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Lucken, K.

Publications and source records attributed to Lucken, K..

2 recordsLinked to original sources

Nucleophosmin mutations lead to abnormal, but reversible, nucleoli architecture and aggregate formation - implications for NPM1-targeting therapies in AML

Mutations in the NPM1 gene represent the most common (>30% of patients) genetic alteration in Acute Myeloid Leukaemia (AML) and results in the mis-localisation of the mutated NPM1 protein from a predominantly nucleolar localisation to a predominantly cytoplasmic distribution. Numerous studies of NPM1 mutated AML have focussed on the aberrant cytoplasmic localisation of the mutated protein but efforts to reverse this mis-localisation therapeutically have so far resulted in limited clinical benefit. More recently, attention has shifted towards the nucleus with studies showing that mutant NPM1 binds to specific chromatin regions, where it directly regulates oncogenic gene expression. Here, we use high resolution imaging to demonstrate that Nucleophosmin (NPM1) is critical for maintaining normal nucleoli architecture and specifically the integrity of the nucleoli rim. We report for the first time that NPM1 mutated cell lines and primary samples have aberrant nucleoli architecture and demonstrate that the abnormal nucleoli phenotype is reversible. We also report the novel finding that NPM1 mutated protein forms distinct aggregates in NPM1 mutated cells and characterise these for the first time. This work reveals how nucleolar organisation contributes to the molecular mechanisms underpinning NPM1 driven AML and reveals unexpected novel vulnerabilities to be exploited for therapeutic intervention.

cancer biology↗

The mitotic chromosome periphery: a fluid coat that mediates chromosome mechanics

Mitotic chromosomes are specialised packets of condensed genetic material with dynamic mechanical properties. Each chromosome is coated by a sheath of proteins and RNA, called the mitotic chromosome periphery (MCP). The MCP is widely considered as an essential chromosome compartment where its multiple functions bestow material properties important for successful cell division. However, the details of the micromechanical properties of mitotic chromosomes, and specifically if and how the MCP contributes to these features, remain poorly understood. In this study, we present the most comprehensive characterisation of single-chromosome mechanics to date spanning a broadband frequency range, using optical tweezers and a novel microrheology technique. We extend this analysis to the first direct measurements of MCP micromechanics by manipulating levels of Ki-67, the chief organiser of this compartment, and apply a rheological model to isolate its contribution to chromosome dynamics. We report that the MCP governs high-frequency self-reorganisation dynamics and acts as a structural constraint, providing force-damping properties that mitigate mitotic stress. This work significantly advances our understanding of chromosome micromechanics and how the MCP contributes to the fundamental properties of chromosomes.

biophysics↗