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Updated: Jul 7, 2026

Programming Stem Cells for Therapeutic Angiogenesis Using Biodegradable Polymeric Nanoparticles
Published on: September 27, 2013
Antineovascular therapy with angiogenic vessel-targeted polyethyleneglycol-shielded liposomal DPP-CNDAC
Tomohiro Asai1, Souichiro Miyazawa, Noriyuki Maeda
1Department of Medical Biochemistry and Global COE, University of Shizuoka School of Pharmaceutical Sciences, 52-1 Yada, Suruga-ku, Shizuoka 422-8526, Japan.
Abstract:
Causing damage to angiogenic vessels is a promising approach for cancer chemotherapy. The present study is a codification of a designed liposomal drug delivery system (DDS) for antineovascular therapy (ANET) with 2'-C-cyano-2'-deoxy-1-beta-D-arabino-pentofuranosylcytosine (CNDAC). The authors have previously reported that liposomalized 5'-O-dipalmitoylphosphatidyl CNDAC (DPP-CNDAC), a phospholipid derivative of the novel antitumor nucleoside CNDAC, is quite useful for ANET. DPP-CNDAC liposomes modified with APRPG, a peptide having affinity toward angiogenic vessels, efficiently suppressed tumor growth by damaging angiogenic endothelial cells. In the present study, the authors masked the hydrophilic moiety of DPP-CNDAC, namely, CNDAC, on the liposomal surface with APRPG-polyethyleneglycol (PEG) conjugate to improve the availability of DPP-CNDAC liposomes. The use of the APRPG-PEG conjugate attenuated the negative zeta-potential of the DPP-CNDAC liposomes and reduced the agglutinability of them in the presence of serum. These effects improved the blood level of DPP-CNDAC liposomes in colon 26 NL-17 tumor-bearing BALB/c male mice, resulting in enhanced accumulation of them in the tumor. Laser scanning microscopic observations indicated that APRPG-PEG-modified DPP-CNDAC liposomes (LipCNDAC/APRPG-PEG) colocalized with angiogenic vessels and strongly induced apoptosis of tumor cells, whereas PEG-modified DPP-CNDAC liposomes (LipCNDAC/PEG) did not. In fact, LipCNDAC/APRPG-PEG suppressed the tumor growth more strongly compared to LipCNDAC/PEG and increased significantly the life span of the mice. The present study is a good example of an effective liposomal DDS for ANET that is characterized by: (i) phospholipid derivatization of a certain anticancer drug to suit the liposomal formulation; (ii) PEG-shielding for masking undesirable properties of the drug on the liposomal surface; and (iii) active targeting to angiogenic endothelial cells using a specific probe.
Insights
This study developed a targeted liposomal drug delivery system (DDS) for cancer therapy. The enhanced DDS, using APRPG-PEG, effectively targets angiogenic vessels, improving drug delivery and significantly suppressing tumor growth.
Area of Science:
- Oncology
- Nanotechnology
- Pharmacology
Background:
- Targeting angiogenic vessels is a key strategy in cancer chemotherapy.
- Liposomal drug delivery systems (DDS) offer potential for targeted cancer treatment.
- Previous work showed liposomal 5'-O-dipalmitoylphosphatidyl 2'-C-cyano-2'-deoxy-1-beta-D-arabino-pentofuranosylcytosine (DPP-CNDAC) is effective for antineovascular therapy (ANET).
Purpose of the Study:
- To codify a designed liposomal DDS for ANET using 2'-C-cyano-2'-deoxy-1-beta-D-arabino-pentofuranosylcytosine (CNDAC).
- To improve the availability and tumor accumulation of DPP-CNDAC liposomes by masking the CNDAC moiety with an APRPG-polyethyleneglycol (PEG) conjugate.
- To evaluate the efficacy of the modified liposomes in targeting angiogenic vessels and suppressing tumor growth.
Main Methods:
- Liposomes containing DPP-CNDAC were modified with an APRPG-PEG conjugate.
- The zeta-potential and serum agglutinability of the liposomes were analyzed.
- The biodistribution and tumor accumulation of the liposomes were assessed in tumor-bearing mice.
- Laser scanning microscopy was used to observe liposome colocalization with angiogenic vessels and induction of tumor cell apoptosis.
Main Results:
- APRPG-PEG modification attenuated liposome zeta-potential and reduced serum agglutinability.
- This improved the blood circulation time and enhanced tumor accumulation of DPP-CNDAC liposomes.
- APRPG-PEG-modified liposomes (LipCNDAC/APRPG-PEG) colocalized with angiogenic vessels and induced significant tumor cell apoptosis.
- LipCNDAC/APRPG-PEG demonstrated superior tumor growth suppression and increased mouse lifespan compared to PEG-modified liposomes (LipCNDAC/PEG).
Conclusions:
- The developed liposomal DDS, featuring phospholipid derivatization, PEG-shielding, and active targeting, is effective for ANET.
- APRPG-PEG modification enhances liposome performance by improving stability and targeting.
- This targeted DDS represents a promising strategy for improving cancer chemotherapy efficacy.
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