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Research Article

In vitro and in vivo antitumor effects of lupeol-loaded galactosylated liposomes

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Pages 709-718 | Received 27 Jan 2021, Accepted 15 Mar 2021, Published online: 07 Apr 2021

Figures & data

Figure 1. (A) SEM image of liposome; (B) dynamic light scattering of liposomes.

Figure 1. (A) SEM image of liposome; (B) dynamic light scattering of liposomes.

Figure 2. Freezing and stability of liposomes.

Figure 2. Freezing and stability of liposomes.

Figure 3. In vitro cellular uptake study. (A) Control; (B) free lupeol; (C) lupeol liposomes; (D) Gal-lupeol liposomes.

Figure 3. In vitro cellular uptake study. (A) Control; (B) free lupeol; (C) lupeol liposomes; (D) Gal-lupeol liposomes.

Figure 4. Effects of apoptosis on HepG2 cells. (A) Control; (B) free lupeol; (C) lupeol liposomes; (D) Gal-lupeol liposomes.

Figure 4. Effects of apoptosis on HepG2 cells. (A) Control; (B) free lupeol; (C) lupeol liposomes; (D) Gal-lupeol liposomes.

Figure 5. Molecular mechanism of apoptosis on HepG2 cells.

Figure 5. Molecular mechanism of apoptosis on HepG2 cells.

Figure 6. In vivo targeting studies result.

Figure 6. In vivo targeting studies result.

Figure 7. In vivo pharmacodynamic experiments. (A) Mouse liver morphology and HE result; (B) mouse liver weight; (C) mouse liver index; (D) qRT-PCR result.

Figure 7. In vivo pharmacodynamic experiments. (A) Mouse liver morphology and HE result; (B) mouse liver weight; (C) mouse liver index; (D) qRT-PCR result.
Supplemental material

Supplemental Material

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