Katrine Qvortrup
Technical University of Denmark
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Publication
Featured researches published by Katrine Qvortrup.
Organic Letters | 2014
Katrine Qvortrup; Vitaly V. Komnatnyy; Thomas Eiland Nielsen
A photolabile hydrazine linker for the solid-phase synthesis of peptide hydrazides and hydrazine-derived heterocycles is presented. The developed protocols enable the efficient synthesis of structurally diverse peptide hydrazides derived from the standard amino acids, including those with side-chain protected residues at the C-terminal of the resulting peptide hydrazide, and are useful for the synthesis of dihydropyrano[2,3-c]pyrazoles. The linker is compatible with most commonly used coupling reagents and protecting groups for solid-phase peptide synthesis.
PLOS ONE | 2017
Katrine Qvortrup; Jakob Feldthusen Jensen; Mikael Sørensen; Irene Kouskoumvekaki; Rasmus K. Petersen; Olivier Taboureau; Karsten Kristiansen; Thomas Eiland Nielsen
Peroxisome proliferator-activated receptor γ (PPARγ) is a well-known target for thiazolidinedione antidiabetic drugs. In this paper, we present the synthesis and biological evaluation of a series of dihydropyrano[2,3-c]pyrazole derivatives as a novel family of PPARγ partial agonists. Two analogues were found to display high affinity for PPARγ with potencies in the micro molar range. Both of these hits were selective against PPARγ, since no activity was measured when tested against PPARα, PPARδ and RXRα. In addition, a novel modelling approach based on multiple individual flexible alignments was developed for the identification of ligand binding interactions in PPARγ. In combination with cell-based transactivation experiments, the flexible alignment model provides an excellent analytical tool to evaluate and visualize the effect of ligand chemical structure with respect to receptor binding mode and biological activity.
Angewandte Chemie | 2016
Katrine Qvortrup; Thomas Eiland Nielsen
A one bead-one compound screening format is presented. Following solid-phase synthesis on a photolabile linker, library compounds were readily released and screened inside polymer beads. The release of screening compounds was readily controlled by varying photolysis time and light intensity. Dose-response experiments were carried out to effectively distinguish high- and low-affinity ligands. A library containing 55,800 compounds was synthesized and screened in a fluorometric assay, thereby identifying potent HDAC inhibitors with IC50 values in the nanomolar range.
ACS Combinatorial Science | 2018
Jonas Odgaard Petersen; Katrine Englund Christensen; Mathias Thor Nielsen; Kim Thollund Mortensen; Vitaly V. Komnatnyy; Thomas Eiland Nielsen; Katrine Qvortrup
We herein present a broadly useful method for the chemoselective modification of a wide range of tryptophan-containing peptides. Exposing a tryptophan-containing peptide to 2,3-dichloro-5,6-dicyano-1,4-benzoquinone (DDQ) resulted in a selective cyclodehydration between the peptide backbone and the indole side chain of tryptophan to form a fully conjugated indolyl-oxazole moiety. The modified peptides show a characteristic and significant emission maximum at 425 nm, thus making the method a useful strategy for fluorescence labeling.
ACS Combinatorial Science | 2018
Remi Jacob Thomsen Mikkelsen; Katja E. Grier; Kim Thollund Mortensen; Thomas Eiland Nielsen; Katrine Qvortrup
Photolabile linkers are the subjects of intense research because they allow the release of the target molecule simply by irradiation. Photochemical release of synthesis products is often facilitated without additional reagents under mild reaction conditions, which may even be environmentally friendly and appealing in the context of greener chemistry. The mild conditions also allow for applications of released material in subsequent biological screening experiments, where contamination with cleavage reagents would be detrimental. This Review pays attention to the increasing number of photolabile linkers developed for solid-phase synthesis and release and covers: (i) o-nitrobenzyloxy linkers, (ii) o-nitrobenzylamino linkers, (iii) α-substituted o-nitrobenzyl linkers, (iv) o-nitroveratryl linkers, (v) phenacyl linkers, (vi) p-alkoxyphenacyl linkers, (vii) benzoin linkers, (viii) pivaloyl linkers, and (ix) other photolabile linkers.
Organic Letters | 2017
Katrine Qvortrup; Rico Petersen; Asmus Ougaard Dohn; Klaus B. Møller; Thomas Eiland Nielsen
The synthetic utility and theoretical basis of a photolabile hydroxylamine-linker are presented. The developed protocols enable the efficient synthesis and chemoselective photolytic release of either hydroxamates or carboxamides from solid support. The bidetachable mode of the linker unit is uniquely dependent on the solvent. Hydroxamic acids are obtained by performing photolysis in protic solvents, whereas photolysis in aprotic solvents enables the selective release of carboxamides.
ACS Combinatorial Science | 2017
Claus Gunnar Bang; Jakob Feldthusen Jensen; Emil O’Hanlon Cohrt; Lasse Bohn Olsen; Saba G. Siyum; Kim Thollund Mortensen; Tine Skovgaard; Jens Berthelsen; Liang Yang; Michael Givskov; Katrine Qvortrup; Thomas Eiland Nielsen
We herein present broadly useful, readily available and nonintegral hydroxylamine linkers for the routine solid-phase synthesis of hydroxamic acids. The developed protocols enable the efficient synthesis and release of a wide range of hydroxamic acids from various resins, relying on high control and flexibility with respect to reagents and synthetic processes. A trityl-based hydroxylamine linker was used to synthesize a library of peptide hydroxamic acids. The inhibitory effects of the compounds were examined for seven HDAC enzyme subtypes using a chemiluminescence-based assay.
Tetrahedron Letters | 2011
Nitin Subhash Nandurkar; Rico Petersen; Katrine Qvortrup; Vitaly V. Komnatnyy; Kennedy M. Taveras; Sebastian Thordal Le Quement; Robin Frauenlob; Michael Givskov; Thomas Eiland Nielsen
Chemical Communications | 2011
Katrine Qvortrup; Kennedy M. Taveras; Ole Thastrup; Thomas Eiland Nielsen
Chemical Communications | 2011
Katrine Qvortrup; Thomas Eiland Nielsen