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Biomedical subjects

John Hess

Publications and source records attributed to John Hess.

60 records · Page 4Linked to original sources

Pulmonary arterial wall distensibility assessed by intravascular ultrasound in children with congenital heart disease: an indicator for pulmonary vascular disease?

BACKGROUND: Both pulmonary hypertension and pulmonary overflow are associated with functional and structural changes of the pulmonary arterial wall. Current techniques to evaluate the pulmonary vasculature neglect the pulsatile nature of pulmonary flow. STUDY OBJECTIVES: To determine whether the dynamic properties of the pulmonary arterial wall are altered in patients with abnormal pulmonary hemodynamics due to congenital heart defects, and whether these changes are associated with the progression of pulmonary vascular disease (PVD). PATIENTS AND METHODS: In 43 children with PVD due to congenital heart defects and 12 control subjects, pulmonary arterial pulsatility (the relative increase in vessel area during the cardiac cycle) and distensibility (the inverse of the stress/strain elastic modulus) were determined with intravascular ultrasound. Results were correlated with clinical and hemodynamic parameters. RESULTS: Pulsatility correlated with pulmonary pulse pressure (p < 0.001), pulmonary-to-systemic vascular resistance ratio (PVR/SVR) [p = 0.001], and hemoglobin concentration (p = 0.01). However, when corrected for these variables, pulsatility did not differ between patients and control subjects. In contrast, arterial wall distensibility decreased with the severity of PVD and correlated independently with pulmonary-to-systemic arterial pressure ratio (p < 0.001) and PVR/SVR (p = 0.03), and with hemoglobin concentration (p < 0.01). Adjusted for hemodynamic variables, distensibility was still decreased in patients with PVD compared to control subjects. CONCLUSIONS: These results demonstrate that pulmonary arterial wall distensibility is progressively decreased in PVD; moreover, this decreased distensibility is, in part, related to increased distending pressure as a result of pulmonary hypertension but also, in part, to stiffening of the arterial wall during the disease process. Arterial wall distensibility may be of additional value in the evaluation of pulmonary vasculature and ventricular workload.

Adolescent↗

Unexpected variation in unique features of the lens-specific type I cytokeratin CP49.

PURPOSE: CP49 is a fiber cell-specific type I cytokeratin, but its function as part of the fiber cell-beaded filament remains unknown. To provide a rational basis for mutational studies that would contribute to an elucidation of function, the study was designed to define elements of CP49s that are highly conserved, discriminate conserved features from species-specific variations, and identify where CP49s have diverged from consensus type I features in their adaptation to selective pressures in the lens. METHODS: The primary sequence and gene structure of CP49 from a third vertebrate order was determined from a combination of cDNA and genomic sequencing. Protein product was characterized by SDS-PAGE and Western blot analysis. Consensus features and phylogenetic relationships were identified by multiple alignment. Coiled-coil analysis was conducted to define central rod domains. RESULTS: Trout CP49 is unique among CP49s in having a 39-amino-acid tail domain and shows both unique sequence and allelic variation at the LNDR motif. Comparison of consensus sequences identified unprecedented divergence between CP49s and other type I cytokeratins, including a shortened central rod domain that is conserved among CP49s, but distinct from type I cytokeratins. CONCLUSIONS: The considerable differences that have emerged between the consensus features of the type I cytokeratins and the CP49s suggest that the beaded filament serves a significantly different function from intermediate filaments in other epithelia and that type I cytokeratins may have limited utility as a model for studies on lens beaded filaments. These differences, in concert with consensus features identified among CP49s, suggest sites that are probably critical to CP49 function in the lens fiber cell.

Amino Acid Sequence↗

Targeted genomic deletion of the lens-specific intermediate filament protein CP49.

PURPOSE: To deduce the function of the lens-specific cytoskeletal structure, the beaded filament, by blocking expression of the fiber cell-specific beaded filament protein CP49. METHODS: The first exon of the mouse CP49 gene was deleted by using targeted genomic deletion techniques. Gene deletion was assessed through Southern blot analysis and PCR. Translation and protein expression were characterized by Northern and Western blot analysis of both CP49 and its assembly partner filensin. The architecture of knockout lenses was compared with that of wild-type lenses at the histologic level by light microscopy. Lens clarity was assessed in situ by direct ophthalmic examination and slit lamp microscopy. RESULTS: Transcription and translation of CP49 were successfully negated in knockout animals. Lenses homozygous for the CP49 deletion showed no obvious changes in lens architecture at the light microscope level. Filensin levels were sharply reduced, although filensin mRNA levels appeared unchanged. Direct examination of lenses showed no obvious loss of lens clarity, but slit lamp examination revealed the emergence of opacification in even the youngest animals. The opacification worsened with age. CONCLUSIONS: The absence of CP49 causes a subtle loss of optical clarity in the ocular lens, a loss that worsens with age. However, CP49 is not essential for the assumption or maintenance of overall fiber cell shape or long-range order of fiber cells. CP49 appears to regulate the protein levels of its assembly partner filensin, suggesting a mechanism for the regulation of beaded filament protein stoichiometry.

Aging↗

Pediatric Transesophageal Echocardiography by Means of a Miniature 5-MHz Multiplane Transducer.

The development of a miniature multiplane transesophageal echocardiographic (TEE) transducer for pediatric use is the latest development in TEE. Horizontal, longitudinal, and all possible intermediate oblique planes can be obtained with minimal transducer manipulation. We studied 48 patients with an experimental 5-MHz transducer, which contains 48 transmitting elements. The dimensions of the tip are 27 x 10.6 x 7.9 mm. Patients ages ranged from 2 days to 16 years, their weights from 3.6-67 kg. Multiplane TEE proved to be complementary to the single horizontal plane in assessing the right ventricular outflow tract, the left ventricular outflow tract, ascending aorta, the atrial septum, the atrioventricular (AV) valves, especially in AV septal defects, and double inlet left ventricle (DILV). Moreover, multiplane TEE was extremely helpful in judging the outflow tracts and ventricular septal defects in more complex heart defects such as DILV, double outlet right ventricle, and hearts with discordant connections. Multiplane TEE offered superb monitoring of cardiac interventions. We conclude that multiplane TEE provides new imaging planes and enables visualization of every major structure of the heart by unlimited scan planes. Multiplane TEE is indispensable in congenital heart defects. Thus, multiplane TEE adds to diagnostic assurance and enhances decision making for surgery. (ECHOCARDIOGRAPHY, Volume 13, November 1996)

Journal Article↗

NOX2 and NOX4 mediate proliferative response in endothelial cells.

Increased levels of reactive oxygen species (ROS) contribute to many cardiovascular diseases. In neutrophils, ROS are generated by a NADPH oxidase containing p22phox and NOX2. NADPH oxidases are also major sources of vascular ROS. Whereas an active NOX2-containing enzyme has been described in endothelial cells, the contribution of recently identified NOX homologues to endothelial ROS production and proliferation has been controversial. The authors, therefore, compared the role of NOX2 with NOX4 and NOX1 in endothelial EaHy926 and human microvascular endothelial cells. NOX2 and NOX4 were abundantly expressed, whereas NOX1 expression was less prominent. NOX2, NOX4, and NOX1 were simultaneously present in a single cell in a perinuclear compartment. NOX2 and NOX4 co-localized with the endoplasmic reticulum (ER) marker calreticulin. Additionally, NOX2 co-localized with F-actin at the plasma membrane. NOX2 and NOX4, which interacted with p22phox, as was shown by bimolecular fluorescent complementation, contributed equally to endothelial ROS production and proliferation, whereas NOX1 depletion did not alter ROS levels under basal conditions. These data show that endothelial cells simultaneously express NOX2, NOX4, and NOX1. NOX2 and NOX4, but not NOX1, equally contributed to ROS generation and proliferation under basal conditions, indicating that a complex relation between NOX homologues controls endothelial function.

Actins↗

Redox-sensitive regulation of the HIF pathway under non-hypoxic conditions in pulmonary artery smooth muscle cells.

Pulmonary hypertension and vascular remodeling processes are associated with oxidative stress, hypoxia and enhanced levels of thrombin and vascular endothelial growth factor (VEGF). The hypoxia-inducible transcription factor HIF regulates the expression of VEGF under hypoxia. The HIF pathway is also activated by thrombin or CoCl2, likely via reactive oxygen species (ROS). In this study we investigated whether the redox-modifying enzymes superoxide dismutase (SOD), glutathione peroxidase (GPX) and catalase affect HIF levels and the expression of VEGF mRNA in pulmonary artery smooth muscle cells (PASMC). Stimulation of PASMC with thrombin or CoCl2 increased ROS production and enhanced HIF-alpha protein and VEGF mRNA levels as well as HIF-dependent reporter gene activity. These responses were inhibited by vitamin C and by overexpression of GPX and catalase, whereas the opposite effects were observed in SOD-expressing cells. These findings suggest that an 'antioxidant' state with reduced levels of H2O2 limits the activation of the HIF pathway, whereas a 'prooxidant' state allowing elevated H2O2 levels promotes it. Thus, shifting the redox balance to a more reduced environment, thereby limiting VEGF expression, may be beneficial for treating remodeling processes during pulmonary hypertension.

Animals↗