Pathological inflammation in multiple diseases arises from dysregulated innate immune signaling, wherein the interleukin-1 receptor-associated kinase 4 (IRAK4) acts as a critical node that mediates pro-inflammatory cascades and cytokine release downstream of toll-like and interleukin-1 receptors (TLR/IL-1R). Consequently, the therapeutic inhibition of IRAK4 using small molecules has emerged as a promising strategy for these conditions, particularly, rheumatoid arthritis. In this study, we identified a series of novel IRAK4 inhibitors featuring an indazole/indolinone-based biaryl scaffold, and forty-seven novel compounds were designed and synthesized using structure-based rational drug design strategies. Notably, compound 43 exhibited potent molecular and cellular IRAK4 inhibitory activities as well as in vivo anti-inflammatory activities in both LPS-induced acute inflammation and collagen-induced arthritis models alongside favorable pharmacokinetic properties. These findings indicated that compound 43 is a valuable lead compound for further structural optimization and the development of novel IRAK4-targeted anti-inflammatory therapies.
Zhenwei Zhang, Xue Wang, Xuan Luo et al.· Journal of Medicinal Chemist...· 0 citations
Hydrogen sulfide (H2S) is an endogenous gasotransmitter with therapeutic potential for stroke. Our previous work identified that ADT-OH, an H2S donor with mitochondrial uncoupling activity, protects against stroke by activating the SQR-UCP2-AMPK pathway. Here, we launched a medicinal chemistry campaign based on hit compound ADT-OH to design and synthesize 30 novel derivatives, among which compound 16 displayed more potent mitochondrial uncoupling activity than ADT-OH, effectively reducing the mitochondrial membrane potential at a low concentration of 1 μM. In mouse models of ischemic and hemorrhagic stroke, compound 16 significantly alleviated brain injury and improved functional outcomes. Notably, these therapeutic effects were completely abolished in microglia/macrophage-specific SQR deletion (Cx3cr1Cre: Sqrfl/fl) mice, confirming that the biological function of compound 16 is mediated by a strictly SQR-dependent mechanism. Proteomic analysis further validated these findings. Overall, compound 16 represents a promising lead compound for stroke therapy based on a novel mechanism, warranting further development.
Peng Song, Yuan Li, Xiaohan Song et al.· Journal of Medicinal Chemist...· 0 citations
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