The objectives of the present study were to define whether amlodipine induces apoptosis and what mechanism is involved in the process in human resistant and non-resistant leukemia cells following co-administration of stealth liposomal topotecan with amlodipine, a novel antiresistant liposomes developed by our institution. In three leukemias, K562, HL-60, and multidrug resistant (MDR) HL-60, cytotoxicity of topotecan was potentiated by amlodipine, while topotecan alone was resistant to MDR HL-60 cells. In two selected K562 or MDR HL-60 cells, the apoptotic effects were increased by addition of amlodipine, showing a dose-dependent manner. The activities of caspase 3 and 7 (marked as caspase 3/7), and caspase 8 were significantly activated by topotecan with amlodipine co-treated as the stealth liposomes. The deletions of intracellular Ca2+ stores induced by amlodipine correlated with the activated activities of caspase 3/7, or 8, respectively. In xenograft model with MDR HL-60 in nude mice, antitumor activity of stealth liposomal topotecan with amlodipine was significantly enhanced as compared to that of stealth liposomal topotecan or topotecan alone. In conclusion, apoptotic effect is associated with deletion of intracellular Ca2+ by amlodipine through activation of caspase 8 and then 3/7 activities. The enhanced antitumor activities by stealth liposomal topotecan with amlodipine are mainly due to the potentiating apoptotic effect and reversing the resistance by amlodipine. Stealth liposomal encapsulation of anticancer agent with a modulator may provide a novel strategy for improving the chemotherapeutic effects.
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http://dx.doi.org/10.1016/j.jconrel.2006.01.007 | DOI Listing |
J Control Release
December 2024
College of Pharmacy, Chongqing Medical University, Chongqing 400016, China.
In recent years, polypeptides have been standing out as excellent candidates to replace polyethylene glycol (PEG) with adequate biocompatibility and biodegradability. In this study, we found that (VELPPP), an anionic γ-zein-based proline-rich peptide with a polyproline-II helical structure, was able to impart liposomes with considerable stability and significantly prolonged blood circulation in vivo. Furthermore, we have shown that (VELPPP)-modified liposomes induced negligible anti-peptide IgM production, and no noticeable accelerated blood clearance after repeated or multi-dose administration.
View Article and Find Full Text PDFInt J Nanomedicine
December 2024
Department of Pharmacy-Pharmaceutical Sciences, University of Bari, Bari, 70125, Italy.
Introduction: The treatment of glioblastoma is hindered by the blood-brain barrier (BBB) and rapid drug clearance by the immune system. To address these challenges, we propose a novel drug delivery system using liposomes modified with cell membrane fragments. These modified liposomes can evade the immune system, cross the BBB, and accumulate in tumor tissue through homotypic targeting, thereby delivering drugs like paclitaxel and carboplatin more effectively.
View Article and Find Full Text PDFPharmaceutics
September 2024
Department of Applied Chemistry, Faculty of Engineering, Kyushu University, Motooka 819-0395, Japan.
Acrylamide polymers with zwitterionic carboxybetaine (CB) side groups have attracted attention as stealth polymers that do not induce antibodies when conjugated to proteins. However, they induce antibodies when modified onto liposomes. We hypothesized that antibodies are produced against polymer backbones rather than CB side groups.
View Article and Find Full Text PDFNat Commun
October 2024
Department of Molecular Medicine, Sapienza University of Rome, Rome, Italy.
Lipid nanoparticles (LNPs) play a crucial role in addressing genetic disorders, and cancer, and combating pandemics such as COVID-19 and its variants. Yet, the ability of LNPs to effectively encapsulate large-size DNA molecules remains elusive. This is a significant limitation, as the successful delivery of large-size DNA holds immense potential for gene therapy.
View Article and Find Full Text PDFBiomater Sci
October 2024
State Key Laboratory of Urban Water Resource and Environment, School of Chemistry and Chemical Engineering, Harbin Institute of Technology, Harbin, 150001, China.
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