Protein nitrosylation is an important redox-dependent post-translational modification, with S-nitrosylation regulating cysteine residues and influencing protein activity, signaling, metabolism, mitochondrial function, immunity, and disease.
Protein carbonylation is an important oxidative post-translational modification associated with reactive oxygen species, oxidative stress, protein damage, aging, mitochondrial dysfunction, inflammation, and disease. Learn how carbonylated proteins form, affect cellular function, and are detected.
Protein nitrosylation is an important redox-dependent post-translational modification, with S-nitrosylation regulating cysteine residues and influencing protein activity, signaling, metabolism, mitochondrial function, immunity, and disease.
Protein carbonylation is an important oxidative post-translational modification associated with reactive oxygen species, oxidative stress, protein damage, aging, mitochondrial dysfunction, inflammation, and disease. Learn how carbonylated proteins form, affect cellular function, and are detected.