After entering the bloodstream, nanoparticles are first internalized by vascular endothelial cells, then pass through the vascular wall and the tumor stroma layer. Finally, the nanoparticles in tumor tissue are absorbed by tumor cells to achieve diagnostic and therapeutic effects. In this study, the pharmacokinetics of functionalized AuNPs were analyzed by quantification of gold content in the blood of SD rats from 10 min to 72 h after tail vein injection. The result of ICP-OES revealed that the smaller active AuNPs had longer elimination half-life compared with larger active targeting AuNPs (
Table 2). It has been reported that integrin
αvβ3 is highly expressed on the surface of tumor vascular endothelial cells and tumor cells. HUVEC cells are often used as a research model for tumor vascular endothelial cells. The expression of integrin
αvβ3 on HUVEC cells was analyzed by flow cytometry and confocal microscope, and proved to have high expression (Supporting Information Fig. S6). Subsequently, the ability of vascular endothelial cells to take up active AuNPs with different sizes was analyzed with flow cytometry and confocal visualization. As shown in
Fig. 4B and C, Cy5-labeled active AuNPs with a core diameter around 90 nm (90-P-R/Cy5) had the best cellular uptake. A similar cellular uptake occurred on 7-nm (7-P-R/Cy5) and 45-nm (45-P-R/Cy5) active AuNPs. However, the active AuNPs with a core diameter around 15 nm (15-P-R/Cy5) had lower cellular uptake. A similar result was further validated by confocal microscopy imaging (Supporting Information Fig. S7). The result of cellular uptake of active AuNPs with different diameters may be caused by the size effect and multivalent interactions. The endocytosis of smaller nanoparticles required less energy compared with these larger nanoparticles, which makes the small-sized nanoparticles easy to be taken up by HUVEC cells. However, compared to smaller-sized nanoparticles, larger-sized RGD-modified AuNPs caused higher multivalent interactions with its target receptor integrin
αvβ3 on the surface of HUVEC cells which facilitated their prompt internalization (
Fig. 4A). The endocytosis mechanism was explored by flow cytometry and ICP-OES. The analysis of flow cytometry showed that a low temperature of 4 ℃ significantly limited the cellular uptake of active AuNPs as compared to 37 ℃, demonstrating an energy-dependent endocytosis mechanism (
Fig. 4D and Supporting Information Fig. S8A). The results of ICP-OES and confocal microscopy imaging once again confirmed this conclusion (
Fig. 4E and Fig. S8B). Moreover, the analysis of ICP-OES also showed that the best cellular uptake rate occurred at 90-nm active AuNPs (90-P-R), which was consistent with the conclusion of fluorescence intensity analyzed by flow cytometry. This result also showed that energy changes had a greater effect on the internalization of large nanoparticles than that of small nanoparticles, which indicated that the endocytosis of small nanoparticles required less energy compared with that of large nanoparticles. To explore the internalization pathway of active AuNPs by HUVECs, the cells were pretreated with several endocytosis inhibitors. The cellular uptake of active AuNPs analyzed by flow cytometry was significantly reduced after HUVEC cells were pretreated with phenylarsine oxide (PhAsO), a clathrin-mediated endocytosis inhibitor, indicating the active gold nanoparticles were mainly internalized through clathrin-mediated endocytosis (
Fig. 4F). After HUVEC cells pretreated with filipin, a caveolae-mediated endocytosis inhibitor, there was a decrease in relative fluorescence intensity especially in the internalization of larger nanoparticles, illustrating that the caveolae-mediated pathway was also partially involved in the internalization of active AuNPs. However, colchicine could not block the internalization of active gold nanoparticles, confirming that the active AuNPs were not internalized by the macropinocytosis pathway. The confocal microscope images further confirmed that HUVEC cells internalized active AuNPs mainly through clathrin-mediated endocytosis, however, the caveolae-mediated pathway also partially involved the cellular uptake of larger formulations (Supporting Information Figs. S9 and S10). The way of nanoparticles across vascular endothelial cells is an active process which was demonstrated by the Transwell assay (
Fig. 4G). At a low temperature of 4 ℃, due to insufficient energy to support the transmembrane transport of nanoparticles, the accumulative transmembrane percentage of nanoparticles decreased significantly, which was also confirmed by confocal microscopy imaging of the liquid from the lower chamber (
Fig. 4H and Supporting Information Fig. S11). The Transwell assay further showed that larger particles were more difficult to transport across the membrane compared with smaller particles at 24 h (
Fig. 4I and Supporting Information Fig. S12). To enter the depth of tumor tissues, nanoparticles passing through the vascular wall are demanded further across the tumor matrix layer. The ability of active nanoparticles to pass through the stromal cell layer was analyzed by the Transwell assay (
Fig. 4G). The proportion of larger nanoparticles entering the lower chamber of the 24-well Transwell plate was significantly less than that of smaller nanoparticles, which was also confirmed by confocal microscopy imaging of the liquid from the lower chamber (
Fig. 4J and Supporting Information Fig. S13). It indicates that nanoparticles with smaller sizes are easier to pass through the tumor matrix layer compared with larger nanoparticles. Only when nanoparticles are internalized by tumor cells can they achieve diagnosis and therapeutic effects. The expression of integrin
αvβ3, a target receptor, on the normal breast cells (MCF-10A) and breast cancer cells (MDA-MB-231), was first analyzed by flow cytometry and confocal microscope. The results consistently indicated that human breast cancer cells have higher expression of integrin
αvβ3 (Supporting Information Fig. S14). The ability of active nanoparticles to specifically distinguish between cancer cells and normal cells was explored by ICP-OES, flow cytometry, and confocal microscope. The results showed that RGD-modified AuNPs, especially the 90-nm active AuNPs among the four designed nanoparticles, could specifically recognize the MDA-MB-231 cells (
Fig. 4K and Supporting Information Fig. S15). The 90-nm active AuNPs had the highest cellular uptake rate by MDA-MB-231 cells (
Fig. 4L and Supporting Information Fig. S16). Those results can be explained by multivalent interactions as mentioned in HUVEC cellular uptake of the active AuNPs. The larger active particles had higher multivalent interactions
via integrin
αvβ3 expressed on MDA-MB-231 cells (
Fig. 4A). Additionally, the analysis of flow cytometry and confocal microscope showed that the RGD modification could promote the internalization of nanoparticles, especially larger nanoparticles, by tumor cells (Supporting Information Fig. S17).