Engineering and functional analysis of mitotic kinases through chemical genetics Journal Article


Authors: Jones, M. J. K.; Jallepalli, P. V.
Article Title: Engineering and functional analysis of mitotic kinases through chemical genetics
Abstract: During mitosis, multiple protein kinases transform the cytoskeleton and chromosomes into new and highly dynamic structures that mediate the faithful transmission of genetic information and cell division. However, the large number and strong conservation of mammalian kinases in general pose significant obstacles to interrogating them with small molecules, due to the difficulty in identifying and validating those which are truly selective. To overcome this problem, a steric complementation strategy has been developed, in which a bulky "gatekeeper" residue within the active site of the kinase of interest is replaced with a smaller amino acid, such as glycine or alanine. The enlarged catalytic pocket can then be targeted in an allele-specific manner with bulky purine analogs. This strategy provides a general framework for dissecting kinase function with high selectivity, rapid kinetics, and reversibility. In this chapter we discuss the principles and techniques needed to implement this chemical genetic approach in mammalian cells.
Keywords: chemical genetics; genome; technology; design; reveals; inhibition; generation; strategy; human-cells; requirements; protein-kinases; analog-sensitive; bump-hole; genome editing; kinase engineering
Journal Title: Methods in Molecular Biology
Volume: 1413
ISSN: 1064-3745
Publisher: Humana Press Inc  
Date Published: 2016-01-01
Start Page: 349
End Page: 363
Language: English
ACCESSION: WOS:000381638300023
PROVIDER: wos
PUBMED: 27193860
DOI: 10.1007/978-1-4939-3542-0_22
PMCID: PMC6421128
Notes: In Chapter 22 of "The Mitotic Spindle: Methods and Protocols" (ISBN: 978-1-4939-3540-6) -- Source: Wos
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  1. Mathew John Kimble Jones
    12 Jones