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PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity

[Image: see text] The trafficking chaperone PDE6D (also referred to as PDEδ) has been nominated as a surrogate target for K-Ras4B (hereafter K-Ras). Arl2-assisted unloading of K-Ras from PDE6D in the perinuclear area is significant for correct K-Ras localization and therefore activity. However, the...

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Autores principales: Siddiqui, Farid A., Alam, Catharina, Rosenqvist, Petja, Ora, Mikko, Sabt, Ahmed, Manoharan, Ganesh babu, Bindu, Lakshman, Okutachi, Sunday, Catillon, Marie, Taylor, Troy, Abdelhafez, Omaima M., Lönnberg, Harri, Stephen, Andrew G., Papageorgiou, Anastassios C., Virta, Pasi, Abankwa, Daniel
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2019
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6964506/
https://www.ncbi.nlm.nih.gov/pubmed/31956834
http://dx.doi.org/10.1021/acsomega.9b03639
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author Siddiqui, Farid A.
Alam, Catharina
Rosenqvist, Petja
Ora, Mikko
Sabt, Ahmed
Manoharan, Ganesh babu
Bindu, Lakshman
Okutachi, Sunday
Catillon, Marie
Taylor, Troy
Abdelhafez, Omaima M.
Lönnberg, Harri
Stephen, Andrew G.
Papageorgiou, Anastassios C.
Virta, Pasi
Abankwa, Daniel
author_facet Siddiqui, Farid A.
Alam, Catharina
Rosenqvist, Petja
Ora, Mikko
Sabt, Ahmed
Manoharan, Ganesh babu
Bindu, Lakshman
Okutachi, Sunday
Catillon, Marie
Taylor, Troy
Abdelhafez, Omaima M.
Lönnberg, Harri
Stephen, Andrew G.
Papageorgiou, Anastassios C.
Virta, Pasi
Abankwa, Daniel
author_sort Siddiqui, Farid A.
collection PubMed
description [Image: see text] The trafficking chaperone PDE6D (also referred to as PDEδ) has been nominated as a surrogate target for K-Ras4B (hereafter K-Ras). Arl2-assisted unloading of K-Ras from PDE6D in the perinuclear area is significant for correct K-Ras localization and therefore activity. However, the unloading mechanism also leads to the undesired ejection of PDE6D inhibitors. To counteract ejection, others have recently optimized inhibitors for picomolar affinities; however, cell penetration generally seems to remain an issue. To increase resilience against ejection, we engineered a “chemical spring” into prenyl-binding pocket inhibitors of PDE6D. Furthermore, cell penetration was improved by attaching a cell-penetration group, allowing us to arrive at micromolar in cellulo potencies in the first generation. Our model compounds, Deltaflexin-1 and -2, selectively disrupt K-Ras, but not H-Ras membrane organization. This selectivity profile is reflected in the antiproliferative activity on colorectal and breast cancer cells, as well as the ability to block stemness traits of lung and breast cancer cells. While our current model compounds still have a low in vitro potency, we expect that our modular and simple inhibitor redesign could significantly advance the development of pharmacologically more potent compounds against PDE6D and related targets, such as UNC119 in the future.
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spelling pubmed-69645062020-01-17 PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity Siddiqui, Farid A. Alam, Catharina Rosenqvist, Petja Ora, Mikko Sabt, Ahmed Manoharan, Ganesh babu Bindu, Lakshman Okutachi, Sunday Catillon, Marie Taylor, Troy Abdelhafez, Omaima M. Lönnberg, Harri Stephen, Andrew G. Papageorgiou, Anastassios C. Virta, Pasi Abankwa, Daniel ACS Omega [Image: see text] The trafficking chaperone PDE6D (also referred to as PDEδ) has been nominated as a surrogate target for K-Ras4B (hereafter K-Ras). Arl2-assisted unloading of K-Ras from PDE6D in the perinuclear area is significant for correct K-Ras localization and therefore activity. However, the unloading mechanism also leads to the undesired ejection of PDE6D inhibitors. To counteract ejection, others have recently optimized inhibitors for picomolar affinities; however, cell penetration generally seems to remain an issue. To increase resilience against ejection, we engineered a “chemical spring” into prenyl-binding pocket inhibitors of PDE6D. Furthermore, cell penetration was improved by attaching a cell-penetration group, allowing us to arrive at micromolar in cellulo potencies in the first generation. Our model compounds, Deltaflexin-1 and -2, selectively disrupt K-Ras, but not H-Ras membrane organization. This selectivity profile is reflected in the antiproliferative activity on colorectal and breast cancer cells, as well as the ability to block stemness traits of lung and breast cancer cells. While our current model compounds still have a low in vitro potency, we expect that our modular and simple inhibitor redesign could significantly advance the development of pharmacologically more potent compounds against PDE6D and related targets, such as UNC119 in the future. American Chemical Society 2019-12-23 /pmc/articles/PMC6964506/ /pubmed/31956834 http://dx.doi.org/10.1021/acsomega.9b03639 Text en Copyright © 2019 American Chemical Society This is an open access article published under a Creative Commons Non-Commercial No Derivative Works (CC-BY-NC-ND) Attribution License (http://pubs.acs.org/page/policy/authorchoice_ccbyncnd_termsofuse.html) , which permits copying and redistribution of the article, and creation of adaptations, all for non-commercial purposes.
spellingShingle Siddiqui, Farid A.
Alam, Catharina
Rosenqvist, Petja
Ora, Mikko
Sabt, Ahmed
Manoharan, Ganesh babu
Bindu, Lakshman
Okutachi, Sunday
Catillon, Marie
Taylor, Troy
Abdelhafez, Omaima M.
Lönnberg, Harri
Stephen, Andrew G.
Papageorgiou, Anastassios C.
Virta, Pasi
Abankwa, Daniel
PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity
title PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity
title_full PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity
title_fullStr PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity
title_full_unstemmed PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity
title_short PDE6D Inhibitors with a New Design Principle Selectively Block K-Ras Activity
title_sort pde6d inhibitors with a new design principle selectively block k-ras activity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC6964506/
https://www.ncbi.nlm.nih.gov/pubmed/31956834
http://dx.doi.org/10.1021/acsomega.9b03639
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