carrier-free nanomedicine. At present, many reports
point out that the physical and chemical properties
of nanomaterials, such as size, shape, surface
properties, are crucial in regulating their cellular
uptake and transport behavior in the body, and may
affect the overall cancer treatment effect (Williford
2015).
4 PREPARATION OF DOX
NANOPARTICLES
First dissolve DOX in DMSO, then add 1 mL of
triethylamine to 10 mL of 1 mg/mL
DOX.HCl/DMSO solution under moderate agitation
at 25°C, and react for about 4 hours After stopping,
the hydrophilic DOX.HCI is converted into
hydrophobic DOX. Three preparation methods of
DOX nanoparticles: (1) DOX 50 (particle size is
about 50 nm): Drop a 3mg/mL DOX/DMSO
solution into 5ml petroleum ether and stir for 5
minutes. (2) DOX100 (particle size about 100 nm):
Drop the DOX/DMSO solution with a concentration
of 3 mg/mL into 5 ml ultrapure water and stir for 5
minutes. (3) Dox 180 (particle size is about 180 nm):
Drop 1 mg/mL DOX/DMSO solution into 5ml
ultrapure water, and stir for five minutes.
5 CONCLUSION
Carrier-free nanomedicine solves the toxicity
problem of nano-carrier drug carrier system.
According to its construction principle, that is, to
complete the self-assembly process through
hydrophobic and hydrophilic groups, various
construction ideas can be developed. It is worth
mentioning that carrier-free nanomedicine provides
different application ideas for some poorly water-
soluble anticancer drugs. By constructing a carrier-
free nanomedicine system, its water solubility can be
greatly improved. The current frontier research on
carrier-free nano-oncology drugs believes that pure
drug carrier-free nano-oncology drugs have the most
research potential and have very broad prospects.
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