Gupta Varsha, Mahata Tanushree, Roy Rajsekhar, Gharai Prabir Kumar, Jana Aniket, Garg Shubham, Ghosh Surajit
Organic and Medicinal Chemistry and Structural Biology and Bioinformatics Division, CSIR-Indian Institute of Chemical Biology, Kolkata, West Bengal, India.
Department of Bioscience and Bioengineering, Indian Institute of Technology Jodhpur, Karwar, Rajasthan, India.
Front Mol Neurosci. 2022 Dec 15;15:1002419. doi: 10.3389/fnmol.2022.1002419. eCollection 2022.
The transdifferentiation of human mesenchymal stem cells (hMSC) to functional neurons is crucial for the development of future neuro-regenerative therapeutics. Currently, transdifferentiation of hMSCs to neurons requires a "" along with neural growth factors. The role of the individual molecules present in a "chemical cocktail" is poorly understood and may cause unwanted toxicity or adverse effects. Toward, this goal, we have showcased the discovery of an imidazole-based "single-molecule" transdifferentiation initiator SG-145C. This discovery was achieved screening of a small molecule library through extensive studies to shortlist the best-fitting molecules. This discovery evolved through a careful selection to target Glycogen synthase kinase-3β (GSK-3β), which is one of the important proteins responsible for neurogenesis. Rigorous computational experiments, as well as extensive biological assays, confirmed that SG-145C has significant potential to transdifferentiate hMSCs to neurons. Interestingly, our results suggest that SG-145C can inhibit the proteasomal degradation of phosphorylated β-catenin, in turn promoting transdifferentiation of hMSCs into neurons the Wnt pathway.
人骨髓间充质干细胞(hMSC)向功能性神经元的转分化对于未来神经再生治疗的发展至关重要。目前,hMSC向神经元的转分化需要一种“化学鸡尾酒”以及神经生长因子。“化学鸡尾酒”中单个分子的作用尚不清楚,可能会导致不必要的毒性或不良反应。为了实现这一目标,我们展示了一种基于咪唑的“单分子”转分化引发剂SG-145C的发现。这一发现是通过对小分子文库进行广泛筛选研究以筛选出最合适的分子而实现的。这一发现是通过精心选择靶向糖原合酶激酶-3β(GSK-3β)而发展而来的,GSK-3β是负责神经发生的重要蛋白质之一。严格的计算实验以及广泛的生物学检测证实,SG-145C具有将hMSC转分化为神经元的巨大潜力。有趣的是,我们的结果表明,SG-145C可以抑制磷酸化β-连环蛋白的蛋白酶体降解,进而通过Wnt途径促进hMSC向神经元的转分化。