共查询到8条相似文献,搜索用时 0 毫秒
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Khalid A. Hajj Rebecca L. Ball Sarah B. Deluty Shridhar R. Singh Daria Strelkova Christopher M. Knapp Kathryn A. Whitehead 《Small (Weinheim an der Bergstrasse, Germany)》2019,15(6)
The potential of mRNA therapeutics will be realized only once safe and effective delivery systems are established. Unfortunately, delivery vehicle development is stymied by an inadequate understanding of how the molecular properties of a vehicle confer efficacy. Here, a small library of lipidoid materials is used to elucidate structure–function relationships and identify a previously unappreciated parameter—lipid nanoparticle surface ionization—that correlates with mRNA delivery efficacy. The two most potent materials of the library, 306O10 and 306Oi10, induce substantial luciferase expression in mice following a single 0.75 mg kg?1 mRNA dose. These lipidoids, which have ten‐carbon tails and identical molecular weights, vary only in that the 306O10 tail is straight and the 306Oi10 tail has a one‐carbon branch. Remarkably, this small difference in structure conferred a tenfold improvement in 306Oi10 efficacy. The enhanced potency of this branched‐tail lipidoid is attributed to its strong surface ionization at the late endosomal pH of 5.0. A secondary lipidoid library confirms that Oi10 materials ionize more strongly and deliver mRNA more potently than lipidoids containing linear tails. Together, these data highlight the exquisite control that lipid chemistry exerts on the mRNA delivery process and show that branched‐tail lipids facilitate protein expression in animals. 相似文献
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The Use of Nanoparticles to Deliver Nitric Oxide to Hepatic Stellate Cells for Treating Liver Fibrosis and Portal Hypertension 下载免费PDF全文
Hien T. T. Duong Zhixia Dong Lin Su Cyrille Boyer Jacob George Thomas P. Davis Jianhua Wang 《Small (Weinheim an der Bergstrasse, Germany)》2015,11(19):2291-2304
Polymeric nanoparticles are designed to transport and deliver nitric oxide (NO) into hepatic stellate cells (HSCs) for the potential treatment of both liver fibrosis and portal hypertension. The nanoparticles, incorporating NO donor molecules (S‐nitrosoglutathione compound), are designed for liver delivery, minimizing systemic delivery of NO. The nanoparticles are decorated with vitamin A to specifically target HSCs. We demonstrate, using in vitro and in vivo experiments, that the targeted nanoparticles are taken up specifically by rat primary HSCs and the human HSC cell line accumulating in the liver. When nanoparticles, coated with vitamin A, release NO in liver cells, we find inhibition of collagen I and α‐smooth muscle actin (α‐SMA), fibrogenic genes associated with activated HSCs expression in primary rat liver and human activated HSCs without any obvious cytotoxic effects. Finally, NO‐releasing nanoparticles targeted with vitamin A not only attenuate endothelin‐1 (ET‐1) which elicites HSC contraction but also acutely alleviates haemodynamic disorders in bile duct‐ligated‐induced portal hypertension evidenced by decreasing portal pressure (≈20%) and unchanging mean arterial pressure. This study clearly shows, for the first time, the potential for HSC targeted nanoparticle delivery of NO as a treatment for liver diseases with proven efficacy for alleviating both liver fibrosis and portal hypertension. 相似文献
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Melissa P. Lokugamage Cory D. Sago Zubao Gan Brandon R. Krupczak James E. Dahlman 《Advanced materials (Deerfield Beach, Fla.)》2019,31(41)
T cells help regulate immunity, which makes them an important target for RNA therapies. While nanoparticles carrying RNA have been directed to T cells in vivo using protein‐ and aptamer‐based targeting ligands, systemic delivery to T cells without targeting ligands remains challenging. Given that T cells endocytose lipoprotein particles and enveloped viruses, two natural systems with structures that can be similar to lipid nanoparticles (LNPs), it is hypothesized that LNPs devoid of targeting ligands can deliver RNA to T cells in vivo. To test this hypothesis, the delivery of siRNA to 9 cell types in vivo by 168 nanoparticles using a novel siGFP‐based barcoding system and bioinformatics is quantified. It is found that nanomaterials containing conformationally constrained lipids form stable LNPs, herein named constrained lipid nanoparticles (cLNPs). cLNPs deliver siRNA and sgRNA to T cells at doses as low as 0.5 mg kg?1 and, unlike previously reported LNPs, do not preferentially target hepatocytes. Delivery occurs via a chemical composition‐dependent, size‐independent mechanism. These data suggest that the degree to which lipids are constrained alters nanoparticle targeting, and also suggest that natural lipid trafficking pathways can promote T cell delivery, offering an alternative to active targeting approaches. 相似文献
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Chunxi Zeng Xucheng Hou Jingyue Yan Chengxiang Zhang Wenqing Li Weiyu Zhao Shi Du Yizhou Dong 《Advanced materials (Deerfield Beach, Fla.)》2020,32(40):2004452
SARS-CoV-2 has become a pandemic worldwide; therefore, an effective vaccine is urgently needed. Recently, messenger RNAs (mRNAs) have emerged as a promising platform for vaccination. In this work, the untranslated regions (UTRs) of mRNAs are systematically engineered in order to enhance protein production. Through a comprehensive analysis of endogenous gene expression and de novo design of UTRs, the optimal combination of 5′ and 3′ UTR are identified and termed NASAR, which are 5- to 10-fold more efficient than the tested endogenous UTRs. More importantly, NASAR mRNAs delivered by lipid-derived TT3 nanoparticles trigger a dramatic expression of potential SARS-CoV-2 antigens. The antigen-specific antibodies induced by TT3-nanoparticles and NASAR mRNAs are over two orders of magnitude more than that induced by the FDA-approved lipid nanoparticle material MC3 in vaccinated mice. These NASAR mRNAs merit further development as alternative SARS-CoV-2 vaccines. 相似文献
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Yana Tarakanchikova Jamal Alzubi Valentina Pennucci Marie Follo Boris Kochergin Albert Muslimov Ilya Skovorodkin Seppo Vainio Maria N. Antipina Vsevolod Atkin Alexey Popov Igor Meglinski Toni Cathomen Tatjana I. Cornu Dmitry A. Gorin Gleb B. Sukhorukov Irina Nazarenko 《Small (Weinheim an der Bergstrasse, Germany)》2020,16(3)
Efficient delivery of genetic material to primary cells remains challenging. Here, efficient transfer of genetic material is presented using synthetic biodegradable nanocarriers, resembling extracellular vesicles in their biomechanical properties. This is based on two main technological achievements: generation of soft biodegradable polyelectrolyte capsules in nanosize and efficient application of the nanocapsules for co‐transfer of different RNAs to tumor cell lines and primary cells, including hematopoietic progenitor cells and primary T cells. Near to 100% efficiency is reached using only 2.5 × 10?4 pmol of siRNA, and 1 × 10?3 nmol of mRNA per cell, which is several magnitude orders below the amounts reported for any of methods published so far. The data show that biodegradable nanocapsules represent a universal and highly efficient biomimetic platform for the transfer of genetic material with the utmost potential to revolutionize gene transfer technology in vitro and in vivo. 相似文献
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Drug‐Loaded Multifunctional Nanoparticles Targeted to the Endocardial Layer of the Injured Heart Modulate Hypertrophic Signaling 下载免费PDF全文
Mónica P. A. Ferreira Sanjeev Ranjan Sini Kinnunen Alexandra Correia Virpi Talman Ermei Mäkilä Brianda Barrios‐Lopez Marianna Kemell Vimalkumar Balasubramanian Jarno Salonen Jouni Hirvonen Heikki Ruskoaho Anu J. Airaksinen Hélder A. Santos 《Small (Weinheim an der Bergstrasse, Germany)》2017,13(33)
Ischemic heart disease is the leading cause of death globally. Severe myocardial ischemia results in a massive loss of myocytes and acute myocardial infarction, the endocardium being the most vulnerable region. At present, current therapeutic lines only ameliorate modestly the quality of life of these patients. Here, an engineered nanocarrier is reported for targeted drug delivery into the endocardial layer of the left ventricle for cardiac repair. Biodegradable porous silicon (PSi) nanoparticles are functionalized with atrial natriuretic peptide (ANP), which is known to be expressed predominantly in the endocardium of the failing heart. The ANP–PSi nanoparticles exhibit improved colloidal stability and enhanced cellular interactions with cardiomyocytes and non‐myocytes with minimal toxicity. After confirmation of good retention of the radioisotope 111‐Indium in relevant physiological buffers over 4 h, in vivo single‐photon emission computed tomography (SPECT/CT) imaging and autoradiography demonstrate increased accumulation of ANP–PSi nanoparticles in the ischemic heart, particularly in the endocardial layer of the left ventricle. Moreover, ANP–PSi nanoparticles loaded with a novel cardioprotective small molecule attenuate hypertrophic signaling in the endocardium, demonstrating cardioprotective potential. These results provide unique insights into the development of nanotherapies targeted to the injured region of the myocardium. 相似文献
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Drug Delivery: Drug‐Loaded Multifunctional Nanoparticles Targeted to the Endocardial Layer of the Injured Heart Modulate Hypertrophic Signaling (Small 33/2017) 下载免费PDF全文
Mónica P. A. Ferreira Sanjeev Ranjan Sini Kinnunen Alexandra Correia Virpi Talman Ermei Mäkilä Brianda Barrios‐Lopez Marianna Kemell Vimalkumar Balasubramanian Jarno Salonen Jouni Hirvonen Heikki Ruskoaho Anu J. Airaksinen Hélder A. Santos 《Small (Weinheim an der Bergstrasse, Germany)》2017,13(33)