Tschopp J, Podack E R, Müller-Eberhard H J
J Immunol. 1985 Jan;134(1):495-9.
Polymerization of C9 occurs spontaneously or can be induced by the tetramolecular complex C5b-8. Spontaneous C9 (0.15 mg/ml) polymerization required more than 3 days at 37 degrees C. In the presence of C5b-8, C9 polymerization was complete within 10 min. The molar C9:C5b-8 ratio determined the extent of tubular poly C9 formation by C5b-8-bearing phospholipid vesicles. When this ratio was 9:1 or 12:1, 72% of complex-bound C9 was present as SDS resistant tubular poly C9 (Mr = 1.1 X 10(6]. At lower C9:C5b-8 ratios, poly C9 was bound primarily in nontubular form. Tubular poly C9, as part of C5b-9, could also be generated on rabbit erythrocytes by using whole human serum as a complement source. At limiting serum concentration (molar C9 to C8 ratio approximately 2), no SDS-resistant tubular poly C9 was detected. At high serum concentration or when using serum that was supplemented with C9, up to 40% of the C9 was SDS-resistant tubular poly C9, and the rest was poly C9, which was incompletely polymerized. It is suggested that the C5b-8 complex acts as an accelerator of C9 polymerization, and that its relative concentration to C9 determines the ultrastructure of the C5b-9 complex.
C9的聚合反应可自发进行,也可由四分子复合物C5b-8诱导。在37℃下,自发的C9(0.15mg/ml)聚合反应需要3天以上时间。在C5b-8存在的情况下,C9的聚合反应在10分钟内即可完成。C9与C5b-8的摩尔比决定了含C5b-8的磷脂囊泡形成管状多聚C9的程度。当该比例为9:1或12:1时,72%的与复合物结合的C9以对SDS有抗性的管状多聚C9形式存在(Mr = 1.1×10⁶)。在较低的C9:C5b-8比例下,多聚C9主要以非管状形式结合。作为C5b-9的一部分,管状多聚C9也可通过使用全人血清作为补体来源在兔红细胞上产生。在血清浓度有限时(C9与C8的摩尔比约为2),未检测到对SDS有抗性的管状多聚C9。在高血清浓度下或使用补充了C9的血清时,高达40%的C9是对SDS有抗性的管状多聚C9,其余的是未完全聚合的多聚C9。有人提出,C5b-8复合物作为C9聚合反应的促进剂,其与C9的相对浓度决定了C5b-9复合物的超微结构