Oxidized protein states define metastatic fitness in lung cancer
Ge, M.; Gohar, M.; Torrini, C.; Suzuki, Y.; Jiang, S.; Huang, Y.; Weinstein, B.; Nayyar, N.; Ali, M. Y.; Sullivan, E.; Harry, S.; Cakici, C.; Dai, Z.; Vivori, N.; Qiao, Z.; Zhang, J.; Zhang, I.; Che, C.; Stevens, R.; Khandelwal, N.; Jeong, J.; Azer, S.; Xu, Y.; Ibrahim, S.; Mount, C.; Feng, H.; Haehnel, P.; Martinez-Lage, M.; Sequist, L.; Li, C.; Lu, Q.; Wei, F.-Y.; Suva, M.; Liau, B.; Hata, A.; Chouchani, E. T.; Iafrate, A. J.; Lawrence, M. S.; Gulhan, D.; Brastianos, P. K.; bar-peled, l.
Show abstract
AbstractReactive oxygen species (ROS) are a pervasive feature of human cancers, yet the protein targets through which ROS-regulated cell states shape tumor biology remains poorly understood. Here, using cysteine chemical proteomics, we define signatures of protein states under distinct cellular ROS environments that capture protein oxidation and conformational changes. Quantifying these signatures in primary lung tumors and brain metastases revealed a surprising enrichment of oxidative states in metastasis. To determine how these states support fitness, we performed genome-wide CRISPR screens and identified the mitochondrial Complex I subunit NDUFA10 as a key oxidation-dependent vulnerability. Oxidation of NDUFA10*Cys253 supports Complex I function through a previously unrecognized nucleotide kinase activity that maintains mitochondrial DNA levels. Enforcing a reduced conformation in NDUFA10 disrupts brain metastatic colonization in vivo. These findings establish ROS regulated protein states as a functional layer of tumor fitness, providing a framework for identifying redox-dependent mechanisms that support cancer progression.
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