Ziyue Chen, Jiaqi Li, Yan Bao, Mengmeng Wang, Haoyan Chen, Mingjiong Zhang, Lina Ding, Shuangshuang Wu, Baoxing Shen
Cellular senescence involves progressive acidification, but how cells sense and adapt to this pH shift remains unclear. Here we report that metabolic enzyme GOT1 functions as a pH sensor that undergoes liquid-liquid phase separation (LLPS) to combat senescence. Proteomic analysis identified GOT1 upregulation in aged human lung cells. Acidic conditions mimicking senescence directly induce GOT1 LLPS via its N-terminal intrinsically disordered region (IDR1), recruiting ME1 to form dynamic enzymatic co-condensates that scavenge reactive oxygen species and alleviate oxidative stress. To quantitatively interrogate GOT1's pH microenvironment during senescence, we engineered BDP-PLP, a first-in-class fluorescent probe conjugating the native GOT1 cofactor pyridoxal phosphate to a BODIPY fluorophore. Operating via a binding-inhibited PET mechanism, this probe enables high-specificity GOT1 targeting and pH-dependent fluorescence lifetime imaging (FLIM). Using FLIM, we achieved quantitative real-time visualization of pH dynamics within GOT1 condensates in living cells, revealing that phase separation generates a highly acidic local microenvironment critical for its anti-senescence function. This study uncovers a pH-triggered phase separation mechanism that bolsters antioxidant defense via metabolic enzyme co-condensation, offering new perspectives on metabolic adaptation in aging and establishing a chemical tool for probing microenvironmental dynamics.