PubMed Health⌕ Search

PubMed · 10139739

Hepatitis: protecting BMETs & CEs.

Abstract

Hepatitis is the primary occupational hazard for healthcare workers. Not until the 1970s were hepatitis viruses isolated and identified as types A and B. In the late 1970s, hepatitis D was discovered as a major cause of fulminant hepatitis. Soon, it was evident that another type was also at work. Because testing was only available for types A and B, the new category was referred to as non-A, non-B. In the 1980s, scientists identified two more viruses from this non-A, non-B group, namely hepatitis E and hepatitis C. These five types of hepatitis have different modes of transmission. The fecal-to-oral route is the mode of transmission for hepatitis types A and E. But, types B and D are bloodborne pathogens. With the advent of a safe vaccine for hepatitis B, this category is declining. To date, hepatitis C appears to have multiple routes of transmission, with half the cases being posttransfusion. In the United States, 85,000 people per year develop chronic hepatitis C, which ultimately leads to severe liver damage. This paper addresses each of the five viruses that have been grouped by routes of transmission, prevention techniques for BMETs and CEs, and statistics of reported cases to the Centers for Disease Control and Prevention (CDCP) over the last 20 years.

Explore related subjects

Keep this discovery

Explore connections, maps & timelines

BibTeXRIS

S A Baker. Hepatitis: protecting BMETs & CEs.. https://doi.org/10.1097/00004669-199411000-00013

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

KEEP EXPLORING

Related citations

Design, construction and mechanical optimisation process of electrode with radial current flow in the scala tympani.

A 48 contact cochlear implant electrode has been constructed for electrical stimulation of the auditory nerve. The stimulating contacts of this electrode are organised in two layers: 31 contacts on the upper surface directed towards the habenula perforata and 17 contacts connected together as one longitudinal contact on the underside. The design of the electrode carrier aims to make radial current flow possible in the cochlea. The mechanical structure of the newly designed electrode was optimised to obtain maximal insertion depth. Electrode insertion tests were performed in a transparent acrylic model of the human cochlea.

Biomedical Engineering↗