PubMed Health⌕ Search

Biomedical subjects

J D Greenstein

Publications and source records attributed to J D Greenstein.

5 recordsLinked to original sources

The metabolism of C9 in normal subjects and in patients with autoimmune disease.

The metabolism of the ninth component of complement (C9) was studied in eight healthy subjects and nine patients with autoimmune disease, including seven with systemic lupus erythematosus (SLE) and one each with mesangial IgA nephropathy and mixed essential cryoglobulinaemia. In normal subjects the metabolic parameters(mean +/- s.d.) were : fractional catabolic rate (FCR): 2.92 +/- 0.36%/h, plasma half-life (T1/2): 42.5 +/- 6.7 h, and extravascular/intravascular distribution ratio (EV/IV): 0.56 +/- 0.12. In patients the FCR was 3.38 +/- 0.70%/h, the T1/2 was 37.6 +/- 10.2 h, and the EV/IV was 0.55 +/- 0.19. Patients with reduced total serum haemolytic activity (i.e. CH50 <68% of normal human serum (NHS), N=7) had significantly higher FCR (3.57 +/- 0.67%/h) and shorter T1/2(33.5 +/- 6.8 h) than the control group (both P<0.05). The plasma concentration of the terminal complement complex (i.e. soluble TCC or SC5b-9) was higher in patients (median (range): 515 (300-1879 micrograms/l) than in normal subjects (313 (229-402 micrograms/liters): P<0.01) and showed a positive correlation with the FCR of C9 (r=0.61, P<0.01). Plasma C9 production rate was also greater in patients (0-11 +/- 0-05 mg/kg per h) compared with control subjects (0-07 +/- 0.03 mg/kg per h, P<0.05), and was associated with a higher C9 concentration in patients' sera (76 +/- 13 mg/l versus 61 +/- 14 mg/l, P<0.05). These results demonstrate that C9 is rapidly metabolized in normal humans and that hypercatabolism occurs in patients with autoimmune disease and complement activation. This was despite the presence of normal or elevated serum C9 levels and normal compartmental distribution.

Adult↗

The behaviour of human vitronectin in vivo: effects of complement activation, conformation and phosphorylation.

We examined the behaviour in vivo of native, specifically phosphorylated, and multimeric vitronectin to determine the effects of these modifications on its turnover, distribution and molecular behaviour. In normal rabbits, the plasma half-life (T1/2) of antigenically detected vitronectin was 8.00 +/- 1.26 h (mean +/- s.d.), with a fractional catabolic rate (FCR) of 18.77 +/- 1.57%/h and extravascular/intravascular ratio (EV/IV) of 1.00 (0.48-1.60, median and range). For vitronectin selectively phosphorylated by protein kinase A, T1/2 was 8.87 +/- 0.48 h, with a significantly smaller FCR of 10.85 +/- 0.71%/h (P < 0.005) and an EV/IV of 0.28 (0.15-0.36) (P < 0.05 compared with antigenically detected vitronectin). In vitro, phosphorylation had no effect on the affinity of vitronectin for heparin-Sepharose, while complement activation with cobra venom factor (CVF) led to a two-fold enrichment of 32P-vitronectin within the SC5b-9 complex. In vivo CVF caused a rapid decrease in the circulating levels of 32P-vitronectin and was accompanied by the prompt appearance of a high mol. wt species consistent with SC5b-9. Despite specific incorporation of 32P-vitronectin into SC5b-9, both forms of the molecule had similar inhibitory effects on C9-mediated haemolysis of EAC1-7 cells. Urea-activated vitronectin was rapidly cleared from circulation with less than 15% remaining after 1 h while protein-bound label accumulated in the spleen, lung and liver. These results demonstrate that vitronectin is a rapidly metabolized protein whose in vivo behaviour is markedly altered when phosphorylated or activated to form multimers and SC5b-9.

Animals↗

The kinetics and distribution of C9 and SC5b-9 in vivo: effects of complement activation.

Many diseases associated with complement activation are characterized by tissue deposition of components of the terminal complement complex (TCC). The ninth component of complement (C9) plays an important role in the cytolytic effects, and may contribute to the non-lethal cell-regulating functions of the TCC. In this study we examined the behaviour of radiolabelled human C9 and its soluble complexed form SC5b-9 in vivo in order to determine the effects of complement activation on its turnover, distribution and molecular size. In normal rabbits the metabolic parameters of 125I-C9 (median and range) were: plasma half-life (t1/2) 25.9 (20.6-29.5) h, fractional catabolic rate (FCR) 5.7 (5.3-7.0)%/h, and extravascular/intravascular ratio (EV/IV) 0.7 (0.6-1.1). The distribution of radiolabelled C9 amongst body tissues was similar to that observed for rabbit serum albumin (RSA). Activation of the complement cascade with i.v. injection of cobra venom factor (CVF) resulted in rapid disappearance of C9 from the plasma and accumulation of protein-bound radiolabeled in the spleen (exceeding the plasma concentration) and the liver. RSA metabolism and distribution were unaffected by CVF. Fine performance liquid chromatography (FPLC) gel filtration of plasma samples suggested that monomeric C9 was the only major radiolabelled protein present during normal turnovers, whereas CVF administration was accompanied by the prompt appearance of a high mol. wt species consistent in size with SC5b-9. When injected directly, 125I-SC5b-9 disappeared rapidly from the plasma, falling by 50% in 0.7 (0.6-0.8) h, and less than 15% remaining after 4 h with accumulation of protein-bound label in the spleen and liver. These results demonstrate the complexity of C9 metabolism during complement activation.

Animals↗

Lymphocytotoxic antibodies in systemic lupus erythematosus: studies of their temperature dependence, binding characteristics, and specificity in vitro.

The lymphocytotoxicity of 33 lupus sera was tested against purified helper/inducer (OKT4) and cytotoxic/suppressor (OKT8) subsets of T lymphocytes at 15 degrees C and 37 degrees C in vitro. There was significantly less killing of both OKT4 and OKT8 cells at 37 degrees C (p less than 0.001 and p less than 0.01) and the ratio of OKT4/OKT8 cell killing at 15 degrees C (1.39 (0.73); mean (SD] was different from that observed at 37 degrees C (0.79 (0.42)) (p less than 0.001). OKT4 killing was greater than OKT8 killing in 21 out of 33 sera at 15 degrees C, while 22 of these sera showed predominantly OKT8 cytotoxicity at 37 degrees C. The relation between the OKT4/OKT8 cell ratio and OKT4/OKT8 serum killing was examined in 22 patients at both temperatures: a significant inverse correlation was observed at 37 degrees C (r = -0.53; p = 0.015) but not at 15 degrees C (p greater than 0.05). The addition of metabolic and cytoskeletal inhibitors increased cytotoxicity at 37 degrees C, but not IgM surface binding. A Scatchard binding analysis of the reaction at 15 degrees C showed that large numbers of antibody molecules were bound to both subsets, with a low average dissociation constant of less than or equal to 6 x 10(-8) mol/l, and electrophoretic blotting indicated that the target surface antigens varied in type and number among individual lymphocytotoxic sera. The demonstration of temperature dependent, tight binding between lymphocytotoxic antibody and variable antigens on the T cell surface emphasises the potential for this phenomenon to affect lymphocyte function in vivo in patients with systemic lupus erythematosus.

Antibody Specificity↗