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Dive into the research topics where Eman M. Zaghloul is active.

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Featured researches published by Eman M. Zaghloul.


Nucleic Acids Research | 2011

Design of a peptide-based vector, PepFect6, for efficient delivery of siRNA in cell culture and systemically in vivo

Samir El Andaloussi; Taavi Lehto; Imre Mäger; Katri Rosenthal-Aizman; Iulian I. Oprea; Oscar E. Simonson; Helena Sork; Kariem Ezzat; Dana Maria Copolovici; Kaido Kurrikoff; Joana R. Viola; Eman M. Zaghloul; Rannar Sillard; H. Johansson; Fatouma Said Hassane; Peter Guterstam; Julia Suhorutšenko; Pedro M. D. Moreno; Nikita Oskolkov; Jonas Hälldin; Ulf Tedebark; Andres Metspalu; Bernard Lebleu; Janne Lehtiö; C. I. Edvard Smith; Ülo Langel

While small interfering RNAs (siRNAs) have been rapidly appreciated to silence genes, efficient and non-toxic vectors for primary cells and for systemic in vivo delivery are lacking. Several siRNA-delivery vehicles, including cell-penetrating peptides (CPPs), have been developed but their utility is often restricted by entrapment following endocytosis. Hence, developing CPPs that promote endosomal escape is a prerequisite for successful siRNA implementation. We here present a novel CPP, PepFect 6 (PF6), comprising the previously reported stearyl-TP10 peptide, having pH titratable trifluoromethylquinoline moieties covalently incorporated to facilitate endosomal release. Stable PF6/siRNA nanoparticles enter entire cell populations and rapidly promote endosomal escape, resulting in robust RNAi responses in various cell types (including primary cells), with minimal associated transcriptomic or proteomic changes. Furthermore, PF6-mediated delivery is independent of cell confluence and, in most cases, not significantly hampered by serum proteins. Finally, these nanoparticles promote strong RNAi responses in different organs following systemic delivery in mice without any associated toxicity. Strikingly, similar knockdown in liver is achieved by PF6/siRNA nanoparticles and siRNA injected by hydrodynamic infusion, a golden standard technique for liver transfection. These results imply that the peptide, in addition to having utility for RNAi screens in vitro, displays therapeutic potential.


Nucleic Acids Research | 2011

PepFect 14, a novel cell-penetrating peptide for oligonucleotide delivery in solution and as solid formulation

Kariem Ezzat; Samir El Andaloussi; Eman M. Zaghloul; Taavi Lehto; Staffan Lindberg; Pedro M. D. Moreno; Joana R. Viola; Tarek Magdy; Rania Abdo; Peter Guterstam; Rannar Sillard; Suzan M. Hammond; Matthew Wood; Andrey Arzumanov; Michael J. Gait; C. I. Edvard Smith; Mattias Hällbrink; Ülo Langel

Numerous human genetic diseases are caused by mutations that give rise to aberrant alternative splicing. Recently, several of these debilitating disorders have been shown to be amenable for splice-correcting oligonucleotides (SCOs) that modify splicing patterns and restore the phenotype in experimental models. However, translational approaches are required to transform SCOs into usable drug products. In this study, we present a new cell-penetrating peptide, PepFect14 (PF14), which efficiently delivers SCOs to different cell models including HeLa pLuc705 and mdx mouse myotubes; a cell culture model of Duchenne’s muscular dystrophy (DMD). Non-covalent PF14-SCO nanocomplexes induce splice-correction at rates higher than the commercially available lipid-based vector Lipofectamine™ 2000 (LF2000) and remain active in the presence of serum. Furthermore, we demonstrate the feasibility of incorporating this delivery system into solid formulations that could be suitable for several therapeutic applications. Solid dispersion technique is utilized and the formed solid formulations are as active as the freshly prepared nanocomplexes in solution even when stored at an elevated temperatures for several weeks. In contrast, LF2000 drastically loses activity after being subjected to same procedure. This shows that using PF14 is a very promising translational approach for the delivery of SCOs in different pharmaceutical forms.


Molecular Therapy | 2011

A peptide-based vector for efficient gene transfer in vitro and in vivo.

Taavi Lehto; Oscar E. Simonson; Imre Mäger; Kariem Ezzat; Helena Sork; Dana-Maria Copolovici; Joana R. Viola; Eman M. Zaghloul; Per Lundin; Pedro M. D. Moreno; Maarja Mäe; Nikita Oskolkov; Julia Suhorutšenko; C. I. Edvard Smith; Samir El Andaloussi

Finding suitable nonviral delivery vehicles for nucleic acid-based therapeutics is a landmark goal in gene therapy. Cell-penetrating peptides (CPPs) are one class of delivery vectors that has been exploited for this purpose. However, since CPPs use endocytosis to enter cells, a large fraction of peptides remain trapped in endosomes. We have previously reported that stearylation of amphipathic CPPs, such as transportan 10 (TP10), dramatically increases transfection of oligonucleotides in vitro partially by promoting endosomal escape. Therefore, we aimed to evaluate whether stearyl-TP10 could be used for the delivery of plasmids as well. Our results demonstrate that stearyl-TP10 forms stable nanoparticles with plasmids that efficiently enter different cell-types in a ubiquitous manner, including primary cells, resulting in significantly higher gene expression levels than when using stearyl-Arg9 or unmodified CPPs. In fact, the transfection efficacy of stearyl-TP10 almost reached the levels of Lipofectamine 2000 (LF2000), however, without any of the observed lipofection-associated toxicities. Most importantly, stearyl-TP10/plasmid nanoparticles are nonimmunogenic, mediate efficient gene delivery in vivo, when administrated intramuscularly (i.m.) or intradermally (i.d.) without any associated toxicity in mice.Finding suitable nonviral delivery vehicles for nucleic acid-based therapeutics is a landmark goal in gene therapy. Cell-penetrating peptides (CPPs) are one class of delivery vectors that has been exploited for this purpose. However, since CPPs use endocytosis to enter cells, a large fraction of peptides remain trapped in endosomes. We have previously reported that stearylation of amphipathic CPPs, such as transportan 10 (TP10), dramatically increases transfection of oligonucleotides in vitro partially by promoting endosomal escape. Therefore, we aimed to evaluate whether stearyl-TP10 could be used for the delivery of plasmids as well. Our results demonstrate that stearyl-TP10 forms stable nanoparticles with plasmids that efficiently enter different cell-types in a ubiquitous manner, including primary cells, resulting in significantly higher gene expression levels than when using stearyl-Arg9 or unmodified CPPs. In fact, the transfection efficacy of stearyl-TP10 almost reached the levels of Lipofectamine 2000 (LF2000), however, without any of the observed lipofection-associated toxicities. Most importantly, stearyl-TP10/plasmid nanoparticles are nonimmunogenic, mediate efficient gene delivery in vivo, when administrated intramuscularly (i.m.) or intradermally (i.d.) without any associated toxicity in mice.


Colloids and Surfaces B: Biointerfaces | 2013

Chitosan–hyaluronic acid nanoparticles for gene silencing: The role of hyaluronic acid on the nanoparticles’ formation and activity

Sonia Al-Qadi; Manuel Alatorre-Meda; Eman M. Zaghloul; Pablo Taboada; Carmen Remuñán-López

Hyaluronic acid (HA) has been described as a biocompatibility enhancer for gene delivery systems; however, the mechanistic implications of its inclusion on the formation and activity of such systems and subsequent gene release are poorly understood. To better understand these issues, we describe herein the preparation and characterization of chitosan and chitosan-hyaluronic acid nanoparticles (CS and CS:HA NPs) for gene silencing. Different formulations were prepared by ionotropic gelation and evaluated for their physicochemical properties and biological activities in A549-Luc cells. Inclusion of HA to CS NPs resulted in a comparable silencing activity with Lipofectamine RNAiMAX (≈85% of luciferase knockdown) and significantly improved cell viability compared with CS NPs. As depicted by isothermal titration calorimetry, HA competed with siRNA for CS binding, lowering CS-siRNA binding strength by 25%. This suggests that besides improving cell biocompatibility of CS NPs, HA might also promote their gene release by loosening the CS-siRNA binding.


Journal of Controlled Release | 2012

Solid formulation of cell-penetrating peptide nanocomplexes with siRNA and their stability in simulated gastric conditions.

Kariem Ezzat; Eman M. Zaghloul; Samir El Andaloussi; Taavi Lehto; Ramy El-Sayed; Tarek Magdy; C. I. Edvard Smith; Ülo Langel

Abstract Cell-penetrating peptides (CPPs) are short cationic peptides that have been extensively studied as drug delivery vehicles for proteins, nucleic acids and nanoparticles. However, the formulation of CPP-based therapeutics into different pharmaceutical formulations and their stability in relevant biological environments have not been given the same attention. Here, we show that a newly developed CPP, PepFect 14 (PF14), forms non-covalent nanocomplexes with short interfering RNA (siRNA), which are able to elicit efficient RNA-interference (RNAi) response in different cell-lines. RNAi effect is obtained at low siRNA doses with a unique kinetic profile. Furthermore, the solid dispersion technique is utilized to formulate PF14/siRNA nanocomplexes into solid formulations that are as active as the freshly prepared nanocomplexes in solution. Importantly, the nanocomplexes are stable and active in mediating RNAi response after incubation with simulated gastric fluid (SGF) that is highly acidic. These results demonstrate the activity of PF14 in delivering and protecting siRNA in different pharmaceutical forms and biological environments.


Nucleic Acids Research | 2013

Development of bis-locked nucleic acid (bisLNA) oligonucleotides for efficient invasion of supercoiled duplex DNA

Pedro M. D. Moreno; Sylvain Geny; Y. Vladimir Pabon; Helen Bergquist; Eman M. Zaghloul; Cristina S.J. Rocha; Iulian I. Oprea; Burcu Bestas; Samir El Andaloussi; Per T. Jørgensen; Erik B. Pedersen; Karin E. Lundin; Rula Zain; Jesper Wengel; C. I. Edvard Smith

In spite of the many developments in synthetic oligonucleotide (ON) chemistry and design, invasion into double-stranded DNA (DSI) under physiological salt and pH conditions remains a challenge. In this work, we provide a new ON tool based on locked nucleic acids (LNAs), designed for strand invasion into duplex DNA (DSI). We thus report on the development of a clamp type of LNA ON—bisLNA—with capacity to bind and invade into supercoiled double-stranded DNA. The bisLNA links a triplex-forming, Hoogsteen-binding, targeting arm with a strand-invading Watson–Crick binding arm. Optimization was carried out by varying the number and location of LNA nucleotides and the length of the triplex-forming versus strand-invading arms. Single-strand regions in target duplex DNA were mapped using chemical probing. By combining design and increase in LNA content, it was possible to achieve a 100-fold increase in potency with 30% DSI at 450 nM using a bisLNA to plasmid ratio of only 21:1. Although this first conceptual report does not address the utility of bisLNA for the targeting of DNA in a chromosomal context, it shows bisLNA as a promising candidate for interfering also with cellular genes.


Nucleic Acids Research | 2011

Optimizing anti-gene oligonucleotide 'Zorro-LNA' for improved strand invasion into duplex DNA.

Eman M. Zaghloul; Andreas Stahl Madsen; Pedro M. D. Moreno; Iulian I. Oprea; Samir El-Andaloussi; Burcu Bestas; Pankaj Gupta; Erik B. Pedersen; Karin E. Lundin; Jesper Wengel; C. I. Edvard Smith

Zorro-LNA (Zorro) is a newly developed, oligonucleotide (ON)-based, Z-shaped construct with the potential of specific binding to each strand of duplex DNA. The first-generation Zorros are formed by two hybridized LNA/DNA mixmers (2-ON Zorros) and was hypothesized to strand invade. We have now established a method, which conclusively demonstrates that an LNA ON can strand invade into duplex DNA. To make Zorros smaller in size and easier to design, we synthesized 3′–5′–5′–3′ single-stranded Zorro-LNA (ssZorro) by using both 3′- and 5′-phosphoramidites. With ssZorro, a significantly greater extent and rate of double-strand invasion (DSI) was obtained than with conventional 2-ON Zorros. Introducing hydrophilic PEG-linkers connecting the two strands did not significantly change the rate or extent of DSI as compared to ssZorro with a nucleotide-based linker, while the longest alkyl-chain linker tested (36 carbons) resulted in a very slow DSI. The shortest alkyl-chain linker (3 carbons) did not reduce the extent of DSI of ssZorro, but significantly decreased the DSI rate. Collectively, ssZorro is smaller in size, easier to design and more efficient than conventional 2-ON Zorro in inducing DSI. Analysis of the chemical composition of the linker suggests that it could be of importance for future therapeutic considerations.


Genetica | 2009

Nanotechnology approaches for gene transfer

Karin E. Lundin; Oscar E. Simonson; Pedro M. D. Moreno; Eman M. Zaghloul; Iulian I. Oprea; Mathias G. Svahn; C. I. Edvard Smith

In both basic research as well as experimental gene therapy the need to transfer genetic material into a cell is of vital importance. The cellular compartment, which is the target for the genetic material, depends upon application. An siRNA that mediates silencing is preferably delivered to the cytosol while a transgene would need to end up in the nucleus for successful transcription to occur. Furthermore the ability to regulate gene expression has grown substantially since the discovery of RNA interference. In such diverse fields as medical research and agricultural pest control, the capability to alter the genetic output has been a useful tool for pushing the scientific frontiers. This review is focused on nanotechnological approaches to assemble optimised structures of nucleic acid derivatives to facilitate gene delivery as well as promoting down regulation of endogenous genes.


Nucleic Acids Research | 2016

Next-generation bis-locked nucleic acids with stacking linker and 2′-glycylamino-LNA show enhanced DNA invasion into supercoiled duplexes

Sylvain Geny; Pedro M. D. Moreno; Tomasz Krzywkowski; Olof Gissberg; Nicolai K. Andersen; Abdirisaq J. Isse; Amro M. El-Madani; Chenguang Lou; Y. Vladimir Pabon; Brooke A. Anderson; Eman M. Zaghloul; Rula Zain; Patrick J. Hrdlicka; Per T. Jørgensen; Mats Nilsson; Karin E. Lundin; Erik B. Pedersen; Jesper Wengel; C. I. Edvard Smith

Targeting and invading double-stranded DNA with synthetic oligonucleotides under physiological conditions remain a challenge. Bis-locked nucleic acids (bisLNAs) are clamp-forming oligonucleotides able to invade into supercoiled DNA via combined Hoogsteen and Watson–Crick binding. To improve the bisLNA design, we investigated its mechanism of binding. Our results suggest that bisLNAs bind via Hoogsteen-arm first, followed by Watson–Crick arm invasion, initiated at the tail. Based on this proposed hybridization mechanism, we designed next-generation bisLNAs with a novel linker able to stack to adjacent nucleobases, a new strategy previously not applied for any type of clamp-constructs. Although the Hoogsteen-arm limits the invasion, upon incorporation of the stacking linker, bisLNA invasion is significantly more efficient than for non-clamp, or nucleotide-linker containing LNA-constructs. Further improvements were obtained by substituting LNA with 2′-glycylamino-LNA, contributing a positive charge. For regular bisLNAs a 14-nt tail significantly enhances invasion. However, when two stacking linkers were incorporated, tail-less bisLNAs were able to efficiently invade. Finally, successful targeting of plasmids inside bacteria clearly demonstrates that strand invasion can take place in a biologically relevant context.


Nucleic Acid Therapeutics | 2015

Peptide Nanoparticle Delivery of Charge-Neutral Splice-Switching Morpholino Oligonucleotides

Peter Järver; Eman M. Zaghloul; Andrey A. Arzumanov; Amer F. Saleh; Graham McClorey; Suzan M. Hammond; Mattias Hällbrink; Ülo Langel; C. I. Edvard Smith; Matthew J.A. Wood; Michael J. Gait; Samir El Andaloussi

Oligonucleotide analogs have provided novel therapeutics targeting various disorders. However, their poor cellular uptake remains a major obstacle for their clinical development. Negatively charged oligonucleotides, such as 2′-O-Methyl RNA and locked nucleic acids have in recent years been delivered successfully into cells through complex formation with cationic polymers, peptides, liposomes, or similar nanoparticle delivery systems. However, due to the lack of electrostatic interactions, this promising delivery method has been unsuccessful to date using charge-neutral oligonucleotide analogs. We show here that lipid-functionalized cell-penetrating peptides can be efficiently exploited for cellular transfection of the charge-neutral oligonucleotide analog phosphorodiamidate morpholino. The lipopeptides form complexes with splice-switching phosphorodiamidate morpholino oligonucleotide and can be delivered into clinically relevant cell lines that are otherwise difficult to transfect while retaining biological activity. To our knowledge, this is the first study to show delivery through complex formation of biologically active charge-neutral oligonucleotides by cationic peptides.

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Karin E. Lundin

Karolinska University Hospital

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Pedro M. D. Moreno

Karolinska University Hospital

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Kariem Ezzat

Karolinska University Hospital

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Rula Zain

Karolinska University Hospital

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Jesper Wengel

University of Southern Denmark

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Iulian I. Oprea

Karolinska University Hospital

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Joana R. Viola

Karolinska University Hospital

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Olof Gissberg

Karolinska University Hospital

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