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Papers, explained in our own words

Every entry summarises what the study set out to test, what it found and why it changes how we design delivery systems. Browse research and reviews or search the collection.

391 articles

Keyword: Lipid nanoparticleClear keyword
Advanced Science2023ResearchNon-viral Gene Delivery

1. Lipid Nanoparticle Delivery System for mRNA Encoding B7H3-redirected Bispecific Antibody Displays Potent Antitumor Effects on Malignant Tumors

Cheng Huang, Xing Duan, Jichao Wang, Qingqing Tian, Yangmei Ren, Kepan Chen, Zongliang Zhang, Yuanyou Li, Yunyu Feng, Kunhong Zhong, Yuelong Wang, Liangxue Zhou, Gang Guo, Xiangrong Song, And Aiping Tong

Bispecific T-cell engagers (BiTEs) are promising but require large amounts of purified protein, have high manufacturing costs, poor in vivo stability, and short serum half-lives. mRNA delivery could enable continuous endogenous production of BiTEs, but efficient and safe delivery systems are needed. The study developed a novel ionizable lipid nanoparticle (LNP) for mRNA encoding B7H3×CD3 BiTE to achieve prolonged half-life and potent antitumor. LNP@GFP-mRNA showed transfection efficiency comparable to Lipofectamine 8000 in 293T, AML12, and LO2 cells; serum presence did not affect transfection. - After IV LNP@Luc-mRNA, strongest luciferase signal was in liver.

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Nature Communications 14, 345 (2023ResearchNon-viral Gene Delivery

2. Ligand-tethered lipid nanoparticles for targeted RNA delivery to treat liver fibrosis

Xuexiang Han, Ningqiang Gong, Lulu Xue, Margaret M. Billingsley, Rakan El-Mayta, Sarah J. Shepherd, Mohamad-Gabriel Alameh, Drew Weissman, Michael J. Mitchell

Liver fibrosis has no approved antifibrotic therapies. Activated hepatic stellate cells (HSCs) drive fibrosis by producing collagen, and HSP47 is a key collagen chaperone in these cells. Targeted delivery of siRNA to activated HSCs remains challenging, so a ligand-tethered LNP platform was developed to deliver RNA selectively to activated fibroblasts/HSCs. Lead AA-T3A-C12 LNP achieved >80% GFP knockdown at 50 nM in activated 3T3-GFP fibroblasts; knockdown significantly reduced by haloperidol (p = 0.009), confirming sigma receptor dependence. - In fibroblast/hepatocyte.

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2023ReviewNon-viral Gene Delivery

3. Polymer- and lipid-based gene delivery technology for CAR T cell therapy

Pinto Is, Cordeiro Ra, Faneca H

CAR T cell therapy is FDA/EMA-approved for B cell malignancies and multiple myeloma, but manufacturing relies on viral vectors—associated with safety concerns, high cost, and production challenges—or electroporation, which can be highly cytotoxic. Nanosystems may offer a safer, cost-effective alternative, but T cells are difficult to transfect, so rational design of lipid- and polymer-based carriers is urgently needed. Si-PDMAEMA-pDNA achieved 46% transfection in Jurkat cells and 44% in primary human T cells; pDNA/PEI-based systems reached 51% in Jurkat and 60% in primary human T cells. - pIAE + anti-CD3 + PiggyBac transposon.

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Biomaterials Science2022ReviewNon-viral Gene Delivery

4. Approaches towards Biomaterial-Mediated Gene Editing for Cancer Immunotherapy

Sydney R. Shannon, Elena Ben-Akiva, Jordan J. Green

Gene therapies are transforming treatment for many diseases, but clinical efficacy and safety depend on both the delivery material and the cargo. Non-viral delivery to immune cells remains especially challenging, and no clinical translation breakthrough has yet been achieved for non-viral gene editing. This mini-review addresses that gap by surveying biomaterial-based delivery to immune cells, CRISPR/Cas9 cargo options, and how the two fields can be integrated for cancer immunotherapy. --- - PBAE nanoparticles with anti-CD3ε Fab2, MTAS, and NLS delivered DNA encoding leukemia-specific CARs to T cells at 34% efficiency *in vivo*, programming functional antigen recognition and anti-tumor effects. - PBAE mRNA CAR nanoparticles (anti-CD8, PGA-coated) transiently transfected T cells at 10% efficiency *in vivo*. - CART polymers: ~80% mRNA transfection in Jurkat T cells *in vitro*, but only ~1.5% *in vivo*; mixed hydrophobic blocks outperforme

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Science Advances2022ReviewNon-viral Gene Delivery

5. Lighting the Way to Personalized mRNA Immune Cell Therapies

Ann E. Metzloff, Margaret M. Billingsley, Michael J. Mitchell

mRNA vaccines have entered global use, but delivering mRNA to T cells in vivo remains challenging because T cells are non-phagocytic, reside largely in lymphoid tissues, and intravenously administered lipid nanoparticles (LNPs) tend to accumulate in the liver. There is a need for precise, scalable strategies to target mRNA to disease-specific T cells rather than all T cells, to avoid off-target inflammation and maintain self-tolerance. --- - UV-exchanged pMHCI APNs performed comparably to conventionally refolded pMHCI APNs for targeting and delivering mRNA to antigen-specific cytotoxic T cells in three mouse models. - Simultaneous targeting of three antigen-specific cytotoxic T cell populations was achieved by injecting a mixture of three UV-exchanged APNs, each carrying a different influenza A antigenic peptide. - mRNA delivery to the three antigen-specific cytotoxic T cell populations occurred at significantly higher rates compared wi

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Science2022ResearchNon-viral Gene Delivery

6. CAR T cells produced in vivo to treat cardiac injury

Joel G. Rurik, István Tombácz, Amir Yadegari, Pedro O. Méndez Fernández, Swapnil V. Shewale, Li Li, Toru Kimura, Ousamah Younoss Soliman, Tyler E. Papp, Ying K. Tam, Barbara L. Mui, Steven M. Albelda, Ellen Puré, Carl H. June, Haig Aghajanian, Drew Weissman, Hamideh Parhiz, Jonathan A. Epstein

Fibrosis affects millions of people with cardiac disease and contributes to heart failure. While adoptive transfer of CAR T cells targeting fibroblast activation protein (FAP) has shown promise in reducing cardiac fibrosis, conventional CAR T cells persist for months to years and could cause chronic off-target toxicity by continuously attacking fibroblasts throughout the body, impairing wound healing.[reference:0][reference:1] A method to. ### LNP Characterization & In Vitro CAR Expression | Parameter | Result | |---------------|------------| | LNP hydrodynamic diameter | ~80 nm[reference:49] | | Polydispersity index | 0.02-0.06[reference:50] | | mRNA.

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Journal of Controlled Release 344 (2022ResearchNon-viral Gene Delivery

7. Added to pre-existing inflammation, mRNA-lipid nanoparticles induce inflammation exacerbation (IE)

Hamideh Parhiz, Jacob S. Brenner, Priyal N. Patel, Tyler E. Papp, Hamna Shahnawaz, Qin Li, Ruiqi Shi, Marco E. Zamora, Amir Yadegari, Oscar A. Marcos-Contreras, Ambika Natesan, Norbert Pardi, Vladimir V. Shuvaev, Raisa Kiseleva, Jacob W. Myerson, Thomas Uhler, Rachel S. Riley, Xuexiang Han, Michael

Nucleoside-modified mRNA lipid nanoparticle (modmRNA-LNP) technology is clinically successful, but its behavior in pre-existing inflammatory or immune-challenged conditions is poorly characterized. This gap raises the risk of adverse effects when modmRNA-LNPs are administered to patients with ongoing inflammation. IE with LPS + modmRNA-LNP: Serum IL-6 increased 14-fold vs LPS alone and 94-fold vs modmRNA-LNP in naive mice. Liver MIP-2 increased 11-fold vs LPS alone and 52-fold vs modmRNA-LNP in naive mice. Liver MIP-2 mRNA.

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Journal of Controlled Release 341 (2022ResearchNon-viral Gene Delivery

8. Amniotic fluid stabilized lipid nanoparticles for in utero intra-amniotic mRNA delivery

Kelsey L. Swingle, Margaret M. Billingsley, Sourav K. Bose, Brandon White, Rohan Palanki, Apeksha Dave, Savan K. Patel, Ningqiang Gong, Alex G. Hamilton, Mohamad-Gabriel Alameh, Drew Weissman, William H. Peranteau, Michael J. Mitchell

Congenital protein deficiencies often begin irreversible pathology in utero, but postnatal treatments are limited. In utero mRNA delivery could enable protein replacement before disease onset, yet LNP stability in fetal amniotic fluid and how it affects mRNA delivery had not been previously investigated. LNP A12 was most stable in mouse amniotic fluid; A1 was least stable. A12 had significantly higher bound protein content than A1 (p < 0.0021). - Percent change in PDI inversely correlated with in vitro luciferase.

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Accounts of Chemical Research2022ResearchNon-viral Gene Delivery

9. Chemistry of Lipid Nanoparticles for RNA Delivery

Yulia Eygieris, Mohit Gupta, Jeonghwan Kim, Gaurav Sahay

LNPs enabled the COVID-19 mRNA vaccines and the first siRNA-LNP drug, but there is still no one-size-fits-all LNP for every RNA therapeutic. A better chemistry-level understanding of LNP self-assembly, component roles, and whole-particle properties is needed to rationally design safer and more efficient RNA delivery systems. ## 3. Hypothesis / Central Thesis LNP performance is governed by the coordinated chemistry of ionizable lipids, sterols Ionizable lipids typically have tertiary amine headgroups and biodegradable ester linkers; cpKa ~9–10.5, LNP pKa ~6–7, and cLogD ~10–14 are associated with potency. - Cholesterol analogues can strongly.

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Journal of Controlled Release2022ResearchNon-viral Gene Delivery

10. Delivery of modified mRNA to damaged myocardium by systemic administration of lipid nanoparticles

Martijn J.W. Evers, Wenjuan Du, Qiangbing Yang, Sander A.A. Kooijmans, Aryan Vink, Mies Van Steenbergen, Pieter Vader, Saskia C.A. De Jager, Sabine A. Fuchs, Enrico Mastrobattista, Joost P.G. Sluijter, Zhiyong Lei, Raymond Schiffelers

Modified mRNA (modRNA) is a promising cardiac regeneration therapeutic, but naked mRNA is large, negatively charged, and rapidly degraded. It is unknown whether systemically administered lipid nanoparticles (LNPs) can functionally deliver mRNA to ischemic/damaged myocardium after myocardial infarction. LNPs were <100 nm with PDI <0.2 and 95–99% mRNA encapsulation. - After ischemia-reperfusion, fluorescent LNPs accumulated in the infarcted area of the heart at 4 h and 24 h, but not in sham or control hearts. -.

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Journal of Controlled Release 349 (2022ResearchNon-viral Gene Delivery

11. Engineered ionizable lipid siRNA conjugates enhance endosomal escape but induce toxicity in vivo

Annabelle Biscans, Socheata Ly, Nicholas Mchugh, David A. Cooper, Anastasia Khvorova

Lipid-conjugated siRNAs can reach extrahepatic tissues, but silencing efficacy remains lower than in liver largely because only ~1–2% of internalized siRNA escapes endosomes into the cytoplasm. Ionizable lipids enhance endosomal escape in lipid nanoparticles (LNPs), but direct covalent conjugation of an ionizable lipid to siRNA had not been investigated. DLin-MC3-DMA conjugation retained RISC activity in vitro: IC50 values were 322 pM (unconjugated), 365 pM (cholesterol), and 481 pM (DLin-MC3-DMA). - Endosomal escape was enhanced: DLin-MC3-DMA-siRNA increased Gal8+.

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Journal of Controlled Release 347 (2022ResearchNon-viral Gene Delivery

12. Hydroxycholesterol substitution in ionizable lipid nanoparticles for mRNA delivery to T cells

Savan K. Patel, Margaret M. Billingsley, Caitlin Frazee, Xuexiang Han, Kelsey L. Swingle, Jingya Qin, Mohamad-Gabriel Alameh, Karin Wang, Drew Weissman, Michael J. Mitchell

mRNA delivery to T cells could enable ex vivo and in vivo T cell engineering, but LNPs still face poor extrahepatic delivery, endosomal recycling, and limited T cell transfection. Cholesterol analogs such as hydroxycholesterols may alter NPC1 recognition and endosomal trafficking, providing a route to improve T cell mRNA delivery. In primary human T cells, A1-25 and A1-50 improved mRNA delivery by 1.8-fold and 2.0-fold, respectively, vs S2. - In Jurkat cells, A1-25, A1-50, and B1-50 increased luciferase expression 2.1-fold, 1.9-fold, and.

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Biomaterials 281 (2022ResearchNon-viral Gene Delivery

13. In situ T-cell transfection by anti-CD3-conjugated lipid nanoparticles leads to T-cell activation, migration, and phenotypic shift

Azadeh Kheirolomoom, Aris J. Kare, Elizabeth S. Ingham, Ramasamy Paulmurugan, Elise R. Robinson, Mo Baikoghli, Mohammed Inayathullah, Jai W. Seo, James Wang, Brett Z. Fite, Bo Wu, Spencer K. Tumble, Marina N. Raie, R. Holland Cheng, Lisa Nichols, Alexander D. Borowsky, Katherine W. Ferrara

Ex vivo T-cell engineering is effective but complex, costly, and difficult to scale. A method to transfect T cells directly in situ could simplify T-cell immunotherapy, but T-cell targeting may also trigger activation, depletion, cytokine release, and phenotypic changes that must be understood. In vitro: >80% of Jurkat cells expressed mCherry with 16% aCD3-LNPs; ~97% became CD69⁺; aCD3 coating caused T-cell depletion and CD3e internalization. - In vivo 24 h: aCD3-LNPs transfected ~2–4% of splenic T cells and.

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International Journal of Nanomedicine2022ResearchNon-viral Gene Delivery

14. Ionizable Lipid Nanoparticle-Mediated Delivery of Plasmid DNA in Cardiomyocytes

Sérgio Scalzo, Anderson K. Santos, Heloisa A. S. Ferreira, Pedro A. Costa, Pedro H. D. M. Prazeres, Natalia J. A. Da Silva, Lays C. Guimarães, Mário De Morais E Silva, Marco T. R. Rodrigues Alves, Celso T. R. Viana, Itamar C. G. Jesus, Alice P. Rodrigues, Alexander Birbrair, Anderson O. Lobo, Freder

Cardiomyocytes are hard-to-transfect cells, and gene therapy for cardiovascular disease is limited by insufficient delivery to cardiac tissue, nucleic acid degradation, and safety concerns with viral vectors. A safe, effective non-viral platform for pDNA delivery to cardiomyocytes is needed. LNP4 was the top performer: ~1.3-fold higher GFP fluorescence than the second-best LNP8 and ~10-fold higher than the lowest performer LNP6. - LNP4 achieved >60% transfection efficiency at day 2 and >80% at day 4 in.

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Journal of Biomedical Materials Research Part A2022ResearchNon-viral Gene Delivery

15. Rational design of anti-inflammatory lipid nanoparticles for mRNA delivery

Hanwen Zhang, Xuexiang Han, Mohamad-Gabriel Alameh, Sarah J. Shepherd, Marshall S. Padilla, Lulu Xue, Kamila Butowska, Drew Weissman, Michael J. Mitchell

LNPs can trigger innate immune responses and inflammation, which can suppress mRNA translation and cause adverse effects. There is a need for LNP formulations that reduce LNP-induced inflammation while maintaining or improving mRNA delivery. C9D1 and C10D0 had similar size, PDI, and >90% mRNA encapsulation; Dex substitution did not impair in vitro transfection or increase cytotoxicity. - Higher Dex substitution (C7D3, C5D5, C3D7, C0D10) reduced.

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Chemistry and Physics of Lipids 243 (2022ResearchNon-viral Gene Delivery

16. Synthesis and bioactivity of readily hydrolysable novel cationic lipids for potential lung delivery application of mRNAs

Yihua Pei, Yanjie Bao, Cristiano Sacchetti, Juthamart Brady, Kyra Gillard, Hailong Yu, Scott Roberts, Kumar Rajappan, Steven P. Tanis, Carlos G. Perez-Garcia, Padmanabh Chivukula, Priya P. Karmali

Systemic LNP delivery predominantly targets the liver, while extrahepatic delivery—especially to lung airway epithelium for diseases such as cystic fibrosis—remains challenging. DOTAP is a common cationic lipid for lung gene delivery but is racemic, pseudo-glyceryl, and slowly biodegradable. Novel readily hydrolysable DOTAP analogues are needed for safer and more effective inhaled/airway mRNA delivery. DOTAP+ and L1–L4 LNPs: <100 nm, >95% mRNA encapsulation, high mRNA purity; DOTAP− had ~71% encapsulation. - Freeze-thaw: all formulations retained size, PDI, and encapsulation within ~10% of initial values. -.

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Signal Transduction and Targeted Therapy2022ReviewNon-viral Gene Delivery

17. mRNA-based therapeutics: powerful and versatile tools to combat diseases

Qin S, Tang X, Chen Y, Et Al.

mRNA therapeutics have fueled hope to combat incurable diseases, but insufficient understanding of mRNA instability, immunogenicity, and delivery has impeded progress. The review argues that mRNA-based drugs—especially after the COVID-19 vaccine success—can become powerful, versatile tools, and that mRNA optimization and delivery systems are the key bottlenecks to solve. COVID-19 mRNA vaccines: ~90% effectiveness for full vaccination, 80% for partial; BNT162b2 95% efficacy in phase III; mRNA-1273 94.1% efficacy; Omicron-neutralizing antibodies largely undetectable in most recipients,.

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2022ReviewNon-viral Gene Delivery

18. Nanotechnology-enabled immunoengineering approaches to advance therapeutic applications

Chuang St, Conklin B, Stein Jb, Pan G, Lee K-B.

Immunotherapy has improved outcomes in cancer and infectious disease, but off-target effects, systemic toxicities, and variable efficacy remain limiting. Nanoscale engineering offers ways to manipulate immune cell functions—enhancing immunity against cancers and pathogens, controlling the site of immune response, and promoting tolerance—by tuning nanoparticle size, shape, charge, and surface chemistry. CL4H6 lipid nanoparticles silenced STAT3 and HIF-1α in tumor-associated macrophages by 37% and 48%, respectively, increased M1 markers, reduced tumor size, and altered cytokine profiles in a B16-F10 model. -.

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Materials Today Advances2022ReviewNon-viral Gene Delivery

19. Targeting strategies for mRNA delivery

Randall A. Meyer, Sarah Y. Neshat, Jordan J. Green, Jose Luis Santos, And Anthony D. Tuesca

mRNA gene therapy has broad therapeutic potential (protein replacement, vaccines, regenerative medicine, oncology), but clinical translation is limited by inadequate understanding of how to target specific organs or cell types for protein expression. Reports on material properties and administration routes are disparate, preventing a global understanding of how these factors contribute to organ targeting for mRNA delivery. Liver targeting: LNPs intrinsically target liver via ApoE-mediated uptake through LDLR. Optimized ionizable lipids increased liver luciferase expression 18-fold. Oxidized cholesterol variants improved protein expression.

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European Journal of Medicinal Chemistry2022ReviewNon-viral Gene Delivery

20. The nano delivery systems and applications of mRNA

Mingyuan Li, Yuan Li, Shiqin Li, Lin Jia, Haomeng Wang, Meng Li, Jie Deng, Ali Zhu, Liqiao Ma, Weihong Li, Peng Yu, And Tao Zhu

The COVID-19 pandemic has greatly accelerated the application of mRNA technology, demonstrating its unique advantages over traditional biopharmaceutical and vaccine technology. However, mRNA instability in human physiological environments and inefficient in vivo delivery remain major barriers. mRNA chemical modifications and nano delivery systems are two key factors for in vivo applications. There is a need to summarize challenges for clinical. COVID-19 mRNA vaccine efficacy: BNT162b2 (Pfizer/BioNTech) 95% effective at 30 μg dose; mRNA-1273 (Moderna) 94.5% effective at 100 μg dose; both provide immunogenicity for at least 119 days after first vaccination. -.

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Advanced Healthcare Materials2022ReviewNon-viral Gene Delivery

21. Toward Gene Transfer Nanoparticles as Therapeutics

Erin W. Kavanagh And Jordan J. Green

Viral vectors dominate gene therapy but suffer from immunogenicity, insertional mutagenesis risk, cargo-size limits, and manufacturing challenges. Non-viral nanoparticles are safer, more economical, and easier to scale, but their clinical translation has been limited by inefficient delivery, especially for DNA and gene-editing cargoes that must reach the nucleus. There is a need to review non-viral nanomaterial design, delivery barriers, and. Viral vector dominance: Approximately 70% of gene therapy clinical trials to date have used viruses. - LNP gene editing in liver: A single administration of CRISPR-Cas9 LNPs achieved >97% reduction in target protein.

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Heart Failure Reviews (Springer)2022ReviewNon-viral Gene Delivery

22. Treatment of cardiac fibrosis: from neuro-hormonal inhibitors to CAR-T cell therapy

Paolo Morfino, Alberto Aimo, Vincenzo Castiglione, Carolina Galvez-Montón, Michele Emdin, Antoni Bayes-Genis

Cardiac fibrosis contributes to the pathogenesis of heart failure, myocardial infarction, and arrhythmias, but no primarily anti-fibrotic drug has been approved for cardiovascular disease. Many candidate anti-fibrotic strategies have shown promise in preclinical models yet failed to demonstrate clear clinical benefit. There is a need to summarize current and emerging therapeutic options and to evaluate a new approach: targeting cardiac. RAAS inhibitors: Lisinopril reduced collagen volume fraction (CVF) vs. hydrochlorothiazide; losartan reduced CVF and PICP; spironolactone/eplerenone reduced PICP/PIIINP and improved diastolic function in some trials. -.

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Molecules2022ReviewNon-viral Gene Delivery

23. Lipid Nanoparticles for mRNA Delivery to Enhance Cancer Immunotherapy

Wang H-L, Wang Z-G, Liu S-L

mRNA is a promising cancer immunotherapy platform for vaccines, cytokines, costimulatory receptors, and therapeutic antibodies, but it is unstable, immunogenic, and poorly delivered in vivo. Safer and more efficient delivery systems are needed to improve mRNA stability, cellular uptake, endosomal escape, and tumor-site accumulation. PL1 LNPs delivering CD137 or OX40 mRNA to tumor-infiltrating T cells, combined with anti-OX40 antibody, showed more significant antitumor activity than anti-OX40 antibody alone in multiple tumor models. -.

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2022ReviewNon-viral Gene Delivery

24. Microfluidic technologies and devices for lipid nanoparticle-based

Maeki M, Uno S, Niwa A, Okada Y, Tokeshi M

RNA-loaded lipid nanoparticles (LNPs) are clinically validated for siRNA and mRNA delivery, but their therapeutic performance depends critically on reproducible control of size, size distribution, zeta potential, and RNA encapsulation efficiency. Microfluidic devices offer precise mixing, rapid ethanol dilution, high reproducibility, high-throughput formulation screening, and continuous production, making them attractive for standardized LNP. Increasing PEG-lipid from 1 to 5 mol% reduced siRNA-LNP size from 54 nm to 28 nm; DLin-KC2-DMA LNPs achieved 50% FVII silencing at 0.01 mg/kg in mice. - Optimized mRNA-LNP formulations improved delivery and expression.

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