1)国家烟草质量监督检验中心,烟草生物学效应重点实验室,郑州 450006;2)北京生命科技研究院,北京 102200
北京生命科技研究院(2023000CA0040,2023000CB0030)资助项目。
1)Key Laboratory of Tobacco Biological Effects, National Tobacco Quality Supervision and Inspection Center, Zhengzhou 450006, China;2)Beijing Life Science Academy, Beijing 102200, China
This work was supported by grants from the Beijing Institute of Life Science and Technology (2023000CA0040, 2023000CB0030).
神经退行性疾病(NDDs)的发病机制涉及脑区复杂的代谢网络改变,并呈现显著的空间异质性。传统的代谢组学因缺乏空间维度,难以揭示特定脑区和细胞微环境中的关键代谢变化,限制了对NDDs核心病理机制的深入理解。以质谱成像(MSI)为核心的空间代谢组学技术,通过在组织原位对成百上千种内源性代谢物、脂质、神经递质、肽段及金属离子等进行高分辨率的同步检测与定位,克服了传统方法的局限,为NDDs发病机制的研究提供了新的空间视角。本综述讨论了主流空间代谢组学技术平台(基质辅助激光解吸电离质谱成像(MALDI-MSI)、二次离子质谱成像(SIMS-MSI)、解吸电喷雾电离质谱成像(DESI-MSI)和新兴技术等)的特性、适用场景和当前技术限制,重点阐述空间代谢组学技术在NDDs病理微环境(Aβ斑块、tau蛋白、路易小体等)化学异质性解析、脑区和细胞代谢脆弱性图谱描绘等方面的应用发展,并结合类器官模型、多器官轴、单细胞及亚细胞等当下前沿NDDs研究方法,对该技术在早期诊断、药物筛选和精准治疗等领域进行了总结和展望。
The pathogenesis of neurodegenerative diseases (NDDs) is fundamentally linked to complex and profound alterations in metabolic networks within the brain, which exhibit marked spatial heterogeneity. While conventional bulk metabolomics is powerful for detecting global metabolic shifts, it inherently lacks spatial resolution. This methodological limitation hampers the ability to interrogate critical metabolic dysregulation within discrete anatomical brain regions and specific cellular microenvironments, thereby constraining a deeper understanding of the core pathological mechanisms that initiate and drive NDDs. To address this critical gap, spatial metabolomics, with mass spectrometry imaging (MSI) at its core, has emerged as a transformative approach. It uniquely overcomes the limitations of bulk methods by enabling high-resolution, simultaneous detection and precise localization of hundreds to thousands of endogenous molecules—including primary metabolites, complex lipids, neurotransmitters, neuropeptides, and essential metal ions—directly in situ from tissue sections. This powerful capability offers an unprecedented spatial perspective for investigating the intricate and heterogeneous chemical landscape of NDD pathology, opening new avenues for discovery. Accordingly, this review provides a comprehensive overview of the field, beginning with a discussion of the technical features, optimal application scenarios, and current limitations of major MSI platforms. These include the widely adopted matrix-assisted laser desorption/ionization (MALDI)-MSI, the ultra-high-resolution technique of secondary ion mass spectrometry (SIMS)-MSI, and the ambient ionization method of desorption electrospray ionization (DESI)-MSI, along with other emerging technologies. We then highlight the pivotal applications of spatial metabolomics in NDD research, particularly its role in elucidating the profound chemical heterogeneity within distinct pathological microenvironments. These applications include mapping unique molecular signatures around amyloid β-protein (Aβ) plaques, uncovering the metabolic consequences of neurofibrillary tangles composed of hyperphosphorylated tau protein, and characterizing the lipid and metabolite composition of Lewy bodies. Moreover, we examine how spatial metabolomics contributes to constructing detailed metabolic vulnerability maps across the brain, shedding light on the biochemical factors that render certain neuronal populations and anatomical regions selectively susceptible to degeneration while others remain resilient. Looking beyond current applications, we explore the immense potential of integrating spatial metabolomics with other advanced research methodologies. This includes its combination with three-dimensional brain organoid models to recapitulate disease-relevant metabolic processes, its linkage with multi-organ axis studies to investigate how systemic metabolic health influences neurodegeneration, and its convergence with single-cell and subcellular analyses to achieve unprecedented molecular resolution. In conclusion, this review not only summarizes the current state and critical role of spatial metabolomics in NDD research but also offers a forward-looking perspective on its transformative potential. We envision its continued impact in advancing our fundamental understanding of NDDs and accelerating translation into clinical practice—from the discovery of novel biomarkers for early diagnosis to the development of high-throughput drug screening platforms and the realization of precision medicine for individuals affected by these devastating disorders.
徐路涛,李乾,韩书磊,陈欢,侯宏卫,胡清源.空间代谢组学技术在神经退行性疾病中的应用发展[J].生物化学与生物物理进展,2025,52(9):2346-2359 XU Lu-Tao, LI Qian, HAN Shu-Lei, CHEN Huan, HOU Hong-Wei, HU Qing-Yuan. The Application of Spatial Resolved Metabolomics in Neurodegenerative Diseases[J]. Progress in Biochemistry and Biophysics,2025,52(9):2346-2359
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