The search result changed since you submitted your search request. Documents might be displayed in a different sort order.
  • search hit 6 of 152
Back to Result List

Binding affinity data of DNA aptamers for therapeutic anthracyclines from microscale thermophoresis and surface plasmon resonance spectroscopy

  • Anthracyclines like daunorubicin (DRN) and doxorubicin (DOX) play an undisputed key role in cancer treatment, but their chronic administration can cause severe side effects. For precise anthracycline analytical systems, aptamers are preferable recognition elements. Here, we describe the detailed characterisation of a single-stranded DNA aptamer DRN-10 and its truncated versions for DOX and DRN detection. Binding affinities were determined from surface plasmon resonance (SPR) and microscale thermophoresis (MST) and combined with conformational data from circular dichroism (CD). Both aptamers displayed similar nanomolar binding affinities to DRN and DOX, even though their rate constants differed as shown by SPR recordings. SPR kinetic data unravelled a two-state reaction model including a 1 : 1 binding and a subsequent conformational change of the binding complex. This model was supported by CD spectra. In addition, the dissociation constants determined with MST were always lower than that from SPR, and especially for the truncatedAnthracyclines like daunorubicin (DRN) and doxorubicin (DOX) play an undisputed key role in cancer treatment, but their chronic administration can cause severe side effects. For precise anthracycline analytical systems, aptamers are preferable recognition elements. Here, we describe the detailed characterisation of a single-stranded DNA aptamer DRN-10 and its truncated versions for DOX and DRN detection. Binding affinities were determined from surface plasmon resonance (SPR) and microscale thermophoresis (MST) and combined with conformational data from circular dichroism (CD). Both aptamers displayed similar nanomolar binding affinities to DRN and DOX, even though their rate constants differed as shown by SPR recordings. SPR kinetic data unravelled a two-state reaction model including a 1 : 1 binding and a subsequent conformational change of the binding complex. This model was supported by CD spectra. In addition, the dissociation constants determined with MST were always lower than that from SPR, and especially for the truncated aptamer they differed by two orders of magnitude. This most probably reflects the methodological difference, namely labelling for MST vs. immobilisation for SPR. From CD recordings, we suggested a specific G-quadruplex as structural basis for anthracycline binding. We concluded that the aptamer DRN-10 is a promising recognition element for anthracycline detection systems and further selected aptamers can be also characterised with the combined methodological approach presented here.show moreshow less

Export metadata

Additional Services

Search Google Scholar Statistics
Metadaten
Author details:Stephan Sass, Walter F. M. Stöcklein, Anja Klevesath, Jeanne Hurpin, Marcus MengerORCiDGND, Carsten HilleORCiDGND
DOI:https://doi.org/10.1039/c9an01247h
ISSN:0003-2654
ISSN:1364-5528
Pubmed ID:https://pubmed.ncbi.nlm.nih.gov/31528891
Title of parent work (English):The analyst : the analytical journal of the Royal Society of Chemistry
Publisher:Royal Society of Chemistry
Place of publishing:Cambridge
Publication type:Article
Language:English
Date of first publication:2019/09/10
Publication year:2019
Release date:2020/10/25
Volume:144
Issue:20
Number of pages:10
First page:6064
Last Page:6073
Funding institution:German Federal Ministry of Education and Research BMBF within the funding program InnoProfile-Transfer [03IPT517Y]; German Federal Ministry for Economic Affairs and Energy BMWi within the Central Innovation Programme [ZF4086507MD6]; German Federal Ministry of Education and Research BMBF within the funding program Photonics Research Germany [13N13777]
Organizational units:Mathematisch-Naturwissenschaftliche Fakultät / Institut für Chemie
DDC classification:5 Naturwissenschaften und Mathematik / 54 Chemie / 540 Chemie und zugeordnete Wissenschaften
Peer review:Referiert
Accept ✔
This website uses technically necessary session cookies. By continuing to use the website, you agree to this. You can find our privacy policy here.