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Polymalic Acid-based Nano Biopolymers for Targeting of Multiple Tumor Markers: An Opportunity for Personalized Medicine?
Published on: June 13, 2014
Berry-derived gold nanoparticles induce integrated ROS-mediated apoptosis, immune modulation, and transcriptomic
Oladapo F Fagbohun1, Adewale O Oladipo2,3, Chengyu Gao4
1Department of Biology, Center for Agriculture and Natural Sciences, Wilmington College, Wilmington, OH, USA. oladapo.fagbohun@wilmington.edu.
Abstract:
Comprehensive molecular and phenotypic characterization of tumor models is still needed for a robust understanding of breast cancer mechanisms and therapies. Here, we explore the genome, transcriptome, and proteome of treated and untreated 4T1 triple-negative breast cancer cells to integrate genomic vulnerabilities and mutational profiling with novel treatment-induced delivery, signaling, and apoptotic responses. Nanoencapsulation (AuNPs) of berry-derived polyphenolic compounds was influenced by limited clinical use due to poor stability and bioavailability. Several physicochemical characterizations employed include TEM, FTIR, and targeted UPLC/MS-QQQ assays. We identified significant mutations to breast cancer-related tumor suppressor genes (TP53, BRCA2, BARD1, CDH1, NF1, and CHEK2) and deciphered the functional consequences leveraging the higher throughput Illumina NovaSeq X and NextSeq sequencing and the highly accurate predictive power of AlphaFold. We found ~5,700,000 single-nucleotide variations (SNVs) and 329448 indels, achieving an important upgrade over existing literature data. Multiple sequence alignment with WT mouse and human protein sequences demonstrated that mutations present in 4T1 cells are within highly conserved motifs of key tumor suppressors, emphasizing their relevance to human breast cancer biology. Key findings from differentially expressed gene enrichment analyses (GSEA) revealed positive gene enrichments of DNA repair regulators and TGF-β signaling, while having negative enrichments of cell adhesion, cadherin and MAPK signaling via PI3K/AKT/MAPK/Wnt pathways, potentially influencing apoptosis and immune evasion intrinsic to cancer. Notably, decreased expression of PIK3CG, PALLD, PTPRZ1, and CDH8 and increased expression of SEMA6C, WWOX, NHEJ1, and MAML3 suggested suppression of epithelial-to-mesenchymal transition (EMT) and metastatic potential. Further assessment of immunohistochemical, immunofluorescent, and flow cytometric data revealed that berry-derived nanoparticles are associated with the modulation of oncogenic transcription factors and linked to induced caspase-dependent execution-phase ROS-mediated apoptosis through pPAK1Thr212 dephosphorylation, downregulation of pPI3Kp85αγ(Tyr467/199)/pAKT1Thr450/mTOR signaling, and modulation of pJAK3Tyr785/STAT3 pathway supporting transcriptomic and transcriptional reprogramming of 4T1 treated cells. Together, our findings uncover a new strategy to capture berry-derived polyphenols required to regulate apoptosis, autophagy, immune response, and metastasis-related gene networks in breast cancer, thereby underscoring the therapeutic potential of functionalized AuNPs as delivery platforms for dietary phytochemicals.
Insights
This study characterizes 4T1 triple-negative breast cancer cells, revealing mutations in key tumor suppressor genes. Berry-derived nanoparticles were found to induce apoptosis and suppress metastasis, offering a novel therapeutic strategy for breast cancer.
Area of Science:
- Oncology
- Nanotechnology
- Molecular Biology
Background:
- Comprehensive characterization of breast cancer models is crucial for understanding disease mechanisms and developing effective therapies.
- Triple-negative breast cancer (4T1 cell line) presents unique challenges due to its aggressive nature and limited treatment options.
- Berry-derived polyphenols show therapeutic potential but suffer from poor bioavailability and stability, necessitating advanced delivery systems.
Purpose of the Study:
- To conduct a comprehensive molecular and phenotypic characterization of 4T1 triple-negative breast cancer cells.
- To investigate the integration of genomic vulnerabilities and mutational profiling with treatment-induced responses.
- To evaluate the efficacy of nanoencapsulated berry-derived polyphenols (AuNPs) in modulating cancer cell signaling and inducing apoptosis.
Main Methods:
- Whole-genome and transcriptome sequencing (Illumina NovaSeq X, NextSeq) and proteomic analysis of 4T1 cells.
- Physicochemical characterization of nanoencapsulated polyphenols using TEM, FTIR, and UPLC/MS-QQQ.
- Functional consequence analysis of identified mutations using AlphaFold and gene set enrichment analysis (GSEA).
- Immunohistochemical, immunofluorescent, and flow cytometric analyses to assess cellular responses to nanoparticle treatment.
Main Results:
- Identified significant mutations in breast cancer-related tumor suppressor genes (TP53, BRCA2, BARD1, CDH1, NF1, CHEK2) within conserved motifs.
- Detected ~5,700,000 single-nucleotide variations (SNVs) and 329,448 indels, providing extensive genomic data.
- GSEA revealed altered DNA repair, TGF-β signaling, cell adhesion, and MAPK pathways, suggesting modulation of apoptosis and immune evasion.
- Nanoencapsulated berry polyphenols induced caspase-dependent apoptosis via ROS, suppressed PI3K/AKT/mTOR signaling, and modulated JAK3/STAT3 pathways, leading to suppressed epithelial-to-mesenchymal transition (EMT) and metastatic potential.
Conclusions:
- Nanoencapsulated berry polyphenols represent a promising strategy for breast cancer therapy by targeting key signaling pathways.
- The study provides a deep molecular understanding of 4T1 cells and their response to novel therapeutic interventions.
- Functionalized gold nanoparticles (AuNPs) serve as effective delivery platforms for dietary phytochemicals, regulating apoptosis, autophagy, immune response, and metastasis in breast cancer.
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