Asymmetric Carbene-Alkyne Metathesis-Mediated Cascade: Synthesis of Benzoxazine Polychiral Polyheterocycles and Discovery of a Novel Pain Blocker.
Shuhao LiuHaoyi YangJirong ShuLinna WuYukai LiZhijing ZhangWeijie GuoShuxian CaiFuyi LiWenjiang LiuShikun JiaSong CaiTaoda ShiWenhao HuPublished in: Angewandte Chemie (International ed. in English) (2024)
This study introduces a novel approach for synthesizing Benzoxazine-centered Polychiral Polyheterocycles (BPCPHCs) via an innovative asymmetric carbene-alkyne metathesis-triggered cascade. Overcoming challenges associated with intricate stereochemistry and multiple chiral centers, the catalytic asymmetric Carbene Alkyne Metathesis-mediated Cascade (CAMC) is employed using dirhodium catalyst/Brønsted acid co-catalysis, ensuring precise stereo control as validated by X-ray crystallography. Systematic substrate scope evaluation establishes exceptional diastereo- and enantioselectivities, creating a unique library of BPCPHCs. Pharmacological exploration identifies twelve BPCPHCs as potent Nav ion channel blockers, notably compound 8 g. In vivo studies demonstrate that intrathecal injection of 8 g effectively reverses mechanical hyperalgesia associated with chemotherapy-induced peripheral neuropathy (CIPN), suggesting a promising therapeutic avenue. Electrophysiological investigations unveil the inhibitory effects of 8 g on Nav1.7 currents. Molecular docking, dynamics simulations and surface plasmon resonance (SPR) assay provide insights into the stable complex formation and favorable binding free energy of 8 g with C5aR1. This research represents a significant advancement in asymmetric CAMC for BPCPHCs and unveils BPCPHC 8 g as a promising, uniquely acting pain blocker, establishing a C5aR1-Nav1.7 connection in the context of CIPN.
Keyphrases
- chemotherapy induced
- molecular docking
- chronic pain
- neuropathic pain
- solid state
- angiotensin converting enzyme
- pain management
- high throughput
- molecular dynamics simulations
- ionic liquid
- high resolution
- magnetic resonance imaging
- spinal cord
- angiotensin ii
- molecular dynamics
- ultrasound guided
- gene expression
- amino acid
- binding protein
- postoperative pain
- monte carlo
- dual energy