Extracellular Vesicle-Mediated Mitochondrial Reprogramming in Cancer
Abstract
:Simple Summary
Abstract
1. Introduction
2. Extracellular Vesicle Release and Cargo in Cancer
2.1. Overview
2.2. Alterations in EV Biogenesis and Release
2.3. Alteration in EV Cargo
3. Mitochondria in Cancer
3.1. Mitochondrial Metabolism
3.2. Mitochondrial Dynamics
3.3. Mitochondrial-Mediated Apoptosis
4. EV Modulation of Mitochondrial Processes in Cancer
4.1. Dysregulating Cellular Energetics
4.1.1. Metabolic Coupling with Cancer-Associated Fibroblasts (CAFs)
4.1.2. Metabolic Coupling with Adipocytes
4.1.3. Metabolic Subjugation of Neighboring Cells
4.2. Resisting Cell Death
4.2.1. Modulation of the Bcl-2 Pathway
4.2.2. Chemotherapy Resistance
4.2.3. Enhancing Cancer Survival and Chemotherapy Resistance through EV Transfer of Functional Mitochondria and Mitochondrial Components
4.3. Avoiding Immune Destruction
4.3.1. Macrophage Mitochondrial Reprogramming in Cancer
4.3.2. EV-Related Immunosuppression of T Cells
4.4. Activating Invasion and Metastasis
4.4.1. Increased Motility and Migration
4.4.2. Intravasation (Trans-Endothelial Migration into Vessels)
5. Nanoparticle-Based Therapeutic Strategies Targeting Mitochondria in Cancer
5.1. Naturally Occurring EVs
5.2. Altered EVs
5.2.1. EVs Enriched with Biological Cargo
5.2.2. EVs Loaded with Exogenous Drugs
6. Conclusions
Author Contributions
Funding
Conflicts of Interest
References
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EV Donor Cell | EV Recipient Cell | EV Cargo | ncRNA Target | Mitochondrial Effect | References |
---|---|---|---|---|---|
Dysregulation of cellular energetics | |||||
Metabolic coupling with CAFs | |||||
Prostate cancer cells | Fibroblasts | miR-424 | n.i. | IDH3a↓, NDUFA4L2(CI)↑→OXPHOS↓ | [84,85] |
CRC cells | Fibroblasts | n.i. | n.i. | ATP5H(CV)↑, IDH2↑, ECH1↑, TUFM↓, ALSDH2↓ | [86] |
Melanoma cells | Fibroblasts | miR-155, miR-210 | n.i. | OXPHOS↓ | [87] |
Lung cancer cells | Fibroblasts | miR-210 | NDUFA4 (CI), SDHD (CII) | SDHD↓ → OXPHOS↓ | [88,89] |
Nasopharyngeal carcinoma cells | Fibroblasts | LMP1 | NA | OXPHOS↓ | [90] |
CAFs | Breast cancer cells | lncRNA SNHG3 | n.i. | OXPHOS↓ | [91] |
CAFs | Prostate cancer cells | miR-22, let7a, miR-125b and metabolites (amino acids, lipids, TCA intermediates) | n.i. | CYTB(CIII)↓, COXI (CIV) ↓→ OXPHOS↓ | [92] |
CAFs | Pancreatic cancer cells | miRNA, TCA metabolites | n.i. | TCA↑ | [93] |
CAFs | CRC cells | miR-92a | n.i. | OXPHOS↓ | [94,95] |
Metabolic coupling with adipocytes | |||||
Breast cancer cells | Adipocytes | miR-155 | PPARγ | UCP1↑ | [96] |
Breast cancer cells | Adipocytes | miR-144, miR-126 | n.i. | UCP1↑, mito matrix density↑ | [97] |
Adipocytes | Melanoma, prostate tumor cells | FAO proteins (ECHA, HCDH), TCA proteins, OXPHOS proteins | NA | Mito number and density↑, FAO↑ | [98] |
Adipocytes | Melanoma cells | FAO enzymes (HCDH, ECHA, HCD2), OXPHOS subunits (NDUA6 and NDUAS2 (CI) and ATPG (CV)), mitochondrial ADP/ATP transporters (ADT1, ADT2 and ADT3), fatty acids | NA | FAO↑, mito activity↑, mito intracellular trafficking↑ | [55] |
Adipocytes | HCC cells | miR-23a/b | Mitochondrial glutaminase | Glutamine metabolism regulation | [99,100] |
Metabolic subjugation of neighboring cells | |||||
Kaposi’s sarcoma-associated herpes virus cells | Uninfected cells | miRNA | n.i. | Mito biogenesis↓, mito respiration↓ | [101] |
Resistance to cell death | |||||
Modulation of the Bcl-2 pathway | |||||
Melanoma cells | Melanoma cells | n.i. | n.i. | Bax↓, Bcl-2↑ | [102] |
Bladder cancer cells | Bladder cancer cells | n.i. | n.i. | Bax↓, Bcl-2↑ | [103] |
Acute myeloid leukemia cells | Acute myeloid leukemia cells | circ_0009910 | miR-5195–3p | Bax↓, Bcl-2↑ | [104] |
Glioma cells | Endothelial cells | lncRNA-CCAT2 | n.i. | Bax↓, Bcl-2↑ | [105] |
MSCs | Multiple myeloma cells | lncRNA LINC00461 | miR-15a/16 | Bcl-2↑ | [106] |
Chemotherapy resistance | |||||
Trastuzamab-resistant breast cancer cells | Trastuzamab-sensitive breast cancer cells | lncRNA snhg14 | n.i. | Bax↓, Bcl-2↑ | [107] |
Gefitinib-resistant esophageal squamous cell carcinoma cells | Esophageal squamous cell carcinoma cells | lncRNA PART1 | miR-129 | Bax↓, Bcl-2↑ | [108] |
Gefitinib-resistant non-small cell lung cancer cells | Gefitinib-sensitive non-small cell lung cancer cells | miR-214 | n.i. | Bax↓, Bcl-2↑ | [109] |
Vincristine-resistant gastric cancer cells | Vincristine-sensitive gastric cancer cells | CLIC1 | NA | Bcl-2↑ | [110] |
Doxorubicin-resistant breast cancer cells | Doxorubicin-sensitive breast cancer cells | Hsp70 | NA | mito damage↑→ OXPHOS↓ | [111] |
Temozolomide-resistant glioblastoma cells | Temozolomide-sensitive glioblastoma cells | Connexin 43 | NA | Bax↓, Bcl-2↑ | [112] |
Gefitinib-treated NSCLC cells | Untreated NSCLC cells | n.i. | n.i. | Bax↓, Bcl-2↑ | [113] |
CAFs | CRC cells | miR-92a-3p | n.i. | Bax↓ | [114] |
Enhancing survival and chemoresistance through transfer of mitochondrial components | |||||
Astrocytes | Glioma cells | mitochondria | NA | Mito metabolism↑ | [115] |
Tumor-activated stromal cells | Glioblastoma cells | mitochondria | NA | OXPHOS↑ | [116] |
CAFs | Breast cancer cells | mtDNA | NA | OXPHOS↑ | [117] |
Aldh2-deficient hepatocytes | HCC cells | Oxidized mtDNA | NA | Bcl-2↑ | [118] |
Escape from immune destruction | |||||
Macrophage mitochondrial reprogramming in cancer | |||||
Lung tumor cells | M0 macrophages | n.i. | n.i. | CI↓→OXPHOS ↓ | [119] |
Hypoxia-induced TEVs | Infiltrating macrophages | let-7a | n.i. | OXPHOS↑ | [120] |
Immunosuppression of T cells | |||||
Melanoma cells | Tumor infiltrating cytotoxic CD8+ T lymphocytes | n.i. | n.i. | OXPHOS↑ | [121] |
Melanoma cells | CD4+ T helper cells | miR-690 | n.i. | Bcl-2↓, MCL-1↓, Bcl-xl↓ | [122] |
Renal carcinoma cells | Jurkat T Lymphocytes | FasL | NA | Bax↑, Bcl-2↓ | [123] |
HNSCC cells | CD8+ T cells | FasL | NA | Release of CytC, mito membrane potential↓, Bcl-2↓, Bcl-XL↓, Bax↑, Bim↑ | [124] |
MDSCs | CD8+ T cells | immuno-modulatory cytokines | NA | Mito ROS↑ → Bcl-2↓ | [125,126] |
Activation of invasion and metastasis | |||||
Increased motility and migration | |||||
Hypoxic breast cancer cells | Epithelial cells | n.i. | n.i. | Drp1 phosphorylation, Mfn-1↑, Mfn-2↑, mito intracellular movement↑ | [127] |
Bladder cancer cells | Urothelial cells | n.i. | n.i. | Mito size↓ | [128] |
Adipocytes | Melanoma cells | Fission regulators (FIS1, OPA1), FA, FAO enzymes, OXPHOS proteins | NA | fission↑, mito size↓, mito intracellular movement↑ | [55] |
CAFs | Pancreatic cancer cells | miR-106b | n.i. | Mfn-2↓ | [129,130] |
Intravasation | |||||
Breast cancer cells | Liver sinusoidal endothelial cells | n.i. | n.i. | Mito disfunction | [131,132] |
Brain metastatic cancer cells | Endothelial cells | miR-181c | COX1 | Bax↑, Bcl-2↓ | [133,134,135] |
EV Source | Target Cancer | Enrichment Method | (Bio)molecule | Target | Effect on Recipient Cell Mitochondria | Study Type | References |
---|---|---|---|---|---|---|---|
EVs enriched in biological cargo | |||||||
MSCs | Breast | Cell transfection with lentivector | miR-34a | Bcl-2 | Bcl-2↓ | In vitro | [190] |
HUVECs | Malignant mesothelioma | Cell transfection with transfection reagent | miR-126 | IRS1 | Affected mito metabolism, mito respiration↓ | In vitro | [191,192] |
Human embryonic kidney (HEK293) cells | Pancreatic | EV transfection via ultrasound | miR-34 | Bcl-2 | Bcl-2↓ | In vitro and in vivo | [193] |
Human bladder cancer (BIU-87) cells | Bladder | Cell transfection via viral vector (adenovirus) | miR-29c | n.i. | Bcl-2↓, MCL-1↓ | In vitro | [194] |
Breast cancer (MDA-MB-231 class) cells | Breast | Cell transfection | miR-205 | n.i. | Bcl-2↓ | In vitro | [195] |
Bovine milk | Pancreatic and colorectal | EV transfection via ultrasound | siRNA | Bcl-2 | Bcl-2↓ | In vitro and in vivo | [196] |
Acute myeloid leukemia (HL-60 and MOLM-13) cells | Acute myeloid leukemia | Cell transfection with lipofectamine | siRNA | circ_0009910 | Bcl-2↓, Bax↑ | In vitro | [104] |
Hepatocellular carcinoma (HepG2) cells | Liver | EV transfection via coincubation and oscillation | ASO-G3139 | Bcl-2 | Bcl-2↓ | In vitro | [197] |
Breast cancer (MDA-MB-231) cells | Breast | Cell transfection with lipofectamine | ASO-1537S | ASncmtRNA | ASncmtRNA↓ | In vitro and in vivo | [198] |
EVs loaded with exogenous drugs | |||||||
Tumor cells | Metastatic breast | EV transfection with electroporation | Manganese carbonyl (MnCO) | NA | CO generation which induces mito toxicity | In vitro and in vivo | [199] |
Non-small cell lung cancer (H1299) cells | Lung | EV coincubation with gold nanoparticles conjugated with doxorubicin | Doxorubicin | NA | Mito damage (perturbation of mito membrane potential), apoptosis via mito pathway↑ | In vitro | [200] |
Epithelial-like breast cancer (MDA MB-231) cell | Estrogen receptor negative breast | Protein anchorage | Staphylococcal enterotoxin B (SEB) | NA | Bax↑, Bak↑, Bcl-2↓ | In vitro | [201] |
Epithelial-like pancreatic cancer (MIA Paca-2) | Pancreatic | Protein anchorage | Staphylococcal enterotoxin B (SEB) | NA | Bax↑, Bak↑ | In vitro | [202] |
Natural Killer (NK-92) | Breast | EV transfection via electroporation | Paclitaxel | NA | Bax/Bcl-2↑ | In vitro | [203] |
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Carles-Fontana, R.; Heaton, N.; Palma, E.; Khorsandi, S.E. Extracellular Vesicle-Mediated Mitochondrial Reprogramming in Cancer. Cancers 2022, 14, 1865. https://doi.org/10.3390/cancers14081865
Carles-Fontana R, Heaton N, Palma E, Khorsandi SE. Extracellular Vesicle-Mediated Mitochondrial Reprogramming in Cancer. Cancers. 2022; 14(8):1865. https://doi.org/10.3390/cancers14081865
Chicago/Turabian StyleCarles-Fontana, Roger, Nigel Heaton, Elena Palma, and Shirin E. Khorsandi. 2022. "Extracellular Vesicle-Mediated Mitochondrial Reprogramming in Cancer" Cancers 14, no. 8: 1865. https://doi.org/10.3390/cancers14081865
APA StyleCarles-Fontana, R., Heaton, N., Palma, E., & Khorsandi, S. E. (2022). Extracellular Vesicle-Mediated Mitochondrial Reprogramming in Cancer. Cancers, 14(8), 1865. https://doi.org/10.3390/cancers14081865