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Yassin-Kassab, A.

Publications and source records attributed to Yassin-Kassab, A..

3 recordsLinked to original sources

Polyamine transport inhibition and cisplatin synergistically enhance tumor control through oxidative stress in murine head and neck cancer models

BackgroundSurgery and/or platinum-based chemoradiation remain standard of care for patients with head and neck squamous cell carcinoma (HNSCC). While these therapies are effective in a subset of patients, a substantial proportion experience recurrence or treatment resistance. As cisplatin mediates cytotoxicity through oxidative stress while polyamines play a role in redox regulation, we posited that combining cisplatin with polyamine transport inhibitor, AMXT-1501, would increase oxidative stress and tumor cell death in HNSCC cells. MethodsCell proliferation was measured in syngeneic mouse HNSCC cell lines treated with cisplatin {+/-} AMXT-1501. Synergy was determined by administering cisplatin and AMXT-1501 at a ratio of 1:10 to cancer cells in vitro. Cancer cells were transferred onto mouse flanks to test the efficacy of treatments in vivo. Reactive oxygen species (ROS) were measured. Cellular apoptosis was measured with flow cytometry using Annexin V/PI staining. High-performance liquid chromatography (HPLC) was used to quantify polyamines in cell lines. Cell viability and ROS were measured in the presence of exogenous cationic amino acids. ResultsThe combination of cisplatin and AMXT-1501 synergize in vitro on HNSCC cell lines. In vivo combination treatment resulted in tumor growth inhibition greater than either treatment individually. The combination treatment increased ROS production and induced apoptotic cell death. HPLC revealed the synergistic mechanism was independent of intracellular polyamine levels. Supplementation of cationic amino acids partially rescued cancer cell viability and reduced ROS. ConclusionAMXT-1501 enhances the cytotoxic effects of cisplatin in vitro and in vivo in aggressive HNSCC cell lines through a polyamine-independent mechanism.

cancer biology↗

Lysosomal mitochondrial interaction promotes tumor growth in squamous cell carcinoma of the head and neck

Tumor growth and proliferation are regulated by numerous mechanisms. Communication between intracellular organelles has recently been shown to regulate cellular proliferation and fitness. The way lysosomes and mitochondria communicate with each other (lysosomal/mitochondrial interaction) is emerging as a major determinant of tumor proliferation and growth. About 30% of squamous carcinomas (including squamous cell carcinoma of the head and neck, SCCHN) overexpress TMEM16A, a calcium-activated chloride channel, which promotes cellular growth and negatively correlates with patient survival. TMEM16A has recently been shown to drive lysosomal biogenesis, but its impact on mitochondrial function is unclear. Here, we show that (1) patients with high TMEM16A SCCHN display increased mitochondrial content specifically complex I; (2) In vitro and in vivo models uniquely depend on mitochondrial complex I activity for growth and survival; (3) {beta}-catenin/NRF2 signaling is a critical linchpin that drives mitochondrial biogenesis, and (4) mitochondrial complex I and lysosomal function are codependent for proliferation. Taken together, our data demonstrate that LMI drives tumor proliferation and facilitates a functional interaction between lysosomes and mitochondria. Therefore, inhibition of LMI may serve as a therapeutic strategy for patients with SCCHN.

cancer biology↗

Missense mutations in the calcium-activated chloride channel TMEM16A promote tumor growth by activating oncogenic signaling in Human Cancer.

The calcium-activated chloride channel TMEM16A is overexpressed in several tumors. This condition is associated with a poor survival prognosis but highlights TMEM16As potential as a biomarker and target for anti-cancer therapies. Numerous somatic mutations of TMEM16A have been reported; however, their potential and molecular mechanism of oncogenesis are unknown. Here, we investigate the function and oncogenicity of nine-point mutations found in human cancerous tissues (R451P, R455Q, M546I, R557W, F604L, D902N, K913E, D914H, and Q917K). These mutations are located on the extracellular side and near the third Ca2+-binding site, near a PtdIns(4,5)P2 site in the human TMEM16A channel. Our findings reveal that these mutations affected gating, Ca2+ sensitivity, phosphorylation of essential signaling proteins, cell proliferation, and tumor growth. Notably, R451P and D902N exhibit low Ca2+ sensitivity, yet their overexpression promotes phosphorylation of EGFR and AKT, as well as in vivo tumorigenesis, without Ca2+-enhancing stimuli. Conversely, the charged-neutralizing mutation R451Q and the conservative mutation D902E restored Ca2+ sensitivity and altered cell proliferation and tumor growth as wild-type did. Thus, we conclude that the oncogenic phenotype of TMEM16A missense mutations is independent of chloride flux but involves the differential activation of cell signaling components associated with cell proliferation.

cancer biology↗