High‐Throughput Miniaturized Synthesis of PROTAC‐Like Molecules

Author:

Tian Ye123,Seifermann Maximilian1,Bauer Liana1,Luchena Charlotte1,Wiedmann Janne J.1,Schmidt Stefan4,Geisel Alexander4,Afonin Sergii5,Höpfner Julius1,Brehm Marius1,Liu Xinyong2,Hopf Carsten467,Popova Anna A.1,Levkin Pavel A.1ORCID

Affiliation:

1. Institute of Biological and Chemical Systems‐Functional Molecular Systems (IBCS‐FMS) Karlsruhe Institute of Technology (KIT) Hermann‐von Helmholtz‐Platz 1 76344 Eggenstein‐Leopoldshafen Germany

2. Department of Medicinal Chemistry Key Laboratory of Chemical Biology (Ministry of Education) School of Pharmaceutical Sciences Shandong University Wenhuaxi Road 44 Jinan 250012 China

3. Department of Immunology Key Laboratory for Experimental Teratology of Ministry of Education Shandong Provincial Key Laboratory of Infection & Immunology School of Basic Medical Sciences Shandong University Wenhuaxi Road 44 Jinan 250012 China

4. Center for Mass Spectrometry and Optical Spectroscopy (CeMOS) University of Applied Sciences Mannheim Paul‐Wittsack‐Straße 10 68163 Mannheim Germany

5. Institute of Biological Interfaces (IBG‐2) Karlsruhe Institute of Technology (KIT) POB 3640 76021 Karlsruhe Germany

6. Medical Faculty Heidelberg University Im Neuenheimer Feld 280 69117 Heidelberg Germany

7. Mannheim Center for Translational Neuroscience (MCTN) Medical Faculty Mannheim Heidelberg University Theodor Kutzer‐Ufer 1–3 68167 Mannheim Germany

Abstract

AbstractThe development of miniaturized high‐throughput in situ screening platforms capable of handling the entire process of drug synthesis to final screening is essential for advancing drug discovery in the future. In this study, an approach based on combinatorial solid‐phase synthesis, enabling the efficient synthesis of libraries of proteolysis targeting chimeras (PROTACs) in an array format is presented. This on‐chip platform allows direct biological screening without the need for transfer steps.  UV‐induced release of target molecules into individual droplets facilitates further on‐chip experimentation. Utilizing a mitogen‐activated protein kinase kinases (MEK1/2) degrader as a template, a series of 132 novel PROTAC‐like molecules is synthesized using solid‐phase Ugi reaction. These compounds are further characterized using various methods, including matrix‐assisted laser desorption ionization mass spectrometry (MALDI‐MS) imaging, while consuming only a few milligrams of starting materials in total. Furthermore, the feasibility of culturing cancer cells on the modified spots and quantifying the effect of MEK suppression is demonstrated. The miniaturized synthesis platform lays a foundation for high‐throughput in situ biological screening of potent PROTACs for potential anticancer activity and offers the potential for accelerating the drug discovery process by integrating miniaturized synthesis and biological steps on the same array.

Publisher

Wiley

Subject

Biomaterials,Biotechnology,General Materials Science,General Chemistry

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