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Mingda Ye

@mingda-ye.bsky.social
30 followers 33 following 2 posts
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Reposted by Mingda Ye
David B. Sauer @davidbsauer.bsky.social · 18/02/2026
Our study of the CAT1 amino acid transporter and viral receptor is now online in @natcomms.nature.com! Spearheaded by the incredibly talented @mingda-ye.bsky.social with colleagues from @cmd.ox.ac.uk, Strubi, CAMS Oxford Institute, @ndm.ox.ac.uk, and supported by the IM2PACT consortium.
nature.com
Amino acid and viral binding by the high-affinity Cationic Amino acid Transporter 1 (CAT1) from Mus musculus - Nature Communications
Cationic amino acids are essential to protein synthesis and cellular signaling. Here, authors determine the structure of the cationic amino acid transporter 1 and determined how it is co-opted as a re...
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Mingda Ye @mingda-ye.bsky.social · 27/10/2025
Gluebodies for improved crystal reliability and alternative crystal forms! (also inspiring Di-Gembody) Great supports from @cmd.ox.ac.uk @rosfrankinst.bsky.social @diamondlightsource.bsky.social @davidbsauer.bsky.social Out now in ACS Central Science! @pubs.acs.org doi.org/10.1021/acsc...
doi.org
Gluebodies Offer a Route To Improve Crystal Reliability and Diversity through Transferable Nanobody Mutations That Introduce Constitutive Close Contacts
Design of modular, transferable protein assemblies has broad applicability and in structural biology could help with the ever-troublesome crystallization bottleneck, including finding robustly behaved protein crystals for rapidly characterizing ligands or drug candidates or generating multiple polymorphs to illuminate diverse conformations. Nanobodies as crystallization chaperones are well-established but still unreliable, as we show here. Instead, we show an exemplar of how robust crystallization behavior can be engineered by exploring many combinations (>200) of nanobody surface mutations over several iterations. Critically, what needed testing was crystallization and diffraction quality, since target–nanobody binding affinity is decoupled from crystallizability enhancement. Our study yielded multiple polymorphs, all mediated by the same interface, with dramatically improved resolution and diffraction reliability for some mutants; we thus name them ‘Gluebodies’ (Gbs). We further demonstrate that these Gb mutations do transfer to some other targets, both for achieving robust crystallization in alternative packing forms and for establishing the ability to crystallize a key early stage readout. Since the Gb interface is evidently a favored interaction, it may be broadly applicable for modular assembly; more specifically, this work suggests that Gbs should be routinely attempted for crystallization whenever nanobodies are available.
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Reposted by Mingda Ye
The Rosalind Franklin Institute @rosfrankinst.bsky.social · 18/08/2025
Exciting work from the Franklin, @ox.ac.uk, and @diamondlightsource.bsky.social has led to a new method for imaging small proteins (<50 kDa) using cryoEM. By using bifunctional, bispecific nanobody scaffolds, the team have successfully solved the smallest protein structure to date (14 kDa).
Quote from Dr. Mingda Ye, University of Oxford, highlighting the collaborative breakthrough in cryo-EM imaging of small proteins: “This idea was initiated when solving sub-50kDa protein structures by cryo-EM was almost impossible. To break this barrier, many world-class scientists in different fields have combined forces and it is a great honour to work with them to bring this game-changing tool into reality!” The background diagram outlines the scientific workflow used in the study.
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Reposted by Mingda Ye
David B. Sauer @davidbsauer.bsky.social · 15/08/2025
Di-Gembodies (dimerized nanobodies) for improved and duplexed CryoEM of small and challenging targets! A collaboration of @cmd.ox.ac.uk, STRUBI, @diamondlightsource.bsky.social, @rosfrankinst.bsky.social Out now in Nature Chemical Biology @natchembio.nature.com www.nature.com/articles/s41...
nature.com
Covalently constrained ‘Di-Gembodies’ enable parallel structure solutions by cryo-EM - Nature Chemical Biology
Disulfide-based dimerization of modified identical and heterologous nanobody scaffolds enables higher-order assembly for high-resolution cryo-electron microscopy structure determination that is widely...
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