| Literature DB >> 32342666 |
Mathis Baalmann1, Laura Neises1, Sebastian Bitsch2, Hendrik Schneider2, Lukas Deweid2, Philipp Werther1, Nadja Ilkenhans1, Martin Wolfring1, Michael J Ziegler1, Jonas Wilhelm1, Harald Kolmar2, Richard Wombacher1.
Abstract
Bioorthogonal chemistry holds great potential to generate difficult-to-access protein-protein conjugate architectures. Current applications are hampered by challenging protein expression systems, slow conjugation chemistry, use of undesirable catalysts, or often do not result in quantitative product formation. Here we present a highly efficient technology for protein functionalization with commonly used bioorthogonal motifs for Diels-Alder cycloaddition with inverse electron demand (DAinv ). With the aim of precisely generating branched protein chimeras, we systematically assessed the reactivity, stability and side product formation of various bioorthogonal chemistries directly at the protein level. We demonstrate the efficiency and versatility of our conjugation platform using different functional proteins and the therapeutic antibody trastuzumab. This technology enables fast and routine access to tailored and hitherto inaccessible protein chimeras useful for a variety of scientific disciplines. We expect our work to substantially enhance antibody applications such as immunodetection and protein toxin-based targeted cancer therapies.Entities:
Keywords: antibody-drug conjugates; bioorthogonal chemistry; click chemistry; protein ligation; protein-protein conjugates
Mesh:
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Year: 2020 PMID: 32342666 PMCID: PMC7496671 DOI: 10.1002/anie.201915079
Source DB: PubMed Journal: Angew Chem Int Ed Engl ISSN: 1433-7851 Impact factor: 15.336
Scheme 1Protein fusion and conjugate architectures accessible through expression (only left), enzymatic ligation strategies or site‐specific bioorthogonal chemistry.
Scheme 2A) Two‐step chemoenzymatic procedure with LplAW37V and click chemistry to generate protein–protein conjugates. B) Substrate scope for LplAW37V‐mediated site‐specific protein functionalization and ensuing Diels–Alder cycloaddition with inverse electron demand (DAinv), strain‐promoted alkyne–azide cycloaddition (SPAAC) or strain‐promoted alkyne–nitrone cycloaddition (SPANC). References: a: Baalmann et al.,16 b: Liu et al.,9b c: Best et al.21
Figure 1Individual EGFP modification states during two‐step labeling can be traced by semi‐native SDS‐PAGE. A) Procedure of two‐step EGFP modification and subsequent analysis. B) SDS gels assaying the reactivity of different dienophile LplA constructs using EGFPE172:LAP highlights high modification yields utilizing combinations of ‐BCN and SCO with MeTzBnNH‐TAMRA and TzBnNH‐TAMRA and .‐TCO* together with TzBnNH‐TAMRA (blue boxes). CBB=Coomassie Brilliant Blue. M=Marker. †: ≈35 kDa. ≠: ≈25 kDa. C) Protein construct used. D) Scheme illustrating EGFP shifting in the gel during modification steps. For the exhaustive side‐by‐side comparison of all DAinv substrates, see Figures S14 and S15. Note: Yields have been corrected for an EGFP impurity of 6 % that was neither accessible for ligation nor cycloaddition reactions. Crystal structure PDB: 2Y0G.32
Figure 2Protein–protein conjugation using model proteins MBP‐LAP and EGFPQ157:LAP. Combination of ‐BCN with MeTzMeOc or MeTzAl was efficiently used for targeted protein–protein conjugation by DAinv. A) SDS‐PAGE analysis highlights almost quantitative formation of MBP‐EGFP conjugate (≈70 kDa) within 2 h. CBB=Coomassie Brilliant Blue. B) Schematic view of the model proteins primed for protein–protein conjugation by DAinv. C) Mass spectrometry analysis of conjugation reaction. Crystal structure PDBs: 1ANF37 and 2Y0G.
Figure 3Reaction kinetics for targeted protein–protein conjugation between EGFP and mRuby3 monitored by FRET. Left graph shows mRuby3 FRET acceptor response. Right graph shows determination of second order rate constant. Error bars in left graph: ±1 standard deviation; in right graph: ±1 highest error estimate. Crystal structure PDBs: 2Y0G and 3U0L.43
Figure 4Protein–antibody conjugation using DAinv with ‐BCN and MeTzMeOc/MeTzAl yields a functional protein conjugate with the full‐length antibody trastuzumab. A) Ligation of ‐BCN to the doubly LAP‐tagged trastuzumab, BAR=BCN‐to‐antibody ratio. See Figure S23 for expanded ligation time. B) SDS‐PAGE analysis shows quantitative conjugation EGFP to trastuzumab. hc=heavy chain, lc=light chain. C) Scheme of trastuzumab‐(LAP⋅EGFP)2 conjugate architecture. D) Confocal microscopy with the trastuzumab‐(LAP⋅EGFP)2 conjugate shows specific binding to SK‐BR‐3 and no binding to CHO‐K1 cells. Scale bar=20 μm. Conjugation control: trastuzumab‐(LAP)2 and EGFPQ157:LAP both functionalized with ‐BCN. E) Flow cytometry analysis shows concentration‐dependent binding of trastuzumab‐(LAP⋅EGFP)2 and trastuzumab‐(LAP⋅TAMRA)2 conjugates to SK‐BR‐3 cells. fl.=fluorescence.
Figure 5Generation of the potent antibody–drug conjugate trastuzumab‐(LAP⋅MMAE)2 by ‐BCN ligation followed by SPAAC with N. Top: Conjugate architecture. vc=valine‐citrulline, PABC=para‐aminobenzyl carbamate, MMAE=monomethyl auristatin E. Dotted lines indicate cleavable bonds for drug release. Scissors indicate cleavage site for lysosomal proteases. Bottom: Cell proliferation assays with SK‐BR‐3 and CHO‐K1 cells treated with trastuzumab‐(LAP)2 and trastuzumab‐(LAP⋅MMAE)2 (DAR2). Error bars in graphs: ±1 standard deviation.