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1.
Chem Commun (Camb) ; 60(41): 5423-5426, 2024 May 16.
Article in English | MEDLINE | ID: mdl-38683668

ABSTRACT

The late-stage fluorescent labeling of structurally complex peptides bears immense potential for molecular imaging. Herein, we report on a manganese(I)-catalyzed peptide C-H alkenylation under exceedingly mild conditions with natural fluorophores as coumarin- and chromone-derivatives. The robustness and efficiency of the manganese(I) catalysis regime was reflected by a broad functional group tolerance and low catalyst loading in a resource- and atom-economical fashion.


Subject(s)
Alkynes , Amino Acids , Coumarins , Fluorescent Dyes , Manganese , Peptides , Coumarins/chemistry , Coumarins/chemical synthesis , Catalysis , Manganese/chemistry , Fluorescent Dyes/chemistry , Fluorescent Dyes/chemical synthesis , Peptides/chemistry , Alkynes/chemistry , Amino Acids/chemistry , Molecular Structure
2.
Chem Sci ; 14(21): 5728-5733, 2023 May 31.
Article in English | MEDLINE | ID: mdl-37265715

ABSTRACT

Late-stage diversification of structurally complex amino acids and peptides provides tremendous potential for drug discovery and molecular imaging. Specifically, labeling peptides with fluorescent tags is one of the most important methods for visualizing their mode of operation. Despite major recent advances in the field, direct molecular peptide labeling by C-H activation is largely limited to dyes with relatively short emission wavelengths, leading to high background signals and poor signal-to-noise ratios. In sharp contrast, here we report on the fluorescent labeling of peptides catalyzed by non-toxic manganese(i) via C(sp2)-H alkenylation in chemo- and site-selective manners, providing modular access to novel near-infrared (NIR) nitrobenzodiazole-based peptide fluorogenic probes.

3.
Angew Chem Int Ed Engl ; 61(11): e202114993, 2022 03 07.
Article in English | MEDLINE | ID: mdl-35015329

ABSTRACT

C-oligosaccharides are pharmacologically relevant because they are more hydrolysis-resistant than O-oligosaccharides. Despite indisputable advances, C-oligosaccharides continue to be underdeveloped, likely due to a lack of efficient and selective strategies for the assembly of the interglycosidic C-C linkages. In contrast, we, herein, report a versatile and robust strategy for the synthesis of structurally complex C-oligosaccharides via catalyzed C(sp3 )-H activations. Thus, a wealth of complex interglycosidic (2→1)- and (1→1)-C-oligosaccharides becomes readily available by palladium-catalyzed C(sp3 )-H glycoside glycosylation. The isolation of key palladacycle intermediates and experiments with isotopically-labeled compounds identified a trans-stereoselectivity for the C(sp3 )-H glycosylation. The glycoside C(sp3 )-H activation manifold was likewise exploited for the diversification of furanoses, pyranoses and disaccharides.

4.
Angew Chem Int Ed Engl ; 61(17): e202117218, 2022 04 19.
Article in English | MEDLINE | ID: mdl-35075763

ABSTRACT

Fungal infections caused by Candida species are among the most prevalent in hospitalized patients. However, current methods for the detection of Candida fungal cells in clinical samples rely on time-consuming assays that hamper rapid and reliable diagnosis. Herein, we describe the rational development of new Phe-BODIPY amino acids as small fluorogenic building blocks and their application to generate fluorescent antimicrobial peptides for rapid labelling of Candida cells in urine. We have used computational methods to analyse the fluorogenic behaviour of BODIPY-substituted aromatic amino acids and performed bioactivity and confocal microscopy experiments in different strains to confirm the utility and versatility of peptides incorporating Phe-BODIPYs. Finally, we have designed a simple and sensitive fluorescence-based assay for the detection of Candida albicans in human urine samples.


Subject(s)
Candidiasis , Urinary Tract , Amino Acids , Boron Compounds , Candida , Candidiasis/diagnosis , Humans , Peptides/chemistry
6.
Nat Commun ; 12(1): 3389, 2021 06 07.
Article in English | MEDLINE | ID: mdl-34099672

ABSTRACT

Bioorthogonal late-stage diversification of amino acids and peptides bears enormous potential for drug discovery and molecular imaging. Despite major accomplishments, these strategies largely rely on traditional, lengthy prefunctionalization methods, heavily involving precious transition-metal catalysis. Herein, we report on a resource-economical manganese(I)-catalyzed C-H fluorescent labeling of structurally complex peptides ensured by direct alkynylation and alkenylation manifolds. This modular strategy sets the stage for unraveling structure-activity relationships between structurally discrete fluorophores towards the rational design of BODIPY fluorogenic probes for real-time analysis of immune cell function.


Subject(s)
Chemistry Techniques, Synthetic/methods , Fluorescent Dyes/chemical synthesis , Manganese/chemistry , Peptides/chemical synthesis , Boron Compounds/chemistry , CD8-Positive T-Lymphocytes/cytology , CD8-Positive T-Lymphocytes/metabolism , Carbon/chemistry , Catalysis , Cell Membrane/metabolism , Humans , Hydrogen/chemistry , Jurkat Cells , Microscopy, Confocal , Microscopy, Fluorescence , Molecular Imaging/methods
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