Li H H, Merchant S
Department of Chemistry and Biochemistry, University of California at Los Angeles 90095-1569, USA.
J Biol Chem. 1995 Oct 6;270(40):23504-10. doi: 10.1074/jbc.270.40.23504.
In the green alga Chlamydomonas reinhardtii, the copper-dependent accumulation of plastocyanin is effected via the altered stability of the protein in copper-deficient versus copper-sufficient medium (t1/2) < 20 min versus several hours). To understand the mechanism of plastocyanin degradation in vivo, the purified apoprotein was characterized relative to the holoprotein with respect to conformation and protease susceptibility. Circular dichroism spectroscopy revealed that the apoprotein in solution did not display the characteristic secondary structure displayed by the native or reconstituted holoprotein. The apoprotein was also susceptible to digestion in vitro by chymotrypsin whereas the holoprotein was resistant. High ionic conditions, which stabilize the folded structure of apoplastocyanin, also inhibit its degradation by chymotrypsin. These results suggest that one explanation for plastocyanin degradation in copper-deficient cells in vivo might be the increased susceptibility of the apo form to a lumenal protease. Since apoplastocyanin is a normal biosynthetic intermediate for the formation of holoplastocyanin, the increased susceptibility of apoplastocyanin to proteolysis implies that degradative and biosynthetic activities would compete for the same substrate. However, characterization of an apoplastocyanin-accumulating mutant suggests that a plastocyanin-degrading protease is active only in copper-deficient cells. Thus, apoplastocyanin is rapidly degraded in copper-deficient cells, whereas its major fate in copper-supplemented cells is holoplastocyanin formation.
在绿藻莱茵衣藻中,质体蓝素的铜依赖性积累是通过该蛋白在缺铜和富铜培养基中稳定性的改变来实现的(半衰期分别为<20分钟和数小时)。为了了解质体蓝素在体内的降解机制,对纯化的脱辅基蛋白相对于全蛋白在构象和蛋白酶敏感性方面进行了表征。圆二色光谱显示,溶液中的脱辅基蛋白不具有天然或重组全蛋白所显示的特征二级结构。脱辅基蛋白在体外也易受胰凝乳蛋白酶的消化,而全蛋白则具有抗性。稳定质外体蓝素折叠结构的高离子条件也会抑制其被胰凝乳蛋白酶降解。这些结果表明,体内缺铜细胞中质体蓝素降解的一种解释可能是脱辅基形式对腔蛋白酶的敏感性增加。由于质外体蓝素是全质体蓝素形成的正常生物合成中间体,质外体蓝素对蛋白水解敏感性的增加意味着降解和生物合成活性会竞争相同的底物。然而,对一个积累质外体蓝素的突变体的表征表明,一种质体蓝素降解蛋白酶仅在缺铜细胞中具有活性。因此,质外体蓝素在缺铜细胞中迅速降解,而其在补充铜的细胞中的主要命运是形成全质体蓝素。