PubMed Health⌕ Search

Biomedical subjects

Joseph Shrager

Publications and source records attributed to Joseph Shrager.

2 recordsLinked to original sources

Bioenergetic adaptation of individual human diaphragmatic myofibers to severe COPD.

To assess the effect of severe chronic obstructive pulmonary disease (COPD) on the ability of human diaphragmatic myofibers to aerobically generate ATP relative to ATP utilization, we obtained biopsy specimens of the costal diaphragm from seven patients with severe COPD (mean +/- SE; age 56 +/- 1 yr; forced expiratory volume in 1 s 23 +/- 2% predicted; residual volume 267 +/- 30% predicted) and seven age-matched control subjects. We categorized all fibers in these biopsies by using standard techniques, and we carried out the following quantitative histochemical measurements by microdensitometry: 1) succinate dehydrogenase (SDH) activity as an indicator of mitochondrial oxidative capacity and 2) calcium-activated myosin ATPase (mATPase) activity, the ATPase that represents a major portion of ATP consumption by contracting muscle. We noted the following: 1) COPD diaphragms had a larger proportion of type I fibers, a lesser proportion of type IIax fibers, and the same proportion of type IIa fibers as controls. 2) SDH activities of each of the fiber types were higher in COPD than control diaphragms (P < 0.0001); the mean increases (expressed as percent of control values) in types I, IIa, and IIax were 84, 114, and 130%, respectively. 3) COPD elicited no change in mATPase activity of type I and IIa fibers, but mATPase decreased in type IIax fibers (P = 0.02). 4) Mitochondrial oxidative capacity relative to ATP demand (i.e., SDH/mATPase) was higher (P = 0.03) in each of the fiber types in COPD diaphragms than in controls. These results demonstrate that severe COPD elicits an increase in aerobic ATP generating capacity relative to ATP utilization in all diaphragmatic fiber types as well as the previously described fast-to-slow fiber type transformation (Levine S, Kaiser L, Leferovich J, and Tikunov B, N Engl J Med 337: 1799-1806, 1997).

Adaptation, Physiological↗

Validating a dipstick method for detecting recent smoking.

This report evaluates the validity of a new method for verifying self-reported smoking status in patients presenting for pulmonary medicine treatment. A prospective comparison was made between self-reports of smoking status and a new semiquantitative, enzyme-linked, immunosorbent assay-based method testing for the presence of a prime nicotine metabolite, cotinine. Results were validated by gas chromatography/mass spectrometry. Data were collected in an urban, academic, tertiary health care setting. The study included 76 consecutive new patients presenting to participating clinical practices at the Pulmonology or Thoracic Surgery Services. Before taking a smoking history, patients were informed that their urine would be tested onsite for the presence of nicotine using a new method, the NicoMeter, for determining tobacco product exposure, followed by more standard laboratory testing. The level of agreement between the biochemical measurement types was excellent, kappa = 0.777. The new biochemical measurement type used was easy to use. Self-reported smoking status corresponded closely to biochemical testing. However, there was a 5.3-9.5% misclassification of smoking status among the group studied, depending upon the measurement type used. Among 32 lung cancer patients, 15.6%, most likely misrepresented their current smoking status. The NicoMeter appears to be a valid and useful method for confirming self-reported smoking status. Lung cancer patients had a higher rate of inaccurate nonsmoking compared with patients with nonmalignant pulmonary disease. The findings have implications for investigators who accept self-reported smoking status without biochemical verification.

Aged↗