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Published on: June 16, 2019
Protein tyrosine sulfation: from molecular mechanisms and pathophysiology to analytical advances and therapeutic
Wenqing Liu1, Qingqing Zou1, Wenyi Liu2
1Institute of Pharmacy and Pharmacology, Hunan Province Cooperative Innovation Center for Molecular Target New Drug Study, School of Pharmaceutical Science, Hengyang Medical College, University of South China, Hengyang 421001, China.
Abstract:
Protein tyrosine sulfation (PTS), catalyzed by the Golgi-resident tyrosylprotein sulfotransferases 1 and 2 (TPST1 and TPST2) using 3'-phosphoadenosine 5'-phosphosulfate (PAPS) as the sulfuryl donor, regulates extracellular protein-protein interactions but remains analytically challenging because sulfotyrosine is labile and nearly isobaric with phosphotyrosine. This review summarizes the molecular and structural basis of TPST-mediated sulfation, its roles in infection, cancer, immunity, and cardiovascular disease, and recent advances in sulfoproteomics, including open-search mass spectrometry and single-molecule nanopore sensing. We critically evaluate non-canonical cytoplasmic and nuclear sulfation claims and emphasize the need for topology-aware, orthogonal validation. We also propose the PAPS pool hypothesis as a testable framework for examining how PAPS synthesis, Golgi transport, and pathway-specific consumption may shape protein and glycan sulfation, together with a four-step validation framework for non-canonical assignments and a compartmentalized kinase-crosstalk model for selected topological discrepancies. Finally, we assess emerging therapeutic strategies and their key limitations, including selectivity, Golgi access, pharmacokinetics, toxicity, and effects on other PAPS-dependent pathways. Overall, this review provides an evidence-based framework for defining the boundaries of PTS and guiding future analytical and therapeutic studies.
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