Xiaoting Wang, Ruolan You, Wenqi Fang, Lixia Kang, Danni Cai, Diyu Hou, Jingru Liu, Shuxia Zhang, Huifang Huang
In acute myeloid leukemia (AML), therapeutic resistance is intimately linked to vascular microenvironment remodeling; however, the initiating molecular determinants remain elusive. Here, we identified exosomal pyruvate kinase M2 (PKM2) as a pivotal mediator of this pathogenic process. PKM2 was abundantly present in AML-derived exosomes and transferred to human umbilical vein endothelial cells (HUVECs), eliciting metabolic reprogramming characterized by enhanced glycolysis and angiogenic activation. Mechanistically, PKM2 knockdown in AML cells substantially attenuated exosome-induced endothelial migration and tube formation, whereas ectopic PKM2 overexpression in endothelial cells potentiated pro-angiogenic phenotypes. In NOD/SCID mouse xenograft, AML-derived exosomes promoted microvascular remodeling and accelerated disease progression, effects that were abrogated by the angiogenesis inhibitor endostatin. This vascular remodeling coincided with diminished cytarabine (Ara-C) sensitivity, indicative of a chemoprotective microenvironment. Consistently, in a systemic AML model, pharmacological PKM2 inhibition disrupted the vascular niche, suppressed angiogenesis, and restored Ara-C chemosensitivity. Clinically, PKM2 expression correlated positively with VEGFA and HIF-1α levels, and exosomes derived from AML patients with elevated PKM2 conferred enhanced tube-forming capacity upon endothelial cells. Collectively, these findings establish exosomal PKM2 as a critical regulator of the chemoprotective vascular niche in AML and underscore its translational potential as a therapeutic target.