Tohoku University · Biochemistry, Genetics and Molecular Biology
Professor Yu Sakurai's research lab specializes in the development of advanced nanodelivery systems for targeted cancer therapy, with a focus on improving the delivery and efficacy of nucleic acid-based therapeutics such as siRNA. The lab investigates stimuli-responsive nanocarriers, including multifunctional envelope-type nanodevices (MENDs), to enhance tumor-specific delivery, intracellular trafficking, and gene silencing. Key research directions include overcoming drug resistance in renal cell carcinoma, modulating tumor vasculature through anti-angiogenic strategies, and optimizing nanoformulations for improved therapeutic outcomes. The lab also explores the interplay between tumor microenvironment modulation and drug delivery efficiency.
Figures are computed from collected data and may differ slightly.
During past two decades, the importance of rechargeable lithium cells has been emphasized and a large variety of materials has been discovered and evaluated for use as reversible cathodes and electrolytes. Materials that undergo intercalation or topochemical reactions with lithium have been investigated as candidates for cathodes in nonaqueous secondary lithium cells (1). Recent interest in researching cathode active materials has mainly focussed on crystalline transition metal chalcogenides. On
Unlike tumor tissues, only a few reports have appeared on how liposomal carriers accumulate in adipose tissues after systemic injection. This finding, as well as active targeting to the adipose vasculature, promises to extend the capacity of DDS to adipose tissue. Since the site of action of nucleic acids is the cytosol, the intracellular trafficking of carriers and their cargoes as well as cellular uptake must be taken into consideration.
A number of nano drug delivery systems have recently been developed for cancer treatment, most of which are based on the enhanced permeability and retention effect. The advantages of the enhanced permeability and retention effect can be attributed to immature vasculature. Herein we evaluated the intratumoral distribution of lipid nanoparticles when the VEGF receptor 2 on tumor endothelial cells was inhibited by liposomal siRNA. VEGF receptor 2 inhibition resulted in an increase in intratumoral d
Because angiogenesis is a major contributor to cancer progression and metastasis, it is an attractive target for cancer therapy. Although a diverse number of small compounds for anti-angiogenic therapy have been developed, severe adverse effects commonly occur, since small compounds can affect not only tumor endothelial cells (TECs), but also normal endothelial cells. This low selectivity for TECs has motivated researchers to develop alternate types of drug delivery systems (DDSs). In this revie
It is well-known that renal cell carcinomas (RCCs) are resistant to classical cytotoxic anticancer drugs. Therefore, facilitating the impact of anticancer drugs by altering the cell phenotype should be a useful strategy for circumventing this. We developed a multifunctional envelope-type nanodevice (MEND) as an in vivo carrier of siRNA to tumor tissues. We previously reported that a MEND containing YSK05 (YSK-MEND) efficiently delivered siRNA in RCC-bearing mice. We herein report on a combinatio
We recently developed a multifunctional envelope-type nano device (MEND) for efficient nucleic acid delivery. Here, we report on the development of an octaarigine (R8)-modified MEND encapsulating small interfering RNA (siRNA) with a tumor-specific, cleavable, polyethylene glycol (PEG)-lipid (PPD). We first determined the optimal concentration of R8 and pH-sensitive fusogenic peptide (GALA) on the lipid envelope of MEND (R8/GALA-MEND). Then, we examined the combination of optimized R8/GALA-MEND w
<b>Introduction</b>: Hyaluronan (HA), a natural polysaccharide, is produced in large amounts by the human body. Since its receptor CD44 is highly expressed in many types of cancers, HA is a promising ligand for cancer-targeting nanoparticles (NPs). Since the enhanced permeability and retention (EPR) effect-based strategy faces difficulties in terms of efficiency in clinical studies, studies focusing on HA-modified NPs that can actively target cancer cells should be prominent for further progress
The development of a specific, effective method for the delivery of therapeutics including small molecules and nucleic acids to tumor tissue remains to be solved. Numerous types of lipid nanoparticles (LNPs) have been developed in attempts to achieve this goal. However, LNPs are probably not taken up by target cells because cancer-targeting LNPs are typically modified with poly(ethylene glycol) (PEG), which inhibits the cellular uptake of LNPs, to passively accumulate in tumor tissue via the enh
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