Hydrogel Models with Stiffness Gradients for Interrogating Pancreatic Cancer Cell Fate
Abstract
:1. Tumor Microenvironment in Pancreatic Ductal Adenocarcinoma
2. Animal Models for Studying PDAC Progression
3. Mimicking a Stiffening Matrix Using Dynamic Hydrogels
Mechanism | Material | Ref. |
---|---|---|
Physical crosslinking | ||
Supramolecular interactions | Azobenzene-HA + β-cyclodextrin-HA | [82] |
Supramolecular interactions | o-Nitrobenzyl-methacrylate-HA + dithiothreitol | [83] |
Supramolecular interactions | β-cyclodextrin-acrylamide + adamantane-acrylamide | [84] |
Supramolecular interactions | Thiolated poly(vinyl alcohol) + PEG-allylether + β-cyclodextrin-allylether | [85] |
Ionic crosslinking | Alginate | [86] |
Temperature-responsive polymers | Polyisocyanide + poly(N-isopropylacrylamide) | [87] |
Chemical crosslinking | ||
UV-based photocrosslinking | PEG-norbornene + thiol-bearing peptide | [69] |
UV-based photocrosslinking | Methacrylated HA + dithiothreitol | [75] |
UV-based photocrosslinking | PEG-anthracene | [70] |
Visible light-based photocrosslinking | PEG-acrylamidylpyrene | [71] |
Visible light-based photocrosslinking | PEG-norbornene + thiol/tyrosine-bearing peptide | [72] |
Enzymatic crosslinking | Gelatin-norbornene-HPA + thiolated HA (or PEG4SH) | [79] |
Enzymatic crosslinking | PEG-norbornene + thiol/tyrosine-bearing peptide | [80] |
Click chemistry | PEG-norbornene + thiol-bearing peptide (or PEG4SH) | [81] |
4. Stiffness Gradient in TME-Mimetic Hydrogels
4.1. Durotaxis in Cancer Cells
Material | Method | Gradient Range/Strength | Studied Cell Response | Ref. |
---|---|---|---|---|
Natural polymers | ||||
Collagen | Compression on the material | 1057–2305 kPa ~ 31.2 kPa/mm | Durotaxis | [104] |
Collagen | Juxtaposition of soft and stiff gel | - - | Migration | [105] |
Collagen | Juxtaposition of soft and stiff gel | 50–217 Pa - | Migration | [106] |
Matrigel | Patterned underlying substrate | - 0.27–0.37 N/cm * | Durotaxis | [107] |
Fibrin | Strain-stiffening | - - | Orientation | [108] |
Modified natural polymers | ||||
Methacrylated gelatin | Photopolymerization | 4–13 kPa 0.68 kPa/mm | Morphology, differentiation, and durotaxis | [109] |
Methacrylated gelatin | Photopolymerization | 23.7–1536.7 Pa (G’) - | Morphology and migration | [110] |
Styrenated gelatin | Photopolymerization | 2.2–83 kPa 40–1600 kPa/mm | Durotaxis | [102] |
Methacrylated HA | Photopolymerization | 0.5–1.5 kPa - | Spreading and differentiation | [111] |
Synthetic polymers | ||||
PA | Photopolymerization | 1–80 kPa 0–40 kPa/mm | Morphology and durotaxis | [94] |
PA | Photopolymerization | 1–12 kPa 1/10/ ≥ 100 kPa/mm | Durotaxis | [95] |
PA | Patterned underlying substrate | 1–3.5 kPa - | Durotaxis | [112] |
PA | Patterned underlying substrate | 3–20 kPa 49.4–190.6 kPa/mm | Orientation and migration | [91] |
PA | Gradient of diffusion rate | 1–40 kPa 0.5–8.2 kPa/mm | Differentiation | [103] |
PEGDM | Photopolymerization | 2.05–6.11 kPa - | Phenotype maintenance and ECM deposition | [113] |
PEGNB | Photopolymerization | 100–360 Pa (G’) | Migration | [96] |
PDMS | Thermal gradient | 0.19–3.1 MPa 241 kPa/mm | Differentiation | [114] |
PVA | Freeze–thaw cycle | 1–24 kPa - | Adhesion, proliferation, and differentiation | [115] |
PAH + PAA | Gradient of crosslinker | 0.5–110 MPa - | Adhesion and proliferation | [116] |
4.2. Creating Stiffness Gradient in Natural Matrices
4.3. Creating Stiffness Gradient in Hybrid and Synthetic Hydrogels
5. Conclusions and Future Directions
Funding
Conflicts of Interest
Abbreviations
PDAC | Pancreatic ductal adenocarcinoma |
ECM | Extracellular matrix |
HA | Hyaluronic acid |
TAM | Tumor-associated |
CAF | Cancer-associated fibroblast |
TME | Tumor microenvironment |
αSMA | Alpha smooth muscle actin |
PSC | Pancreatic stellate cell |
TGF β | Transforming growth factor β |
IL | Interleukin |
MMP | Matrix metalloproteinase |
LIF | Leukemia inhibitory factor |
GAS | Growth arrest-specific protein |
FGF | Fibroblast growth factor |
GDF | Growth differentiation factor |
HGF | Hepatocyte growth factor |
EMT | Epithelial–mesenchymal transition |
MAPK | Mitogen-activated protein kinase |
PI3K | Phosphatidylinositol 3-kinase |
AKT | Protein kinase B |
LOX | Lysyl oxidase |
HAS | Hyaluronan synthase |
EPR | Enhanced permeability and retention |
PanIN | Pancreatic intraepithelial neoplasia |
SCID | Severe combined immunodeficient |
PDX | Patient-derived xenograft |
PA | Polyacrylamide |
PEG | Poly(ethylene glycol) |
GelMA | Gelatin-methacryloyl |
GelNB | Gelatin-norbornene |
HPA | Hydroxyphenyl acetic acid |
hiPSC | Human induced pluripotent stem cells |
PNIPAM | Poly(N-isopropylacrylamide) |
PEGDM | Polyethylene glycol dimethacrylate |
PEGNB | Polyethylene glycol norbornene |
PDMS | Polydimethylsiloxane |
PVA | Polyvinyl alcohol |
PAH | Poly (allylamine) hydrochloride |
PAA | Poly (acrylic acid) |
EDC | 1-ethyl-3-(3-dimethylaminopropyl) carbo diimide |
AFM | Atomic force microscope |
YAP | Yes-associated protein |
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Chang, C.-Y.; Lin, C.-C. Hydrogel Models with Stiffness Gradients for Interrogating Pancreatic Cancer Cell Fate. Bioengineering 2021, 8, 37. https://doi.org/10.3390/bioengineering8030037
Chang C-Y, Lin C-C. Hydrogel Models with Stiffness Gradients for Interrogating Pancreatic Cancer Cell Fate. Bioengineering. 2021; 8(3):37. https://doi.org/10.3390/bioengineering8030037
Chicago/Turabian StyleChang, Chun-Yi, and Chien-Chi Lin. 2021. "Hydrogel Models with Stiffness Gradients for Interrogating Pancreatic Cancer Cell Fate" Bioengineering 8, no. 3: 37. https://doi.org/10.3390/bioengineering8030037
APA StyleChang, C. -Y., & Lin, C. -C. (2021). Hydrogel Models with Stiffness Gradients for Interrogating Pancreatic Cancer Cell Fate. Bioengineering, 8(3), 37. https://doi.org/10.3390/bioengineering8030037