| Literature DB >> 31711497 |
Xinming Jing1,2, Fengming Yang1,2, Chuchu Shao1,2, Ke Wei3, Mengyan Xie1,2, Hua Shen4,5, Yongqian Shu6,7.
Abstract
AIM: Clinical resistance is a complex phenomenon in major humanEntities:
Keywords: Cancer therapy; Chemotherapy; Drug resistance; Hypoxia; Tumor microenvironment
Mesh:
Substances:
Year: 2019 PMID: 31711497 PMCID: PMC6844052 DOI: 10.1186/s12943-019-1089-9
Source DB: PubMed Journal: Mol Cancer ISSN: 1476-4598 Impact factor: 27.401
Fig. 1Summary of mechanisms and pathways of HIF-mediated drug therapy failure. HIF-1 confers resistance to conventional therapies through a number of signaling pathways in apoptosis, autophagy, DNA damage, mitochondrial activity, p53, and drug efflux. In addition, hypoxia results in a decrease in pH and creates an acidic TME. Mechanisms by which the tumor acidic microenvironment leads to MDR, including a decreased concentration of the drug caused by “ion trapping,” reduced apoptotic potential, genetic alterations (such as p53 mutations), and elevated activity of a multidrug transporter p-glycoprotein (P-gp)
Overview of HIF-1-mediated mechanisms in drug resistance
| Resistance phenotype | Cancer/Cell type | Resistant chemotherapy drug | Molecular basis | Reference |
|---|---|---|---|---|
| Overexpression of drug efflux proteins | Colon cancer cells | 5-Fluorouracil | MDR1/P-gp | [ |
| Overexpression of drug efflux proteins | Ovarian carcinoma cells | Estramustine | ABCA2 | [ |
| Overexpression of drug efflux proteins | Lung adenocarcinoma cells | Adriamycin | P-gp | [ |
| Apoptosis inhibition | Breast cancer cells | Paclitaxel | Caspases 3, 8, 10, and Bak | [ |
| Apoptosis inhibition | Colon cancer cells | Etoposide and oxaliplatin | Bid and Bax | [ |
| Apoptosis inhibition | Gastric cancer cells | 5-Fluorouracil and cisplatin | p53 and NF-kB | [ |
| Apoptosis inhibition | Human melanoma cells | Not mentioned | P53 and TRP2 | [ |
| Autophagy induction | HeLa cells | N-(4-Hydroxypheny) retinamide (4-HPR) | Beclin1 | [ |
| Autophagy induction | Gastric cancer cells | Vincristine | miR-23b-3p, ATG12, and HMGB2 | [ |
| Autophagy induction | Colon cancer cells | Cryptotanshinone Dihydrotanshinone | p53 | [ |
| DNA damage inhibition | Mouse embryonic fibroblasts | Etoposide | DNA–PKcs and Ku80 | [ |
| DNA damage inhibition | Breast and liver cancer cells | Taxol and etoposide | TMEM45A | [ |
| Mitochondrial activity | Human leukemia cell line (HL-60) human lymphoma cell line (Raji) | Doxorubicin and ara-c | BAD | [ |
| Mitochondrial activity | Renal carcinoma cells | Not mentioned | VHL | [ |
| Mitochondrial activity | Oral squamous cell carcinoma cells | 5-Fluorouracil and cisplatin | Cytochrome, Akt, and ERK | [ |
| P53 | Non-small-cell lung cancer cells | Cisplatin | HIF-1α and BAX | [ |
Fig. 2Diagram of the modification effect of HIF-1 on mitochondrial activity. HIF-1 is beneficial for glycolysis and lactic acid production by activating pyruvate dehydrogenase kinase-1 (PDK1) and hindering the activity of pyruvate dehydrogenase (PDH). In addition, HIF-1 targets PDK1, directly inhibiting pyruvate from entering the TCA cycle through the inactivation of PDH. HIF-1 also can induce mitochondrial autophagy and inhibit mitochondrial biogenesis, thus avoiding cell death and ultimately leading to HIF-1-mediated drug resistance