Tricycles from Display

Reflecting work in the Jongkees Lab

Published here July 27, 2026

Controlling Tricyclic Peptide Architecture in mRNA Display through Orthogonal Reactivity on Rotationally Flexible Scaffolds

Minglong Liu, Vito Thijssen, Sanne J. M. Verhoork, Sangram S. Kale, Michael Goldflam, Peter Timmerman, and Seino A. K. Jongkees

ACS Chem. Biol. 2026, 21, 1547–1552. https://doi.org/10.1021/acschembio.6c00273

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Natural product peptides such as vancomycin and nisin A owe much of their biological potency to multiple interlocking macrocycles. Each additional ring can restrict the conformational entropy cost of binding, reduce off-target promiscuity, and shield amide bonds from proteases. The PCSK9 clinical candidate MK-0616 illustrates the payoff: a monocyclic mRNA-display hit was progressively reinforced with two further cross-links, ultimately yielding an orally available, highly potent drug. Encoding that level of structural complexity directly into a genetically displayed library would in principle compress the discovery timeline, but producing tricyclic peptides as single regioisomers at the nanomolar concentrations inherent to mRNA display has proved an unsolved challenge. Isomer mixtures arising from non-equivalent reactive sites obscure hit identification and complicate downstream development.

Researchers in the Jongkees Group at Vrije Universiteit Amsterdam and the Timmerman Group at Biosynth, published in ACS Chemical Biology, combined two orthogonal cyclization chemistries on a single aromatic scaffold to address this problem. The tetrafunctional scaffolds, designated type 1 and type 2, carry benzyl bromide groups that react selectively with cysteine residues via CLIPS chemistry, while two alkyne arms react with azidohomoalanine, Azh, residues incorporated by methionine-codon reassignment, via copper-catalyzed azide-alkyne cycloaddition, CuAAC. Crucially, the scaffold retains sufficient rotational freedom after the first cyclization to ensure that the second ring closure produces a single, well-defined tricyclic topology rather than a mixture of isomers. The team validated reaction completion by LC-MS on synthetic peptides spiked into translation mixtures and by pulse-chase biotinylation assays on mRNA-displayed peptides, then applied the chemistry to a randomized three-loop library screened against two structurally distinct model targets.

Against the extracellular cysteine-rich domain of the Frizzled-5 receptor, Fzd5, tricycle 1a emerged as the lead binder, with a KD of 52.7 nM measured by grating-coupled interferometry. A scrambled-sequence control showed no detectable binding, confirming sequence specificity. The monocyclic CLIPS precursor of 1a, produced without CuAAC cyclization, bound Fzd5 with more than 40-fold lower affinity, directly quantifying the contribution of the additional rings. Three loop-replacement variants, each with one loop substituted by GGGG, each lost measurable affinity, and a control peptide carrying only the central CLIPS-cyclized loop also showed no binding, establishing that all three loops contribute to target recognition. Tricycle 1a further engaged Fzd5 overexpressed on live cell surfaces, detected by streptavidin-Alexa Fluor 488 labeling of a biotinylated version of the peptide.

Against the anti-human-CCR7 monoclonal antibody mAb197, for which the three-residue binding motif (F/I/L/M/Y)-A-E was known from prior work, the team identified tricycle 3a with a KD of 460 nM. Replacement of Ile-8 with norleucine and Ala-9 with 2-aminobutyric acid improved affinity 3.2-fold to a KD of 142 nM for variant 3f, roughly five-fold better than a bicyclic comparator from earlier unpublished work. Serum stability assays reinforced the value of full tricyclization: tricycle 1a retained approximately 50% intact peptide after 10 hours in human serum and remained the major component after 24 hours at room temperature, while both the linear and monocyclic controls disappeared within one hour.

The work establishes that rotationally flexible tetrafunctional scaffolds can resolve the regioisomer problem in genetically encoded tricyclic peptide libraries at the dilution demanded by mRNA display. The approach yields hits with low nanomolar affinity, demonstrated three-loop target engagement, and serum stability far exceeding that of monocyclic analogs, all without requiring post-selection medicinal chemistry to introduce the additional constraints. The authors note that type 2 scaffold tricycles suffered from poor aqueous solubility in several cases, identifying scaffold design as a variable for further optimization. Because tricyclization improvements translate directly to clinically validated precedents such as MK-0616, the strategy positions early-stage discovery hits closer to developability thresholds from the outset.


Author

Vito Thijssen, Ph.D., is currently Senior Scientist at Biosynth and a.o. responsible for implementation of the multicycle-CLIPSTM mRNA-library display platform. He studied Chemical biology at the Technical University of Eindhoven, where he obtained his Bachelor degree in 2014 and his Master degree in 2016, both in Biomedical Engineering. He moved to Utrecht University for his Ph.D.-research and obtained this degree in 2024 with Prof. Seino A. K. Jongkees for his thesis entitled “Macrocyclic peptide inhibitor of viral fusion proteins”. Since then, he is employee at Biosynth B.V. He is co-author of 10 peer-reviewed scientific articles and co-inventor on 1 patent.

Author

Sanne Verhoork, Ph.D., is currently Scientist at Biosynth. Tasks and interests include green chemistry, process development and implementation and GMP phase 3 implementation. She studied Bio-Pharmaceutical Sciences at Leiden University, where she obtained her BSc degree in 2013 and her MSc degree in 2015. Driven by an interest in the overlap between the fields of Chemistry and Biology she moved to Liverpool, UK, to pursue a Ph.D. in Chemical Biology, specializing in peptides. In 2020, she moved back to the Netherlands to join Biosynth B.V., previously Pepscan.

Author

Peter Timmerman, Ph.D., is currently Head of Peptide Science at Biosynth and responsible for scientific developments and further advances for Biosynth’s Peptide Discovery Platform. He is inventor of the CLIPSTM technology and held a chair as Professor, by special appointment, in Protein Mimetic Chemistry at the University of Amsterdam, UvA, from 2007 to 2022. He studied Chemistry at the Vrije Universiteit Amsterdam from 1984 to 1989 and obtained his Ph.D. cum laude from the University of Twente in 1994 with Prof. David Reinhoudt. In 1995, he was recipient of the annual Backer Prize for the best Dutch thesis in Organic Chemistry. He did post-doctoral research at the ETH in Zürich/CH from 1994 to 1995 with Prof. Francois Diederich and was Assistant Professor in Supramolecular Chemistry & Technology, SMCT, at the University of Twente from 1995 to 2001. He is co-author of over 100 peer-reviewed scientific articles and co-inventor on more than 10 patents.

Author

Seino Jongkees, Ph.D., did his doctoral studies under Professor Stephen Withers at the University of British Columbia on mechanistic enzymology of carbohydrate-active enzymes. He then pursued a JSPS post-doctoral fellowship under the mentorship of Professor Hiroaki Suga at Tokyo University to learn about the RaPID platform for mRNA display under a reprogrammed genetic code. He started his independent research group at Utrecht University in 2016 in the department of Chemical Biology and Drug discovery as an Assistant Professor and then moved to VU Amsterdam in the department of Chemistry and Pharmaceutical Sciences in 2021, with promotion to Associate Professor in 2023. His research focuses on method development within high-throughput peptide drug discovery, with particular attention for application of chemical post-translational diversification reactions in mRNA-displayed peptides.

Tricycles from Display

Author

Minglong Liu, Ph.D., earned his B.S. and M.S. degrees from Peking University, China, under the supervision of Professor Xin-shan Ye. In 2021, he was awarded his Ph.D. in Pharmaceutical Sciences by Utrecht University, where he worked with then-Assistant Professor Seino Jongkees. Afterwards, he pursued postdoctoral research at VU Amsterdam, focusing on mRNA display and peptide chemistry. He currently serves as an Associate Researcher at Jiangxi Normal University. His research interests center on glycopeptides and chemical modification strategies for mRNA display.