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Chi, F.

Publications and source records attributed to Chi, F..

3 recordsLinked to original sources

A 'one-two punch' therapy strategy to target chemoresistance in ER+ breast cancer

BackgroundCancer cell phenotypes evolve over the course of a tumors treatment. The phenotypes that emerge and disappear over time will be specific to each drug regimen and type of cancer. Chemotherapy remains one of the most common and effective treatments for metastatic breast cancer patients; however, resistance to chemotherapy inevitably emerges. Cancer chemotherapy treatment regimens are not designed to target emerging chemo-resistance, despite its clear importance in progressive cancer. This study focuses on finding sequential treatment strategies that target acquired chemo-resistant states and optimize response to chemotherapy. MethodsIn this study, we used heterogeneous tumor samples from patients to identify subclones resistant to chemotherapy. Using flow cytometry for stem cell markers and DNA sequencing to define subclonal population changes, we measured the enrichment of cancer stem cell-like (CSL) phenotypes in subclones that survive chemotherapy. We then analyzed breast cancer patient tumor organoids and cell line acquisition of CSL traits following chemotherapy, as well as the ability of different drugs to reverse acquired resistance, using flow cytometry, mammosphere assays, and single cell RNA-sequencing analysis. ResultsWe show that in progressive estrogen receptor positive (ER+) metastatic breast cancer patients, resistant tumor subclones that emerge following chemotherapy have increased CSL abundance. Further, in vitro organoid growth of ER+ patient cancer cells also shows that chemotherapy treatment leads to increased abundance of ALDH+/CD44+ CSL cells. Chemotherapy induced CSL abundance is blocked by treatment with a pan-HDAC inhibitor, belinostat. Further, belinostat treatment diminished both mammosphere formation and size following chemotherapy, also indicating a decrease in progenitor CSL traits. HDAC inhibitors specific to class IIa (HDAC4, HDAC5) and IIb (HDAC6) were shown to primarily reverse the chemo-resistant CSL state. Single-cell RNA sequencing analysis with patient samples showed that HDAC targets and MYC signaling were promoted by chemotherapy and inhibited upon HDAC inhibitor treatment. ConclusionThese findings indicate that HDAC inhibition can block chemotherapy-induced drug resistant phenotypes with one-two punch strategy in refractory breast cancer cells.

cancer biology

Glucose metabolism distinguishes TE from ICM fate during mammalian embryogenesis

The mouse embryo undergoes compaction at the 8-cell stage and its transition to 16 cells generates polarity such that the outer apical cells are trophectoderm (TE) precursors and the inner cell mass (ICM) gives rise to the embryo. We report here, that this first cell fate specification event is controlled by glucose metabolism. Glucose does not fuel mitochondrial ATP (energy) generation and glycolysis is dispensable for blastocyst formation. Glucose does not help synthesize amino acids, fatty acids, and nucleobases. Instead, glucose metabolized by the hexosamine biosynthetic pathway (HBP) allows nuclear localization of YAP1, and the pentose phosphate pathway (PPP), along with sphingolipid (S1P) signaling, activates mTOR and allows translation of AP-2{gamma}. YAP1, TEAD4 and AP-2{gamma} physically interact to form a nuclear complex that controls TE-specific gene transcription. Glucose signaling has no role in ICM specification, but this cascade of events constituting \"Developmental Metabolism\" specifically controls the fate of TE cells.

developmental biology

TRIM21 and PHLDA3 Negatively Regulate the Cross-Talk between the PI3K/AKT Pathway and PPP Metabolism

PI3K/AKT signaling is known to regulate cancer metabolism but whether metabolic pathway feedbacks and regulates the PI3K/AKT pathway is unclear. Here, we demonstrate the important reciprocal cross-talks between the PI3K/AKT signal and PPP branching metabolic pathways. PI3K/AKT activation stabilizes G6PD, the rate-limiting enzyme of PPP, by inhibiting a newly identified E3 ligase TIRM21, and promotes PPP. PPP metabolites, in turn, reinforce AKT activation and further promote cancer metabolic reprogramming by blocking the expression of an AKT inhibitor PHLDA3. Knockout TRIM21 or PHLDA3 promotes the cross-talks and cell proliferation. Importantly, PTEN null human cancer cells and in vivo murine models are sensitive to anti-PPP treatments, suggesting the importance of PPP in maintaining AKT activation even in the presence of a constitutively activated PI3K pathway. Our study suggests that blockade of these reciprocal cross-talks may have a therapeutic benefit for cancers with PTEN loss or PI3K/AKT activation.

cancer biology