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Flashner, S.

Publications and source records attributed to Flashner, S..

2 recordsLinked to original sources

ALDH2 dysfunction accelerates ESCC pathogenesis

The alcohol metabolite acetaldehyde is a potent human carcinogen. Aldehyde dehydrogenase 2 (ALDH2) is the primary enzyme that detoxifies acetaldehyde in the mitochondria. Acetaldehyde accumulates and causes genotoxic stress in cells expressing the dysfunctional ALDH2E487K mutant protein linked to ALDH2*2, the single nucleotide polymorphism highly prevalent amongst East Asians. Chronic alcohol users with heterozygous ALDH2*2 display an increased risk for the development of esophageal squamous cell carcinoma (ESCC) and other alcohol-related cancers. However, how ALDH2 influences ESCC pathobiology is incompletely understood. Herein, we characterize how ESCC and preneoplastic cells respond to alcohol exposure using cell lines, three dimensional organoids, and xenograft models. We find that alcohol exposure results in increased organoid formation and tumor growth concurrent with increased reactive oxygen species (ROS), increased DNA damage, and the enrichment of putative cancer stem cells (CSCs) characterized by high CD44 expression. Pharmacological activation of ALDH2 function by Alda-1 inhibits this phenotype, indicating that acetaldehyde is the primary driver of these changes. ALDH2 dysfunction also affects response to a commonly used chemotherapy for the treatment of ESCC. We find that Aldh2 dysfunction facilitated enrichment of CSCs following cisplatin-induced cell death and oxidative stress in murine organoids. Together, these data provide evidence that alcohol exposure, results in more aggressive tumors through enrichment of CSCs, which is augmented by ALDH2 dysfunction.

cancer biology↗

Transcription factor Sp1 regulates mitotic fidelity through Aurora B kinase-mediated condensin I localization

Mitotic chromosome assembly is essential for faithful chromosome segregation. Despite their salient role directing interphase chromatin organization, little is known about how transcription factors mediate this process during mitosis. Here, we characterize a mitosis-specific role for transcription factor specificity protein 1 (Sp1). Sp1 localizes to mitotic centromeres and auxin-induced rapid Sp1 degradation results in chromosome segregation errors and aberrant mitotic progression. These defects are driven by anomalous mitotic chromosome assembly. Sp1 degradation results in chromosome condensation defects through reduced condensin complex I localization. Sp1 also mediates the localization and activation of Aurora B kinase early in mitosis, which is essential for condensin complex I recruitment. Underscoring the clinical significance of our findings, aberrant Sp1 expression correlates with aneuploidy in several human cancers, including kidney renal papillary cell carcinoma, ovarian serous cystadenocarcinoma, mesothelioma, cholangiocarcinoma, and hepatocellular carcinoma. Our results suggest that Sp1 protects genomic integrity during mitosis by promoting chromosome assembly.

cell biology↗