Search PubMed⌕ Search

SEARCH · Search PubMed

Results for “Complement C3 Nephritic Factor”

Search indexed PubMed citations on genomics, clinical trials, systematic reviews and public health. Explore titles, authors and supplied subject terms, then open the PubMed record.

Quote a phrase for an exact phrase match. Source license links do not imply unrestricted reuse.

At least 109 records · Page 6Linked to original sources

Complement components and their autoantibodies.

The purpose of the immune system is to defend the host from constantly changing microbial pathogens. Autoimmune diseases develop as a consequence of the production of antibodies and/or cells that react with self-antigens, and may recruit other effector mechanisms that result in tissue damage. Thus, in this context, autoimmunity represents an immune response to self-antigens that is sufficient to cause disease. This article is specifically devoted to autoantibodies directed against complement components.

Algorithms↗

[Recurrent post-infectious immune complex glomerulonephritis with persistent activation of the alternative complement pathway].

Recurring upper respiratory tract infections in a previously healthy 4 years old boy led to an acute nephritic syndrome requiring haemodialysis. Renal biopsy showed poststreptococcal like immune complex glomerulonephritis with subepithelial humps, C3 deposition and crescent formation. Renal function improved after methyl-prednisolone pulse therapy. Two relapses occurred in the following six months which responded to immunosuppressive therapy. 21 months following the first presentation the boy has normal glomerular filtration rate but persistent glomerular proteinuria and haematuria. Detailed complement analyses revealed a persistent activation of the alternate pathway.

Child, Preschool↗

Mesangial glomerulonephropathy with deposition of IgG, IgM, and C3 induced by mercuric chloride: a new model.

A mesangial glomerulonephropathy, characterized by the deposition of rat IgG, IgM, and C3 in the glomerular mesangium, was produced in Wistar rats by a prolonged administration of mercuric chloride (HgCl2). The HgCl2 was dissolved in sterile distilled water (0.2 mg. per ml.), and a group of 15 male Wistar rats was given injections subcutaneously three times a week on alternate days at a dosage of 0.15 mg. per 100 gm. of body weight for 27 weeks. A control group of nine rats was given injections of distilled water only. Mesangial glomerulonephropathy developed in 12 of 15 rats injected with HgCl2 and was characterized by the following: (1) coarse granular and nodular deposition of rat IgG, IgM, and C3 in the mesangium of all glomeruli, (2) absence of staining for rat albumin, IgA, and fibrin, (3) presence of electron-dense deposits in the mesangium, (4) focal and segmental proliferation of the mesangial matrix, (5) interstitial inflammation, (6) tubular atrophy, and (7) deposition of periodic acid-Schiff-positive material in the medulla adjacent to the thin limbs of the loops of Henle. Glycosuria and a slight increase in proteinuria were observed transiently in some rats. The blood urea nitrogen levels were normal in all rats. Eluates from the kidneys with heavy mesangial deposits contained rat IgG. However, the eluted antibody failed to react with normal rat kidney tissue components. None of the above findings were present in the control rats. The study provides a model of a mesangial nephropathy that seems to be immunologically induced; however, the mechanism for the formation and deposition of the immune deposits containing rat IgG, IgM, and C3, and the nature of the antigen(s) have not been elucidated.

Animals↗

[Complement].

Explore the source record for details and available documents.

Blood Coagulation↗

Complement: activation, consequences, and control.

The activation of complement provides the humoral (fluid-phase) effector mechanism most responsible for immune-mediated injury. The classical pathway is activated by an antigen-antibody reaction. The binding of C1q initiates the sequential activation of the eleven proteins. The classical pathway has a calcium-dependent step (C1q, C1r, C1s) and a magnesium-dependent reaction (the enzymatic action of C1s on C4 and C2). The alternative pathway appears to be spontaneously activated, but the perpetuation of that activation is dependent upon the availability of an activating (or protective) surface which interferes with the inactivation of C3b by control proteins. The alternative pathway has a magnesium-dependent step, the binding of B to C3b to form the C3 convertase. Once initiated, the alternative pathway activation results in the sequential activation of nine proteins, six of which are common to both pathways. The activation of complement results in a variety of biologic consequences which can result in injury to the host. The potential destructiveness of the effects of complement activation is modulated by a series of control proteins.

Carrier Proteins↗