Hokkaido University · Biochemistry, Genetics and Molecular Biology
Ikramy A. Khalil 교수의 연구실은 비바이러스성 유전자 및 RNA 치료제의 체내 표적 전달을 위한 고성능 나노베이스 전달 시스템 개발에 초점을 맞추고 있습니다. 특히 리포좀과 리피드 나노입자를 활용한 표적성 향상, 엔도좀 탈출 촉진, 다양한 장기(예: 폐 엔도테리움, 간, 비장)에 대한 선택적 전달 기술을 연구하고 있습니다. 이와 더불어, 이온화성 지질, 타겟팅 리간드, 펩타이드 밀도 최적화 등 나노캐리어의 설계 원리를 체계적으로 분석하고 있습니다.
Figures are computed from collected data and may differ slightly.
The mechanism of the arginine-rich peptide-mediated cellular uptake is currently a controversial issue. Several factors, including the type of peptide, the nature of the cargo, and the linker between them, appear to affect uptake. One of the less studied factors, which may affect the uptake mechanism, is the effect of peptide density on the surface of the cargo. Here, we examined the mechanism of cellular uptake and intracellular trafficking of liposomes modified with different densities of the
Abstract The development of efficient gene delivery systems targeting the lung endothelium remains a serious challenge. This study reports on the design and optimization of a multifunctional envelope‐type nanodevice (MEND) for an efficient siRNA delivery to the lung endothelium based on GALA‐peptide targeting ability. The incorporation of a pH‐sensitive lipid (YSK05) results in a dramatic improvement in silencing efficiency by enhancing endosomal escape, but this also causes a reduction in the l
The last few years have witnessed a great advance in the development of nonviral systems for in vivo targeted delivery of nucleic acids. Lipid nanoparticles (LNPs) are the most promising carriers for producing clinically approved products in the future. Compared with other systems used for nonviral gene delivery, LNPs provide several advantages including higher stability, low toxicity, and greater efficiency. Additionally, systems based on LNPs can be modified with ligands and devices for contro
mRNA delivery has recently gained substantial interest for possible use in vaccines. Recently approved mRNA vaccines are administered intramuscularly where they transfect antigen-presenting cells (APCs) near the site of administration, resulting in an immune response. The spleen contains high numbers of APCs, which are located near B and T lymphocytes. Therefore, transfecting APCs in the spleen would be expected to produce a more efficient immune response, but this is a challenging task due to t
The recent success in the field of siRNA delivery is based mainly on developing new biomaterials with extraordinarily high activities. Notably, the introduction of ionizable lipids and novel targeting ligands represent two huge steps for realizing siRNA therapy. The currently available systems are largely directed to the liver and the new challenge is to extend their applicability for treating diseases of other organs. Active targeting to different organs is the most promising approach for devel
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