3r6l Citations

Structural and enzymatic insights into caspase-2 protein substrate recognition and catalysis.

J Biol Chem 286 34147-54 (2011)
Related entries: 3r5j, 3r6g, 3r7b, 3r7n, 3r7s

Cited: 20 times
EuropePMC logo PMID: 21828056

Abstract

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.

Reviews - 3r6l mentioned but not cited (1)

  1. Small Molecule Active Site Directed Tools for Studying Human Caspases. Poreba M, Szalek A, Kasperkiewicz P, Rut W, Salvesen GS, Drag M. Chem Rev 115 12546-12629 (2015)

Articles - 3r6l mentioned but not cited (1)



Reviews citing this publication (6)

  1. Caspases and their substrates. Julien O, Wells JA. Cell Death Differ 24 1380-1389 (2017)
  2. Caspase substrates and inhibitors. Poreba M, Strózyk A, Salvesen GS, Drag M. Cold Spring Harb Perspect Biol 5 a008680 (2013)
  3. The Role of Caspase-2 in Regulating Cell Fate. Vigneswara V, Ahmed Z. Cells 9 E1259 (2020)
  4. The p53-caspase-2 axis in the cell cycle and DNA damage response. Lim Y, Dorstyn L, Kumar S. Exp Mol Med 53 517-527 (2021)
  5. Resurrection of ancestral effector caspases identifies novel networks for evolution of substrate specificity. Grinshpon RD, Shrestha S, Titus-McQuillan J, Hamilton PT, Swartz PD, Clark AC. Biochem J 476 3475-3492 (2019)
  6. Look for the Scaffold: Multifaceted Regulation of Enzyme Activity by 14-3-3 Proteins. Obsilova V, Obsil T. Physiol Res 73 S401-S412 (2024)

Articles citing this publication (12)