Kumar Vikrant, Chunchagatta Lakshman Puneeth Kumar, Prasad Thazhe Kootteri, Manjunath Kavyashree, Bairy Sneha, Vasu Akshaya S, Ganavi B, Jasti Subbarao, Kamariah Neelagandan
Centre for Chemical Biology & Therapeutics, inStem & NCBS, Bellary Road, Bangalore, 560065, India.
Heliyon. 2023 Dec 19;10(1):e23864. doi: 10.1016/j.heliyon.2023.e23864. eCollection 2024 Jan 15.
Target-based discovery of first-in-class therapeutics demands an in-depth understanding of the molecular mechanisms underlying human diseases. Precise measurements of cellular and biochemical activities are critical to gain mechanistic knowledge of biomolecules and their altered function in disease conditions. Such measurements enable the development of intervention strategies for preventing or treating diseases by modulation of desired molecular processes. Fluorescence-based techniques are routinely employed for accurate and robust measurements of activity of molecular targets and for discovering novel chemical molecules that modulate the activity of molecular targets. In the current review, the authors focus on the applications of fluorescence-based high throughput screening (HTS) and fragment-based ligand discovery (FBLD) techniques such as fluorescence polarization (FP), Förster resonance energy transfer (FRET), fluorescence thermal shift assay (FTSA) and microscale thermophoresis (MST) for the discovery of chemical probe to exploring target's role in disease biology and ultimately, serve as a foundation for drug discovery. Some recent advancements in these techniques for compound library screening against important classes of drug targets, such as G-protein-coupled receptors (GPCRs) and GTPases, as well as phosphorylation- and acetylation-mediated protein-protein interactions, are discussed. Overall, this review presents a landscape of how these techniques paved the way for the discovery of small-molecule modulators and biologics against these targets for therapeutic benefits.
基于靶点发现首创性疗法需要深入了解人类疾病背后的分子机制。精确测量细胞和生化活性对于获取生物分子的机制知识及其在疾病状态下功能改变至关重要。此类测量有助于通过调节所需分子过程来制定预防或治疗疾病的干预策略。基于荧光的技术常用于准确、可靠地测量分子靶点的活性,并用于发现调节分子靶点活性的新型化学分子。在本综述中,作者重点介绍了基于荧光的高通量筛选(HTS)和基于片段的配体发现(FBLD)技术的应用,如荧光偏振(FP)、Förster共振能量转移(FRET)、荧光热位移分析(FTSA)和微量热泳动(MST),用于发现化学探针以探索靶点在疾病生物学中的作用,并最终为药物发现奠定基础。讨论了这些技术在针对重要类别的药物靶点(如G蛋白偶联受体(GPCRs)和GTPases)以及磷酸化和乙酰化介导的蛋白质-蛋白质相互作用的化合物库筛选方面的一些最新进展。总体而言,本综述展示了这些技术如何为发现针对这些靶点的小分子调节剂和生物制剂以实现治疗益处铺平道路。