler for realizing these advanced probe functions. By precisely optimizing nanoparticle parameters such as hydrodynamic size, surface charge, and targeting ligands, researchers can achieve amplified signal output, highly precise kidney delivery, and protection against premature degradation in the systemic circulation. For example, modifying surface charges can significantly enhance the active uptake of nanoprobes by damaged renal tubular epithelial cells.While preclinical probe development has progressed rapidly, moving these technologies into routine clinical practice remains a major challenge. We analyze the translational feasibility and current obstacles from biological, technological, and regulatory perspectives. Although biological targets such as KIM-1, FAP, and ALP have been validated in extensive patient cohorts, practical barriers severely limit their immediate clinical application. These obstacles involve complex changes in in vivo pharmacokinetics. During an acute injury episode, the extreme drop in the glomerular filtration rate alters probe clearance and can cause unwanted systemic accumulation or confusing background imaging signals. Other major hurdles include a lack of comprehensive long-term toxicity data and the absence of standardized manufacturing protocols to ensure batch-to-batch consistency. Future successful translation will require rigorous multi-center clinical studies to confirm the true diagnostic value of these probes over traditional markers. Researchers must also establish strict standardization of imaging procedures and comprehensive safety evaluations. Ultimately, this review provides a thorough reference framework for designing clinically translatable molecular probes and building a precision diagnostic imaging system for acute kidney injury.

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陈汝龙,谢婷妃,张金鑫,陈嘉婷,李洁,张鹏飞,陈继红,蔡林涛.用于急性肾损伤成像的反应型与酶激活型探针策略[J].生物化学与生物物理进展,2026,53(6):1622-1637 CHEN Ru-Long, XIE Ting-Fei, ZHANG Jin-Xin, CHEN Jia-Ting, LI Jie, ZHANG Peng-Fei, CHEN Ji-Hong, CAI Lin-Tao. Reactive and Enzyme-activated Probe Strategies for Imaging Acute Kidney Injury[J]. Progress in Biochemistry and Biophysics,2026,53(6):1622-1637

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  • 收稿日期:2026-01-23
  • 最后修改日期:2026-06-02
  • 录用日期:2026-05-14
  • 在线发布日期: 2026-05-15
  • 出版日期: 2026-06-28
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