Rasheed Omer K, Buhl Cassandra, Evans Jay T, Holley David, Ryter Kendal T
Department of Chemistry and Biochemistry, University of Montana, 32 campus drive, Missoula, MT, 59812, United States.
Current address: Inimmune Corp., 1121 E. Broadway St, Missoula, MT, 59808, United States.
Tetrahedron. 2023 Feb 13;132. doi: 10.1016/j.tet.2022.133241. Epub 2023 Jan 9.
The identification of Mincle as the C-type lectin receptor on innate immune cells responsible for binding TDM and the realization that this receptor could be key to productive vaccines for mycobacterial infection has raised interest in the development of synthetic Mincle ligands as novel adjuvants. We recently reported on the synthesis and evaluation of Brartemicin analog UM-1024 that demonstrated Mincle agonist activity, exhibiting potent Th1/Th17 adjuvant activity that was greater than that of trehalose dibehenate (TDB). Our pursuit to understand Mincle/ligand relationships and improve the pharmacologic properties of the ligands has expanded and continues to reveal new and exciting structure activity relationships. Herein we report the synthesis of novel bi-aryl trehalose derivatives in good to excellent yields. These compounds were evaluated for their ability to engage the human Mincle receptor and tested for the induction of cytokines from human peripheral blood mononuclear cells. A preliminary structure-activity relationship (SAR) of these novel bi-aryl derivatives revealed that bi-aryl trehalose ligand showed relatively high potency in cytokine production in comparison to trehalose glycolipid adjuvant TDB and the natural ligand TDM and induced dose-dependent, Mincle selective stimulation in hMincle HEK reporter cells. Also, through computational studies, we provide an insight into the potential mode of binding of 6,6'-Biaryl trehalose compounds on human Mincle receptor.
Mincle被鉴定为天然免疫细胞上负责结合TDM的C型凝集素受体,并且认识到该受体可能是用于分枝杆菌感染的有效疫苗的关键,这引发了人们对开发合成Mincle配体作为新型佐剂的兴趣。我们最近报道了Brartemicin类似物UM-1024的合成和评估,其显示出Mincle激动剂活性,表现出比二硬脂酸海藻糖(TDB)更强的Th1/Th17佐剂活性。我们对理解Mincle/配体关系以及改善配体药理性质的探索不断扩展,并持续揭示新的、令人兴奋的构效关系。在此,我们报道了新型联芳基海藻糖衍生物的合成,产率良好至优异。评估了这些化合物与人Mincle受体结合的能力,并测试了它们从人外周血单核细胞诱导细胞因子的能力。这些新型联芳基衍生物的初步构效关系(SAR)表明,与海藻糖糖脂佐剂TDB和天然配体TDM相比,联芳基海藻糖配体在细胞因子产生方面表现出相对较高的效力,并在hMincle HEK报告细胞中诱导剂量依赖性的、Mincle选择性刺激。此外,通过计算研究,我们深入了解了6,6'-联芳基海藻糖化合物与人Mincle受体结合的潜在模式。