STUB1-induced polyubiquitination of SIK3 in alveolar type 2 epithelial cells alleviates severity and outcomes of acute lung injury
- Cell Death Dis. 2026 May 4;17(1):589. doi: 10.1038/s41419-026-08822-x.
- 1. Department of Thoracic Surgery, Tangdu Hospital, Air Force Medical University (formerly known as Fourth Military Medical University), Xi'an, PR China. [email protected].
- 2. Department of Thoracic Surgery, Tangdu Hospital, Air Force Medical University (formerly known as Fourth Military Medical University), Xi'an, PR China.
- 3. Department of Pulmonary and Critical Care Medicine, Air Force 986 Hospital, Air Force Medical University (formerly known as Fourth Military Medical University), Xi'an, PR China.
- 4. Department of Thoracic Surgery, Air Force 986 Hospital, Air Force Medical University (formerly known as Fourth Military Medical University), Xi'an, PR China.
- 5. Department of Human Anatomy, Histology and Embryology, Basic Medical Science Academy, Air Force Medical University (formerly known as Fourth Military Medical University), Xi'an, PR China.
- 6. Department of Human Anatomy, Histology and Embryology, Basic Medical Science Academy, Air Force Medical University (formerly known as Fourth Military Medical University), Xi'an, PR China. [email protected].
- # Contributed equally.
Disruption in alveolar type 2 epithelial cells (AT2s) homeostasis by oxidative stress plays an essential role in the pathogenesis of acute lung injury (ALI). However, significant discrepancies remain in understanding the mechanisms for AT2 as a main target for Reactive Oxygen Species (ROS). Herein, we show that STUB1, an E3 Ligase involved in protein homeostasis, was dominantly expressed in AT2s. Mild levels of ROS potentiated Nrf2-mediated transactivation of the STUB1 gene via activation of the ERK signaling, whereas high levels of ROS compromised STUB1 expression by dampening STUB1 protein half-life. Ablation of Stub1 in AT2s caused failure in conferring K63-mediated nonproteolytic polyubiquitination of SIK3 (salt-inducible kinase 3), which in turn abrogated CRTC2 (CREB-regulated transcription co-activator 2) substrate binding for SIK3 and thereby triggered CREB signaling-mediated proinflammatory phenotypes. Consequently, disruption in STUB1/SIK3 signaling aggravated lung edema, augmented inflammatory infiltrate, and increased AT2 Apoptosis in vivo. Mice lacking STUB1 also demonstrated increased susceptibility to ischemia-reperfusion and overventilation-induced lung injury. These findings unambiguously uncover STUB1 as a critical post-translational regulator of ALI severity and outcomes.