Acute kidney injury (AKI) is a life‑threatening condition with limited preventive medications. While the transcription factor Krüppel-like factor 4 (KLF4) is critical to AKI pathophysiology, its underlying molecular mechanisms remain incompletely understood. This study investigates KLF4 from a metabolic perspective and explores the renoprotective potential of doxycycline, an FDA-approved antibiotic. In murine models of ischemia‑reperfusion (IR)‑ and cisplatin (CDDP)‑induced AKI, doxycycline administered significantly attenuated kidney injury and protected renal tubular cells from glucose deprivation- and oxygen‑glucose deprivation-induced stress in vitro. Integrative transcriptomic and metabolomic profiling revealed that AKI progression involves profound metabolic dysfunction, characterized by the downregulation of peroxisomal Acyl-CoA oxidase 3 (ACOX3) and mitochondrial Isocitrate dehydrogenase 2 (IDH2). We identified KLF4 as a dual transcriptional repressor of ACOX3 and IDH2. Mechanistically, molecular docking, surface plasmon resonance, and co-immunoprecipitation assays demonstrated that doxycycline directly binds KLF4 and promotes its ubiquitin-mediated degradation via the E3 ligase FBXO32, which restores ACOX3/IDH2-mediated fatty acid oxidation and the TCA cycle, enhancing cellular resilience against ischemic crisis. These findings define a novel KLF4‑ACOX3/IDH2 metabolic axis and highlight doxycycline as a promising repositioning candidate for AKI prevention.
Ji Feng, Zhiyuan Yao, Yu-hong Li et al.· Pharmacological Research· 0 citations
DExH-box helicase 9 (DHX9) is a multifunctional nucleic acid helicase that participates in R-loop homeostasis, genome maintenance, RNA metabolism, and innate immune signaling. Accumulating evidence has linked aberrant DHX9 expression or activity to tumorigenesis, tumor progression, treatment response, and patient prognosis. However, its role in cancer is highly context-dependent, rather than uniformly oncogenic or tumor suppressive. Depending on its molecular partners, subcellular localization, post-translational modifications, tumor genotype, and immune microenvironment, DHX9 may either promote malignant phenotypes or contribute to tumor-restraining processes. In this review, we summarize the molecular characteristics and regulatory properties of DHX9, discuss its roles in genome stability, transcriptional and post-transcriptional control, circular RNA (circRNA) biogenesis, and tumor-immune crosstalk, and evaluate its emerging value as a potential biomarker and therapeutic target. We also highlight key challenges in this field, including mechanistic heterogeneity, insufficient translational validation, and the urgent need for context-informed patient stratification to maximize the clinical utility of DHX9-targeted strategies.
Yejin Cai, Ziyuan Chen, Jiaying Xiong et al.· Biochimica et biophysica act...· 0 citations
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