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Macrocyclization is a compelling strategy for conventional drug design for improving biological activity, target specificity, and metabolic stability, but it was rarely applied to the design of PROTACs possibly due to the mechanism and structural complexity. Herein, we report the rational design of the first series of "Head-to-Tail" macrocyclic PROTACs. The resulting molecule exhibited pronounced Brd4 protein degradation with low nM DC values while almost totally dismissing the "hook effect", which is a general character and common concern of a PROTAC, in multiple cancer cell lines. Further biological evaluation revealed that the compound exhibited positive cooperativity and induced protein-protein interactions (PPIs) in both biophysical and cellular NanoBRET assays and outperformed macroPROTAC-1 that is the first reported macrocyclic Brd4 PROTAC, in cellular assays. liver microsomal stability evaluation suggested that demonstrated improved metabolic stability in different species compared with the linear counterpart. The co-crystal structure of Brd4: : VCB (VHL, Elongin C and Elongin B) complex determination and molecular dynamics (MD) simulation also elucidated details of the chemical-induced PPIs and highlighted the crucial contribution of restricted conformation of to the ternary complex formation. These results collectively support that macrocyclization could be an attractive and feasible strategy for a new PROTAC design.
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http://dx.doi.org/10.1021/jacsau.4c00831 | DOI Listing |
Chem Asian J
July 2025
Graduate School of Pharmaceutical Sciences, Keio University, 1-5-30 Shibakoen, Minato-ku, Tokyo, 105-8512, Japan.
TriQuinoline (TQ), a quasi-planar cyclic quinoline trimer concatenated at the 2,8-positions in a head-to-tail arrangement, strongly captures a proton at the 12-membered inner cycle and exhibits unusual physicochemical properties, including unexpected water solubility and the ability to engage in complexation with other π-conjugated molecules. In this study, we designed and synthesized its expanded analog, coined Enlarged-TriQuinoline (Enl-TQ), in which three alkyne units are embedded between three quinoline units to acquire an expanded planar 18-membered ring system. DFT calculations and X-ray crystallographic analysis revealed its planar architecture with three inwardly facing pyridinic nitrogen atoms.
View Article and Find Full Text PDFOrg Biomol Chem
July 2025
Department of Chemistry, Fudan University, China.
Subtilosin A is the canonical member of the sactipeptide family with significant antimicrobial properties. In this study, we successfully produced subtilosin A in by coexpressing the precursor peptide SboA with the radical SAM enzyme AlbA, and the metalloenzymes AlbE and AlbF. Our findings demonstrate that both AlbE and AlbF are essential for the head-to-tail macrocyclization of subtilosin A.
View Article and Find Full Text PDFChem Sci
June 2025
Graduate School of Pharmaceutical Sciences, Keio University 1-5-30 Shibakoen, Minato-ku Tokyo 105-8512 Japan
Chiral macrocycles are attracting growing interest due to their broad applicability as ligands in asymmetric catalysis and as host molecules for chiral recognition. Robustness and high thermodynamic stability can be effectively achieved by strategically linking aromatic panels to construct an axially chiral macrocyclic framework. Cyclic concatenation of four quinoline units affords a fully sp-hybridized, non-planar macrocycle featuring four inwardly oriented, coordinatively active pyridyl nitrogen atoms.
View Article and Find Full Text PDFChembiochem
July 2025
Immunology, Immunopathology and Therapeutic Chemistry, CNRS, University of Strasbourg, UPR 3572, Strasbourg, 67000, France.
Cyclic peptides offer several advantages over their linear counterparts, including enhanced structural stability due to their rigid conformation and increased resistance to enzymatic proteolysis. Additionally, their ring structure and constrained conformation reduce the entropic cost upon binding to receptors and other biological targets, leading to higher binding affinity and specificity. However, peptide macrocyclization is often synthetically challenging due to factors such as reduced entropy, oligomer formation, and C-terminal epimerization.
View Article and Find Full Text PDFJ Pept Sci
June 2025
Department of Chemistry and Pharmaceutical Sciences, VU University Amsterdam, Amsterdam, Netherlands.
The secondary structure plays a crucial role in the biological activity of peptides. Various strategies have been developed to stabilize particular peptide conformations, including sequence modifications and macrocyclization approaches. Often, the interplay between conformational constraint and flexibility is central to bioactivity.
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