Tözsér József, Bagossi Péter, Zahuczky Gábor, Specht Suzanne I, Majerova Eva, Copeland Terry D
Department of Biochemistry and Molecular Biology, Faculty of Medicine, Debrecen University, H-4012 Debrecen, Hungary.
Biochem J. 2003 May 15;372(Pt 1):137-43. doi: 10.1042/BJ20021901.
Caspases are important mediators of apoptotic cell death. Several cellular protein substrates of caspases contain potential phosphorylation site(s) at the cleavage-site region, and some of these sites have been verified to be phosphorylated. Since phosphorylation may affect substantially the substrate susceptibility towards proteolysis, phosphorylated, non-phosphorylated and substituted oligopeptides representing such cleavage sites were studied as substrates of apoptotic caspases 3, 7 and 8. Peptides containing phosphorylated serine residues at P4 and P1' positions were found to be substantially less susceptible towards proteolysis as compared with the serine-containing analogues, while phosphoserine at P3 did not have a substantial effect. P1 serine as well as P1-phosphorylated, serine-containing analogues of an oligopeptide representing the poly(ADP-ribose) polymerase cleavage site of caspase-3 were not hydrolysed by any of these enzymes, whereas the P1 aspartate-containing peptides were efficiently hydrolysed. These findings were interpreted with the aid of molecular modelling. Our results suggest that cleavage-site phosphorylation in certain positions could be disadvantageous or detrimental with respect to cleavability by caspases. Cleavage-site phosphorylation may therefore provide a regulatory mechanism to protect substrates from caspase-mediated degradation.
半胱天冬酶是凋亡性细胞死亡的重要介质。半胱天冬酶的几种细胞蛋白质底物在切割位点区域含有潜在的磷酸化位点,其中一些位点已被证实发生了磷酸化。由于磷酸化可能会显著影响底物对蛋白水解的敏感性,因此研究了代表此类切割位点的磷酸化、非磷酸化和取代寡肽作为凋亡半胱天冬酶3、7和8的底物。与含丝氨酸的类似物相比,在P4和P1'位置含有磷酸化丝氨酸残基的肽对蛋白水解的敏感性显著降低,而P3处的磷酸丝氨酸没有显著影响。代表半胱天冬酶-3的聚(ADP-核糖)聚合酶切割位点的寡肽的P1丝氨酸以及P1磷酸化、含丝氨酸的类似物均未被这些酶中的任何一种水解,而含P1天冬氨酸的肽则被有效水解。这些发现借助分子建模进行了解释。我们的结果表明,某些位置的切割位点磷酸化对于半胱天冬酶的可切割性可能是不利的或有害的。因此,切割位点磷酸化可能提供一种调节机制,以保护底物免受半胱天冬酶介导的降解。