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Apoptosis Signaling Pathway

The apoptosis pathway maintains the balance between cell creation and destruction in an organism. Apoptosis can be initiated from within the cell (intrinsic pathway) or externally (extrinsic pathway), leading to the activation of caspase proteins, which execute the programmed cell death process.

Apoptosis Signaling Pathway

Pathway Summary

Apoptosis is a coordinated, energy-dependent process that involves the activation of a group of cysteine proteases called caspases and a cascade of events that link the initiating stimuli to programmed cell death. Caspases in apoptosis are broadly divided into initiators (caspases 2, 8, 9 and 10) and executioners (caspases 3, 6 and 7). The two main pathways of apoptosis are the intrinsic and extrinsic pathways. Each pathway requires specific triggers to initiate a cascade of molecular events that converge at the stage of caspase 3 activation. The activation of caspase 3 in turn triggers an execution pathway resulting in characteristic cytomorphological features including cell shrinkage, membrane blebbing, chromatin condensation and DNA fragmentation.The intrinsic signaling pathways that initiate apoptosis involve non-receptor-mediated intracellular signals (e.g. DNA damage, radiation) that cause changes in the inner mitochondrial membrane. The end result is a change in mitochondrial transmembrane potential and release of two main groups of pro-apoptotic proteins from the intermembrane space into the cytosol. The first group consists of cytochrome c (CYTC), SMAC/DIABLO, and the serine protease high temperature requirement protein A2 (HTRA2/OMI). These proteins activate the caspase-dependent mitochondrial pathway. CYTC binds and activates apoptotic peptidase activating factor 1(APAF-1) as well as procaspase-9, forming an apoptosome leading to caspase-9 activation. SMAC/DIABLO and HTRA2/OMI promote apoptosis by inhibiting IAP (inhibitors of apoptosis proteins) activity. The second group of pro-apoptotic proteins that are released from the mitochondria during apoptosis include AIF and endonuclease G. These translocate to the nucleus and cause DNA fragmentation. The regulation of these apoptotic mitochondrial events occurs through members of the BCL-2 family of proteins. The BCL-2 family of proteins governs mitochondrial membrane permeability and can be either pro-apoptotic or anti-apoptotic. Some of the anti-apoptotic proteins include BCL-2, BCL-X and BCL-XL while the pro-apoptotic proteins include BCL-10, BAX, BAK and BID. The main mechanism of action of the BCL-2 family of proteins is the regulation of CYTC release from the mitochondria, which in turn activates caspase 9 and eventually caspase 3.The extrinsic signaling pathways that initiate apoptosis involve transmembrane receptor-mediated interactions. These involve death receptors that are members of the tumor necrosis factor (TNF) receptor gene superfamily. The activation of these receptors triggers caspase 8 or 10 which can then activate the execution pathway. Alternatively, triggered caspase 8 or 10 could result in the activation of the pro apoptotic proteins BID or BAX (via tumor suppressor protein p53) resulting in a cross talk with the mitochondrial or intrinsic pathway of apoptosis.This pathway highlights the key molecular events involved in triggering apoptosis.

Apoptosis Signaling Pathway Genes list

Explore Genes related to Apoptosis Signaling Pathway
ACIN1
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Human
apoptotic chromatin condensation inducer 1
AIFM1
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Human
apoptosis inducing factor mitochondria associated 1
APAF1
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Human
apoptotic peptidase activating factor 1
BAD
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Human
BCL2 associated agonist of cell death
BAK1
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Human
BCL2 antagonist/killer 1
BAX
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Human
BCL2 associated X, apoptosis regulator
BCL2
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Human
BCL2 apoptosis regulator
BCL2A1
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Human
BCL2 related protein A1
BCL2L10
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Human
BCL2 like 10
BCL2L11
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Human
BCL2 like 11
BID
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Human
BH3 interacting domain death agonist
BIRC2
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Human
baculoviral IAP repeat containing 2
BIRC3
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Human
baculoviral IAP repeat containing 3
BIRC6
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Human
baculoviral IAP repeat containing 6
CAPN1
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Human
calpain 1
CAPN10
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Human
calpain 10
CAPN11
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Human
calpain 11
CAPN2
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Human
calpain 2
CAPN3
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Human
calpain 3
CAPN5
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Human
calpain 5
CAPN6
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Human
calpain 6
CAPN7
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Human
calpain 7
CAPN8
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Human
calpain 8
CAPN9
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Human
calpain 9
CAPNS1
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Human
calpain small subunit 1
CASP10
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Human
caspase 10
CASP12
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Human
caspase 12 (gene/pseudogene)
CASP2
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Human
caspase 2
CASP3
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Human
caspase 3
CASP6
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Human
caspase 6
CASP7
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Human
caspase 7
CASP8
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Human
caspase 8
CASP9
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Human
caspase 9
CDK1
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Human
cyclin dependent kinase 1
CHUK
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Human
component of inhibitor of nuclear factor kappa B kinase complex
CYC1
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Human
cytochrome c1
CYCS
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Human
cytochrome c, somatic
DFFA
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Human
DNA fragmentation factor subunit alpha
DFFB
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Human
DNA fragmentation factor subunit beta
DIABLO
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Human
diablo IAP-binding mitochondrial protein
ELP1
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Human
elongator acetyltransferase complex subunit 1
ENDOG
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Human
endonuclease G
ERAS
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Human
ES cell expressed Ras
FAS
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Human
Fas cell surface death receptor
FASLG
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Human
Fas ligand
GAS2
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Human
growth arrest specific 2
HRAS
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Human
HRas proto-oncogene, GTPase
HTRA2
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Human
HtrA serine peptidase 2
IKBKB
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Human
inhibitor of nuclear factor kappa B kinase subunit beta
IKBKE
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Human
inhibitor of nuclear factor kappa B kinase subunit epsilon
IKBKG
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Human
inhibitor of nuclear factor kappa B kinase regulatory subunit gamma
KRAS
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Human
KRAS proto-oncogene, GTPase
LMNA
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Human
lamin A/C
MAP2K1
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Human
mitogen-activated protein kinase kinase 1
MAP2K2
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Human
mitogen-activated protein kinase kinase 2
MAP2K4
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Human
mitogen-activated protein kinase kinase 4
MAP2K7
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Human
mitogen-activated protein kinase kinase 7
MAP3K14
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Human
mitogen-activated protein kinase kinase kinase 14
MAP3K5
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Human
mitogen-activated protein kinase kinase kinase 5
MAP4K4
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Human
mitogen-activated protein kinase kinase kinase kinase 4
MAPK1
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Human
mitogen-activated protein kinase 1
MAPK14
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Human
mitogen-activated protein kinase 14
MAPK3
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Human
mitogen-activated protein kinase 3
MAPK8
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Human
mitogen-activated protein kinase 8
MCL1
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Human
MCL1 apoptosis regulator, BCL2 family member
MRAS
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Human
muscle RAS oncogene homolog
NAIP
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Human
NLR family apoptosis inhibitory protein
NFKB1
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Human
nuclear factor kappa B subunit 1
NFKB2
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Human
nuclear factor kappa B subunit 2
NFKBIA
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Human
NFKB inhibitor alpha
NFKBIB
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Human
NFKB inhibitor beta
NFKBID
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Human
NFKB inhibitor delta
NFKBIE
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Human
NFKB inhibitor epsilon
NRAS
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Human
NRAS proto-oncogene, GTPase
PARP1
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Human
poly(ADP-ribose) polymerase 1
PLCG1
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Human
phospholipase C gamma 1
PLCG2
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Human
phospholipase C gamma 2
PRKCA
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Human
protein kinase C alpha
PRKCE
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Human
protein kinase C epsilon
PRKCQ
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Human
protein kinase C theta
RAF1
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Human
Raf-1 proto-oncogene, serine/threonine kinase
RALA
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Human
RAS like proto-oncogene A
RALB
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Human
RAS like proto-oncogene B
RAP1A
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Human
RAP1A, member of RAS oncogene family
RAP1B
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Human
RAP1B, member of RAS oncogene family
RAP2A
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Human
RAP2A, member of RAS oncogene family
RAP2B
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Human
RAP2B, member of RAS oncogene family
RASD1
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Human
ras related dexamethasone induced 1
RASD2
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Human
RASD family member 2
REL
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Human
REL proto-oncogene, NF-kB subunit
RELA
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Human
RELA proto-oncogene, NF-kB subunit
RELB
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Human
RELB proto-oncogene, NF-kB subunit
ROCK1
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Human
Rho associated coiled-coil containing protein kinase 1
RPS6KA1
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Human
ribosomal protein S6 kinase A1
RRAS
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Human
RAS related
RRAS2
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Human
RAS related 2
SPTAN1
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Human
spectrin alpha, non-erythrocytic 1
TNF
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Human
tumor necrosis factor
TNFRSF1A
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Human
TNF receptor superfamily member 1A
TNFRSF1B
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Human
TNF receptor superfamily member 1B
TP53
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Human
tumor protein p53
XIAP
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Human
X-linked inhibitor of apoptosis

Products related to Apoptosis Signaling Pathway

Explore products related to Apoptosis Signaling Pathway
QuantiNova LNA Probe PCR Focus Panel Human Apoptosis
GeneGlobe ID: UPHS-012Z | Cat. No.: 249955 | QuantiNova LNA Probe PCR Focus Panels
QuantiNova LNA Probe PCR Focus Panel
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RT² Profiler™ PCR Array Human Apoptosis
GeneGlobe ID: PAHS-012Z | Cat. No.: 330231 | RT2 Profiler PCR Arrays
RT2 Profiler PCR Array
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QuantiNova LNA PCR Focus Panel Human Apoptosis
GeneGlobe ID: SBHS-012Z | Cat. No.: 249950 | QuantiNova LNA PCR Focus Panels
QuantiNova LNA PCR Focus Panel
Product Specification
QuantiNova LNA Probe PCR Focus Panel Human Cell Death PathwayFinder
GeneGlobe ID: UPHS-212Z | Cat. No.: 249955 | QuantiNova LNA Probe PCR Focus Panels
QuantiNova LNA Probe PCR Focus Panel
Product Specification
RT² Profiler™ PCR Array Human Cell Death PathwayFinder
GeneGlobe ID: PAHS-212Z | Cat. No.: 330231 | RT2 Profiler PCR Arrays
RT2 Profiler PCR Array
Product Specification
QuantiNova LNA PCR Focus Panel Human Cell Death PathwayFinder
GeneGlobe ID: SBHS-212Z | Cat. No.: 249950 | QuantiNova LNA PCR Focus Panels
QuantiNova LNA PCR Focus Panel
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The stages of apoptosis: initiation and execution

Apoptosis can be divided into two general stages: initiation and execution. In the initiation stage of programmed cell death, the cell receives a signal that activates the apoptosis pathway, either from internal stresses or extracellular triggers. In the execution stage, a series of molecular and cellular changes unfold, ultimately resulting in death of the cell.

The execution stage of apoptosis can be broken down further into three distinct phases: early, mid and late.

  • In the early phase initiator caspases (caspase-8, caspase-9) activate the executioner caspases (caspase-3, caspase-6 and caspase-7). These caspases cleave hundreds of protein substrates to disassemble the cell. One critical event is cleavage of ICAD, releasing CAD (caspase-activated DNase) to fragment the cell’s DNA.
  • During the mid phase, DNA condenses and begins to fragment, the cytoskeleton breaks down and the cell shrinks. The plasma membrane forms bubble-like protrusions referred to as blebs or blebbing.
  • In the late phase, the cell is dismantled into membrane-enclosed apoptotic bodies, which are then engulfed and cleared by phagocytes without triggering inflammation.

This stage is also regulated by Inhibitors of Apoptosis Proteins (IAPs), such as XIAP, which bind and inhibit active caspases. In intrinsic apoptosis, mitochondrial proteins like SMAC/DIABLO and HTRA2 are released to neutralize IAPs, ensuring full caspase activation.

Apoptosis utilizes two main pathways with different mechanisms: intrinsic and extrinsic.  

The intrinsic pathway of apoptosis: The role of Bcl-2, mitochondria and cytochrome c

The intrinsic apoptosis pathway, also known as mitochondrial-mediated apoptosis, is a central mechanism of programmed cell death. It is activated by internal stress signals such as DNA damage, radiation, oxidative stress or cytokine withdrawal. This pathway relies on precise cell death regulation via interactions between Bcl-2 family proteins, mitochondrial integrity and the controlled release of apoptogenic factors.

Normally, anti-apoptotic Bcl-2 family proteins (including  Bcl-2, Bcl-xL, Mcl-1) maintain mitochondrial outer membrane stability and suppress pro-apoptotic proteins like BAX and BAK.

When stress signals activate the intrinsic of apoptosis pathway, BAX and BAK oligomerize within the mitochondrial outer membrane, causing mitochondrial outer membrane permeabilization (MOMP). This process allows cytochrome c to escape from the mitochondrial intermembrane space into the cytosol.

Once in the cytosol, cytochrome c binds to apoptotic protease-activating factor 1 (Apaf-1) in the presence of dATP, forming the apoptosome. The apoptosome functions as a signaling platform that activates initiator caspase-9, which subsequently triggers executioner caspases such as caspase-3. This caspase activation cascade marks the execution phase of apoptosis and results in orderly cell dismantling.

Regulation of the intrinsic apoptosis pathway involves multiple molecular checkpoints. The tumor suppressor p53 promotes apoptosis by upregulating pro-apoptotic genes (BAX, PUMA, NOXA) and repressing anti-apoptotic Bcl-2 family members in response to DNA damage. In contrast, cell survival pathways like PI3K/Akt and MAPK/ERK can inhibit apoptosis by phosphorylating and inactivating pro-apoptotic proteins.

Additionally, endoplasmic reticulum (ER) stress can feed into the intrinsic pathway. Persistent activation of ER stress sensors (PERK, IRE1, ATF6) leads to induction of the transcription factor CHOP, which increases pro-apoptotic Bcl-2 family expression, further promoting MOMP and cytochrome c release.

In conclusion, the intrinsic apoptosis pathway integrates stress signals through a network of Bcl-2 family protein regulation, mitochondrial outer membrane permeabilization, apoptosome assembly and caspase activation to determine cell fate. Its precise control is essential for tissue homeostasis and the prevention of uncontrolled cell death or tumorigenesis.

The extrinsic pathway of apoptosis 

The extrinsic apoptosis pathway is triggered by extracellular signals from other cells, often mediated by members of the tumor necrosis factor (TNF) receptor family, such as FAS (CD95), TNFR1 (TNFRSF1A) and TRAIL-R (TNFRSF10A).

When these receptors are engaged by their ligands (e.g., FasL, TNF-α, TRAIL), they recruit adaptor proteins such as FADD and TRADD through their death domains. These adaptors scaffold the assembly of the Death-Inducing Signaling Complex (DISC), which brings procaspase-8 and/or procaspase-10 into close proximity, enabling their activation through death effector domain (DED) interactions.

Once activated, caspase-8 initiates the executioner caspase cascade (caspase-3, -6 and -7). Caspase-8 can also cleave the pro-apoptotic BH3-only protein BID into truncated BID (tBID), which translocates to the mitochondria to activate BAX and BAK. This serves as a key point of crosstalk between the extrinsic and intrinsic apoptosis pathways, amplifying the death signal through mitochondrial permeabilization.

It is important to note that TNFR1 signaling can also activate NF-κB-mediated survival pathways through TRADD and other intermediates. Only when FADD is recruited does the pathway switch fully toward apoptosis.

Apoptosis in the context of immunity and cellular stress

Apoptosis is closely tied to immune regulation and stress responses. Cytotoxic T lymphocytes (CTLs) and natural killer (NK) cells induce apoptosis in infected or abnormal cells via two additional extrinsic mechanisms:

Perforin/granzyme delivery: Perforin forms pores in the target cell membrane, allowing granzyme B to enter and directly activate caspases or cleave BID, linking to the intrinsic pathway of apoptosis. Granzyme A can trigger a caspase-independent form of apoptosis through mitochondrial and ER stress pathways.

FasL–Fas interactions: CTLs express Fas ligand (FasL) to activate death receptors on target cells, initiating the extrinsic pathway of apoptosis through caspase-8.

Chronic ER stress can also induce apoptosis independently by activating CHOP through PERK, IRE1 and ATF6.

Finally, apoptosis does not occur in isolation. It shares regulatory networks with other forms of cell death such as autophagy and ferroptosis, which can converge or diverge depending on the cellular context. Mitochondria act as key signaling hubs, integrating inputs from reactive oxygen species, metabolic stress and death receptor pathways.

 

References

  1. Mustafa M, Ahmad R, Tantry IQ, Ahmad W, Siddiqui S, et al. Apoptosis: A comprehensive overview of signaling pathways, morphological changes, and physiological significance and therapeutic implications. Cells. 2024;13(22):1838.
  2. Green DR, Llambi F. Cell death signaling. Cold Spring Harb Perspect Biol. 2015;7(12):a006080.
  3. Tian X, Srinivasan PR, Tajiknia V, Sanchez AF, Uruchurtu S, et al. Targeting apoptotic pathways for cancer therapy. J Clin Invest. 2024;134(14):e179570.