Department of Pharmaceutical Chemistry, Small Molecule Discovery Center, University of California, San Francisco, California 94158, USA.
J Biol Chem. 2011 Sep 30;286(39):34147-54. doi: 10.1074/jbc.M111.247627. Epub 2011 Aug 2.
Caspase-2, the most evolutionarily conserved member in the human caspase family, may play important roles in stress-induced apoptosis, cell cycle regulation, and tumor suppression. In biochemical assays, caspase-2 uniquely prefers a pentapeptide (such as VDVAD) rather than a tetrapeptide, as required for efficient cleavage by other caspases. We investigated the molecular basis for pentapeptide specificity using peptide analog inhibitors and substrates that vary at the P5 position. We determined the crystal structures of apo caspase-2, caspase-2 in complex with peptide inhibitors VDVAD-CHO, ADVAD-CHO, and DVAD-CHO, and a T380A mutant of caspase-2 in complex with VDVAD-CHO. Two residues, Thr-380 and Tyr-420, are identified to be critical for the P5 residue recognition; mutation of the two residues reduces the catalytic efficiency by about 4- and 40-fold, respectively. The structures also provide a series of snapshots of caspase-2 in different catalytic states, shedding light on the mechanism of capase-2 activation, substrate binding, and catalysis. By comparing the apo and inhibited caspase-2 structures, we propose that the disruption of a non-conserved salt bridge between Glu-217 and the invariant Arg-378 is important for the activation of caspase-2. These findings broaden our understanding of caspase-2 substrate specificity and catalysis.
半胱天冬酶-2(Caspase-2)是人类半胱天冬酶家族中进化上最保守的成员,可能在应激诱导的细胞凋亡、细胞周期调控和肿瘤抑制中发挥重要作用。在生化测定中,半胱天冬酶-2 独特地偏爱五肽(如 VDVAD),而不是其他半胱天冬酶所需的四肽,以实现有效的切割。我们使用在 P5 位置变化的肽类似物抑制剂和底物研究了五肽特异性的分子基础。我们确定了 apo 半胱天冬酶-2、与肽抑制剂 VDVAD-CHO、ADVAD-CHO 和 DVAD-CHO 复合的半胱天冬酶-2 以及与 VDVAD-CHO 复合的 T380A 突变体的晶体结构。鉴定出两个残基 Thr-380 和 Tyr-420 对于 P5 残基识别至关重要;这两个残基的突变分别使催化效率降低约 4 倍和 40 倍。这些结构还提供了半胱天冬酶-2 处于不同催化状态的一系列快照,揭示了半胱天冬酶-2 激活、底物结合和催化的机制。通过比较 apo 和抑制的半胱天冬酶-2 结构,我们提出 Glu-217 和不变的 Arg-378 之间非保守盐桥的破坏对半胱天冬酶-2 的激活很重要。这些发现拓宽了对半胱天冬酶-2 底物特异性和催化的理解。