Angiogenic gene therapy for stable angina is aimed at promoting new blood vessel formation in the heart, thus providing enhanced cardiac perfusion, symptom relief, increased exercise capacity, improved quality of life, and reduced risk of coronary events. Ad5FGF-4 is a replication-deficient serotype 5 adenovirus encoding the gene for fibroblast growth factor-4 (FGF-4) driven by a cytomegalovirus promoter. In preclinical studies using a pig model of myocardial ischemia, a single intracoronary infusion of Ad5FGF-4 improved cardiac contractile function and regional blood flow in the ischemic region during stress. These effects were apparent after 2 weeks and maintained for > or =12 weeks. Histologic evidence of capillary angiogenesis was observed. FGF-4 gene expression was detected in the heart but not at extracardiac sites. Placebo-controlled trials in humans with chronic stable angina indicate that Ad5FGF-4 increases treadmill exercise duration and improves stress-related ischemia measured by perfusion sestamibi single-photon emission computed tomography. More patients receiving Ad5FGF-4 than placebo reported complete resolution of their angina and no nitroglycerin use. Ad5FGF-4 gene therapy was well tolerated. The administration procedure did not cause any adverse events, although mild, transient fever, a transient modest fall in platelet count, and a transient mild elevation in hepatic enzymes and uric acid levels occurred in a few patients. This adverse event profile concurs with other adenoviral gene trials. There was no evidence of myocarditis, retinal neovascularization, or angioma formation. FGF-4 was not detected in venous blood. Larger clinical trials will assess Ad5FGF-4 with regard to cardiovascular prognosis, symptom relief, and safety profile in patients with chronic stable angina.
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http://dx.doi.org/10.1016/s0002-9149(03)00965-2 | DOI Listing |
Sci Rep
December 2024
Laboratory of Cell Vaccine, Microbial Research Center for Health and Medicine (MRCHM), National Institutes of Biomedical Innovation, Health and Nutrition (NIBIOHN), 7-6-8 Saito-Asagi, Ibaraki-Shi, Osaka, 567-0085, Japan.
Since designer cells are attracting much attention as a new modality in gene and cell therapy, it would be advantageous to develop synthetic receptors that recognize artificial ligands and activate solely signaling molecules of interest. In this study, we refined the construction of our previously developed minimal engineered receptors (MERs) to avoid off-target activation of STAT5 while maintaining on-target activation of signaling molecules corresponding to tyrosine motifs. Among the myristoylated, cytoplasmic, and transmembrane types of MERs, the cytoplasmic type had the highest signaling efficiency, although there was off-target activation of STAT5 upon ligand stimulation.
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December 2024
Department of Pharmacology and Toxicology, College of Pharmacy, King Saud University, Riyadh, Saudi Arabia.
The Epstein-Barr virus (EBV) is widespread and has been related to a variety of malignancies as well as infectious mononucleosis. Despite the lack of a vaccination, antiviral medications offer some therapy alternatives. The EBV BZLF1 gene significantly impacts viral replication and infection severity.
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December 2024
Laboratory Medicine, First Affiliated Hospital of Gannan Medical University, Ganzhou, 341000, China.
Warfarin is the most widely used oral anticoagulant in clinical practice. The cytochrome P450 2C9 (CYP2C9), vitamin K epoxide reductase complex 1 (VKORC1), and cytochrome P450 4F2 (CYP4F2) genotypes are associated with warfarin dose requirements in China. Accurate genotyping is vital for obtaining reliable genotype-guided warfarin dosing information.
View Article and Find Full Text PDFTheranostic drugs represent an emerging path to deliver on the promise of precision medicine. However, bottlenecks remain in characterizing theranostic targets, identifying theranostic lead compounds, and tailoring theranostic drugs. To overcome these bottlenecks, we present the Theranostic Genome, the part of the human genome whose expression can be utilized to combine therapeutic and diagnostic applications.
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December 2024
The Solomon H. Snyder Department of Neuroscience, Johns Hopkins University School of Medicine, Baltimore, MD, 21205, USA.
Deafness is the most common form of sensory impairment in humans and frequently caused by defects in hair cells of the inner ear. Here we demonstrate that in male mice which model recessive non-syndromic deafness (DFNB6), inactivation of Tmie in hair cells disrupts gene expression in the neurons that innervate them. This includes genes regulating axonal pathfinding and synaptogenesis, two processes that are disrupted in the inner ear of the mutant mice.
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