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M M Griffiths

Publications and source records attributed to M M Griffiths.

At least 73 records · Page 4Linked to original sources

Passive transfer of adjuvant-induced arthritis into irradiated DA recipient rats.

Adjuvant-induced arthritis (AIA) can be passively transferred in Dark Agouti (DA) rats by spleen and lymph node cells after culture with Concanavalin A (Con A). A model not requiring in vitro Con A expansion and activation would be important in investigations of anti-rheumatic drugs in AIA. A new model using irradiated recipients fills this need. Donor DA rats treated with 0.1 ml complete Freund's adjuvant (CFA) containing 7.5 mg M. butyricum/ml were sacrificed 11 days after CFA injection, donor spleen cells harvested, and donor spleen cells injected intravenously into recipient DA rats previously irradiated with 5 Gy. Recipient rats developed arthritis 4-14 days after spleen cell transfer. This model can now be used to further define the effects of anti-rheumatic drugs in the passive transfer of AIA by eliminating the need for the in vitro Con A-induced expansion and/or activation of donor cells.

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Induction of arthritis in DA rats by incomplete Freund's adjuvant.

OBJECTIVE: To define the arthritogenic effects of incomplete Freund's adjuvant (ICFA) injections in DA rats. METHODS: ICFA was injected into DA rats and other inbred rat strains. The severity of arthritis was scored and associated changes in weight recorded. RESULTS: After ICFA injection a mild transient symmetric arthritis developed in 15/22 (68%) of the DA rats observed for greater than 4 weeks. Histologic examination of the observed arthritis showed edema and neutrophil infiltrates with some lymphocytes and plasma cells. No arthritis developed in DA rats given normal saline injections nor in Lewis, DA.1N and WF.1N rats given ICFA. CONCLUSIONS: Injection of DA rats with ICFA alone can produce arthritis.

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Collagen-induced arthritis in rats. Examination of the epitope specificities of circulating and cartilage-bound antibodies produced by outbred and inbred rats using cyanogen bromide-derived peptides purified from heterologous and homologous type II collagens.

To determine the number and location of antibody binding epitopes on type II collagen, outbred and inbred rats were immunized with chick, bovine, human, and rat type II collagen (CII, BII, HII, and RII); all sera were assayed for reaction with a panel of CB peptides purified and renatured from the immunizing collagen and from RII. Antibody reaction patterns (profiles) varied among individual outbred rats but were essentially constant over time and changed little after boosting. The strongest antibody reactions were to CB11, CB9-7, and CB12 followed by CB8, CB10, and CB6. Antibody profiles varied depending on the species of collagen used for immunization and the strain of rat immunized. Except for CB10, where antibodies were largely specific for heterologous collagens, antibodies reactive with all other CB peptides cross-reacted strongly with renatured rat CB peptides. Sera from inbred BB rats immunized with BII, CII, or HII reacted best with CB11, unlike antisera to RII that reacted strongly with CB9-7. Inbred LEW, COP, WKY, F344, and BUF rats immunized with BII reacted strongest with CB9-7 and variably with CB11 and CB12. BBxLEW F1 hybrid rats reacted almost equally with CB11 and CB9-7 producing an antibody profile intermediate to those elicited in the parent strains. Finally, antibodies reactive with rat CB11, CB9-7, and CB12 could be eluted from normal rat cartilage incubated in anti-BII serum; antibody eluate profiles generally paralleled the profile produced by the sera applied to cartilage. Taken together, these findings indicate that multiple antibody-reactive epitopes on type II collagen may be instrumental in the initiation of collagen-induced arthritis in rats, particularly shared or cross-reactive epitopes located within CB11, CB9-7, CB12, and CB8.

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Immunogenetics of collagen-induced arthritis in rats. Both MHC and non-MHC gene products determine the epitope specificity of immune response to bovine and chick type II collagens.

Seven inbred, RT1-congenic rat strains were immunized with native bovine (BII), porcine (PII), or chick (CII) type II collagen and observed for onset, incidence, and severity of arthritis. Clinical results were compared with IgG reactive with native rat type II collagen (RII) and the purified, renatured cyanogen-bromide peptides of BII, CII, or RII. Immunodominant responses to CB11, CB9,7, and CB12 of RII were identified. Secondary responses to CB8 and CB10 also occurred. Reproducible patterns of peptide reactivity were defined in each strain and reflected both RT1 and non-RT1 genotypes plus the species of immunizing collagen. BN non-RT1 gene products moderated clinical arthritis but increased the levels of reactivity to CB11 in three strains carrying RT1l,n,av1 haplotypes. WF (RT1u) rats were susceptible to collagen-induced arthritis (CIA) and developed very high levels of autoantibodies with dominant responses to rat CB11 after CII injections and to rat CB11 and CB9,7 after BII injections. DA (RT1av1) rats developed the most severe arthritis but had only moderate (total) levels of anti-RII IgG: a broad response to CB11, CB10, and CB9,7 after CII injections but predominantly to CB12 and CB9,7 after BII injections. Three RT1n strains--DA.1N(BN), WF.1N(MAXX), and BN--were resistant to BII-induced CIA but developed mild arthritis after immunization with CII. After BII: BN IgG reacted with CB9-7, CB11, and CB12; DA.1N and WF.1N IgG reacted with CB9,7 and CB12. After CII: BN IgG reacted broadly with CB11, CB9-7, CB12, and CB8; WF.1N IgG reacted to CB9-7, CB11, CB8, and CB12; DA.1N IgG reacted with CB8, CB11, and CB9-7. Thus, selective induction of CIA in BN, WF.1N, and DA.1N rats by CII correlated with serum IgG reactivity to rat CB11, but overall strain results identified no single cyanogen-bromide peptide as expressing the sole "arthritogenic" epitope in CIA.

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Effects of rat cytomegalovirus infection on immune functions in rats with collagen induced arthritis.

The effect of rat cytomegalovirus (CMV) infection on immune function was studied in rats with collagen induced arthritis, an experimental model of autoimmunity targeted to cartilage and previously shown to be greatly augmented in severity by rat CMV. Rat CMV infection induced an early (7 to 14 day), 2.5-fold increase in circulating B cells (SIgG+) which was associated with moderate increases in the titers of serum IgG antirat type II collagen antibody. A significantly increased skin test reactivity (p less than 0.025) to rat type II collagen was detected at Day 14 and followed a small increase in numbers of W3/25+ T-helper cells in peripheral blood noted at Day 8. A 3-fold expansion of OX8+ peripheral lymphocytes, occurring maximally at Day 8, was tentatively identified as a natural killer cell population by functional 51Cr-release assays. Our data indicate that rat CMV augmentation of collagen induced arthritis is associated with a generalized but modest increase in immune reactivity towards rat type II collagen and with significant alterations of peripheral lymphocyte subsets.

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Effects of indomethacin, cyclosporin, cyclophosphamide, and placebo on collagen-induced arthritis of mice.

The long term effects of indomethacin, cyclosporin, cyclophosphamide, and placebo on collagen-induced arthritis in mice were tested under two different treatment protocols. A prophylactic experiment examined the effects of the daily drug administration for 180 days beginning one day before the first collagen injection. Under this dosage schedule, cyclophosphamide and cyclosporin decreased the severity of arthritis, while indomethacin did not. A therapeutic protocol examined the effects of these same drugs when daily administration was delayed until the animals had active disease at 78 days after the first collagen injection. Under this protocol, all three drugs reduced the progression of disease. In both protocols, the most significant suppression of arthritis was seen in animals receiving cyclophosphamide which was associated with a decrease in anti-collagen antibody levels. Collagen-induced arthritis in mice should be further investigated as a model to study the long term effects of "slow-acting" anti-rheumatic drugs.

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Immunogenetics of collagen-induced arthritis in rats.

CIA can be viewed as a multifactorial animal model of experimentally-induced autoimmunity that is targeted to joint tissues and under multiple gene control. Thus, although induction of CIA requires immune reactivity to type II collagen, a high immune response to type II collagen is not pathognomonic of CIA, indicating that determinant specificity is of crucial importance. Also, both RT1-linked and non-RT1-linked gene directed functions are involved in the final clinical response to immunization with type II collagen. RT1-linked control is likely exerted at the level of Class II (Ia) molecules (as it is in mice) with inherent selectivity of arthritogenic vs non-arthritogenic epitopes for presentation to the immune response system; non-RT1-linked control may reflect genes controlling T-cell receptors, immunoglobulin subtypes or complement components. There is also evidence that the effects of potentially pathological anti-collagen autoimmunity may in some strains be muted or even obviated by other non-RT1 gene controlled traits that are not directly related to the immune system. These general conclusions are in close accord with those of other investigators who have carefully conducted extensive and in-depth studies of the immunogenetics of CIA in mice. CIA is obviously not an exact model of any one of the more common rheumatic diseases, such as rheumatoid arthritis or systemic lupus erythematosus. In fact, it is more closely analogous to polychondritis and some of the other sero-negative connective tissue diseases. However, CIA remains an extremely useful model in attempts to understand the genetic and environmental factors which influence a specific and definable autoimmune process--anti-collagen reactivity. In turn, autoimmunity to collagen, and to other autoantigens, is a contributing or complicating aspect of most of the diverse human rheumatic disease syndromes which have been identified to date. The characteristics of the CIA model in rats which have been discussed in this article, i.e., genetically controlled variations in incidence, severity, rate of progression and expression of clinical disease, are also characteristic of the human rheumatic disease patient population. Likewise, the probable contribution of multiple genes to these syndromes is recognized. Continued investigation of the CIA model can be expected to yield important information that can be used to better understand its human counterparts.

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Role of non-RT1 genes in the response of rat lymphocytes to Mycoplasma arthritidis T cell mitogen, concanavalin A and phytohemagglutinin.

A comparison of splenic cells from various inbred rat strains indicated that DA, Lewis, Buffalo, August, Wistar Furth, and (LEW X BN)F1 all responded well to the Mycoplasma arthritidis T cell mitogen, phytohemagglutinin and concanavalin A, but cells from BN and MAXX rats were very weakly or nonresponsive. Cells from congenic strains expressing nonresponder background genes, and responder haplotypes at RT1 (BN.1L(LEW), RT1; BN.1A(DA), RT1av1) failed to respond significantly to the mitogens. Rats expressing responder background genes but the nonresponder haplotype at RT1 at RT1 (WF.1N-(MAXX), RT1n) exhibited high responses to all mitogens. The controlling role of non-RT1 genes was confirmed by testing tissue-typed (DA X BN)F2 progeny and (DA X BN)F1 X DA and (DA X BN)F1 X BN progeny. No association was seen between the expression of a/a, a/n, or n/n at RT1 and the degree of response to the mitogens. In contrast, as the proportion of DA non-RT1 genes increased, so did the degree of mitogenic responsiveness. Similar results were obtained by using a partially purified preparation of the mycoplasma T cell mitogen. The results indicated that in the (DA X BN)F1 hybrids, responsiveness to all mitogens was recessive: this contrasts with the (LEW X BN)F1 hybrids in which responsiveness was dominant. Finally, we showed that both responder and nonresponder splenic cells were capable of binding the M. arthritidis mitogen. The data contrast with those obtained with nonresponder mouse strains the cells of which failed to bind mitogen due to the absence of the E alpha chain of the I-E-coded molecule.

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Rat cytomegalovirus infection enhances type II collagen arthritis in rats.

The effect of rat cytomegalovirus (RCMV) infection on type II collagen-induced arthritis was studied in DA rats. Rats were infected with RCMV 5 days before, simultaneously with, or 5 days after immunization with calf type II collagen. Control rats were either given type II collagen alone or were injected with normal rat salivary gland (NRSG) simultaneously with collagen immunization. Severity of arthritis in each limb was graded on a scale of 1-4 (maximum score 16). In 5 experiments, peak arthritis scores in the RCMV groups were twice those of the control groups which received NRSG or collagen only (8-9 versus 4-6). Radiographs of involved joints showed greater destruction of cartilage and articular bone in the RCMV rats than in the NRSG control group. Repeated attempts to culture RCMV from joint tissues were unsuccessful. Our results indicate that RCMV infection enhances the arthritic process in this experimental model of an autoimmune arthritis.

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Collagen-induced arthritis and pregnancy in mice: the effects of pregnancy on collagen-induced arthritis and the high incidence of infertility in arthritic female mice.

Collagen-induced arthritis (CIA) in mice is a model of inflammatory polyarthritis that has many features similar to human rheumatoid arthritis. In rheumatoid arthritis, pregnancy leads to amelioration of the disease while exacerbation develops after delivery. We used the CIA model to elucidate the role of pregnancy on disease and vice versa. The onset of arthritis in pregnant mice was delayed in the B10.RIII strains immunized with native porcine type II collagen 7-12 days prior to syngeneic [B10.RIII (susceptible to CIA) X B10.RIII] and allogeneic (B10.RIII female X B10.K male that are CIA resistant) pregnancy. In contrast, when mice were immunized on days 1-6 of pregnancy, the onset of arthritis was earlier as compared with controls. In addition, once the mice developed CIA after delivery, the disease showed markedly rapid progression as compared to the control immunized group. Humoral immune responses to type II collagen showed significantly decreased levels on day 14 (at late stage of pregnancy) both in syngeneic and allogeneic postmating immunized pregnant mice. The same effect was also seen in allogeneic premating immunized pregnant mice on day 21 (at mid-stage of pregnancy). The levels of these antibodies increased after delivery. Subclasses of IgG1 and IgG2a antibodies to type II collagen were suppressed during pregnancy. In the pseudopregnant group, these antibodies showed decreased levels on day 14, but did not differ from the control groups on day 21 and 28. Some immunoregulatory changes may play a role in these alterations in pregnant arthritic mice. In comparison to the effects of syngeneic (susceptible X susceptible) pregnancy on CIA, allogeneic (susceptible female X resistant male) pregnancy seemed to be beneficial for the affected individuals. Litter size and mean birth weight were not affected by immunization of type II collagen. After onset of CIA, both syngeneic and allogeneic matings failed to produce offspring in arthritic female mice. The estrus cyclicity was highly disturbed in arthritic female mice and gonadotropin stimulation in arthritic mice induced significantly less ova in oviducts and maturing follicles as compared to nonarthritic controls. Immunological factors yet to be elucidated may be involved in this ovarian dysfunction.

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Type II collagen-induced arthritis in mice. IV. Variations in immunogenetic regulation provide evidence for multiple arthritogenic epitopes on the collagen molecule.

Type II collagen from six mammalian species was investigated for the capacity to induce an immune response and collagen-induced arthritis (CIA) in C57/B10 congenic mouse strains. H-2q haplotype mice were susceptible to chick, bovine, deer, rat, and human type II collagen, but were resistant to arthritis induced by porcine type II collagen. H-2r haplotype mice only developed CIA in response to bovine, deer, and porcine collagen. High antibody responses in the absence of disease, directed against a specific type II collagen, were observed in many independent haplotypes. The cross-reactive capacity of different antisera to the various collagen species was studied. The data support the existence of two arthritogenic and multiple nonarthritogenic epitopes on the type II collagen molecule.

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Susceptibility and resistance to 6-sulfanilamidoindazole-induced arthritis among inbred strains of rats.

Inflammation induced by 6- sulfanilamidoindazole (6-SAI) in aged, outbred rats is predictably produced, but the pathogenesis is not understood. We demonstrate the variable resistance of 15 inbred rat strains to 6-SAI arthritis. Susceptibility to 6-SAI arthritis is not directly linked to the major histocompatibility complex, although resistance is related to the major histocompatibility complex in other experimental forms of rat arthritis. The genetic background of these inbred rat strains appears to have a major role in 6-SAI arthritis susceptibility.

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Genetic control of collagen-induced arthritis in rats: the immune response to type II collagen among susceptible and resistant strains and evidence for multiple gene control.

We evaluated the cellular and humoral immune response to type II collagen and the relative susceptibility to type II collagen-induced arthritis (CIA) in 14 inbred rat strains representing six RT1 specificities and including four congenic strain pairs differing only at RT1, by using a standard protocol with native calf type II collagen as the immunogen: WF(RT1u) was a high responder and susceptible; RT1c , RT1a , and RT1l strains were intermediate responders and, on a strain basis, were variably susceptible or resistant; RT1b and RT1n strains were low responders and resistant to CIA. An intermediate to high immune response to type II collagen, although associated with CIA, was not sufficient for the induction of clinical arthritis. A high degree of cross-reactivity between calf and rat type II collagen was found. No selective, antigen-specific decrease in immune response to rat type II collagen as compared to calf type II collagen was found in the resistant strains. In six strains, resistance correlated with the expression of public Ia antigens cross-reactive with the public Ia antigens of BN. The non-MHC-linked BN genome also exerted a suppressive effect on the incidence and severity of CIA in strains carrying collagen-responder and CIA-susceptible RT1 alleles. Together, the data show that CIA in rats is under the control of multiple genes, both RT1-linked and nonlinked .

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Modulation of collagen-induced arthritis in rats by non-RT1-linked genes.

An immunogenetic analysis of the progeny of F1, F2, and (F1 x parental strain) test cross-matings between the CIA-susceptible DA(RT1av1) and the CIA-resistant BN(RT1n) rat strains was performed. Hybrid progeny were tested for susceptibility to CIA as induced by native calf type II collagen, and for immune response to native rat and calf type II collagens. The results show a minimum of one non-RT1-linked gene which modifies susceptibility to CIA in RT1a/a hybrid progeny. These hybrids have anti-collagen immune responses equivalent to those of the parental DA strain as measured by skin testing and IgG antibody titers. An affect of sex hormones on susceptibility to CIA is indicated, because hybrid females were more susceptible than were hybrid males of equivalent RT1 allotypes.

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Immunogenetic control of experimental type II collagen-induced arthritis. I. Susceptibility and resistance among inbred strains of rats.

Seven inbred rat strains were tested for susceptibility to experimental type II collagen-induced arthritis and for development of cellular immunity to type II collagen by delayed hypersensitivity skin testing. WF (RT1u), LEW (RT1l), and DA (RT1a) were the most susceptible of the strains tested with respect to incidence (greater than 95%) and severity of disease. LEW and DA were strongly skin test reactive to calf type II collagen. BUF (RT1b) developed moderate skin test responses to calf type II collagen and showed low susceptibility to collagen arthritis (1/8). MAXX (RT1n), LEW.B3 (RT1nvl), and AUG (RT1c) were not susceptible to collagen arthritis and showed negative to very weak skin test responses to type II collagen. Disease susceptibility was inherited as a dominant trait in the F1 progeny of (WF X LEW.B3) matings. These data suggest that clinical expression of experimental collagen-induced arthritis and immune responsiveness to type II collagen are controlled in part by genes within or closely linked to the rat major histocompatibility complex--RT1.

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Immunogenetic control of experimental collagen-induced arthritis in rats. II. ECIA susceptibility and immune response to type II collagen (CALF) are linked to RT1.

The segregation of genes controlling ECIA susceptibility and the level of immune response to native calf type II collagen were determined in the F2 progeny of matings between WF (RT1u/u; ECIA-susceptible; high responders) and LEW.B3 (RT1n/n; ECIA-resistant; low to intermediate responders). RT1n/n F2 progeny showed resistance to ECIA, low skin test reactivity to type II collagen and intermediate levels of IgG anti-collagen antibodies (-log2 of 6.2 +/- 2.6; mean +/- SD, n = 10). RT1u/u and RT1u/n F2 progeny were susceptible to ECIA and were high responders to type II collagen by skin testing and IgG antibody titres (-log2 of 12.1 +/- 1.3, mean +/- SD, n = 26). Although all rats that developed arthritis were also high responders to type II collagen one group of immature F2 progeny, RT1u/u and RT1u/n, showed high anti-collagen immune responses in the absence of detectable arthritis. The data indicate that genes linked to RT1.A control susceptibility to ECIA and at least part of the immune response to native calf type II collagen in WF and LEW.B3 rats.

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