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Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity

[Image: see text] Cytoplasmic dyneins 1 and 2 are related members of the AAA+ superfamily (ATPases associated with diverse cellular activities) that function as the predominant minus-end-directed microtubule motors in eukaryotic cells. Dynein 1 controls mitotic spindle assembly, organelle movement,...

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Autores principales: See, Stephanie K., Hoogendoorn, Sascha, Chung, Andrew H., Ye, Fan, Steinman, Jonathan B., Sakata-Kato, Tomoyo, Miller, Rand M., Cupido, Tommaso, Zalyte, Ruta, Carter, Andrew P., Nachury, Maxence V., Kapoor, Tarun M., Chen, James K.
Formato: Online Artículo Texto
Lenguaje:English
Publicado: American Chemical Society 2015
Acceso en línea:https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4715766/
https://www.ncbi.nlm.nih.gov/pubmed/26555042
http://dx.doi.org/10.1021/acschembio.5b00895
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author See, Stephanie K.
Hoogendoorn, Sascha
Chung, Andrew H.
Ye, Fan
Steinman, Jonathan B.
Sakata-Kato, Tomoyo
Miller, Rand M.
Cupido, Tommaso
Zalyte, Ruta
Carter, Andrew P.
Nachury, Maxence V.
Kapoor, Tarun M.
Chen, James K.
author_facet See, Stephanie K.
Hoogendoorn, Sascha
Chung, Andrew H.
Ye, Fan
Steinman, Jonathan B.
Sakata-Kato, Tomoyo
Miller, Rand M.
Cupido, Tommaso
Zalyte, Ruta
Carter, Andrew P.
Nachury, Maxence V.
Kapoor, Tarun M.
Chen, James K.
author_sort See, Stephanie K.
collection PubMed
description [Image: see text] Cytoplasmic dyneins 1 and 2 are related members of the AAA+ superfamily (ATPases associated with diverse cellular activities) that function as the predominant minus-end-directed microtubule motors in eukaryotic cells. Dynein 1 controls mitotic spindle assembly, organelle movement, axonal transport, and other cytosolic, microtubule-guided processes, whereas dynein 2 mediates retrograde trafficking within motile and primary cilia. Small-molecule inhibitors are important tools for investigating motor protein-dependent mechanisms, and ciliobrevins were recently discovered as the first dynein-specific chemical antagonists. Here, we demonstrate that ciliobrevins directly target the heavy chains of both dynein isoforms and explore the structure–activity landscape of these inhibitors in vitro and in cells. In addition to identifying chemical motifs that are essential for dynein blockade, we have discovered analogs with increased potency and dynein 2 selectivity. These antagonists effectively disrupt Hedgehog signaling, intraflagellar transport, and ciliogenesis, making them useful probes of these and other cytoplasmic dynein 2-dependent cellular processes.
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spelling pubmed-47157662016-01-27 Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity See, Stephanie K. Hoogendoorn, Sascha Chung, Andrew H. Ye, Fan Steinman, Jonathan B. Sakata-Kato, Tomoyo Miller, Rand M. Cupido, Tommaso Zalyte, Ruta Carter, Andrew P. Nachury, Maxence V. Kapoor, Tarun M. Chen, James K. ACS Chem Biol [Image: see text] Cytoplasmic dyneins 1 and 2 are related members of the AAA+ superfamily (ATPases associated with diverse cellular activities) that function as the predominant minus-end-directed microtubule motors in eukaryotic cells. Dynein 1 controls mitotic spindle assembly, organelle movement, axonal transport, and other cytosolic, microtubule-guided processes, whereas dynein 2 mediates retrograde trafficking within motile and primary cilia. Small-molecule inhibitors are important tools for investigating motor protein-dependent mechanisms, and ciliobrevins were recently discovered as the first dynein-specific chemical antagonists. Here, we demonstrate that ciliobrevins directly target the heavy chains of both dynein isoforms and explore the structure–activity landscape of these inhibitors in vitro and in cells. In addition to identifying chemical motifs that are essential for dynein blockade, we have discovered analogs with increased potency and dynein 2 selectivity. These antagonists effectively disrupt Hedgehog signaling, intraflagellar transport, and ciliogenesis, making them useful probes of these and other cytoplasmic dynein 2-dependent cellular processes. American Chemical Society 2015-11-11 2016-01-15 /pmc/articles/PMC4715766/ /pubmed/26555042 http://dx.doi.org/10.1021/acschembio.5b00895 Text en Copyright © 2015 American Chemical Society This is an open access article published under a Creative Commons Attribution (CC-BY) License (http://pubs.acs.org/page/policy/authorchoice_ccby_termsofuse.html) , which permits unrestricted use, distribution and reproduction in any medium, provided the author and source are cited.
spellingShingle See, Stephanie K.
Hoogendoorn, Sascha
Chung, Andrew H.
Ye, Fan
Steinman, Jonathan B.
Sakata-Kato, Tomoyo
Miller, Rand M.
Cupido, Tommaso
Zalyte, Ruta
Carter, Andrew P.
Nachury, Maxence V.
Kapoor, Tarun M.
Chen, James K.
Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity
title Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity
title_full Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity
title_fullStr Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity
title_full_unstemmed Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity
title_short Cytoplasmic Dynein Antagonists with Improved Potency and Isoform Selectivity
title_sort cytoplasmic dynein antagonists with improved potency and isoform selectivity
url https://www.ncbi.nlm.nih.gov/pmc/articles/PMC4715766/
https://www.ncbi.nlm.nih.gov/pubmed/26555042
http://dx.doi.org/10.1021/acschembio.5b00895
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