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1.
Org Biomol Chem ; 21(41): 8344-8352, 2023 10 25.
Article in English | MEDLINE | ID: mdl-37800999

ABSTRACT

Small molecule heterobifunctional degraders (commonly also known as PROTACs) offer tremendous potential to deliver new therapeutics in areas of unmet medical need. To deliver on this promise, a new discipline directed at degrader design and optimization has emerged within medicinal chemistry to address a central challenge, namely how to optimize relatively large, heterobifunctional molecules for activity, whilst maintaining drug-like properties. This process involves simultaneous optimization of the three principle degrader components: E3 ubiquitin ligase ligand, linker, and protein of interest (POI) ligand. A substantial degree of commonality exists with the E3 ligase ligands typically used at the early stages of degrader development, resulting in demand for these compounds as chemical building blocks in degrader research programs. We describe herein a collation of large scale, high-yielding syntheses to access the most utilized E3 ligase ligands to support early-stage degrader development.


Subject(s)
Proteins , Ubiquitin-Protein Ligases , Ubiquitin-Protein Ligases/metabolism , Proteolysis , Ligands , Proteins/metabolism
2.
Molecules ; 27(16)2022 Aug 09.
Article in English | MEDLINE | ID: mdl-36014293

ABSTRACT

A cheap, conventional, sealed heating reactor proved to be a useful alternative to a microwave reactor in the synthesis of a >20-member MIDA boronate library (MIDA = N-methyliminodiacetic acid). Reaction times were 10 min and work-ups were minimal, saving on energy and solvent usage.


Subject(s)
Boronic Acids , Heating , Molecular Structure
3.
Org Biomol Chem ; 20(19): 4021-4029, 2022 05 18.
Article in English | MEDLINE | ID: mdl-35506991

ABSTRACT

ISOX-DUAL is a dual inhibitor of CBP/p300 (IC50 = 0.65 µM) and BRD4 (IC50 = 1.5 µM) bromodomains, and a useful chemical probe for epigenetic research. Aspects of the published synthetic route to this compound and its analogues are small-scale, poor-yielding or simply unamenable to scale-up without optimization. Herein we describe the development of a refined synthesis that circumvents the challenges of the original report, with notable improvements to several of the key synthetic transformations. Moreover, a general Suzuki Miyaura protocol for the late stage installation of alternative dimethyl-isoxazole acetyl-lysine (KAc) binding motifs is presented.


Subject(s)
Nuclear Proteins , Transcription Factors , Cell Cycle Proteins/metabolism , Isoxazoles/chemistry , Lysine , Nuclear Proteins/chemistry , Protein Domains , Transcription Factors/chemistry
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