Seco-tanapartholide B ameliorates acute lung injury by covalently activating PKM2 and reprogramming glycolytic
Dongrong Zhu1, Lirong Zhao2, Yue Li2
1School of Chemistry and Chemical Engineering, Tianjin University of Technology, Tianjin 300384, People's Republic of China; National Clinical Research Center for Cancer, Key Laboratory of Cancer Prevention and Therapy (Tianjin), Tianjin's Clinical Research Center for Cancer, Department of Molecular Pharmacology, Tianjin Medical University Cancer Institute & Hospital, Tianjin 300060, China.
Abstract:
Acute lung injury (ALI) is a life-threatening inflammatory condition with limited therapeutic options. Metabolic reprogramming, particularly PKM2-mediated glycolysis, plays a pivotal role in inflammatory responses, yet natural activators targeting this pathway remain largely unexplored. Herein, we found that seco-tanapartholide B (SB), a sesquiterpene lactone derived from the medicinal and edible herb Artemisia argyi, suppresses inflammation and glycolysis both in vitro and in vivo, thereby alleviating lipopolysaccharide (LPS)-induced ALI. Using thermal proteome profiling (TPP), cellular thermal shift assay (CETSA), drug affinity responsive target stability (DARTS), and bio-layer interferometry (BLI), we identified PKM2 as the direct molecular target of SB. LC-MS/MS analysis further revealed that SB covalently binds to Cys424 of PKM2 through its α-methylene-γ-lactone moiety, leading to enhanced pyruvate kinase activity and promoted PKM2 tetramerization. Consequently, this modification suppressed glycolysis as well as inflammation-related pathways, including NF-κB and STAT3 signaling, and reduced HIF-1α expression. Additionally, genetic knockdown of PKM2 attenuates the anti-inflammatory and glycolysis-inhibitory effects of SB in macrophages. Collectively, these findings identify SB as a natural PKM2 activator that therapeutically targets metabolic-inflammatory crosstalk in ALI. This study extends the potential application of PKM2 activators beyond oncology to inflammatory lung diseases and provides a biochemical rationale for promoting PKM2 tetramerization as a therapeutic strategy for ALI/acute respiratory distress syndrome (ARDS).
