Related Experiment Video
Updated: Jun 1, 2026

Measuring Caspase Activity Using a Fluorometric Assay or Flow Cytometry
Published on: March 24, 2023
Caspase-3 deficiency reveals a physiologic role for Smac/DIABLO in regulating programmed cell death
K K W Hui1, A K Kanungo, A J Elia
1Graduate Department of Pharmaceutical Sciences, Leslie Dan Faculty of Pharmacy, University of Toronto, Ontario, Canada.
Abstract:
Inhibitor of apoptosis protein (IAP)-binding proteins such as Grim, Reaper and HID have been shown to exert a critical role in regulating caspase activity in species such as D. Melanogaster. However, a comparable role for the mammalian homologue of second mitochondrial-derived activator of caspase/direct IAP-binding protein with low pI (Smac/DIABLO) has yet to be clearly established in vivo. Despite tremendous interest in recent years in the use of so-called Smac mimetics to enhance chemotherapeutic potency, our understanding of the true physiologic nature of Smac/DIABLO in regulating programmed cell death (PCD) remains elusive. In order to critically evaluate the role of Smac/DIABLO in regulating mammalian PCD, deficiency of caspase-3 was used as a sensitizing mutation in order to reduce aggregate levels of executioner caspase activity. We observe that combinatorial deletion of Diablo and Casp3, but neither alone, results in perinatal lethality in mice. Consistent with this, examination of both intrinsic and extrinsic forms of PCD in lines of murine embryonic fibroblasts demonstrate that loss of Smac/DIABLO alters both caspase-dependent and caspase-independent intrinsic PCD. Comparative small interfering RNA inhibition studies of X-linked inhibitor of apoptosis, cellular inhibitor of apoptosis (cIAP)-1, cIAP-2, caspase-6 and -7 in both wild-type and Casp3/Diablo DKO mouse embryonic fibroblast lineages, supports a model in which Smac/DIABLO acts to enhance the early phase executioner caspase activity through the modulation of inhibitory interactions between specific IAP family members and executioner caspases-3 and -7.
Insights
Mammalian Smac/DIABLO is crucial for programmed cell death (PCD). Combined deficiency of Smac/DIABLO and Caspase-3 causes perinatal lethality in mice, revealing Smac/DIABLO
Area of Science:
- Cell Biology
- Molecular Biology
- Genetics
Background:
- Inhibitor of apoptosis proteins (IAPs) regulate caspases.
- The role of mammalian Smac/DIABLO in programmed cell death (PCD) in vivo is not fully understood.
- Smac mimetics are investigated for cancer therapy, but Smac/DIABLO's physiological function needs clarification.
Purpose of the Study:
- To elucidate the in vivo role of Smac/DIABLO in mammalian programmed cell death (PCD).
- To investigate the interplay between Smac/DIABLO, caspases, and IAPs in regulating cell death pathways.
Main Methods:
- Utilized a caspase-3 deficient mouse model as a sensitizing mutation.
- Generated and analyzed double knockout (DKO) mice lacking both Caspase-3 and Smac/DIABLO.
- Examined intrinsic and extrinsic PCD in Smac/DIABLO-deficient murine embryonic fibroblasts (MEFs).
- Conducted small interfering RNA (siRNA) inhibition studies on IAPs and caspases in wild-type and DKO MEFs.
Main Results:
- Combinatorial deletion of Smac/DIABLO and Caspase-3 led to perinatal lethality in mice.
- Loss of Smac/DIABLO significantly altered both caspase-dependent and caspase-independent intrinsic PCD.
- Smac/DIABLO was found to enhance early executioner caspase activity by modulating IAP interactions.
Conclusions:
- Smac/DIABLO plays a critical, non-redundant role in mammalian PCD regulation.
- Smac/DIABLO functions by antagonizing IAPs, thereby promoting executioner caspase activity.
- This study provides a mechanistic understanding of Smac/DIABLO's function in vivo, relevant to cancer therapeutics.
Related Concept Videos
Caspases
The Extrinsic Apoptotic Pathway
The Intrinsic Apoptotic Pathway
Cellular Injury V: Apoptosis and Autophagy
Apoptosis
Overview of Cell Death
Cell death was observed in the early 19th century, but there was no experimental evidence to prove it. In 1842, Carl Vogt first discovered cell death in a metamorphic toad; however, it was not termed ‘cell death.’ Scientists discovered different cell death pathways only in the 20th century...

