Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)

Therapeutic efficiencies of novel cancer treatment modalities such as photodynamic therapy (PDT) and chemodynamic therapy (CDT) are largely diminished in clinical situations due to the disease’s constantly evolving nature and harsh conditions of the tumour microenvironment (TME); such as insufficien...

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Main Author: Tan, Shao Jie
Other Authors: Dalton Tay Chor Yong
Format: Thesis-Master by Research
Language:English
Published: Nanyang Technological University 2023
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Online Access:https://hdl.handle.net/10356/165654
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spelling sg-ntu-dr.10356-1656542023-05-02T06:33:01Z Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs) Tan, Shao Jie Dalton Tay Chor Yong School of Materials Science and Engineering cytay@ntu.edu.sg Engineering::Materials::Composite materials Engineering::Materials::Nanostructured materials Therapeutic efficiencies of novel cancer treatment modalities such as photodynamic therapy (PDT) and chemodynamic therapy (CDT) are largely diminished in clinical situations due to the disease’s constantly evolving nature and harsh conditions of the tumour microenvironment (TME); such as insufficiently low intertumoural pH (pH: < 5) and hydrogen peroxide (H2O2) levels. The development of reactive oxygen species (ROS) generating nanomedicine relieves the aforementioned pain points by elevating intertumoural H2O2 levels, typically either via external stimulation (e.g., infrared radiation or ultrasound) or from the innate TME. Their ability to elevate intertumoural H2O2 levels allows them to function as either a standalone anticancer nanomedicine or an adjuvant for follow-up PDT/CDT treatments. L-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs) stands out amongst the emerging plethora of ROS-generating nanomaterials for their cancer selectivity and intrinsic ability to generate ROS without external stimulation. However, significant high dosages of Nano-pPAAM are required to effectively eradicate the tumour in both in vitro and in vivo studies. In this study, to reduce the Nano-pPAAM dosage required to eradicate malignancies, two cytotoxins, cetyltrimethylammonium bromide (CTAB) and hydrogen peroxide (H2O2), were successfully loaded into the mesoporous silica nanoparticle cores. The improved Nano-pPAAMs were characterized for their particle stability, size, loading content, chemical integrity and were shown to have successfully been able to retain their cytotoxic payload. A total of six cell lines, three cancerous and three healthy cell lines were selected to evaluate the cancer selectiveness and anticancer potency of the loaded Nano-pPAAM. Based on the dose-response curves plotted, the nanoparticles in order of potency, are: Nano-pPAAM (least potent) < H2O2@pPAAM < CTAB@pPAAM (most potent). Despite the promising results obtained, additional improvements in the Nano-pPAAM design are still recommended to be performed to ensure that the improved Nano-pPAAMs are still selective towards cancer cells. Master of Engineering 2023-04-10T03:02:17Z 2023-04-10T03:02:17Z 2023 Thesis-Master by Research Tan, S. J. (2023). Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs). Master's thesis, Nanyang Technological University, Singapore. https://hdl.handle.net/10356/165654 https://hdl.handle.net/10356/165654 10.32657/10356/165654 en This work is licensed under a Creative Commons Attribution-NonCommercial 4.0 International License (CC BY-NC 4.0). application/pdf Nanyang Technological University
institution Nanyang Technological University
building NTU Library
continent Asia
country Singapore
Singapore
content_provider NTU Library
collection DR-NTU
language English
topic Engineering::Materials::Composite materials
Engineering::Materials::Nanostructured materials
spellingShingle Engineering::Materials::Composite materials
Engineering::Materials::Nanostructured materials
Tan, Shao Jie
Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)
description Therapeutic efficiencies of novel cancer treatment modalities such as photodynamic therapy (PDT) and chemodynamic therapy (CDT) are largely diminished in clinical situations due to the disease’s constantly evolving nature and harsh conditions of the tumour microenvironment (TME); such as insufficiently low intertumoural pH (pH: < 5) and hydrogen peroxide (H2O2) levels. The development of reactive oxygen species (ROS) generating nanomedicine relieves the aforementioned pain points by elevating intertumoural H2O2 levels, typically either via external stimulation (e.g., infrared radiation or ultrasound) or from the innate TME. Their ability to elevate intertumoural H2O2 levels allows them to function as either a standalone anticancer nanomedicine or an adjuvant for follow-up PDT/CDT treatments. L-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs) stands out amongst the emerging plethora of ROS-generating nanomaterials for their cancer selectivity and intrinsic ability to generate ROS without external stimulation. However, significant high dosages of Nano-pPAAM are required to effectively eradicate the tumour in both in vitro and in vivo studies. In this study, to reduce the Nano-pPAAM dosage required to eradicate malignancies, two cytotoxins, cetyltrimethylammonium bromide (CTAB) and hydrogen peroxide (H2O2), were successfully loaded into the mesoporous silica nanoparticle cores. The improved Nano-pPAAMs were characterized for their particle stability, size, loading content, chemical integrity and were shown to have successfully been able to retain their cytotoxic payload. A total of six cell lines, three cancerous and three healthy cell lines were selected to evaluate the cancer selectiveness and anticancer potency of the loaded Nano-pPAAM. Based on the dose-response curves plotted, the nanoparticles in order of potency, are: Nano-pPAAM (least potent) < H2O2@pPAAM < CTAB@pPAAM (most potent). Despite the promising results obtained, additional improvements in the Nano-pPAAM design are still recommended to be performed to ensure that the improved Nano-pPAAMs are still selective towards cancer cells.
author2 Dalton Tay Chor Yong
author_facet Dalton Tay Chor Yong
Tan, Shao Jie
format Thesis-Master by Research
author Tan, Shao Jie
author_sort Tan, Shao Jie
title Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)
title_short Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)
title_full Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)
title_fullStr Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)
title_full_unstemmed Augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (Nano-pPAAMs)
title_sort augumenting the anticancer properties of l-phenylalanine functionalized nanoscopic porous amino acid mimics (nano-ppaams)
publisher Nanyang Technological University
publishDate 2023
url https://hdl.handle.net/10356/165654
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