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Rachagani, S.

Publications and source records attributed to Rachagani, S..

2 recordsLinked to original sources

Patient-derived tumor organoids from resected non-small cell lung cancers for high-throughput response testing with approved and repurposed drugs

BackgroundThe five-year survival for non-metastatic non-small cell lung cancer (NSCLC) patients undergoing curative surgery remains poor at [~]50% that is due to locoregional and/or distant metastatic recurrences. Patient-derived tumor organoids (PDTOs) have high potential as clinically relevant high-throughput drug testing platforms to personalize and improve treatment of NSCLC patients. We aimed to develop PDTOs from non-metastatic NSCLC patients to assess their suitability to study tumor heterogeneities and personalized drug responses. MethodsTen non-metastatic (stage I-IIIA) NSCLC patients undergoing curative surgical resection were prospectively enrolled. PDTOs were established from resected lung tumor tissues and were compared with matched primary tumors by histopathology, immunohistochemistry, whole exome and whole transcriptome sequencing analysis. PDTO responses to standard of care carboplatin/paclitaxel chemotherapy were determined by measuring organoid growth using bright-field 3D imaging. Transcriptomic differential gene expression analysis identified molecular targets for drug repurposing to overcome chemoresistance. ResultsNSCLC PDTOs were successfully generated from all 10 (100%) primary tumors with a median time of 12 days (range 4-16 days). All 10 PDTOs could be grown from cryopreserved tumor tissues or reconstituted from frozen PDTOs (living biobank). PDTOs retained histopathological, immunohistochemical protein expression and mutational landscape of the matched primary tumors. Microenvironment cell population analysis revealed epithelial cell signatures of the PDTOs that matched the patients lung tumor tissues. Treatment responses of PDTOs to carboplatin/paclitaxel were determined by growth differences versus vehicle control group. 5/10 (50%) PDTOs were chemo-sensitive, whereas 5/10 (50%) were chemo-resistant. Upregulation of aldo-keto reductases (AKR1B10/15) was observed in chemoresistant PDTOs by differential gene expression analysis and confirmed by real-time PCR and immunohistochemistry in PDTOs and tumor tissues. Epalrestat, an anti-diabetic AKR1B10 inhibitory drug, was repurposed to effectively sensitize PDTOs to carboplatin/paclitaxel. ConclusionsPDTOs can be established from resected NSCLC primary tumor tissues with high success rates and conserve cellular, molecular and genomic characteristics of the matched NSCLC tumors. PDTOs can serve as clinically applicable and relevant personalized drug screening platforms to evaluate the therapeutic efficacy of drugs, including repurposed drugs, to overcome chemoresistance.

cancer biology↗

Red cabbage juice-mediated gut microbiota modulation improves intestinal epithelial homeostasis and ameliorates colitis

Gut microbiota plays a crucial role in inflammatory bowel disease (IBD) and has therapeutic benefits. Thus, targeting the gut microbiota is a promising therapeutic approach for IBD treatment. We recently found that red cabbage juice (RCJ) ameliorates dextran sulfate sodium (DSS)-induced colitis in mice. However, the underlying mechanisms remain unknown. The current study investigated the modulation of gut microbiota in response to treatment with RCJ to ameliorate the DSS colitis. The initial results demonstrated that mice treated with DSS + RCJ showed increased body weight and decreased diarrhea and blood in feces compared to the DSS alone group. RCJ ameliorated colitis by regulating the intestinal barrier function by reducing the number of apoptotic cells, improving colonic protective mucin, and increasing tight junction protein in RCJ + DSS groups compared to the DSS group. Short-gun metagenomic analysis revealed significant enrichment of short-chain fatty acid (SCFAs)-producing bacteria (Butyrivibrio, Ruminococcaceae, Acetatifactor muris, Rosburia Sp. CAG:303, Dorea Sp. 5-2) increased PPAR-(C) activation, leading to repression of the nuclear factor {kappa}B (NF{kappa}B) signaling pathway, thus decreasing the production of crucial inflammatory cytokines and chemokines in the RCJ + DSS groups compared to the DSS group. Pathway abundance analysis showed an increased abundance of the SCFA pathway, reduced histidine degradation (Bacteroides sartorii, and Bacteroides caecimuris), and LCFA production in the RCJ+DSS treated group, suggesting the promotion of good colonic health. Furthermore, increased T-reg (FOXP3+) cells in the colon were due to SCFAs produced by the gut microbiota, which was corroborated by an increase in IL-10, a vital anti-inflammatory cytokine. Thus, our study provides the first evidence that RCJ ameliorates colonic inflammation by modulating the gut microbiota.

pathology↗