97
References
1. Patra JK, Das G, Fraceto LF et al (2018) Nano
based drug delivery systems: recent developments and future prospects. J Nanobiotechnol
16(1):71
2. Mirza AZ, Siddiqui FA (2014) Nanomedicine
and drug delivery: a mini review. Int Nano Lett
4(1)
3. Li Z, Tan S, Li S et al (2017) Cancer drug
delivery in the nano era: An overview and perspectives (Review). Oncol Rep 38(2):611–624
4. Liechty WB, Kryscio DR, Slaughter BV et al
(2010) Polymers for drug delivery systems.
Annu Rev Chem Biomol Eng 1:149–173
5. Reyes-Ortega F (2014) pH-responsive polymers: properties, synthesis and applications,
pp 45–92
6. Teotia AK, Sami H, Kumar A (2015) Thermoresponsive polymers, pp 3–43
7. Guo X, Cheng Y, Zhao X et al (2018) Advances
in redox-responsive drug delivery systems of
tumor microenvironment. J Nanobiotechnols
16(1):74
8. Indermun S, Govender M, Kumar P et al
(2018) Stimuli-responsive polymers as smart
drug delivery systems: classifications based on
carrier type and triggered-release mechanism.
Woodhead Publishing, Sawston, pp 43–58
9. Pasparakis
G,
Vamvakaki
M
(2011)
Multiresponsive polymers: nano-sized assemblies, stimuli-sensitive gels and smart surfaces.
Polymer Chem 2:1234–1248
10. Iyisan, B. and K. Landfester, Polymeric
Nanocarriers. 2019: 53–84.
11. Petros RA, DeSimone JM (2010) Strategies
in the design of nanoparticles for therapeutic applications. Nat Rev Drug Discov
9(8):615–627
12. Danhier F, Feron O, Preat V (2010) To
exploit the tumor microenvironment: Passive
and active tumor targeting of nanocarriers for
anti-cancer drug delivery. J Control Release
148(2):135–146
13. Ganta S, Devalapally H, Shahiwala A et al
(2008) A review of stimuli-responsive nanocarriers for drug and gene delivery. J Control
Release 126(3):187–204
14. Toniolo G, Efthimiadou EK, Kordas G et al
(2018) Development of multi-layered and
multi-sensitive polymeric nanocontainers for
cancer therapy: in vitro evaluation. Sci Rep
8(1):14704
15. Laurent S, Dutz S, Hafeli UO et al (2011)
Magnetic fluid hyperthermia: focus on superparamagnetic iron oxide nanoparticles. Adv
Colloid Interface Sci 166(1–2):8–23
16. Efthimiadou EK, Tziveleka LA, Bilalis P et al
(2012) Novel PLA modification of organic
microcontainers based on ring opening polymerization: synthesis, characterization, biocompatibility and drug loading/release properties.
Int J Pharm 428(1–2):134–142
17. Tapeinos C, Efthimiadou EK, Boukos N et al
(2013) Microspheres as therapeutic delivery agents: synthesis and biological evaluation of pH responsiveness. J Mater Chem B
1(2):194–203
18. Efthimiadou EK, Tapeinos C, Chatzipavlidis A
et al (2014) Dynamic in vivo imaging of dualtriggered microspheres for sustained release
applications: synthesis, characterization and
cytotoxicity study. Int J Pharm 461(1–2):54–63
19. Stoll VS, Blanchard JS (2009) Chapter
6. Buffers, vol 463. Academic Press Inc,
Cambridge, MA, pp 43–56
20. Good NE, Winget GD, Winter W et al (1966)
Hydrogen ion buffers for biological research.
Biochemistry 5(2):467–477
21. Arduengo PM (2010) Sloppy technicians and
the progress of science. Promega Connections
22. Mosmann T (1983) Rapid colorimetric assay
for cellular growth and survival: Application
to proliferation and cytotoxicity assays. J
Immunol Methods 65(1–2):55–63
23. Jonkman JE, Cathcart JA, Xu F et al (2014)
An introduction to the wound healing assay
using live-cell microscopy. Cell Adh Migr
8(5):440–451
24. Grada A, Otero-Vinas M, Prieto-Castrillo F
et al (2017) Research techniques made simple: analysis of collective cell migration using
the wound healing assay. J Invest Dermatol
137(2):e11–e16
25. Louis KS, Siegel AC (2011) Cell viability analysis using trypan blue: manual and automated
methods. Methods Mol Biol 740:7–12
Multisensitive Polymeric Nanocontainers as Drug Delivery Systems: Biological Evaluation
References
1. Patra JK, Das G, Fraceto LF et al (2018) Nano
based drug delivery systems: recent developments and future prospects. J Nanobiotechnol
16(1):71
2. Mirza AZ, Siddiqui FA (2014) Nanomedicine
and drug delivery: a mini review. Int Nano Lett
4(1)
3. Li Z, Tan S, Li S et al (2017) Cancer drug
delivery in the nano era: An overview and perspectives (Review). Oncol Rep 38(2):611–624
4. Liechty WB, Kryscio DR, Slaughter BV et al
(2010) Polymers for drug delivery systems.
Annu Rev Chem Biomol Eng 1:149–173
5. Reyes-Ortega F (2014) pH-responsive polymers: properties, synthesis and applications,
pp 45–92
6. Teotia AK, Sami H, Kumar A (2015) Thermoresponsive polymers, pp 3–43
7. Guo X, Cheng Y, Zhao X et al (2018) Advances
in redox-responsive drug delivery systems of
tumor microenvironment. J Nanobiotechnols
16(1):74
8. Indermun S, Govender M, Kumar P et al
(2018) Stimuli-responsive polymers as smart
drug delivery systems: classifications based on
carrier type and triggered-release mechanism.
Woodhead Publishing, Sawston, pp 43–58
9. Pasparakis
G,
Vamvakaki
M
(2011)
Multiresponsive polymers: nano-sized assemblies, stimuli-sensitive gels and smart surfaces.
Polymer Chem 2:1234–1248
10. Iyisan, B. and K. Landfester, Polymeric
Nanocarriers. 2019: 53–84.
11. Petros RA, DeSimone JM (2010) Strategies
in the design of nanoparticles for therapeutic applications. Nat Rev Drug Discov
9(8):615–627
12. Danhier F, Feron O, Preat V (2010) To
exploit the tumor microenvironment: Passive
and active tumor targeting of nanocarriers for
anti-cancer drug delivery. J Control Release
148(2):135–146
13. Ganta S, Devalapally H, Shahiwala A et al
(2008) A review of stimuli-responsive nanocarriers for drug and gene delivery. J Control
Release 126(3):187–204
14. Toniolo G, Efthimiadou EK, Kordas G et al
(2018) Development of multi-layered and
multi-sensitive polymeric nanocontainers for
cancer therapy: in vitro evaluation. Sci Rep
8(1):14704
15. Laurent S, Dutz S, Hafeli UO et al (2011)
Magnetic fluid hyperthermia: focus on superparamagnetic iron oxide nanoparticles. Adv
Colloid Interface Sci 166(1–2):8–23
16. Efthimiadou EK, Tziveleka LA, Bilalis P et al
(2012) Novel PLA modification of organic
microcontainers based on ring opening polymerization: synthesis, characterization, biocompatibility and drug loading/release properties.
Int J Pharm 428(1–2):134–142
17. Tapeinos C, Efthimiadou EK, Boukos N et al
(2013) Microspheres as therapeutic delivery agents: synthesis and biological evaluation of pH responsiveness. J Mater Chem B
1(2):194–203
18. Efthimiadou EK, Tapeinos C, Chatzipavlidis A
et al (2014) Dynamic in vivo imaging of dualtriggered microspheres for sustained release
applications: synthesis, characterization and
cytotoxicity study. Int J Pharm 461(1–2):54–63
19. Stoll VS, Blanchard JS (2009) Chapter
6. Buffers, vol 463. Academic Press Inc,
Cambridge, MA, pp 43–56
20. Good NE, Winget GD, Winter W et al (1966)
Hydrogen ion buffers for biological research.
Biochemistry 5(2):467–477
21. Arduengo PM (2010) Sloppy technicians and
the progress of science. Promega Connections
22. Mosmann T (1983) Rapid colorimetric assay
for cellular growth and survival: Application
to proliferation and cytotoxicity assays. J
Immunol Methods 65(1–2):55–63
23. Jonkman JE, Cathcart JA, Xu F et al (2014)
An introduction to the wound healing assay
using live-cell microscopy. Cell Adh Migr
8(5):440–451
24. Grada A, Otero-Vinas M, Prieto-Castrillo F
et al (2017) Research techniques made simple: analysis of collective cell migration using
the wound healing assay. J Invest Dermatol
137(2):e11–e16
25. Louis KS, Siegel AC (2011) Cell viability analysis using trypan blue: manual and automated
methods. Methods Mol Biol 740:7–12
Multisensitive Polymeric Nanocontainers as Drug Delivery Systems: Biological Evaluation
