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Dooling, L. J.

Publications and source records attributed to Dooling, L. J..

2 recordsLinked to original sources

Live cell monitoring for factors affecting genome variation

Cancer cells and pluripotent stem cells frequently exhibit gains or losses of entire chromosomes and chromosome segments, and the typical terminal analyses of genomes suggest this aneuploidy is ongoing and particularly variable in solid tumors. Here, we quantify aneuploidy-inducing perturbations by live cell fluorescence monitoring for changes in chromosome-5 in a lung cancer line and in normal diploid iPS cells. Inhibition of the spindle assembly checkpoint (SAC) and knockdown of DNA repair factors cause chromosome mis-segregation to increase several-fold above a low baseline level, and both perturbations also generate several-fold more rare fluorescent-null cells. Loss of chromosome-5 is confirmed by single cell karyotyping, SNP arrays on stable isolated clones, and downregulated expression of genes on chromosome-5 in single cell transcriptomics. The iPS cells also show loss of fluorescence in infrequent cells after SAC inhibition and upon growth as teratomas in mice. Viability, selection, and altered expression can thus be tracked to reveal molecular mechanisms in aneuploidy.

genomics

Rescue of DNA damage in cells after constricted migration reveals bimodal mechano-regulation of cell cycle

Migration through constrictions can clearly rupture nuclei and mis-localize nuclear proteins but damage to DNA remains uncertain as does any effect on cell cycle. Here, myosin-II inhibition rescues rupture and partially rescues the DNA damage marker {gamma}H2AX, but an apparent delay in cell cycle is unaffected. Co-overexpression of multiple DNA repair factors and antioxidant inhibition of break formation also have partial effects, independent of rupture. However, there seems to be a bimodal dependence of cell cycle on DNA damage. Migration through custom-etched pores yields the same bimodal, with ~4-m pores causing intermediate levels of damage and cell cycle delay. Micronuclei (generated in faulty division) of the smallest diameter appear similar to ruptured nuclei, with high DNA damage and entry of chromatin-binding cGAS (cyclic-GMP-AMP-synthase) from cytoplasm but low repair factor levels. Increased genomic variation after constricted migration is quantified in expanding clones and is consistent with (mis)repair of excess DNA damage and subsequent proliferation.

cell biology