Programmed Cell Death of Endothelial Cells in Ischemic Heart Disease: Mechanism and Potential Cell and Gene Therapeutic Prospects
Abstract
1. Introduction
2. The Molecular Mechanism of PCD of ECs
2.1. Apoptosis of ECs
2.2. Pyroptosis of ECs
2.3. Necroptosis of ECs
2.4. PANoptosis of ECs
2.5. Ferroptosis of ECs
2.6. Autophagy of ECs
3. PCD of ECs Plays a Pivotal Role in the Development and Progression of IHD
3.1. Programmed Cell Death of ECs in AS
3.1.1. Apoptosis of ECs in AS
3.1.2. Pyroptosis of ECs in AS
3.1.3. Necroptosis of ECs in AS
3.1.4. PANoptosis of ECs in AS
3.1.5. Ferroptosis of ECs in AS
3.1.6. Autophagy of ECs in AS
3.1.7. Crosstalk Between Different Programmed Cell Death in AS
3.2. PCD of ECs in MI
3.2.1. Apoptosis of ECs in MI
3.2.2. Pyroptosis of ECs in MI
3.2.3. Necroptosis of ECs in MI
3.2.4. Ferroptosis of ECs in MI
3.2.5. Autophagy of ECs in MI
3.3. PCD of ECs in Myocardial I/R Injury
3.3.1. Apoptosis of ECs in Myocardial I/R Injury
3.3.2. Pyroptosis of ECs in Myocardial I/R Injury
3.3.3. Necroptosis of ECs in Myocardial I/R Injury
3.3.4. Ferroptosis of ECs in Myocardial I/R Injury
3.3.5. Autophagy of ECs in Myocardial I/R Injury
4. Cell and Gene Therapy for Protecting ECs Function in IHD
4.1. Cell and Gene Therapy for Protecting ECs Function in AS
4.2. Cell and Gene Therapy for Protecting EC Function in MI and Myocardial I/RI
4.3. Limitations and Future Directions in Cell and Gene Therapy
5. Perspective
6. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Conflicts of Interest
Abbreviations
| IHD | Ischemic heart disease |
| AS | Atherosclerosis |
| MI | Myocardial infarction |
| I/R | Ischemia/reperfusion |
| PCD | Programmed cell death |
| ECs | Endothelial cells |
| Apaf-1 | Apoptotic protease-activating factor-1 |
| ATP | Adenosine triphosphate |
| Nrf2 | Nuclear factor erythroid 2-related factor 2 |
| HO-1 | Heme oxygenase-1 |
| ROS | Reactive oxygen species |
| ER | Endoplasmic reticulum |
| TNFR | Tumor necrosis factor receptor |
| DISC | Death-inducing signaling complex |
| GSDMD | Gasdermin D |
| NT | N-terminal fragment |
| IL | Interleukin |
| LPS | Lipopolysaccharide |
| RIPK | Receptor-interacting protein kinase |
| MLKL | Mixed-lineage kinase domain-like protein |
| DAMPs | Damage-associated molecular patterns |
| ZBP1 | Z-DNA binding protein 1 |
| NLRP | Nod-like receptor protein |
| AIM2 | Absent in melanoma 2 |
| FADD | Fas-associated death domain |
| ASC | Apoptosis-associated speck-like protein containing a CARD |
| PUFA | Polyunsaturated fatty acid |
| TfR1 | Transferrin receptor 1 |
| GPX4 | Glutathione peroxidase 4 |
| CMA | Chaperone-mediated autophagy |
| mTOR | Mammalian target of rapamycin |
| mTORC1 | Mammalian target of rapamycin complex 1 |
| ULK1 | UNC-51-like autophagy receptor kinase 1 |
| PI3K | Phosphatidylinositol 3-kinase |
| PI3P | Phosphatidylinositol-3-phosphate |
| LC3-PE | Microtubule-associated protein 1 light chain 3-phosphatidylethanolamine |
| AMPK | AMP-activated protein kinase |
| MAPK | Mitogen-activated protein kinase |
| JNK | c-Jun N-terminal kinase |
| miRNAs | MicroRNAs |
| PARP1 | Poly(ADP-ribose) polymerase 1 |
| LDL | Low-density lipoprotein |
| ox-LDL | Oxidized low-density lipoprotein |
| BAX | BCL-2-associated X protein |
| BCL-2 | B-cell lymphoma 2 |
| NF-κB | Nuclear factor kappa-B |
| JAK/STAT | Janus kinase/signal transducer and activator of transcription |
| GRP78 | Glucose-regulated protein 78 |
| CHOP | C/EBP homologous protein |
| PERK | Protein kinase R-like endoplasmic reticulum kinase |
| IRE1α | Inositol-requiring enzyme 1α |
| VCAM-1 | Vascular cell adhesion molecule-1 |
| ICAM-1 | Intercellular adhesion molecule-1 |
| ERα/ERβ | Estrogen receptor alpha/beta |
| NLRP3 | NLR family pyrin domain containing 3 |
| STAT1 | Signal transducer and activator of transcription 1 |
| TMAO | Trimethylamine N-oxide |
| MBOAT2 | Membrane bound O-acyltransferase domain containing 2 |
| SDHB | Succinate dehydrogenase complex iron sulfur subunit B |
| Rnd3 | Rho family GTPase 3 |
| TRAF6 | TNF receptor associated factor 6 |
| AQP1 | Aquaporin-1 |
| Hcy | Homocysteine |
| FABP3 | Fatty acid-binding protein 3 |
| CD36 | Cluster of differentiation 36 |
| GCH1/BH4 | GTP cyclohydrolase I/tetrahydrobiopterin |
| CTRP13 | C1q/TNF-related protein 13 |
| KLF4 | Krüppel-like factor 4 |
| RAP1B | Ras-related protein 1B |
| OSS | Oscillatory shear stress |
| SESN1 | Sestrin 1 |
| ARG2 | Arginase 2 |
| RICTOR | Rapamycin-insensitive companion of mTOR |
| AKT | Protein kinase B |
| CTRP9 | C1q/TNF-related protein 9 |
| CuONPs | Copper oxide nanoparticles |
| TTM | Tetrathiomolybdate |
| NOX | NADPH oxidase |
| eNOS | Endothelial nitric oxide synthase |
| NAD+ | Nicotinamide adenine dinucleotide |
| CMECs | Cardiac microvascular endothelial cells |
| MVO | Microvascular obstruction |
| IRF1 | Interferon regulatory factor 1 |
| HDAC11 | Histone deacetylase 11 |
| ERG | ETS-related gene |
| Fis1 | Mitochondrial fission protein 1 |
| CRT | Calreticulin |
| IP3Rs | Inositol 1,4,5-trisphosphate receptors |
| MCU | Mitochondrial calcium uniporter |
| TRPV4 | Transient receptor potential vanilloid 4 |
| PKC | Protein kinase C |
| RhoA | Ras homolog family member A |
| MLC | Myosin light chain |
| YAP | Yes-associated protein |
| PDCD4 | Programmed cell death 4 |
| GZMB | Granzyme B |
| PTGS2 | Prostaglandin-endoperoxide synthase 2 |
| NEAT1 | Nuclear paraspeckle assembly transcript 1 |
| BRCC3 | BRCA1/BRCA2-containing complex subunit 3 |
| HSP90 | Heat shock protein 90 |
| EZH2 | Enhancer of zeste homolog 2 |
| USP5 | Ubiquitin specific peptidase 5 |
| HMGB1 | High mobility group box 1 |
| CypD | Cyclosporin D |
| AIF | Apoptosis-inducing factor |
| SERCA | Sarco/endoplasmic reticulum Ca2+-ATPase |
| PEDF | Pigment epithelium-derived factor |
| MSCs | Mesenchymal stem cells |
| EPCs | Endothelial progenitor cells |
| TGF-β | Transforming growth factor-beta |
| EVs | Extracellular vesicles |
| C-MSCs | Cardiac mesenchymal stem cells |
| N1ICD | Notch1 intracellular domain |
| LOXL2 | Lysyl oxidase-like 2 |
| PTEN | Phosphatase and tensin homolog |
| ADSCs | Adipose-derived stem cells |
| HDMECs | Human dermal microvascular endothelial cells |
| FOXO1 | Forkhead box O1 |
| VEGF | Vascular endothelial growth factor |
| BMP6 | Bone morphogenetic protein 6 |
| VEGFR2 | Vascular endothelial growth factor receptor 2 |
| ELA | Elabela |
| MEIS1 | Meis homeobox 1 |
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| Regulatory Factor or Pathway | Programmed Cell Death | Disease | In Vitro/Vivo | Potential Regulatory Mechanisms | Reference |
|---|---|---|---|---|---|
| PERK | Apoptosis | AS | In vitro and vivo | Activating CHOP | [69] |
| MBOAT2 | Pyroptosis | AS | In vitro and vivo | Activating NLRP3 inflammasome | [76] |
| IKKε/STAT1 | Pyroptosis | AS | In vitro and vivo | Activating NLRP3 inflammasome | [77] |
| Rnd3/TRAF6 | Pyroptosis | AS | In vitro and vivo | Activating the NF-κB/NLRP3 axis | [78] |
| CCL14 | Pyroptosis | AS | In vitro and vivo | Activating the NF-κB/NLRP3 axis | [79] |
| USP5 | Pyroptosis | MI/RI | In vitro and vivo | Stabilizes RIPK1 | [80] |
| HMGB1 | Pyroptosis | MI/RI | In vitro and vivo | Activating AIM2 inflammasome | [81] |
| AQP1 | Necroptosis | AS | In vitro and vivo | Suppress RIPK3 and MLKL expression | [82] |
| CTRP13 | Ferroptosis | AS | In vitro and vivo | Activating GCH1/BH4 Inhibiting KLF4 expression | [83,84] |
| DDHD2 | Ferroptosis | AS | In vitro and vivo | Activating Nrf2/GPX4 pathway | [85] |
| ALDH2 | Ferroptosis | MI | In vitro and vivo | Activating xCT | [86] |
| FABP3 | Ferroptosis | AS | In vitro | Anhibiting GPX4 | [87] |
| GUCY1A1 | Ferroptosis | MI/RI | In vitro and vivo | Activating LDHA/GPX4 | [88] |
| P38 | Ferroptosis | MI | In vitro and vivo | Activating NCOA4 | [89] |
| SESN1 | Autophagy | AS | In vitro | Activating AMPK | [90] |
| ARG2 | Autophagy | AS | In vitro and vivo | Activating AMPK | [91] |
| CAV1 | Autophagy | AS | In vitro and vivo | Suppress ATG5-ATG12 complex | [92] |
| AGGF1 | Autophagy | MI | In vitro and vivo | Promote Becn1-Vps34-ATG14 complex | [93] |
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Sun, Z.; Chen, L.; Cao, Y.; Dai, B.; Wang, L.; Zhang, L. Programmed Cell Death of Endothelial Cells in Ischemic Heart Disease: Mechanism and Potential Cell and Gene Therapeutic Prospects. Bioengineering 2026, 13, 661. https://doi.org/10.3390/bioengineering13060661
Sun Z, Chen L, Cao Y, Dai B, Wang L, Zhang L. Programmed Cell Death of Endothelial Cells in Ischemic Heart Disease: Mechanism and Potential Cell and Gene Therapeutic Prospects. Bioengineering. 2026; 13(6):661. https://doi.org/10.3390/bioengineering13060661
Chicago/Turabian StyleSun, Zijia, Lei Chen, Yingying Cao, Bingyang Dai, Lintao Wang, and Ling Zhang. 2026. "Programmed Cell Death of Endothelial Cells in Ischemic Heart Disease: Mechanism and Potential Cell and Gene Therapeutic Prospects" Bioengineering 13, no. 6: 661. https://doi.org/10.3390/bioengineering13060661
APA StyleSun, Z., Chen, L., Cao, Y., Dai, B., Wang, L., & Zhang, L. (2026). Programmed Cell Death of Endothelial Cells in Ischemic Heart Disease: Mechanism and Potential Cell and Gene Therapeutic Prospects. Bioengineering, 13(6), 661. https://doi.org/10.3390/bioengineering13060661

