NEK1 kinase domain structure and its dynamic protein interactome after exposure to Cisplatin

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作者
Talita D. Melo-Hanchuk
Priscila Ferreira Slepicka
Gabriela Vaz Meirelles
Fernanda Luisa Basei
Diogo Ventura Lovato
Daniela Campos Granato
Bianca Alves Pauletti
Romenia Ramos Domingues
Adriana Franco Paes Leme
Alessandra Luiza Pelegrini
Guido Lenz
Stefan Knapp
Jonathan M. Elkins
Jörg Kobarg
机构
[1] Universidade Estadual de Campinas,Instituto de Biologia
[2] Universidade Estadual de Campinas,Faculdade de Ciências Farmacêuticas
[3] Centro Nacional de Pesquisa em Energia e Materiais,Laboratório Nacional de Biociências
[4] University of Oxford,Structural Genomics Consortium, Nuffield Department of Clinical Medicine
[5] Universidade Federal do Rio Grande do Sul,Center of Biotechnology
[6] Goethe University Frankfurt am Main,Institute of Pharmaceutical Chemistry and Buchmann Institute for Life Sciences
[7] Universidade Estadual de Campinas,Structural Genomics Consortium
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NEK family kinases are serine/threonine kinases that have been functionally implicated in the regulation of the disjunction of the centrosome, the assembly of the mitotic spindle, the function of the primary cilium and the DNA damage response. NEK1 shows pleiotropic functions and has been found to be mutated in cancer cells, ciliopathies such as the polycystic kidney disease, as well as in the genetic diseases short-rib thoracic dysplasia, Mohr-syndrome and amyotrophic lateral sclerosis. NEK1 is essential for the ionizing radiation DNA damage response and priming of the ATR kinase and of Rad54 through phosphorylation. Here we report on the structure of the kinase domain of human NEK1 in its apo- and ATP-mimetic inhibitor bound forms. The inhibitor bound structure may allow the design of NEK specific chemo-sensitizing agents to act in conjunction with chemo- or radiation therapy of cancer cells. Furthermore, we characterized the dynamic protein interactome of NEK1 after DNA damage challenge with cisplatin. Our data suggest that NEK1 and its interaction partners trigger the DNA damage pathways responsible for correcting DNA crosslinks.
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