Adrenoceptors and cholinoceptors in the rabbit iris.
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Biomedical subjects
Publications and source records attributed to H Persson.
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1. Acetylcholine was bio-assayed in the normal cat iris, and also after selective sympathetic or parasympathetic denervation. Sympathetic denervation caused no significant change in the acetylcholine content of the cat iris, whereas selective parasympathetic denervation reduced the acetylcholine content below the level of detectability, which on the average was at about 5% of the acetylcholine content of the normal iris.2. It is concluded that if adrenergic terminals contain any acetylcholine, it is less than what is detectable with the methods available at present, and most certainly less than 6% of the acetylcholine content of cholinergic neurones.3. On the basis of these and other recently obtained observations, the hypothesis of Burn & Rand (1965) of a cholinergic link in the adrenergic transmission is discussed. It is proposed that it is more reasonable to suppose an interaction between peripheral adrenergic and cholinergic terminals than to presume a cholinergic mechanism within adrenergic nerve fibres.
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By applying a sensible toxicological approach to the general principles of intensive care, an optimum setting for the treatment of poisoning is created. The intensive care unit (ICU) can perform the necessary close observation and monitoring, and thus facilitate rapid detection of symptoms, and the institution of early appropriate treatment. Diagnosis may be complex in poisoning and require continuous qualified interpretation of clinical and analytical data. Antidote therapy and treatment to enhance elimination of the poison must often be dealt with under careful supervision. The capacity of the ICU to counteract various toxic effects in a nonspecific way and to provide optimum symptomatic and supportive care is crucial. However, the ongoing toxic effects on the body must always be considered and allowed to guide symptomatic treatment. Thus, clinical toxicology appears to be a specialised branch of intensive care medicine.
A cDNA library representing early adenovirus type 2 (Ad2) mRNA was constructed. The cDNA copies were inserted into the PstI cleavage site of the pBR322 plasmid, and clones containing sequences from region E3 of the Ad2 genome were identified by colony hybridization. Selected clones were characterized by restriction enzyme cleavage, hybridization, and partial DNA sequence analysis. The precise structure of three spliced mRNAs was established by comparing the results with the DNA sequence of region E3 from Ad2 (Herissé et al., Nucl. Acids Res. 8 (1980) 2173--2191; Herissé and Galibert, Nucl. Acids Res. 9 (1981) 1229--1249). One of the characterized mRNA species encodes the E3/19K glycoprotein, whereas the other two most likely encode the E3/14K protein. The results demonstrate, moreover, that certain splice points which are used to generate the major E3 mRNAs are also used to splice the supplementary leader segments to the fibre mRNA at late times after infection. Two separate poly(A)-addition sites were identified in region E3 by analysis of the cDNA clones; one is preceded by the hexanucleotide sequence AAUAAA, whereas the other is preceded by an altered hexanucleotide, having the sequence AUUAAA.
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