Synthetic and Functional Biomolecules Center, Key Laboratory of Bioorganic Chemistry and Molecular Engineering of Ministry of Education, Beijing National Laboratory for Molecular Sciences, College of Chemistry and Molecular Engineering, Peking University, Beijing, China.
Peking-Tsinghua Center for Life Sciences, Peking University, Beijing, China.
Nat Commun. 2024 Mar 28;15(1):2712. doi: 10.1038/s41467-024-46985-3.
In situ profiling of subcellular proteomics in primary living systems, such as native tissues or clinic samples, is crucial for understanding life processes and diseases, yet challenging due to methodological obstacles. Here we report CAT-S, a bioorthogonal photocatalytic chemistry-enabled proximity labeling method, that expands proximity labeling to a wide range of primary living samples for in situ profiling of mitochondrial proteomes. Powered by our thioQM labeling warhead development and targeted bioorthogonal photocatalytic chemistry, CAT-S enables the labeling of mitochondrial proteins in living cells with high efficiency and specificity. We apply CAT-S to diverse cell cultures, dissociated mouse tissues as well as primary T cells from human blood, portraying the native-state mitochondrial proteomic characteristics, and unveiled hidden mitochondrial proteins (PTPN1, SLC35A4 uORF, and TRABD). Furthermore, CAT-S allows quantification of proteomic perturbations on dysfunctional tissues, exampled by diabetic mouse kidneys, revealing the alterations of lipid metabolism that may drive disease progression. Given the advantages of non-genetic operation, generality, and spatiotemporal resolution, CAT-S may open exciting avenues for subcellular proteomic investigations of primary samples that are otherwise inaccessible.
在原生生物系统(如天然组织或临床样本)中进行亚细胞蛋白质组的原位分析对于理解生命过程和疾病至关重要,但由于方法学上的障碍,这一任务极具挑战性。在这里,我们报告了 CAT-S,这是一种生物正交光催化化学激活的邻近标记方法,它将邻近标记扩展到广泛的原生生物样本,用于原位分析线粒体蛋白质组。在我们的硫代 QM 标记弹头开发和靶向生物正交光催化化学的推动下,CAT-S 能够高效和特异地标记活细胞中的线粒体蛋白。我们将 CAT-S 应用于多种细胞培养物、分离的小鼠组织以及来自人血液的原代 T 细胞,描绘了天然状态下的线粒体蛋白质组特征,并揭示了隐藏的线粒体蛋白(PTPN1、SLC35A4 uORF 和 TRABD)。此外,CAT-S 还可以定量分析功能失调组织的蛋白质组变化,以糖尿病小鼠肾脏为例,揭示了可能导致疾病进展的脂质代谢变化。鉴于其非遗传操作、通用性和时空分辨率的优势,CAT-S 可能为原本无法触及的原生样品的亚细胞蛋白质组研究开辟令人兴奋的途径。