The Effects of Homologous Testicular and Brain and Heterologous Testicular Homogenates combined with Adjuvant upon the Testes of Guinea-Pigs

Development ◽  
1958 ◽  
Vol 6 (1) ◽  
pp. 94-104
Author(s):  
Seymour Katsh ◽  
David W. Bishop

Numerous efforts have demonstrated antibody production after injection of spermatozoa into animals of the same species. For example, Metalnikoff (1900) and Kennedy (1924) reported anti-guinea-pig sperm ‘toxins’ in guinea-pigs; McCartney (1923) noted anti-rat sperm ‘toxins’ in rats; Pfeiffer (1905), Dittler (1920), and Pommerenke (1928) demonstrated anti-rabbit ‘spermatotoxins’ in rabbits. Antibody production against heterologous sperm has also been disclosed: Mudd & Mudd (1929) injected human, guinea-pig, bull, and ram sperm into rabbits and reported that the resultant antibodies were species specific. The absoluteness of specificity, both organ and species, however, has been qualified by the study of Lewis (1934), who found that brain and testicles possess common antigens, and Henle (1938) has extended Mudd & Mudd's (1929) observations on cross-reaction between sperm of closely related species. In the above-mentioned studies the methods for determining antisperm activity of antisera included complement-fixation, sperm-immobilization, agglutination, and precipitin tests.

1923 ◽  
Vol 37 (2) ◽  
pp. 275-302 ◽  
Author(s):  
Hans Zinsser ◽  
Julia T. Parker

When filtered alkaline extracts of pulverized bacteria of several varieties are precipitated with acid in the cold, boiled with acid, and all materials thrown down by these procedures removed, there remains a small amount of an alcohol-precipitable material which no longer gives any of the ordinary chemical reactions for proteins, such as the biuret, Hopkins-Cole, Millon, and sulfosalicylic acid reactions. The only protein reaction usually given by this material is a very weak xanthoproteic reaction. Nevertheless, the material, which is, as far as we can determine at present, free from coagulable protein, is specifically precipitable by homologous antiserum and gives specific complement fixation reactions. Such material can also be obtained from organisms like the influenza bacillus, pneumococcus, and meningococcus by extraction without preliminary grinding of the bacteria, and is present in filtrates of young and old broth cultures of the organisms. We believe that these acid- and heat-resistant antigenic materials are analogous to tuberculin and to the pneumococcus substances with which Dochez and Avery (6) made their observations some years ago. The stability of these substances is considerable and was investigated particularly because we thought this represented an indirect method of eliminating the possibility of their protein nature. In all cases boiling in a reflux condenser at an acid reaction ranging from pH 5 to 6 for 1 hour failed to destroy the antigenic specificity of the residue antigens. After such treatment satisfactory and specific precipitation reactions could be obtained. Similar boiling in alkaline reactions, however, destroyed the precipitability of staphylococcus and influenza residues. Subjected to autoclave digestion at an acid reaction of pH 5.4 for 1 hour at from three to four atmospheres, none of the antigenic residues investigated, except that obtained from the influenza bacillus, were destroyed. The pneumococcus and tubercle bacillus residue antigens were resistant to boiling for 1 hour, both in acid and alkaline reactions (pH 5.4 and 9.4). In fact, none of the procedures resorted to made any difference with these two last mentioned substances. It would seem that these facts would add considerable weight to the assumption that the materials dealt with were not ordinary whole proteins. On preservation in the ice box at an alkaline reaction of pH 9.4, the influenza residue deteriorated within 48 hours, but the other antigens withstood similar treatment for 6 days. In spite of the fact that these residue antigens were precipitable by homologous sera produced by immunization with the whole bacteria or their unfractionated extracts, we have so far failed to produce antibodies in animals by injecting these residues. While this may be due to inability to inject sufficient amounts of the material it still suggests strongly the possibility that we may be dealing with substances that are antigenic only in the sense that they are able to react with antibodies, but are themselves incapable of inciting antibody production. We suggest, in this connection, the possibility of the relationship between the power of antibody production and molecular size. This phase of the work is being continued on a more extensive scale. Our work on the reactions of the residue materials in infected animals indicates, as far as we have gone, that complete analogy exists in this respect between the conditions prevailing in guinea pigs infected with these organisms and those previously elucidated for tuberculous animals. This is in keeping with previous knowledge concerning the analogies between the mallein and tuberculin reactions and the studies on skin hypersusceptibility in Bacillus abortus- and typhoid-infected guinea pigs reported by Meyer and his coworkers. It would seem from all these facts that, in guinea pigs infected with bacteria capable of forming foci in the body, infection is followed within a variable, but relatively short time (5 days to 2 weeks) by a type of hypersusceptibility which is distinct from protein anaphylaxis and which may be determined by intradermal skin reaction. It appears likely that the growing bacteria elaborate in the animal body a metabolic product, possibly not a whole protein, which, though practically non-toxic to normal animals, may become highly and specifically injurious to the infected ones. Such a conception, if further confirmed, would lead to greater clearness in our comprehension of the toxic effects occurring in infections with organisms not true exotoxin producers and, judging by the cellular injuries observed in severe skin reactions, may easily explain focal necrosis and the deeper cellular degenerations observed in the course of many bacterial diseases. The general bearing of this work upon conceptions of hypersusceptibility is obvious and has been briefly discussed in another paper. Its chief significance is in holding out the hope that we may be able to elucidate the mechanism of a type of specific hypersusceptibility in which the antigen concerned is not a coagulable protein and in which the laws of sensitization in regard to time and quantity differ from those recognized in true protein anaphylaxis. It seems likely that a recognition of the fact that physical and chemical differences in the substances leading to various forms of specific hypersusceptibilities in the animal body must necessarily influence the mechanism of sensitization, may furnish a clue to further investigations. As such materials become simpler in structure, they fail to induce typical antibody production and by gradually increased diffusibility transfer the reactions from the cell surface to the interior of the cell. The extremes of the scale of differences would be represented by protein anaphylaxis, on the one hand, and drug idiosyncrasies, on the other. Although this suggestion is largely speculative, it has seemed worth mentioning as a line of reasoning suggested by our work. Incidentally, these studies may indicate the usefulness of the residue antigens for specific precipitation and complement fixation reactions for routine purposes in laboratory investigations.


2003 ◽  
Vol 285 (4) ◽  
pp. H1641-H1649 ◽  
Author(s):  
Stephen Zicha ◽  
Isaac Moss ◽  
Bruce Allen ◽  
Andras Varro ◽  
Julius Papp ◽  
...  

There are important species-specific differences in K+ current profiles and arrhythmia susceptibility, but interspecies comparisons of K+ channel subunit expression are lacking. We quantified voltage-gated K+ channel (Kv) subunit mRNA and protein in rabbits, guinea pigs, and humans. Kv1.4, Kv4.2, and Kv4.3 mRNA was present in rabbits but undetectable in guinea pigs. MinK mRNA concentration in guinea pigs was almost threefold greater versus humans and 20-fold versus rabbits. MinK protein expression in guinea pigs was almost twofold that in humans and sixfold that in rabbits. KvLQT1 mRNA concentration was greatest in humans, and protein expression in humans was increased by ∼2- and ∼7-fold compared with values in rabbits and guinea pigs, respectively. The ether-a-go-go-related gene (ERG1) mRNA was more concentrated in humans, but ERG1 protein expression could not be compared across species because of epitope sequence differences. We conclude that important interspecies differences in cardiac K+ channel subunit expression exist and may contribute to the following: 1) lack of a transient outward current in the guinea pig (α-subunit transcription absent in the guinea pig heart); 2) small slow delayed rectifier current and torsades de pointes susceptibility in the rabbit (low-level minK expression); and 3) large slow component of the delayed rectifier current in the guinea pig (strong minK expression).


1975 ◽  
Vol 21 (6) ◽  
pp. 774-783 ◽  
Author(s):  
Raymond Turcotte

Protoplasmic extracts isolated from four different species of mycobacteria contained common and species-specific antigens. Both the common and the specific antigens were involved in the elicitation of the tuberculin reaction in sensitized guinea pigs. The elimination of the common antigens from the extracts by means of cross absorption with heterologous mycobacterial antibodies led to preparations which, at the doses used in this study, elicited a cutaneous reaction in animals sensitized with the corresponding strains only. Moreover, the tuberculin activity of the common antigens was about the same in animals sensitized either with homologous or heterologous strains.


1964 ◽  
Vol 62 (2) ◽  
pp. 179-184 ◽  
Author(s):  
Alexander L. Terzin

Complement-fixation tests with psittacosis-trachoma group antigens, if set up with complement prepared from guinea-pigs cross-infected with any of the Bedsonia agents, may give completely false positive results. The use of C.F. positive or C.F. inhibition positive samples of guinea-pig sera as a source of complement can induce also a significant increase or decrease, respectively, of the actual C.F. titres in Bedsonia-positive serum samples tested. Observations made both in routine serology and in experimental studies show the necessity of testing carefully, for possible presence of Bedsonia titres, individual sera of guinea-pigs intended for use as source of complement in C.F. tests performed with Bedsonia group antigens.I have pleasure in thanking Dr F. B. Gordon and Dr E. Weiss for the valuable suggestions made and HM3 C.O. Wiese for the technical assistance.


1958 ◽  
Vol 107 (1) ◽  
pp. 95-108 ◽  
Author(s):  
Seymour Katsh

Female guinea pigs were injected with the following materials: homogenates of guinea pig testis in saline or in adjuvant; suspensions of washed guinea pig sperm in saline or in adjuvant; homogenates of rabbit testis in adjuvant; guinea pig sperm and rabbit sperm in adjuvant. Control animals were not injected or were injected with adjuvant alone. At various times between 15 and 39 days after injection, the animals were sacrificed. Their ilea and uterine horns were removed and tested in vitro for reaction to washed epididymal sperm of the guinea pig, rabbit, or bull. It was found that the animals which were injected with homologous testis or sperm in adjuvant possessed organs which responded strongly to the challenge with homologous sperm. The response was a contracture which began 10 to 30 seconds after the sperm were injected into the bath and lasted for 5 minutes to 4 hours, the longest period of observation. Responses which lasted for periods of 5 minutes to 30 minutes were obtained with the uteri of the animals injected with guinea pig testis in saline or with guinea pig sperm in saline. Animals which were injected with rabbit testis and adjuvant responded to rabbit sperm, and animals injected with guinea pig sperm and rabbit sperm in adjuvant reacted to both gametes. A large proportion of the control animals possessed organs which reacted weakly to the challenge with homologous sperm. Retesting the organ which had contracted following exposure to sperm indicated that desensitization had occurred. Testing with heterologous sperm indicated a species selectivity. The evidence is interpreted to mean that injections of sperm or testis induce a hypersensitivity which is similar in some respects but differs from true anaphylaxis. The findings are discussed from the point of view of the nature of the response and the implications regarding natural immunity to sperm.


1963 ◽  
Vol 118 (1) ◽  
pp. 55-71 ◽  
Author(s):  
Edward R. Arquilla ◽  
Jack Finn

1. A method is presented for measuring the degree to which insulin antibodies in one antiserum react with an insoluble insulin complex saturated with antibodies from a different antiserum. 2. Many rabbits produce antibodies which bind to portions of the insulin molecule to which antibodies from guinea pigs or other rabbits cannot bind. 3. Occasional guinea pigs produce antibodies which bind to portions of the insulin molecule to which antibodies from rabbits or other guinea pigs cannot bind. 4. Studies with labeled antisera and repeated incubations of test antisera with antibody insulin complexes demonstrate the individual antibody variations to be due to antibodies directed to different determinants and not to dissociation of antibodies from the same determinant on the insulin molecule. 5. More than one antibody molecule can simultaneously bind to an insulin molecule. 6. Insulin has a multiplicity of antigenic determinants. 7. The relationship between antigenic determinants, insulin antibodies, and neutralization of insulin by antisera is discussed. 8. The determinants to which insulin antibodies are directed appear to be characteristic for the individual rabbit or guinea pig immunized. It is postulated therefore that genetic factors direct antibody production toward specific determinants when insulin is the antigen.


1998 ◽  
Vol 275 (1) ◽  
pp. H50-H56 ◽  
Author(s):  
Masami Miyamae ◽  
S. Albert Camacho ◽  
Hui-Zhong Zhou ◽  
Ivan Diamond ◽  
Vincent M. Figueredo

We recently discovered that regular alcohol consumption reduces ischemia-reperfusion injury to the same degree as ischemic preconditioning in guinea pig hearts. Ischemic preconditioning, like this cardioprotective effect of alcohol, is mediated by adenosine signaling in guinea pigs. In rats, ischemic preconditioning may be mediated predominantly by α1-adrenergic signaling. To be certain that this protective effect of alcohol is a general biological response, we searched for alcohol’s cardioprotection in rat and identified a potential signaling mechanism. Hearts isolated from alcohol-fed guinea pigs and rats were subjected to ischemia-reperfusion. Hearts from alcohol-fed animals showed greater recovery of left ventricular developed pressure than controls (guinea pigs, 46 vs. 29%; rats, 50 vs. 31%) and decreased myocyte necrosis assessed by creatine kinase release (guinea pigs, 204 ± 42 vs. 440 ± 70 U ⋅ ml−1 ⋅ g dry wt−1; rats 158 ± 13 vs. 328 ± 31 U ⋅ ml−1 ⋅ g dry wt−1). Adenosine receptor blockade [8-( p-sulfophenyl)theophylline] abolished alcohol’s protection in guinea pig but not rat hearts. By contrast, α1-adrenergic blockade (prazosin) abolished alcohol’s protection in rat but not guinea pig hearts. We conclude that regular alcohol consumption reduces ischemia-reperfusion injury and is mediated by species-specific signaling mechanisms. A major goal of cardiovascular research is to find a pharmacologically induced chronic state of preconditioning. Understanding the mechanisms of alcohol’s cardioprotection against ischemia-reperfusion injury may aid in reaching this goal.


2003 ◽  
Vol 90 (6) ◽  
pp. 3794-3808 ◽  
Author(s):  
Daniel Šuta ◽  
Eugen Kvašňák ◽  
Jiří Popelář ◽  
Josef Syka

The responses of individual neurons to 4 typical guinea pig vocalization calls (purr, chutter, chirp, and whistle) were recorded in the inferior colliculus (IC) of anesthetized guinea pigs. All calls elicited a response in about 80% of units. Unit selectivity for individual calls was low, given that a majority of neurons (55% of 124 units) responded to all vocalizations and only a small portion of neurons (3%) responded to only one call or did not respond to any of the calls (3%). In 15% of units, the response to one call was ≥25% stronger than the response to any other sound (tone, noise, and other calls); these neurons were selective for chirp or whistle, and no unit preferred chutter or purr. Neuronal activity provided information about the spectrotemporal patterns of the calls. Peristimulus time histograms (PSTHs) reflected the energy of the near-characteristic frequency band, and the population PSTH reliably matched the sound envelope for calls characterized by one or more short impulses (chirp, purr, and chutter) but did not exactly fit the envelope for whistle—a slow-modulated and relatively long call. Calculations based on firing rates indicated the approximate positions of the main spectral peaks but did not always reflect their relative magnitude. The time-reversed version of whistle elicited on average a weaker response than did the natural whistle (by 24%), but there were neurons with a significantly stronger response to the natural (“forward-selective,” 30%) as well as to the time-reversed whistle (“reverse-selective,” 15%). This study does not prove the existence of units selectively responding to animal calls, but it provides evidence for the encoding of the spectrotemporal acoustic patterns of vocalizations by IC units.


1935 ◽  
Vol 12 (2) ◽  
pp. 156-160
Author(s):  
Ronald Gwatkin

An alcoholic precipitate from an R strain of Brucella abortus resembled the organism from which it was obtained. Toxicity was low, it produced only a slight reaction in the skin of an infected guinea pig and it had no antigenic power in the complement fixation test. An alcoholic precipitate of E. coli was more toxic than any obtained from Br. abortus. The effects of intraperitoneal injections of colon precipitate were modified by anti-colon serum. Intraperitoneal injection of an alcoholic precipitate of B. subtilis produced no change in guinea pigs other than a slight fall in temperature.


Author(s):  
Corazon D. Bucana

In the circulating blood of man and guinea pigs, glycogen occurs primarily in polymorphonuclear neutrophils and platelets. The amount of glycogen in neutrophils increases with time after the cells leave the bone marrow, and the distribution of glycogen in neutrophils changes from an apparently random distribution to large clumps when these cells move out of the circulation to the site of inflammation in the peritoneal cavity. The objective of this study was to further investigate changes in glycogen content and distribution in neutrophils. I chose an intradermal site because it allows study of neutrophils at various stages of extravasation.Initially, osmium ferrocyanide and osmium ferricyanide were used to fix glycogen in the neutrophils for ultrastructural studies. My findings confirmed previous reports that showed that glycogen is well preserved by both these fixatives and that osmium ferricyanide protects glycogen from solubilization by uranyl acetate.I found that osmium ferrocyanide similarly protected glycogen. My studies showed, however, that the electron density of mitochondria and other cytoplasmic organelles was lower in samples fixed with osmium ferrocyanide than in samples fixed with osmium ferricyanide.


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