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Biology subjects

Gheorghe, T.

Publications and source records attributed to Gheorghe, T..

2 recordsLinked to original sources

CDK4/6 inhibitors promote senescence-associated lysosomal alterations and enhance sensitivity to lysosomotropic agents in breast cancer

Breast cancer is a leading cause of mortality worldwide. Pharmacological inhibitors of Cyclin- Dependent Kinases (CDK) 4 and 6 (CDK4/6i) inhibit breast cancer growth by inducing a senescent-like state. However, the long-term treatment efficacy remains hindered by the development of drug resistance. Clearance of senescent-like cancer cells may extend the durability of treatment. In this study, we showed that CDK4/6i-treated breast cancer cells exhibit various senescence-associated phenotypes, but remain insensitive to common senolytic compounds. By searching for novel vulnerabilities, we identified a significantly increased lysosomal mass and altered lysosomal structure across various breast cancer cell types upon exposure to CDK4/6i in preclinical systems and clinical specimens. We demonstrated that these lysosomal alterations render breast cancer cells sensitive to lysosomotropic agents, such as L- leucyl-L-leucine methyl ester (LLOMe) and salinomycin. Importantly, sequential treatment with CDK4/6i/lysosomotropic agents effectively reduced the growth of both Hormone Receptor- positive (HR+) and triple-negative breast cancer (TNBC) cells in vivo. This sequential therapeutic strategy offers a promising approach to eliminate CDK4/6i-induced senescent(-like) cells, potentially reducing tumor recurrence and enhancing the overall efficacy of breast cancer therapy.

cancer biology↗

Nuclear transport under stress phenocopies transport defects in models of C9Orf72 ALS

The nucleus is the hallmark of eukaryotic life and transport to and from the nucleus occurs through the nuclear pore complex (NPC). There is a multitude of data connecting the nuclear transport machinery - i.e. the NPCs and associated nuclear transport factors - to neurodegenerative diseases, but the mechanisms are not well understood. Using Saccharomyces cerevisiae, we systematically studied how the expression of polyPR and polyGA related to C9Orf72 amyotrophic lateral sclerosis impacts the nuclear transport machinery. We measured the abundance and localization of NPC components and transport factors, and assessed the kinetics of import and export by four transport receptors. PolyPR and polyGA cause distinct, and transport receptor dependent effects. We compared the specific changes in transport to those obtained when cells were exposed to different stress situations or mutations. This comparison showed similar patterns of transport defects in cells lacking specific NTRs and cells expressing polyPR. In contrast, polyGA expressing cells bear resemblance to stress conditions where energy maintenance is decreased. The similarity of the patterns of transport deficiencies suggests that polyPR has a direct effect on nuclear transport via NTRs, while polyGA impacts the energy state of the cell and subsequently changes transport.

cell biology↗