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Khachatryan, H.

Publications and source records attributed to Khachatryan, H..

2 recordsLinked to original sources

Identification of tubulin polymerization inhibitors with a CRISPR-edited cell line with endogenous fluorescent tagging of β-tubulin and Histone 1

Tubulin is an essential protein to maintain the cellular structure and for the cell division process. Inhibiting tubulin polymerization has proven to be an effective method for slowing cancer cell growth. Traditionally, identifying tubulin polymerization inhibitors involved using pure tubulin for in vitro assays or procedures using cells that require cell fixing and anti-tubulin antibody staining. This study explores using a cell line developed via CRISPR genome editing as a cell model to identify tubulin polymerization inhibitors with live cells without using exogenous staining. The cell line has endogenous tagging with fluorescent proteins of {beta}-tubulin and a nuclear protein to facilitate image cellular segmentation by high-content imaging analysis (HCI). The cells were treated with known tubulin polymerization inhibitors, colchicine and vincristine, and the presence of phenotypic changes that indicate tubulin polymerization inhibition were confirmed via HCI. A library of 429 kinase inhibitors was screened to discover tubulin polymerization inhibitors and three compounds that inhibit tubulin polymerization were found (ON-01910, HMN-214, and KX2-391). Live cell tracking analysis confirms that depolymerization of tubulin occurs rapidly after compound treatments. These results suggest that CRISPR-edited cells with fluorescent endogenous tagging of {beta}-tubulin can be used to screen larger compound libraries containing diverse chemical families to identify novel tubulin polymerization inhibitors.

cancer biology↗

Stable population structure in Europe since the Iron Age, despite high mobility

Ancient DNA research in the past decade has revealed that European population structure changed dramatically in the prehistoric period (14,000-3,000 years before present, YBP), reflecting the widespread introduction of Neolithic farmer and Bronze Age Steppe ancestries. However, little is known about how population structure changed from the historical period onward (3,000 YBP - present). To address this, we collected whole genomes from 204 individuals from Europe and the Mediterranean, many of which are the first historical period genomes from their region (e.g. Armenia and France). We found that most regions show remarkable inter-individual heterogeneity. At least 7% of historical individuals carry ancestry uncommon in the region where they were sampled, some indicating cross-Mediterranean contacts. Despite this high level of mobility, overall population structure across western Eurasia is relatively stable through the historical period up to the present, mirroring geography. We show that, under standard population genetics models with local panmixia, the observed level of dispersal would lead to a collapse of population structure. Persistent population structure thus suggests a lower effective migration rate than indicated by the observed dispersal. We hypothesize that this phenomenon can be explained by extensive transient dispersal arising from drastically improved transportation networks and the Roman Empires mobilization of people for trade, labor, and military. This work highlights the utility of ancient DNA in elucidating finer scale human population dynamics in recent history.

genetics↗