Rabab N. Hamzah
Postdoctoral fellow
Also affiliated: University of Arkansas Medical Center (2020)
Research Areas
Biomedical Subjects
Links
Biography and Research Information
OverviewAI-generated summary
Rabab N. Hamzah's research focuses on the development and application of nanoparticles and exosomes for theranostic purposes. Her work investigates the traceability and composition of exosomes, exploring their potential to modulate the tumor microenvironment. Hamzah has published on the use of nanoparticle-labeled exosomes as theranostic agents and has explored gold nanorod substrates for directing stem cell differentiation. Her research also extends to the development of biomedical devices with controlled disassembly for in vivo testing. She has co-authored 15 publications, with a total of 272 citations and an h-index of 8. Hamzah collaborates with researchers from the University of Arkansas for Medical Sciences and the University of Arkansas at Little Rock. Her recent work includes studies on exosome traceability, nanoparticle-labeled exosomes, and polymeric biomedical devices.
Metrics
- h-index: 8
- Publications: 15
- Citations: 292
Positions
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Postdoctoral fellow publications 2019–2022University of Arkansas for Medical Sciences Institution web page
Selected Publications
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Nanoparticle-Labeled Exosomes as Theranostic Agents: A Review (2022)
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Author Correction: Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes (2022)
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Gold Nanorod Substrate for Rat Fetal Neural Stem Cell Differentiation into Oligodendrocytes (2022)
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Identification and functional characterization of multiple inositol polyphosphate phosphatase1 (Minpp1) isoform-2 in exosomes with potential to modulate tumor microenvironment (2022)
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Development of a polymeric biomedical device platform with controlled disassembly and in vivo testing in a swine intestinal model (2022)
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Exosome Traceability and Cell Source Dependence on Composition and Cell-Cell Cross Talk (2021)
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Development and in vivo Assessment of a Rapidly Collapsible Anastomotic Guide for Use in Anastomosis of the Small Intestine: A Pilot Study Using a Swine Model (2020)
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Exosomes as Naturally Occurring, Abundant Nanoscale Soft Materials: Potential as Biomarkers and Delivery Vehicles for Solving Biomedical Problems (2020)
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Glioma-derived exosomes drive the differentiation of neural stem cells to astrocytes (2020)
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Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes (2019)
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Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function (2019)
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A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces (2019)
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Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors (2017)
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Targeting nano drug delivery to cancer cells using tunable, multi‐layer, silver‐decorated gold nanorods (2017)
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Bone-tissue engineering: complex tunable structural and biological responses to injury, drug delivery, and cell-based therapies (2015)
Collaboration Network
Top Collaborators
- Exosome Traceability and Cell Source Dependence on Composition and Cell-Cell Cross Talk
- Targeting nano drug delivery to cancer cells using tunable, multi‐layer, silver‐decorated gold nanorods
- Bone-tissue engineering: complex tunable structural and biological responses to injury, drug delivery, and cell-based therapies
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- Nanoparticle-Labeled Exosomes as Theranostic Agents: A Review
Showing 5 of 11 shared publications
- Exosome Traceability and Cell Source Dependence on Composition and Cell-Cell Cross Talk
- Bone-tissue engineering: complex tunable structural and biological responses to injury, drug delivery, and cell-based therapies
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- Nanoparticle-Labeled Exosomes as Theranostic Agents: A Review
- Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function
Showing 5 of 10 shared publications
- Exosome Traceability and Cell Source Dependence on Composition and Cell-Cell Cross Talk
- Glioma-derived exosomes drive the differentiation of neural stem cells to astrocytes
- Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
- Nanoparticle-Labeled Exosomes as Theranostic Agents: A Review
- Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function
Showing 5 of 8 shared publications
- Targeting nano drug delivery to cancer cells using tunable, multi‐layer, silver‐decorated gold nanorods
- Bone-tissue engineering: complex tunable structural and biological responses to injury, drug delivery, and cell-based therapies
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function
- Development and in vivo Assessment of a Rapidly Collapsible Anastomotic Guide for Use in Anastomosis of the Small Intestine: A Pilot Study Using a Swine Model
Showing 5 of 6 shared publications
- Bone-tissue engineering: complex tunable structural and biological responses to injury, drug delivery, and cell-based therapies
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function
- Development and in vivo Assessment of a Rapidly Collapsible Anastomotic Guide for Use in Anastomosis of the Small Intestine: A Pilot Study Using a Swine Model
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
Showing 5 of 6 shared publications
- Bone-tissue engineering: complex tunable structural and biological responses to injury, drug delivery, and cell-based therapies
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- Gold Nanorod Substrate for Rat Fetal Neural Stem Cell Differentiation into Oligodendrocytes
- Exosomes as Naturally Occurring, Abundant Nanoscale Soft Materials: Potential as Biomarkers and Delivery Vehicles for Solving Biomedical Problems
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
- Glioma-derived exosomes drive the differentiation of neural stem cells to astrocytes
- Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
- Author Correction: Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
- Functionalized gold nanorod nanocomposite system to modulate differentiation of human mesenchymal stem cells into neural-like progenitors
- A novel bioactive system based on surface-functionalized plasmonic nanosystems for tunable biological surfaces
- Glioma-derived exosomes drive the differentiation of neural stem cells to astrocytes
- Plasmonic Nanofactors as Switchable Devices to Promote or Inhibit Neuronal Activity and Function
- Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
- Author Correction: Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
- Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
- Author Correction: Molecular events in MSC exosome mediated cytoprotection in cardiomyocytes
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