Cardiac Delivery of Nucleic Acids by Transcriptional and Transductional Targeting of Adeno-Associated Viral Vectors

Author(s):  
O. J. Müller ◽  
H. A. Katus
Keyword(s):  
Author(s):  
P. V. KAMALA KUMARI ◽  
G. EKSHITHA, V. HARIKA

Therapeutic nucleic acids demand specificity and accuracy in design as well as delivery strategies used in replacement or silencing of the target gene. Gene therapy is believed to be the therapy in which the root cause of the diseases can be treated at the molecular level. Generally gene therapy helps in the identification of the origin of the disorder instead of using drugs to diminish or control the symptoms. The application of nucleic acids to treat and control diseases is known as “gene therapy.” Gene therapy consists on the substitution or addition of a functional gene into the nucleus of a living cell, in order to treat a disease or repair a dysfunction, caused by this gene failure. This therapy is used to correct defective genes, which are responsible for genetic diseases. Thus, gene therapy can be used to prevent, treat or regulate hereditary or acquired disorders, by the production of therapeutic proteins. The gene therapy is mediated by the use of viral and non-viral vectors to transport foreign genes into somatic cells to restorative defective genes. This review focuses on viral vectors in detail.


Coronaviruses ◽  
2021 ◽  
Vol 02 ◽  
Author(s):  
Ayushi Mahajan ◽  
Lakhvir Kaur ◽  
Gurjeet Singh ◽  
RK Dhawan ◽  
Lovepreet Singh ◽  
...  

: The year 2020 was the most challenging period for all due to the havoc caused by the outbreak of novel coronavirus SARS-CoV-2. Scientists and researchers all around the world have endeavored every possible approach to find solutions in context to therapeutics and vaccines to control the spread of this life-threatening virus. The acceleration instigated by the outbreak of SARS-CoV-2 and its mutated strains has leveraged the use of numerous platform technologies for the development of vaccines against this unfathomable disease. Vaccines could play an important role in mitigating the effects of COVID-19 and reducing the ongoing health crisis. Various innovative platforms like proteins, nucleic acids, viruses, and viral vectors have been exploited to fabricate vaccines depicting almost 90% of efficacy like BNT162b2, AZD1222, Ad5-nCoV, etc. Some of these vaccines are multipotent and have shown potent activity against newly emerged malicious strains of SARS-CoV-2 like B.1.351andB.1.1.7. In this review article, we have gathered key findings from various sources of recently popularized vaccine candidates which will provide an overview of potential vaccine candidates against this virus and will help the researchers to investigate possible ways to annihilate this menace and design new moieties.


Author(s):  
R. Gómez ◽  
F. J. de la Mata ◽  
J. L. Jiménez-Fuentes ◽  
P. Ortega ◽  
B. Klajnert ◽  
...  

RSC Advances ◽  
2016 ◽  
Vol 6 (81) ◽  
pp. 77841-77848 ◽  
Author(s):  
Rakeshchandra R. Meka ◽  
Sudhakar Godeshala ◽  
Srujan Marepally ◽  
Ketan Thorat ◽  
Hari Krishna Reddy Rachamalla ◽  
...  

Cationic lipids have been extensively studied for their ability to complex with nucleic acids to condense and consequently deliver them into the cells.


2010 ◽  
Vol 385 (1-2) ◽  
pp. 194-202 ◽  
Author(s):  
Soma Patnaik ◽  
Mohammed Arif ◽  
Atul Pathak ◽  
Naresh Singh ◽  
K.C. Gupta
Keyword(s):  

2021 ◽  
Vol 21 ◽  
Author(s):  
Fernando A. de Oliveira ◽  
Lindomar J. C. Albuquerque ◽  
Gwendoline Delecourt ◽  
Véronique Bennevault ◽  
Philippe Guégan ◽  
...  

Background: Gene delivery is a promising technology for treating diseases linked to abnormal gene expression. Since nucleic acids are the therapeutic entities in such approach, a transfecting vector is required because the macromolecules are not able to efficiently enter the cells by themselves. Viral vectors have been evidenced to be highly effective in this context; however, they suffer from fundamental drawbacks, such as the ability to stimulate immune responses. The development of synthetic vectors has accordingly emerged as an alternative. Objectives: Gene delivery by using non-viral vectors is a multi-step process that poses many challenges, either regarding the extracellular or intracellular media. We explore the delivery pathway and afterwards, we review the main classes of non-viral gene delivery vectors. We further focus on the progresses concerning polyethylenimine-based polymer-nucleic acid polyplexes, which have emerged as one of the most efficient systems for delivering genetic material inside the cells. Discussion: The complexity of the whole transfection pathway, along with a lack of fundamental understanding, particularly regarding the intracellular trafficking of nucleic acids complexed to non-viral vectors, probably justifies the current (beginning of 2021) limited number of formulations that have progressed to clinical trials. Truly, successful medical developments still require a lot of basic research. Conclusion: Advances in macromolecular chemistry and high-resolution imaging techniques will be useful to understand fundamental aspects towards further optimizations and future applications. More investigations concerning the dynamics, thermodynamics and structural parameters of polyplexes would be valuable since they can be connected to the different levels of transfection efficiency hitherto evidenced.


Author(s):  
Evan E. Ellison ◽  
◽  
James C. Chamness ◽  
Daniel F. Voytas ◽  
◽  
...  

A significant challenge for plant gene editing is the delivery of editing reagents to germline or regenerable cells to recover heritable genetic modifications. Reagent delivery using biolistics or Agrobacterium is only possible with a limited range of species and genotypes, and inefficient editing or lengthy tissue culture steps further limit throughput. Viruses are natural vectors for nucleic acids, and both DNA and RNA plant viruses have been engineered to extend or replace conventional vectors for delivery of gene editing reagents. Here, we review aspects of viral biology essential for engineering vectors, highlight landmark studies using viruses to overcome traditional limitations in gene editing, and outline important considerations for the use of viral vectors in new systems or for new targets. Motivated by fundamental differences in both their infection modes and utility as vectors, DNA and RNA viruses are treated separately.


2015 ◽  
Vol 51 (3) ◽  
pp. 469-472 ◽  
Author(s):  
Delin Pan ◽  
Jing Sun ◽  
Hongwei Jin ◽  
Yating Li ◽  
Liyu Li ◽  
...  

A novel class of aminonucleoside phospholipids has been developed for potential use as non-viral vectors for gene delivery.


2021 ◽  
Vol 13 (580) ◽  
pp. eabd3438
Author(s):  
Ying Kai Chan ◽  
Sean K. Wang ◽  
Colin J. Chu ◽  
David A. Copland ◽  
Alexander J. Letizia ◽  
...  

Nucleic acids are used in many therapeutic modalities, including gene therapy, but their ability to trigger host immune responses in vivo can lead to decreased safety and efficacy. In the case of adeno-associated viral (AAV) vectors, studies have shown that the genome of the vector activates Toll-like receptor 9 (TLR9), a pattern recognition receptor that senses foreign DNA. Here, we engineered AAV vectors to be intrinsically less immunogenic by incorporating short DNA oligonucleotides that antagonize TLR9 activation directly into the vector genome. The engineered vectors elicited markedly reduced innate immune and T cell responses and enhanced gene expression in clinically relevant mouse and pig models across different tissues, including liver, muscle, and retina. Subretinal administration of higher-dose AAV in pigs resulted in photoreceptor pathology with microglia and T cell infiltration. These adverse findings were avoided in the contralateral eyes of the same animals that were injected with the engineered vectors. However, intravitreal injection of higher-dose AAV in macaques, a more immunogenic route of administration, showed that the engineered vector delayed but did not prevent clinical uveitis, suggesting that other immune factors in addition to TLR9 may contribute to intraocular inflammation in this model. Our results demonstrate that linking specific immunomodulatory noncoding sequences to much longer therapeutic nucleic acids can “cloak” the vector from inducing unwanted immune responses in multiple, but not all, models. This “coupled immunomodulation” strategy may widen the therapeutic window for AAV therapies as well as other DNA-based gene transfer methods.


Author(s):  
Norman Davidson

The basic protein film technique for mounting nucleic acids for electron microscopy has proven to be a general and powerful tool for the working molecular biologist in characterizing different nucleic acids. It i s possible to measure molecular lengths of duplex and single-stranded DNAs and RNAs. In particular, it is thus possible to as certain whether or not the nucleic acids extracted from a particular source are or are not homogeneous in length. The topological properties of the polynucleotide chain (linear or circular, relaxed or supercoiled circles, interlocked circles, etc. ) can also be as certained.


Sign in / Sign up

Export Citation Format

Share Document