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Ultrasound-Guided Orthotopic Implantation of Murine Pancreatic Ductal Adenocarcinoma
Published on: November 19, 2019
TRAIL mediated signaling in pancreatic cancer
Daniele Rubert Nogueira1, Ilhan Yaylim, Qurratulain Aamir
1Department of Industrial Pharmacy, Health Science Center, Federal University of Santa Maria, Santa Maria-RS, Brazil
Abstract:
Research over the years has progressively shown substantial broadening of the tumor necrosis factor alpha- related apoptosis-inducing ligand (TRAIL)-mediated signaling landscape. Increasingly it is being realized that pancreatic cancer is a multifaceted and genomically complex disease. Suppression of tumor suppressors, overexpression of oncogenes, epigenetic silencing, and loss of apoptosis are some of the extensively studied underlying mechanisms. Rapidly accumulating in vitro and in vivo evidence has started to shed light on the resistance mechanisms in pancreatic cancer cells. More interestingly a recent research has opened new horizons of miRNA regulation by DR5 in pancreatic cancer cells. It has been shown that DR5 interacts with the core microprocessor components Drosha and DGCR8, thus impairing processing of primary let-7. Xenografting DR5 silenced pancreatic cancer cells in SCID-mice indicated that there was notable suppression of tumor growth. There is a paradigm shift in our current understanding of TRAIL mediated signaling in pancreatic cancer cells that is now adding new layers of concepts into the existing scientific evidence. In this review we have attempted to provide an overview of recent advances in TRAIL mediated signaling in pancreatic cancer as evidenced byfindings of in vitro and in vivo analyses. Furthermore, we discuss nanotechnological advances with emphasis on PEG-TRAIL and four-arm PEG cross-linked hyaluronic acid (HA) hydrogels to improve availability of TRAIL at target sites.
Insights
Tumor necrosis factor alpha-related apoptosis-inducing ligand (TRAIL) signaling is key in pancreatic cancer. New research reveals DR5
Area of Science:
- Oncology
- Molecular Biology
- Cancer Signaling
Background:
- Pancreatic cancer is a complex disease with known resistance mechanisms.
- Tumor necrosis factor alpha-related apoptosis-inducing ligand (TRAIL) signaling plays a role in cancer cell apoptosis.
- Emerging evidence highlights microRNA (miRNA) regulation in pancreatic cancer.
Purpose of the Study:
- To review recent advances in TRAIL-mediated signaling in pancreatic cancer.
- To explore novel miRNA regulation mechanisms involving DR5 in pancreatic cancer.
- To discuss nanotechnological approaches for enhancing TRAIL delivery.
Main Methods:
- In vitro and in vivo analyses of TRAIL signaling pathways.
- Investigation of DR5 interactions with microprocessor components (Drosha, DGCR8).
- Xenograft studies using DR5-silenced pancreatic cancer cells in SCID mice.
- Review of nanotechnological applications like PEG-TRAIL and HA hydrogels.
Main Results:
- DR5 interacts with Drosha and DGCR8, impairing let-7 miRNA processing.
- Silencing DR5 in pancreatic cancer cells significantly suppressed tumor growth in vivo.
- TRAIL-mediated signaling in pancreatic cancer is more complex than previously understood.
Conclusions:
- DR5-mediated miRNA regulation represents a new layer of TRAIL signaling in pancreatic cancer.
- Targeting DR5 and leveraging nanomedicine offers potential therapeutic strategies.
- Further research into TRAIL signaling and nanodelivery systems is warranted for pancreatic cancer treatment.
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