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Biomedical subjects

C Patow

Publications and source records attributed to C Patow.

5 recordsLinked to original sources

The effects of excessive vocalization on acoustic and videostroboscopic measures of vocal fold condition.

Although dysphonia is a recognized consequence of acute vocal abuse, associated changes in vocal fold appearance and function are not well understood. To document these presumed effects of vocal abuse, audio recordings of sustained vowel production were obtained from 42 drill sergeants daily during the first 6 days of a vocally demanding training exercise. Acoustic analysis showed abnormal levels of jitter and shimmer on Day 1 in 16 of the 42 subjects. Considering only the 26 subjects who showed normal voice acoustics on Day 1, the median levels of jitter and shimmer varied little over the course of training, and significant increases in jitter and shimmer were not seen during the study period. However, the distributions for both jitter and shimmer became more positively skewed and showed a greater number of positive outliers over the course of training. This trend was attributed to 11 subjects who showed two or more instances of abnormal voice acoustics over Days 2 through 6. Laryngeal videostroboscopic recordings of sustained vowel production also were obtained prior to and following training. Perceptual ratings of these recordings by 2 observers revealed significant increases in vocal fold edema, erythema, and edge irregularity, and decreases in vocal fold mucosal wave and amplitude of excursion following the 5-day training period. In general, there was considerable intersubject variability in the extent of acoustic and videostroboscopic effects over the course of training. Of the two types of data, videostroboscopy appears to provide a more sensitive indication of the effects of excessive vocalization.

Adult↗

Money, mission, and medicine: an innovative managed care partnership between the community health centers of Maryland and Johns Hopkins University.

Across the nation, states are placing their faith in managed care as the solution to the rising health care costs associated with the Medicaid program. Historical providers of care to the vulnerable and uninsured are competing in this new price-sensitive market while struggling to remain faithful to their missions. In Maryland, a unique partnership between an academic health center (Johns Hopkins HealthCare) and a coalition of community health centers has emerged as a model that promises to preserve the financial and philosophical goals of historical providers.

Academic Medical Centers↗

Human respiratory mucus.

Respiratory mucous glycoproteins may serve a number of protective functions for the airways; however, excessive secretions contribute to the morbidity of a variety of diseases including asthma, chronic bronchitis, and cystic fibrosis. Respiratory secretions are a mixture of cells, fluid, transudated and locally produced proteins, and mucous glycoproteins. The mucous glycoproteins give these secretions their characteristic viscosity and elasticity. While the physiologic control of mucous glycoprotein secretion is not completely understood, cholinergic, alpha-adrenergic, and beta-adrenergic stimuli may all contribute. Respiratory mucus hypersecretion seen in immediate hypersensitivity or inflammatory states may be due to reflex hypersecretion, to a variety of mediators (including histamine and cyclooxygenase or lipoxygenase pathway metabolites of arachidonic acid), or to substances released from phagocytic cells (such as macrophages, monocytes, or neutrophils). The limited number of specific approaches currently available for treating respiratory mucus hypersecretion include therapy of any underlying or intercurrent disease, improving clearance of secretions, and reducing mucus secretion with the use of glucocorticosteroids or anticholinergic drugs.

Animals↗

Response of nasal blood flow to neurohormones as measured by laser-Doppler velocimetry.

Laser-Doppler velocimetry (LDV) has been adapted to measure nasal blood flow (NBF) in the mucosa of human volunteers. Resting NBF was 42.4 +/- 2.1 ml X 100 g-1 X min-1 in 19 nonatopic subjects and 37.9 +/- 1.7 ml X 100 g-1 X min-1 in 24 atopic subjects. Topical saline, but not water, reduced ipsilateral NBF by 15.4 +/- 6.6% (n = 22) without affecting contralateral NBF. Administration of 60 microgram of oxymetazoline reduced NBF by 26.5% (n = 28), whereas 120 microgram resulted in a 54.3% reduction. Phenylephrine produced a dose-related reduction in NBF with an ID50 (dose producing 50% reduction) of 1,456 microgram. Methacholine (0.006 to 12 mg) had no significant effect on NBF when studied alone or after oxymetazoline pretreatment. Therefore, LDV can be employed to monitor NBF, which has been found to be sensitive to alpha-adrenergic, but not cholinergic, stimulation.

Adolescent↗