PubMed Health⌕ Search

PubMed · 4027539

Pilonidal sinus excision--healing by open granulation.

Abstract

A prospective study is reported of 100 pilonidal sinus excisions healing by open granulation. Delays in healing appeared to be due to infection, particularly by anaerobic bacteria. Comparisons are made between three groups studied consecutively - 30 wounds not treated with antibiotics, 20 given a fixed two-week course of metronidazole and 50 managed flexibly. In this last group, wound management was determined by clinical appearance; 24 wounds were clinically healthy throughout and received no antibiotic while 26 looked unhealthy initially or after an interval and were treated with metronidazole, supplemented in some cases with erythromycin. The best results were obtained in the group managed flexibly. It is considered that the problems of delayed healing are due to excisions which leave a wound of a shape ill-designed to maintain good drainage. Unhealthy wounds should be re-shaped if possible and treated early with a combination of metronidazole and erythromycin.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

J Marks, K G Harding, L E Hughes, C D Ribeiro. 1985. Pilonidal sinus excision--healing by open granulation.. https://doi.org/10.1002/bjs.1800720818

Cite the original work for its findings. Save a collection to share your selection of sources.

KEEP EXPLORING

Related citations

Purification of bioethanol effluent in an UASB reactor system with simultaneous biogas formation.

In this study, the prospect of using an Upflow Anaerobic Sludge Blanket (UASB) reactor for detoxification of process water derived from bioethanol production has been investigated. The bioethanol effluent (BEE) originated from wet oxidized wheat straw fermented by Saccharomyces cerevisiae and Thermoanaerobacter mathranii A3M4 to produce ethanol from glucose and xylose, respectively. In batch experiments the methane potential of BEE was determined to 529 mL-CH(4)/g-VS. In batch degradation experiments it was shown that the presence of BEE had a positive influence on the removal of the inhibitors 2-furoic acid, 4-hydroxyacetophenone, and acetovanillone as compared to conversion of the inhibitors as sole substrate in synthetic media. Furthermore, experiments were carried out treating BEE in a laboratory-scale UASB reactor. The results showed a Chemical Oxygen Demand (COD) removal of 80% (w/w) at an organic loading rate of 29 g-COD/(L. d). GC analysis of the lignocellulosic related potentially inhibitory compounds 2-furoic acid, vanillic acid, homovanillic acid, acetovanillone, syringic acid, acetosyringone, syringol, 4-hydroxybenzoic acid, and 4-hydroxybenzaldehyde showed that all of these compounds were removed from the BEE in the reactor. Implementation of a UASB purification step was found to be a promising approach to detoxify process water from bioethanol production allowing for recirculation of the process water and reduced production costs.

Bacteria, Anaerobic↗

Preliminary X-ray characterization and phasing of a type II cohesin domain from the cellulosome of Acetivibrio cellulolyticus.

The N-terminal type II cohesin from the cellulosomal ScaB subunit of Acetivibrio cellulolyticus was crystallized in two different crystal systems: orthorhombic (space group P2(1)2(1)2(1)), with unit-cell parameters a = 37.455, b = 55.780, c = 87.912 A, and trigonal (space group P3(1)21), with unit-cell parameters a = 55.088, b = 55.088, c = 112.553 A. The two crystals diffracted to 1.2 and 1.9 A, respectively. A selenomethionine derivative was also crystallized and exhibited trigonal symmetry (space group P3(1)21), with unit-cell parameters a = 55.281, b = 55.281, c = 112.449 A and a diffraction limit of 1.97 A. Initial phasing of the trigonal crystals was successfully performed by the SIRAS method using Cu Kalpha radiation with the selenomethionine derivative as a heavy-atom derivative. The structure of the orthorhombic crystal form was solved by molecular replacement using the coordinates of the trigonal form.

Bacteria, Anaerobic↗

Detoxification of vinyl chloride to ethene coupled to growth of an anaerobic bacterium.

Tetrachloroethene (PCE) and trichloroethene (TCE) are ideal solvents for numerous applications, and their widespread use makes them prominent groundwater pollutants. Even more troubling, natural biotic and abiotic processes acting on these solvents lead to the accumulation of toxic intermediates (such as dichloroethenes) and carcinogenic intermediates (such as vinyl chloride). Vinyl chloride was found in at least 496 of the 1,430 National Priorities List sites identified by the US Environmental Protection Agency, and its precursors PCE and TCE are present in at least 771 and 852 of these sites, respectively. Here we describe an unusual, strictly anaerobic bacterium that destroys dichloroethenes and vinyl chloride as part of its energy metabolism, generating environmentally benign products (biomass, ethene and inorganic chloride). This organism might be useful for cleaning contaminated subsurface environments and restoring drinking-water reservoirs.

Bacteria, Anaerobic↗