Exploiting the Prevalence of Homologous Recombination Deficiencies in High-Grade Serous Ovarian Cancer
Abstract
:1. Introduction
Incidence, Mortality, Morbidity
2. Homologous Recombination Deficiency (HRD)
2.1. What Is HRD?
2.2. BRCA Mutations and HRD
2.3. “BRCAness”: HRD in BRCA Wild Type Tumors
2.4. HRD and Synthetic Lethality in Ovarian Cancer
3. PARP Inhibitors
3.1. What Is the Importance of PARP?
3.1.1. Olaparib
3.1.2. Rucaparib
3.1.3. Niraparib
3.1.4. PARP-inhibitors under investigation for use in Ovarian Cancera.
3.2. Expanding the Use of PARP Inhibition with HRD Testing
3.3. Replication Combing Assay (RCA)
4. PARP Inhibitor Resistance
4.1. Mechanisms of PARP Inhibitor Resistance
4.2. ATR and PARP Inhibitor Resistance
4.3. Mechanisms to Combat PARP Inhibitor Resistance
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Conflicts of Interest
Abbreviations
Abbreviation | Definition |
H2AX | Phosphorylated histone H2A member X |
ABCB1 | ATP Binding Cassette Subfamily B Member 1 |
ALC1 | Amplified in liver cancer protein 1 |
APLF | Aprataxin and PNKP like factor |
APTX | Aprataxin |
ATM | Ataxia telangiectasia mutated |
ATR | Ataxia telangiectasia and Rad3 related |
BARD1 | BRCA associated ring domain 1 |
BER | Base excision repair |
BID | Twice a day |
BRCA1 | Breast cancer 1 |
BRCA2 | Breast cancer 2 |
CHK1 | Checkpoint kinase 1 |
CSCs | Cancer stem cells |
DDR | DNA damage response |
DSB | double-strand break |
DSD | Double-strand breaks |
FDA | Food and Drug Administration |
GIS | Genomic instability score |
HER2 | Human epidermal growth factor receptor 2 |
HGSOC | High grade serous ovarian cancer |
HR | Homologous recombination |
LOH | Loss of heterozygosity |
LST | Large-scale State Transitions |
MDR1 | Multidrug resistance 1 |
MMR | Mismatch repair |
MSI | Microsatellite instability |
NAD | Nicotinamide adenine dinucleotide |
NER | Nucleotide excision repair |
NHEJ | HR and non-homologous end-joining |
NuRD | Nucleosome remodeling deacetylase |
PARG | Poly (ADP) ribose glycohydrolase |
PARP | Poly (ADP–ribose) polymerase |
PARP1 | Poly (ADP–ribose) polymerase 1 |
PARP2 | Poly (ADP–ribose) polymerase 2 |
PARP3 | Poly (ADP–ribose) polymerase 3 |
PARPi | Poly (ADP–ribose) polymerase inhibitors |
PFS | Progression free survival |
PNKP | Polynucleotide kinase-phosphatase enzyme |
RAD51 | RAD51 recombinase |
RAD51C | RAD51 recombinase C |
RAD51D | RAD51 recombinase D |
RCA | Replication Comb Assay |
SEER | Surveillance, Epidemiology, and End Results |
SGO | Society for Gynecologic Oncology |
SigMA | signature multivariate analysis |
SSB | Single-strand breaks |
TAI | Telomeric Allelic Imbalance |
TMB | Tumor mutation burden |
XRCC1 | X-ray repair cross-complementing 1 |
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PARP Inhibitor | FDA Approved Indication | Year | Important Trials | References |
---|---|---|---|---|
Olaparib | Single agent treatment for recurrent or progressive ovarian cancer with a germline BRCA mutation and ≥ 3 prior lines of treatment | 2014 | Phase 2 Proof of Concept Study, Phase 2 Study of Olaparib in Advanced Solid Tumors | [66,67] |
Maintenance therapy after response to platinum-based chemotherapy in platinum sensitive recurrent ovarian cancer irrespective of BRCA status | 2017 | Study 19, SOLO-2 | [68,69,70] | |
Maintenance therapy after response to first-line chemotherapy in patients with germline or somatic BRCA mutations | 2018 | SOLO-1 | [71] | |
Rucaparib | Single agent treatment for recurrent or progressive platinum-sensitive ovarian cancer with a somatic or germline BRCA mutation and ≥ 2 prior lines of treatment | 2016 | ARIEL-2 | [72] |
Maintenance therapy after response to platinum-based chemotherapy in platinum sensitive recurrent ovarian cancer irrespective of BRCA status | 2018 | ARIEL-3 | [73] | |
Niraparib | Maintenance therapy for recurrent ovarian cancer after complete or partial response to previous platinum-based chemotherapy | 2017 | NOVA | [74] |
Single agent treatment for recurrent HRD-positive ovarian cancer and ≥ 3 prior lines of treatment | 2019 | QUADRA | [75] |
Therapy | Trial Name | Intervention | Study Population |
---|---|---|---|
Olaparib Alone | OrEO (NCT03106987) | Olaparib maintenance re-treatment in relapsed epithelial ovarian cancer previously treated with PARP maintenance | Recurrent epithelial ovarian, fallopian and primary peritoneal cancers with disease progression following previous PARP-maintenance with complete or partial response to subsequent treatment with platinum-based chemotherapy |
Olaparib plus VEGF inhibitor | ICON-9 (NCT03278717) | Maintenance olaparib plus cediranib versus olaparib alone after treatment with platinum-based chemotherapy | Recurrent platinum-sensitive ovarian, fallopian and primary peritoneal cancers |
COCOS (NCT02502266) | Cediranib and olaparib versus cediranib or olaparib alone or standard of care chemotherapy | Recurrent platinum-resistant or refractory ovarian, fallopian and primary peritoneal cancers | |
Olaparib plus immunotherapy | DUO-O (NCT03737643) | Durvalumab plus platinum-based chemotherapy and bevacizumab followed by maintenance durvalumab and bevacizumab or maintenance durvalumab, bevacizumab and olaparib | Newly diagnosed advanced ovarian, fallopian and primary peritoneal cancers treated with cytoreductive surgery |
MK-7339-001/KEYLYNK-001/ENGOT-ov43 (NCT03740165) | Carboplatin / paclitaxel plus pembrolizumab and maintenance pembrolizumab and olaparib | Newly diagnosed advanced ovarian, fallopian and primary peritoneal cancers treated with cytoreductive surgery |
Therapy | Trial Name | Intervention | Study Population |
---|---|---|---|
Rucaparib alone | ARIEL 4 (NCT02855944) | Rucaparib versus platinum-based chemotherapy for relapsed ovarian cancer | Recurrent advanced stage BRCA-mutated ovarian, fallopian and primary peritoneal cancers with ≥ 2 prior lines of chemotherapy |
Rucaparib plus VEGF inhibitor | MAMOC (NCT04227522) | Rucaparib maintenance after bevacizumab maintenance following carboplatin-based first-line chemotherapy | Newly diagnosed advanced-stage ovarian, fallopian and primary peritoneal cancers, with at least stable disease after carboplatin-based chemotherapy, cytoreductive surgery and upfront + maintenance bevacizumab |
Rucaparib plus immunotherapy | ATHENA (NCT03522246) | Rucaparib and nivolumab maintenance following response to primary platinum-based chemotherapy | Newly diagnosed advanced-stage ovarian, fallopian and primary peritoneal cancers treated with primary platinum-based chemotherapy and cytoreductive surgery |
Therapy | Trial Name | Intervention | Study Population |
---|---|---|---|
Niraparib plus immunotherapy | FIRST (NCT03602859) | Platinum-based chemotherapy versus platinum-based chemotherapy with adjuvant dostarlimab and maintenance dostarlimab and niraparib | Newly diagnosed advanced stage high-grade non-mucinous epithelial ovarian, fallopian tube or primary peritoneal cancers regardless of cytoreductive status |
ENGOT-Ov42-NSGO/AVANOVA triplet (NCT03806049) | Platinum-based chemotherapy versus niraparib-bevacizumab-dostarlimab triplet verus niraparib-bevacizumab doublet | Recurrent platinum-sensitive epithelial ovarian, fallopian tube or primary-peritoneal cancers | |
ANITA (NCT03598270) | Platinum-based chemotherapy with maintenance niraparib versus platinum-based chemotherapy plus atezolizumab with maintenance niraparib and atezolizumab | Recurrent platinum-sensitive epithelial ovarian, fallopian tube or primary-peritoneal cancers with known BRCA-status and less than 3 lines of chemotherapy | |
ROCSAN (NCT03651206) | Platinum-based chemotherapy versus niraparib monotherapy versus niraparib + dostarlimab | Metastatic or recurrent endometrial ovarian cancer or ovarian carcinosarcoma after at least 1 line of chemotherapy |
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Bouberhan, S.; Philp, L.; Hill, S.; Al-Alem, L.F.; Rueda, B. Exploiting the Prevalence of Homologous Recombination Deficiencies in High-Grade Serous Ovarian Cancer. Cancers 2020, 12, 1206. https://doi.org/10.3390/cancers12051206
Bouberhan S, Philp L, Hill S, Al-Alem LF, Rueda B. Exploiting the Prevalence of Homologous Recombination Deficiencies in High-Grade Serous Ovarian Cancer. Cancers. 2020; 12(5):1206. https://doi.org/10.3390/cancers12051206
Chicago/Turabian StyleBouberhan, Sara, Lauren Philp, Sarah Hill, Linah F. Al-Alem, and Bo Rueda. 2020. "Exploiting the Prevalence of Homologous Recombination Deficiencies in High-Grade Serous Ovarian Cancer" Cancers 12, no. 5: 1206. https://doi.org/10.3390/cancers12051206
APA StyleBouberhan, S., Philp, L., Hill, S., Al-Alem, L. F., & Rueda, B. (2020). Exploiting the Prevalence of Homologous Recombination Deficiencies in High-Grade Serous Ovarian Cancer. Cancers, 12(5), 1206. https://doi.org/10.3390/cancers12051206