Sotorasib Dosing Regimen
Patent Information
- Application Number
- JP2023571589
- Authority / Receiving Office
- JP · JP
- Patent Type
- Applications
- Current Assignee / Owner
- Priority Date
- 2021-05-18
- Filing Date
- 2022-05-17
- Publication Date
- 2025-05-23
AI Technical Summary
Current therapies are inadequate for effectively targeting KRAS mutations, particularly in cancers with brain metastases, due to the difficulty in inhibiting the KRAS protein with small molecules.
Administering sotorasib, a small molecule that irreversibly inhibits the KRAS G12C mutant protein, to patients with cancers harboring this mutation, including those with active brain metastases, in specific dosing regimens ranging from 240 mg to 960 mg daily, with or without food, and potentially combined with antacids or CYP3A4 inhibitors.
Sotorasib demonstrates significant tumor shrinkage and progression-free survival in patients with KRAS G12C mutant cancers, including those with brain metastases, by inhibiting downstream signaling and inducing apoptosis in tumor cells.
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Abstract
Description
[Technical field]
[0001] CROSS-REFERENCE TO RELATED APPLICATIONS This application claims the benefit of U.S. Provisional Patent Application No. 63 / 190,061, filed May 18, 2021, which is incorporated by reference in its entirety herein. [Background technology]
[0002] The rat sarcoma (RAS) proto-oncogene has been identified as an oncogenic driver of tumor development in cancers such as non-small cell lung cancer (NSCLC) and colorectal cancer (CRC). The RAS family consists of three closely related genes expressing guanosine triphosphate (GTP)ases involved in regulating cell proliferation and survival. The RAS proteins, Kirsten rat sarcoma viral oncogene homolog (KRAS), Harvey rat sarcoma viral oncogene homolog (HRAS), and neuroblastoma RAS viral oncogene homolog (NRAS), can be mutationally activated at codons 12, 13, or 61 to cause human cancers. Different tumor types are associated with mutations in specific isoforms of RAS, with KRAS being the most frequently mutated isoform in the majority of cancers. The role of KRAS mutations in human cancer has been known for decades, but until recently, anticancer therapies that specifically target KRAS mutations have not been successfully developed, primarily because the protein has been deemed difficult to inhibit with small molecules. Summary of the Invention [Means for solving the problem]
[0003] Provided herein is a method of treating a cancer containing a KRAS G12C mutation in a patient with active brain metastases, comprising administering to the patient sotorasib in an amount effective to treat the cancer.
[0004] In various embodiments, sotorasib is administered once a day. In various embodiments, sotorasib is administered orally. In various embodiments, the patient is administered sotorasib for at least one month. In various embodiments, the patient is administered sotorasib for at least three months. In various embodiments, the patient is administered sotorasib for at least six months.
[0005] In various embodiments, the cancer is a solid tumor. In various embodiments, the cancer is non-small cell lung cancer. In various embodiments, the cancer is colorectal cancer. In various embodiments, the cancer is pancreatic cancer. In various embodiments, the cancer is small intestine cancer, appendix cancer, endometrial cancer, hepatobiliary cancer, small cell lung cancer, cervical cancer, germ cell tumors, ovarian cancer, gastrointestinal neuroendocrine tumors, bladder cancer, myelodysplastic / myeloproliferative neoplasms, head and neck cancer, esophagogastric cancer, soft tissue sarcoma, mesothelioma, thyroid cancer, leukemia, or melanoma. [Brief description of the drawings]
[0006] [Figure 1] Showing tumor shrinkage in brain lesions by subject (waterfall plot of best shrinkage in RANO-BM by investigator). [Diagram 2] 1 shows the mean plasma concentration time profiles following once-daily oral administration of 180, 360, 720, or 960 mg sotorasib on Day 1, where N indicates the number of observations across data points. [Diagram 3] 1 shows the mean plasma concentration time profiles following once-daily oral administration of 180, 360, 720, or 960 mg sotorasib on day 8, where N indicates the number of observations across data points. DETAILED DESCRIPTION OF THE PREFERRED EMBODIMENTS
[0007] Provided herein is a method of treating a cancer containing a KRAS G12C mutation in a patient with active brain metastases, comprising administering to the patient sotorasib in an amount effective to treat the cancer.
[0008] The phrase "active brain metastases" as used herein refers to cancer that has spread from the original (primary, non-brain) tumor to the brain. Active brain metastases may be assessed by the presence of intracranial lesions. Although "metastases" are plural, it is understood that a patient who exhibits only one intracranial lesion under the criteria set forth below is a patient with "active brain metastases". In some embodiments, a patient with active brain metastases has at least one measurable intracranial lesion greater than 5 mm. In some embodiments, a patient with active brain metastases has at least one measurable intracranial lesion greater than 5 mm and less than 10 mm. In some embodiments, a patient with active brain metastases has at least one measurable intracranial lesion greater than 10 mm. A patient is not considered to have active brain metastases if he or she has had one or more intracranial lesions resected or radiotherapy prior to the first dose of sotorasib (e.g., 4 weeks prior to the first dose of sotorasib) and meets all of the following criteria: (a) residual neurological symptoms attributable to intracranial lesions of grade 2 or less; (b) taking a stable dose of dexamethasone (if applicable); and (c) no new intracranial lesions or growth of existing intracranial lesions on follow-up magnetic resonance imaging (MRI) performed within 30 days. For the determination of the grade of any neurological symptoms attributable to intracranial lesions, please refer to the National Cancer Institute Common Terminology Criteria for Adverse Events v5.0 (NCI CTCAE), published by the National Cancer Institute on November 27, 2017, which is incorporated herein by reference in its entirety.
[0009] Sotorasib is a KRAS G12C It is a small molecule that irreversibly inhibits mutant proteins. Sotorasib, also known as AMG 510 or 6-fluoro-7-(2-fluoro-6-hydroxyphenyl)-(1M)-1-[4-methyl-2-(propan-2-yl)pyridin-3-yl]-4-[(2S)-2-methyl-4-(prop-2-enoyl)piperazin-1-yl]pyrido[2,3-d]pyrimidin-2(1H)-one, has the following structure: [ka]
[0010] Sotorasib binds to the P2 pocket and nucleotide-binding pocket of KRAS adjacent to the mutated cysteine at position 12. The inhibitor covalently modifies the cysteine residue and inhibits KRAS in the inactive conformation bound to guanosine diphosphate (GDP). G12C It contains a thiol-reactive moiety that blocks the interaction of KRAS with effectors such as aggressive fibrosarcoma (RAF), thereby preventing downstream signaling, including extracellular signal-regulated kinase (ERK) phosphorylation (Cully and Downward, 2008; Ostrem et al., 2013; Simanshu et al., 2017). It has previously been demonstrated that inactivation of KRAS by RNA interference (RNAi) or small molecule inhibition inhibits cell proliferation and induces apoptosis in tumor cell lines and xenografts harboring KRAS mutations, including the KRAS G12C mutation (Janes et al., 2018; McDonald et al., 2017; Xie et al., 2017; Ostrem and Shokat, 2016; Patricelli et al., 2016). Studies with sotorasib confirmed these in vitro findings, similarly demonstrating inhibition of growth and regression of cells and tumors harboring the KRAS G12C mutation (Canon et al., 2019).
[0011] Sotorasib may be administered to the patient in an amount ranging from 240 mg to 960 mg. In some embodiments, the method includes administering 960 mg of sotorasib to the patient once daily. In some embodiments, the method includes administering 480 mg of sotorasib to the patient once daily. In some embodiments, the method includes administering 240 mg to the patient once daily. In some embodiments, the method includes administering 480 mg to the patient twice daily. In some embodiments, the method includes administering 240 mg to the patient twice daily.
[0012] In various embodiments, sotorasib is administered orally. In various embodiments, sotorasib is administered with a meal. In various embodiments, sotorasib is administered without a meal.
[0013] In various embodiments, the patient further requires treatment with an antacid. Antacids include, but are not limited to, proton pump inhibitors (PPIs), H2 receptor antagonists (H2RAs), and local acting antacids. In one embodiment, the patient further requires treatment with a PPI or H2RA. Exemplary PPIs include, but are not limited to, omeprazole, pantoprazole, esomeprazole, lansoprazole, rabeprazole, and dexlansoprazole. Exemplary H2RAs include, but are not limited to, famotidine, ranitidine, cimetidine, nizatidine, roxatidine, and lafutidine. Exemplary local acting antacids include, but are not limited to, sodium bicarbonate, calcium carbonate, aluminum hydroxide, and magnesium hydroxide. In some embodiments, the patient further requires treatment with an antacid is not administered a proton pump inhibitor or H2 receptor antagonist in combination with sotrasib. In some embodiments, sotorasib is administered about 4 hours before or about 10 hours after the locally acting antacid.
[0014] In various embodiments, the patient further requires treatment with a CYP3A4 inducer. In some embodiments, the patient is not administered a CYP3A4 inducer in combination with sotorasib. Exemplary CYP3A4 inducers include, but are not limited to, barbiturates, brigatinib, carbamazepine, clobazam, dabrafenib, efavirenz, elagolix, enzalutamide, eslicarbazepine, glucocorticoids, letermovir, lorlatinib, modafinil, nevirapine, oritavancin, oxcarbazepine, perampanel, phenobarbital, phenytoin, pioglitazone, rifabutin, rifampin, telotristat, and troglitazone. See, e.g., Flockhart DA, Drug Interactions: Cytochrome P450 Drug Interaction Table. Indiana University School of Medicine (2007), www.drug-interactions.medicine.iu.edu (accessed May 2021). In some embodiments, the patient is not administered a strong CYP3A4 inducer in combination with sotorasib. Exemplary strong CYP3A4 inducers include, but are not limited to, phenytoin and rifampin. See, e.g., www.fda.gov / drugs / drug-interactions-labeling / drug-development-and-drug-interactions-table-substrates-inhibitors-and-inducers (accessed May 2021).
[0015] In various embodiments, the patient further requires treatment with a CYP3A4 substrate. In some embodiments, the patient is not administered a CYP3A4 substrate in combination with sotorasib. Exemplary CYP3A4 substrates include abemaciclib, abiraterone, acalabrutinib, alectinib, alfentanil, alprazolam, amitriptyline, amlodipine, apixaban, aprepitant, aripiprazole, astemizole, atorvastatin, avanafil, axitinib, boceprevir, bosutinib, brexpiprazole, brigatinib, buspirone, cafergot, caffeine, carbamazepine, cariprazine, ceritinib, cerivastatin, chlorpheniramine, cilonate, cyclosporine ... Stazol, cisapride, citalopram, clarithromycin, clobazam, clopidogrel, cobimetinib, cocaine, codeine, colchicine, copanlisib, crizotinib, cyclosporine, dabrafenib, daclatasvir, dapsone, deflazacort, dexamethasone, dextromethorphan, diazepam, diltiazem, docetaxel, dolutegravir, domperidone, doxepin, elagolix, elbasvir / grazoprevir, eliglustat, enzalutamide, eplerenone, erythro Mycin, escitalopram, esomeprazole, estradiol, felodipine, fentanyl, finasteride, flibanserin, Gleevec, haloperidol, hydrocortisone, ibrutinib, idelalisib, indacaterol, indinavir, irinotecan, isavuconazonium, ivabradine, ivacaftor, lansoprazole, lenvatinib, lercanidipine, lidocaine, linagliptin, lovastatin, macitentan, methadone, midazolam, naldemedine, naloxegol, nate Glinides, Nelfinavir, Neratinib, Netupitant / Palonosetron, Nevirapine, Nifedipine, Nisoldipine, Nitrendipine, Olaparib, Omeprazole, Ondansetron, Osimertinib, Ospemifene, Palbociclib, Panobinostat, Pantoprazole, Perampanel, Pimavanserin, Pimozide, Pomalidomide, Ponatinib, Progesterone, Propranolol, Quetiapine, Quinidine, Quinine, Regorafenib, Ribociclib, Rilpivirine, Risperidone, Ritonavir,These include, but are not limited to, rivaroxaban, roflumilast, rolapitant, romidepsin, ruxolitinib, salmeterol, saquinavir, selexipag, sildenafil, simeprevir, simvastatin, sirolimus, sonidegib, sorafenib, sunitinib, suvorexant, tacrolimus (fk506), tamoxifen, tasimelteon, taxol, telaprevir, telithromycin, terfenadine, testosterone, ticagrelor, tofacitinib, tolvaptan, torisel, tramadol, trazodone, valbenazine, vandetanib, velpatasvir, vemurafenib, venetoclax, venlafaxine, verapamil, vilazodone, vincristine, vorapaxar, voriconazole, zaleplon, and ziprasidone. See, for example, Flockhart DA, Drug Interactions: Cytochrome P450 Drug Interaction Table. Indiana University School of Medicine (2007), https: / / drug-interactions.medicine.iu.edu (accessed May 2021).
[0016] In various embodiments, the patient further requires treatment with a P-glycoprotein (P-gp) substrate. In some embodiments, the patient is not administered a P-gp substrate in combination with sotorasibe. Exemplary P-gp substrates include, but are not limited to, dabigatran etexilate, digoxin, fexofenadine, everolimus, cyclosporine, sirolimus, and vincristine. See, for example, www.fda.gov / drugs / drug-interactions-labeling / drug-development-and-drug-interactions-table-substrates-inhibitors-and-inducers (accessed May 2021). In some embodiments, the patient is not administered a P-gp substrate in combination with sotorasibe, and the P-gp substrate is a P-gp substrate with a narrow therapeutic index. Exemplary P-gp substrates with narrow therapeutic indices include, but are not limited to, digoxin, everolimus, cyclosporine, sirolimus, and vincristine.
[0017] In various embodiments, the patient has KRAS prior to administration of sotorasib as disclosed herein. G12C have a cancer determined to have one or more cells that express a mutant KRAS protein. G12C The identity of the mutant protein may be assessed as described elsewhere in this disclosure.
[0018] In some embodiments, the patient to whom sotorasib is administered in the methods described herein has been previously treated with a different anti-cancer therapy, e.g., at least one (e.g., one, or two, or three) other systemic cancer therapies. In some embodiments, the patient has been previously treated with one other systemic cancer therapy, such that the sotorasib therapy is a second line therapy. In some embodiments, the patient has been previously treated with two other systemic cancer therapies, such that the sotorasib therapy is a third line therapy.
[0019] In some embodiments, the prior systemic cancer therapy is G12CIn some embodiments, the therapy is not a KRAS inhibitor. G12C The inhibitor is sotorasib, adagrasib, GDC-6036, D-1553, JDQ443, LY3484356, BI1823911, JAB-21822, RMC-6291, or APG-1842. G12C The inhibitor is sotorasib. In certain embodiments, the KRAS G12C The inhibitor is adagrasib. Previous systemic cancer therapy includes, but is not limited to, chemotherapy and immunotherapy. Specific contemplated previous systemic cancer therapy includes anti-PD1 therapy, anti-PDL1 therapy, and platinum-based chemotherapy. Some examples of anti-PD1 therapy and anti-PDL1 therapy include, but are not limited to, pembrolizumab, nivolumab, cemiplimab, tisielizumab, toripalimab, aspartalizumab, dostarlimab, retifanlimab, simtilimab, pidilizumab, atezolizumab, avelumab, and durvalumab. In some embodiments, the anti-PD1 therapy is cemiplimab, dostarlimab, pembrolizumab, or nivolumab. In some embodiments, the anti-PDL1 therapy is adebulerimab, atezolizumab, avelumab, cosibelimab, durvalumab, embafolimab, erfonrilimab, garivulimab, lodapolimab, opucolimab, sugemalimab, socazolimab, or tagitanlimab. In some embodiments, the anti-PDL1 therapy is atezolizumab, avelumab, or durvalumab. Some examples of platinum-based chemotherapy include, but are not limited to, carboplatin, oxaliplatin, cisplatin, nedaplatin, satraplatin, lobaplatin, triplatin tetranitrate, picoplatin, ProLindac, and aroplatin.
[0020] In some embodiments, the patient has previously been treated with a systemic cancer therapy that is a targeted therapy when the cancer is identified as having a therapeutic oncogenic driver mutation in the epidermal growth factor receptor gene (EGFR), anaplastic lymphoma kinase gene (ALK), and / or ROS proto-oncogene 1 (ROS1). Targeted therapies for EGFR mutations include, but are not limited to, cetuximab, panitumumab, erlotinib, gefitinib, and afatinib. Targeted therapies for ALK mutations include, but are not limited to, crizotinib, entrectinib, lorlatinib, repotrectinib, brigatinib, alkotinib, alectinib, ensartinib, and ceritinib. Targeted therapies for ROS1 mutations include, but are not limited to, crizotinib, entrecetinib, ensartinib, alcotinib, brigatinib, taretrectinib, cabozantinib, repotrectinib, lorlatinib, and ceritinib.
[0021] In various embodiments, the patient has an intracranial lesion greater than 5 mm. In some embodiments, the patient has an intracranial lesion greater than 10 mm.
[0022] In various embodiments, the patient has an Eastern Cooperative Oncology Group (ECOG) performance status of 0 or 1 (see, e.g., Zubrod et al., 1960). Status 0 indicates fully active and able to perform all pre-disease activities without limitation. Status 1 indicates limited physically strenuous activity, but ambulatory and able to perform light or sedentary tasks. Status 2 indicates ambulatory and able to perform all self-care, but unable to perform any tasks, and is housebound more than 50% of the day. Status 3 indicates limited self-care and is confined to a bed or chair more than 50% of the day. Status 4 indicates complete inability to move, unable to perform any self-care, and entirely confined to a bed or chair. Status 5 indicates death.
[0023] Adverse events In some embodiments, the method includes administering a reduced total daily dose of sotorasib if the patient experiences an adverse event to the initial total daily dose, and the cancer is a KRAS G12C mutant cancer. For example, in some embodiments, the initial daily dose is 960 mg sotorasib and the reduced total daily dose is 480 mg sotorasib. In some embodiments, the initial daily dose is 480 mg sotorasib and the reduced total daily dose is 240 mg sotorasib. In some embodiments, the method further includes administering a second reduced total daily dose of sotorasib if the patient experiences an adverse event to the reduced total daily dose.
[0024] The term "adverse event or (AE)" as used herein refers to any unfavorable and unintended sign (including abnormal clinical laboratory findings), symptom, or disease that is temporally associated with the use of a medical treatment or procedure and that may be considered related to the medical treatment or procedure.
[0025] In some embodiments, the adverse event is hepatotoxicity (eg, elevated liver enzymes), interstitial lung disease (ILD) / pneumonitis, diarrhea, and / or nausea / vomiting.
[0026] hepatotoxicity In some embodiments, the adverse event is hepatotoxicity. The term "hepatotoxicity" as used herein refers to a patient having abnormal laboratory values of liver biomarkers (e.g., alkaline phosphatase (ALP), aspartate aminotransferase (AST), alanine aminotransferase (ALT), and / or total bilirubin (TBL)) when the patient had no abnormal laboratory values before administration of sotrasib or had a baseline level of the liver biomarker that was lower than that measured after administration of sotrasib.
[0027] Alanine transaminase (ALT), also called serum glutamate pyruvic transaminase (SGPT) or alanine aminotransferase (ALAT), catalyzes the transfer of an amino group from alanine to α-ketoglutarate to yield pyruvate and glutamate. When the liver is damaged, ALT levels in the blood can be elevated due to leakage of ALT from damaged or necrotic liver cells into the blood.
[0028] Aspartate transaminase (AST), also called serum glutamic oxaloacetic transaminase (SGOT or GOT) or aspartate aminotransferase (ASAT), catalyzes the transfer of an amino group from aspartate to α-ketoglutarate to produce oxaloacetate and glutamate. AST can be increased in response to liver injury. Elevated AST can also result from injury to other sources, including red blood cells, cardiac muscle, skeletal muscle, kidney tissue, and brain tissue. The AST to ALT ratio can be used as a biomarker of liver injury.
[0029] Bilirubin is a catabolic product of heme that is eliminated from the body by the liver. Conjugation of bilirubin to glucuronic acid by hepatocytes produces direct bilirubin, a water-soluble product that is easily eliminated from the body. Indirect bilirubin is unconjugated, and the sum of direct and indirect bilirubin is total bilirubin. Elevated total bilirubin may indicate liver dysfunction.
[0030] Alkaline phosphatase (ALP), which hydrolyzes phosphate groups from a variety of molecules, is present in cells lining the bile ducts of the liver. Plasma ALP levels can be elevated in response to liver injury and are higher in growing children and older patients with Paget's disease. However, elevated ALP levels usually reflect biliary tree disease.
[0031] In some embodiments, the patient is not suffering from a disorder that results in elevated liver biomarkers. Disorders associated with elevated liver biomarkers (such as AST / ALT and / or TBL levels) include hepatobiliary disease; viral hepatitis (e.g., Hepatitis A / B / C / D / E, Epstein-Barr virus, cytomegalovirus, herpes simplex virus, chickenpox, toxoplasmosis, and parvovirus); right heart failure, low blood pressure, or any cause of hypoxia to the liver (leading to ischemia); exposure to hepatotoxic agents / drugs or hepatotoxins, including herbal and dietary supplements, plants, and mushrooms. exposure; genetic disorders causing impaired glucuronidation (e.g., Gilbert syndrome, Crigler-Najjar syndrome) and drugs that inhibit bilirubin glucuronidation (e.g., indinavir, atazanavir); alpha-1-antitrypsin deficiency; alcoholic hepatitis; autoimmune hepatitis; Wilson's disease and hemochromatosis; non-alcoholic fatty liver disease including steatohepatitis; and / or extrahepatic causes (e.g., rhabdomyolysis, hemolysis).
[0032] Prior to administration of sotorasib, the patient's baseline liver function can be assessed by various means known in the art, such as blood chemistry tests that measure liver function biomarkers. In some embodiments, the methods described herein include monitoring the patient's liver biomarkers and withholding sotorasib administration for patients with abnormal liver function of greater than grade 2 as assessed by AST and / or ALT levels. In such embodiments, sotorasib administration is suspended until the patient's AST and / or ALT levels improve to grade 1 or less (baseline).
[0033] Adverse effect grades for abnormal liver function are defined herein by the revised Common Toxicity Criteria (CTC) provided in Table 1. See the National Cancer Institute Common Terminology Criteria for Adverse Events v5.0 (NCI CTCAE), published by the National Cancer Institute on November 27, 2017, which is incorporated herein by reference in its entirety.
[0034] [Table 1]
[0035] Grade 0 levels are characterized by biomarker levels within normal limits (WNL). "Normal" liver function, as used herein, refers to grade 0 adverse effects. "Abnormal" liver function, as used herein, refers to grade 1 or higher adverse effects.
[0036] "Grade 1 liver function abnormality" includes elevation of ALT, AST, or ALP above the ULN and up to 3 times the ULN if the baseline was normal; or 1.5 to 3.0 times the baseline if the baseline was abnormal. Grade 1 liver function abnormality also includes elevation of bilirubin levels above the ULN and up to 1.5 times the ULN if the baseline was normal; or 1.0 to 1.5 times the baseline if the baseline was abnormal. Grade 1 liver function abnormality also includes elevation of ALP above the ULN and up to 2.5 times the ULN if the baseline was normal; or 2.0 to 2.5 times the baseline if the baseline was abnormal.
[0037] "Grade 2 liver function abnormality" includes elevation of alanine transaminase (ALT), aspartate transaminase (AST), or alkaline phosphatase (ALP) greater than 3 times and less than or equal to 5 times the upper limit of normal (ULN) if the baseline was normal; greater than 3.0 times to 5.0 times the baseline if the baseline was abnormal. Grade 2 liver function abnormality also includes elevation of bilirubin levels greater than 1.5 times and less than or equal to 3 times the ULN if the baseline was normal; greater than 1.5 times to 3.0 times the baseline if the baseline was abnormal. Grade 2 liver function abnormality also includes elevation of ALP greater than 2.5 times and less than or equal to 5 times the ULN if the baseline was normal; greater than 2.5 times to 5.0 times the baseline if the baseline was abnormal.
[0038] "Grade 3 liver function abnormalities" include elevations in ALT, AST, or ALP greater than 5 times but not greater than 20 times the ULN if the baseline was normal; greater than 5.0 times to 20.0 times the baseline if the baseline was abnormal. Grade 3 liver function abnormalities also include elevations in bilirubin levels greater than 3 times but not greater than 10 times the ULN if the baseline was normal; greater than 3.0 times to 10 times the baseline if the baseline was abnormal.
[0039] "Grade 4 liver function abnormalities" include elevation of ALT, AST, or ALP greater than 20 times the ULN if baseline was normal; greater than 20 times baseline if baseline was abnormal. Grade 4 liver function abnormalities also include elevation of bilirubin levels greater than 10 times the ULN if baseline was normal; greater than 10.0 times baseline if baseline was abnormal.
[0040] The ULN for various indicators of liver function depends on the assay used, the patient population, and the respective clinical laboratory normal range of values for the designated biomarker, but can be easily determined by those skilled in the art. Exemplary values of normal ranges for a healthy adult population are listed in Table 2 below. See Cecil Textbook of Medicine, pp.2317-2341, WB Saunders & Co. (1985).
[0041] [Table 2]
[0042] In any of the methods described herein, the total daily dose of sotorasib is reduced (e.g., from 960 mg to 480 mg, or from 480 mg to 240 mg) when the patient's AST and / or ALT levels rise, for example to Grade 2 or Grade 3 levels, and the patient's baseline AST and / or ALT levels were below Grade 2 or below Grade 3. In some embodiments, the total daily dose of sotorasib is reduced (e.g., from 960 mg to 480 mg, or from 480 mg to 240 mg) when the patient's AST and / or ALT levels rise to Grade 1 levels, and the patient's baseline AST and / or ALT levels were below Grade 1 levels.
[0043] Alternatively, in any of the methods disclosed herein, the total daily dose of sotorasib is reduced (e.g., from 960 mg to 480 mg, or from 480 mg to 240 mg) when: (1) the patient's AST and bilirubin levels are elevated, or (2) the patient's AST or ALP levels are elevated, or (3) the patient's ALT and bilirubin levels are elevated, or (4) the patient's ALT and ALP levels are elevated, or (5) the patient's bilirubin and ALP levels are elevated, e.g., to grade 1, grade 2, grade 3, or grade 4 levels, and the patient's baseline AST, bilirubin, ALP, and / or ALT levels were at levels below grade 1, below grade 2, below grade 3, or below grade 4, respectively. Alternatively, in any of the methods disclosed herein, three biomarkers of liver function (e.g., ALT and AST and bilirubin, or ALT, AST and ALP) may be elevated to grade 1, grade 2, grade 3, or grade 4 levels in a patient, where the patient's baseline biomarker levels were less than grade 1, less than grade 2, less than grade 3, or less than grade 4, respectively.
[0044] In some embodiments, the total daily dose of sotorasib is reduced if the ALT and / or AST levels are more than about 3-fold compared to the upper limit of normal (ULN) (e.g., 960 mg to 480 mg, or 480 mg to 240 mg). In related embodiments, the abnormal levels of ALT and / or AST are greater than about 3-fold to about 5-fold increase compared to the upper limit of normal (ULN) (i.e., "grade 2 abnormality"). In some embodiments, if the patient has an abnormal baseline, a grade 2 abnormality is an abnormal level of ALT and / or AST greater than about 3-fold to about 5-fold increase compared to baseline. In some embodiments, the abnormal level of ALP is greater than about 2.5-fold to about 5-fold increase compared to the upper limit of normal (ULN) (i.e., "grade 2 abnormality"). In some embodiments, if the patient has an abnormal baseline, a grade 2 abnormality is an abnormal level of ALP greater than about 2.5-fold to about 5-fold increase compared to baseline. In some embodiments, the abnormal level of bilirubin is greater than about a 1.5-fold to about a 3-fold increase compared to the upper limit of normal (ULN) (i.e., a "Grade 2 abnormality"). In some embodiments, if the patient has an abnormal baseline, a Grade 2 abnormality is an abnormal level of bilirubin that is greater than about a 1.5-fold to about a 3-fold increase compared to the baseline.
[0045] In some embodiments, the total daily dose of sotorasib is reduced if the ALT and / or AST levels are greater than about 5-fold compared to the upper limit of normal (ULN) (e.g., 960 mg to 480 mg, or 480 mg to 240 mg). In some embodiments, the total daily dose is reduced if the ALT, AST, or ALP levels are greater than about 5-fold to about 20-fold increased compared to the upper limit of normal (ULN) (i.e., "grade 3 abnormality"). In some embodiments, if the patient has an abnormal baseline, a grade 3 abnormality is an abnormal level of ALT and / or AST greater than about 5-fold to about 20-fold increased compared to baseline. In some embodiments, an abnormal level of ALP is greater than about 5-fold to about 20-fold increased compared to the upper limit of normal (ULN) (i.e., "grade 3 abnormality"). In some embodiments, if the patient has an abnormal baseline, a grade 3 abnormality is an abnormal level of ALP greater than about 5-fold to about 20-fold increased compared to baseline. In some embodiments, the total daily dose is reduced if the bilirubin level is greater than about a 3-fold to about a 10-fold increase compared to the upper limit of normal (ULN) (i.e., a "Grade 3 abnormality"). In some embodiments, if the patient has an abnormal baseline, a Grade 3 abnormality is an abnormal level of bilirubin that is greater than about a 3-fold to about a 10-fold increase compared to baseline.
[0046] In some embodiments, the total daily dose of sotorasib is reduced (e.g., 960 mg to 480 mg, or 480 mg to 240 mg) if the ALT and / or AST levels are greater than about 20-fold increase compared to the upper limit of normal (ULN) (i.e., "grade 4 abnormality"). In some embodiments, if the patient has an abnormal baseline, a grade 4 abnormality is an abnormal level of ALT and / or AST greater than about 20-fold increase compared to baseline. In some embodiments, an abnormal level of ALP is greater than about 20-fold increase compared to the upper limit of normal (ULN) (i.e., "grade 4 abnormality"). In some embodiments, if the patient has an abnormal baseline, a grade 4 abnormality is an abnormal level of ALP greater than about 20-fold increase compared to baseline. In some embodiments, the total daily dose is reduced if the bilirubin level is greater than about 10-fold increase compared to the upper limit of normal (ULN) (i.e., "grade 4 abnormality"). In some embodiments, if the patient has an abnormal baseline, a Grade 4 abnormality is an abnormal level of bilirubin that is greater than about a 10-fold increase compared to baseline.
[0047] In some embodiments, the methods described herein further include increasing the total dose of sotorasib (e.g., from 240 mg to 480 mg, or from 480 mg to 960 mg) when the patient's liver biomarkers improve to Grade 1 or less (e.g., baseline).
[0048] Nausea / vomiting In some embodiments, the adverse event is nausea or vomiting. In some embodiments, the nausea / vomiting is present despite adequate supportive therapy (e.g., antiemetic therapy). "Nausea," as used herein, refers to a disorder characterized by a nauseating sensation and / or an urge to vomit.
[0049] Adverse effect grades for nausea and vomiting are defined herein by the revised Common Toxicity Criteria (CTC) provided in Table 3. See the National Cancer Institute Common Terminology Criteria for Adverse Events v5.0 (NCI CTCAE), published by the National Cancer Institute on November 27, 2017, which is incorporated herein by reference in its entirety.
[0050] [Table 3]
[0051] In some embodiments, the methods described herein include withholding administration of sotorasib to a patient with nausea greater than Grade 3 until the patient has improved to Grade 1 or less or to baseline. In some embodiments, the methods include administering a reduced total daily dose of sotorasib to the patient (e.g., from 960 mg to 480 mg, or from 480 mg to 240 mg) once the patient has improved to Grade 1 or less or to baseline.
[0052] In some embodiments, the methods described herein include withholding administration of sotorasib to a patient with emesis greater than Grade 3 until the emesis has improved to Grade 1 or less or to baseline. In some embodiments, the methods include administering a reduced total daily dose of sotorasib to the patient (e.g., from 960 mg to 480 mg, or from 480 mg to 240 mg) once the patient has improved to Grade 1 or less or to baseline.
[0053] In some embodiments, the methods described herein further include increasing the total dose of sotorasib (e.g., from 240 mg to 480 mg, or from 480 mg to 960 mg) when the patient's nausea has improved to Grade 1 or less (e.g., baseline).
[0054] diarrhea In some embodiments, the adverse event is diarrhea. In some embodiments, the diarrhea is present despite adequate supportive therapy (e.g., antidiarrheal therapy).
[0055] Adverse effect grades for diarrhea are defined herein by the revised Common Toxicity Criteria (CTC) provided in Table 4. See the National Cancer Institute Common Terminology Criteria for Adverse Events v5.0 (NCI CTCAE), published by the National Cancer Institute on November 27, 2017, which is incorporated herein by reference in its entirety.
[0056] [Table 4]
[0057] In some embodiments, the methods described herein include withholding administration of sotorasib to a patient with diarrhea greater than Grade 3 until the patient improves to Grade 1 or less or to baseline. In some embodiments, the methods include administering a reduced total daily dose of sotorasib to the patient (e.g., from 960 mg to 480 mg, or from 480 mg to 240 mg) once the patient improves to Grade 1 or less or to baseline.
[0058] In some embodiments, the methods described herein further include increasing the total dose of sotorasib (e.g., from 240 mg to 480 mg, or from 480 mg to 960 mg) when the patient's diarrhea improves to Grade 1 or less (e.g., baseline).
[0059] Interstitial lung disease In some embodiments, the adverse event is interstitial lung disease (ILD) or interstitial pneumonia. If ILD or interstitial pneumonia is suspected, at any grade level, sotorasib is held. If ILD or interstitial pneumonia is confirmed and no other cause of ILD or interstitial pneumonia is identified, sotorasib is permanently discontinued.
[0060] Response to sotorasib therapy The response rate or outcome for patients administered sotorasib in the methods disclosed herein can be measured in several ways after the patient has taken sotorasib for a suitable period of time. In various embodiments, the patient is administered sotorasib (960 mg, 480 mg, or 240 mg once a day) for at least 1 month, at least 2 months, at least 3 months, at least 4 months, at least 5 months, at least 6 months, at least 7 months, at least 8 months, at least 9 months, at least 10 months, at least 11 months, at least 12 months, at least 15 months, at least 18 months, at least 21 months, or at least 23 months, such as 1 month, 2 months, 3 months, 4 months, 5 months, 6 months, 7 months, 8 months, 9 months, 10 months, 11 months, 12 months, 15 months, 18 months, 21 months, or 24 months. In various embodiments, the patient is administered sotorasib (960 mg, 480 mg, or 240 mg once a day) for at least 1 month. In various embodiments, the patient is administered sotorasib (960 mg, 480 mg, or 240 mg once daily) for at least 3 months. In various embodiments, the patient is administered sotorasib (960 mg, 480 mg, or 240 mg once daily) for at least 6 months.
[0061] In various embodiments, the patient is administered sotorasibe (480 mg or 240 mg twice daily) for at least 1 month, at least 2 months, at least 3 months, at least 4 months, at least 5 months, at least 6 months, at least 7 months, at least 8 months, at least 9 months, at least 10 months, at least 11 months, at least 12 months, at least 15 months, at least 18 months, at least 21 months, or at least 23 months, such as 1 month, 2 months, 3 months, 4 months, 5 months, 6 months, 7 months, 8 months, 9 months, 10 months, 11 months, 12 months, 15 months, 18 months, 21 months, or 24 months. In various embodiments, the patient is administered sotorasibe (480 mg or 240 mg twice daily) for at least 1 month. In various embodiments, the patient is administered sotorasibe (480 mg or 240 mg twice daily) for at least 3 months. In various embodiments, the patient is administered sotorasib (480 mg or 240 mg twice daily) for at least six months.
[0062] Patients may respond to sotorasib therapy as measured by at least stable disease (SD) as determined by RECIST 1.1 protocol (Eisenhauer, et al., 2009). At least stable disease is stable, has a partial response (PR), or has a complete response (CR) (i.e., "at least SD" = SD + PR + CR, often referred to as disease control). In various embodiments, stable disease is disease that has not shrunk sufficiently to qualify as a partial response (PR) or has not increased sufficiently to qualify as progressive disease (PD). In various embodiments, patients have at least a partial response (i.e., "at least PR" = PR + CR, often referred to as an objective response).
[0063] Response may be measured by one or more of a decrease in tumor size, inhibition or reduction in tumor growth, reduction in target lesions or tumor lesions, delayed progression-free time, absence of new tumors or lesions, reduction in new tumor formation, increased survival or progression-free survival (PFS), and absence of metastasis. In various embodiments, the progression of a patient's disease may be assessed by measuring tumor size, tumor lesions, or formation of new tumors or lesions by evaluating the patient using a computed tomography (CT) scan, a positron emission tomography (PET) scan, a magnetic resonance imaging (MRI) scan, an X-ray, an ultrasound, or some combination thereof.
[0064] Progression-free survival (PFS) can be evaluated as described in RECIST 1.1 protocol. In various embodiments, the patient shows a PFS of at least 1 month. In various embodiments, the patient shows a PFS of at least 3 months. In some embodiments, the patient shows a PFS of at least 6 months.
[0065] Response can also be measured by the size of intracranial disease as assessed by the Response Assessment in Neuro-Oncology Brain Metastases (RANO-BM) (Lin et al., 2015). RANO-BM is an extension of Response Assessment Criteria in Solid Tumors (RECIST) 1.1 (Eisenhauer et al., 2009) and the Response Assessment in Neuro-Oncology (RANO) criterion for high-grade gliomas (Wen et al., 2010).
[0066] Intracranial progression-free survival (PFS) can be evaluated as described in the RANO-BM protocol. In various embodiments, the patient exhibits an intracranial PFS of at least 1 month. In various embodiments, the patient exhibits an intracranial PFS of at least 3 months. In some embodiments, the patient exhibits an intracranial PFS of at least 6 months.
[0067] Additional means for assessing response are detailed in the Examples below and may be generally applicable to the methods disclosed herein.
[0068] KRAS G12C cancer The methods described herein include treating a cancer containing a KRAS G12C mutation in a patient with active brain metastases, the methods including administering sotorasib to the patient in an amount effective to treat the cancer. Without wishing to be bound by any particular theory, it is noted that sotorasib inhibits the KRAS G12C mutation. G12C Sotorasib is a small molecule that specifically and irreversibly inhibits KRAS p.G12C (Hong et al., 2020). Hong et al. report that "[p]re-clinical studies showed that [sotorasib] inhibited nearly all detectable phosphorylation of extracellular signal-regulated kinase (ERK), a key downstream effector of KRAS, and led to durable complete tumor regression in mice bearing KRAS p.G12C tumors" (ibid.; see also Canon et al., 2019, and Lanman et al., 2020). Thus, in various embodiments, sotorasib at a total daily dose of 240 mg is disclosed for use in treating cancer in which one or more cells express KRAS G12C mutant protein.
[0069] Sotorasib was evaluated in a Phase 1 dose escalation and expansion study in 129 subjects with histologically confirmed locally advanced or metastatic cancer with KRAS p.G12C mutations identified by local molecular testing on tumor tissue, including 59 subjects with non-small cell lung cancer, 42 subjects with colorectal cancer, and 28 subjects with other tumor types (Hong et al., 2020, pp. 1208-1209). Hong et al. reported disease control rates (95% CI) of 88.1% for non-small cell lung cancer, 73.8% for colorectal cancer, and 75.0% for other tumor types (Hong et al., 2020, pp. 1213, Table 3). The cancer types showing either stable disease (SD) or partial response (PR) reported by Hong et al. were non-small cell lung cancer, colorectal cancer, pancreatic cancer, appendix cancer, endometrial cancer, cancer of unknown primary site, ampullary cancer, gastric cancer, small intestine cancer, paranasal sinus cancer, cholangiocarcinoma, or melanoma (Hong et al., 2020, p. 1212 (Figure A), and appendix (p. 59 (Figure S5) and p. 63 (Figure S6)).
[0070] KRAS G12C mutations occur at the alteration frequencies shown in the table below (Cerami et al., 2012; Gao et al., 2013). For example, the table shows that 11.6% of subjects with non-small cell lung cancer have cancer in which one or more cells express the KRAS G12C mutant protein. Thus, KRAS G12C Sotorasib, which specifically and irreversibly binds to, is useful for treating subjects with cancers, including but not limited to those listed in Table 5 below.
[0071] [Table 5]
[0072] In various embodiments, the cancer is a solid tumor. In various embodiments, the cancer is non-small cell lung cancer, small intestine cancer, appendix cancer, colorectal cancer, cancer of unknown primary, endometrial cancer, mixed cancer type, pancreatic cancer, hepatobiliary cancer, small cell lung cancer, cervical cancer, germ cell cancer, ovarian cancer, gastrointestinal neuroendocrine cancer, bladder cancer, myelodysplastic / myeloproliferative neoplasm, head and neck cancer, esophagogastric cancer, soft tissue sarcoma, mesothelioma, thyroid cancer, leukemia, or melanoma. In some embodiments, the cancer is small intestine cancer, appendix cancer, endometrial cancer, hepatobiliary cancer, small cell lung cancer, cervical cancer, germ cell tumor, ovarian cancer, gastrointestinal neuroendocrine tumor, bladder cancer, myelodysplastic / myeloproliferative neoplasm, head and neck cancer, esophagogastric cancer, soft tissue sarcoma, mesothelioma, thyroid cancer, leukemia, or melanoma. In various embodiments, the cancer is non-small cell lung cancer, and in some specific embodiments, metastatic or locally advanced and unresectable non-small cell lung cancer. In various embodiments, the cancer is colorectal cancer. In some embodiments, the cancer is pancreatic cancer.
[0073] Methods for detecting KRAS, STK11, KEAP1, EGFR, ALK, and / or ROS1 mutation status The presence or absence of G12C, STK11, KEAP1, EGFR, ALK, and / or ROS1 mutations in the cancers described herein can be determined using methods known in the art. Determining whether a tumor or cancer contains a mutation can be done, for example, by evaluating the nucleotide sequence encoding the protein, by evaluating the amino acid sequence of the protein, or by evaluating the characteristics of the putative mutant protein, or by any other suitable method known in the art. Wild-type human KRAS (nucleotide sequence set forth in Genbank Accession No. BC010502; amino acid sequence set forth in Genbank Accession No. AGC09594), STK11 (Gene ID: 6794; available at https: / / www.ncbi.nlm.nih.gov / gene / 6794; accessed January 2020), KEAP1 (Gene ID: 9817; available at www.ncbi.nlm.nih.gov / gene / 9817; accessed January 2020), EGFR (Gene ID: 195 The nucleotide and amino acid sequences of ALK (Gene ID: 238; available at: https: / / www.ncbi.nlm.nih.gov / gene / 238; accessed March 2021), ALK (Gene ID: 6098; available at: https: / / www.ncbi.nlm.nih.gov / gene / 6098; accessed March 2021), and ROS1 (Gene ID: 6098; available at: https: / / www.ncbi.nlm.nih.gov / gene / 6098; accessed March 2021) are known in the art.
[0074] Methods for detecting mutations include, but are not limited to, polymerase chain reaction-restriction fragment length polymorphism (PCR-RFLP) assay, polymerase chain reaction-single strand conformation polymorphism (PCR-SSCP) assay, real-time PCR assay, PCR sequencing, mutant allele-specific PCR amplification (MASA) assay, direct sequencing and / or next-generation sequencing, primer extension reaction, electrophoresis, oligonucleotide ligation assay, hybridization assay, TaqMan assay, SNP genotyping assay, high-resolution melting assay, and microarray analysis. In some embodiments, samples are evaluated for mutations, such as KRAS G12C mutation, by real-time PCR. In real-time PCR, a fluorescent probe specific for a particular mutation, such as KRAS G12C mutation, is used. If a mutation is present, the probe binds and fluorescence is detected. In some embodiments, mutations are identified using a direct sequencing method of a specific region in a gene. This technique identifies all possible mutations in the sequenced region. In some embodiments, the presence or absence of insertion mutations can be detected using gel electrophoresis, capillary electrophoresis, size exclusion chromatography, sequencing, and / or arrays. In some embodiments, methods include, but are not limited to, detection of mutants using binding agents (e.g., antibodies) specific for mutant proteins, protein electrophoresis and Western blotting, and direct peptide sequencing.
[0075] In some embodiments, multiplex PCR-based sequencing is used for mutation detection, which may include several amplicons that provide improved sensitivity for the detection of one or more genetic biomarkers. For example, the multiplex PCR-based sequencing may include about 60 amplicons (e.g., 50, 51, 52, 53, 54, 55, 56, 57, 58, 59, 60, 61, 62, 63, 64, 65, 66, 67, 68, 69, or 70 amplicons). In some embodiments, the multiplex PCR-based sequencing may include 61 amplicons. Amplicons generated using multiplex PCR-based sequencing may range from about 15 bp to about 1000 bp (e.g., about 25 bp to about 1000 bp, about 35 bp to about 1000 bp, about 50 bp to about 1000 bp, about 100 bp to about 1000 bp, about 250 bp to about 1000 bp, about 500 bp to about 1000 bp, about 750 bp to about 1000 bp, about 15 bp to about 750 bp, about 15 bp to about 500 bp, about 15 bp to about 300 bp, about 15 bp to about 200 bp, about 15 bp to about 100 bp, about 15 bp to about 80 bp, about 15 bp to about 75 bp, about 15 bp to about 50 bp, about 15 bp to about 40 bp, about 15 bp to about 30 bp, about 15 bp to about 20 bp, about 20 bp to about 100 bp, about 25 bp to about 50 bp, or about 30 bp to about 40 bp). For example, an amplicon generated using multiplex PCR-based sequencing may include a nucleic acid having a length of about 33 bp.
[0076] In some embodiments, the presence of one or more mutations present in a sample obtained from a patient is detected using a sequencing technique (e.g., a next-generation sequencing technique). Various sequencing techniques are known in the art. For example, methods for the detection and characterization of circulating tumor DNA in cell-free DNA may be described elsewhere (see, e.g., Haber and Velculescu, 2014). Non-limiting examples of such techniques include SafeSeqs (see, e.g., Kinde et al., 2011), OnTarget (see, e.g., Forshew et al., 2012), and TamSeq (see, e.g., Thompson et al., 2012).
[0077] In some embodiments, the presence of one or more mutations present in a sample obtained from a patient is detected using droplet digital PCR (ddPCR), a method known to be highly sensitive for detecting mutations. In some embodiments, the presence of one or more mutations present in a sample obtained from a patient is detected using other sequencing techniques, including, but not limited to, chain termination techniques, shotgun techniques, sequencing by synthesis methods, methods that utilize microfluidic technology, other capture techniques, or other sequencing techniques known in the art that are useful for detecting small amounts of DNA in a sample (e.g., ctDNA in a cell-free DNA sample).
[0078] In some embodiments, the presence of one or more mutations present in the sample obtained from the patient is detected using an array-based method.For example, the step of detecting genetic alterations (e.g., one or more genetic alterations) in cell-free DNA is carried out using a DNA microarray.In some embodiments, the DNA microarray can detect one or more of a plurality of cancer cell mutations.In some embodiments, the cell-free DNA is amplified before detecting genetic alterations. Non-limiting examples of array-based methods that may be used in any of the methods described herein include complementary DNA (cDNA) microarrays (see, e.g., Kumar et al. 2012; Laere et al. 2009; Mackay et al. 2003; Alizadeh et al. 1996), oligonucleotide microarrays (see, e.g., Kim et al. 2006; Lodes et al. 2009), bacterial artificial chromosome (BAC) clone chips (see, e.g., Chung et al. 2004; Thomas et al. 2005), single nucleotide polymorphism (SNP) microarrays (see, e.g., Mao et al. 2007; Jasmine et al. 2012), microarray-based comparative genomic hybridization arrays (array-CGH) (see, e.g., Beers and Nederlof, 2006; Pinkel et al. 2005; Michels et al. 2009), and other methods. al. 2007), molecular inversion probe (MIP) assays (see, e.g., Wang et al. 2012; Lin et al. 2010). In some embodiments, the cDNA microarray is an Affymetrix microarray (see, e.g., Irizarry 2003; Dalma-Weiszhausz et al. 2006), a NimbleGen microarray (see, e.g., Wei et al. 2008; Albert et al. 2007), an Agilent microarray (see, e.g., Hughes et al. 2001), or a BeadArray array (see, e.g., Liu et al. 2017).In some embodiments, the oligonucleotide microarray is a DNA tiling array (see, e.g., Mockler and Ecker, 2005; Bertone et al. 2006). Other suitable array-based methods are known in the art.
[0079] A variety of samples can be used in the methods for determining whether a tumor or cancer contains a mutation. In some embodiments, the sample is taken from a patient with a tumor or cancer. In some embodiments, the sample is a fresh tumor / cancer sample. In some embodiments, the sample is a frozen tumor / cancer sample. In some embodiments, the sample is a formalin-fixed paraffin-embedded (FFPE) sample. In some embodiments, the sample is a circulating cell-free DNA and / or circulating tumor cell (CTC) sample. In some embodiments, the sample is processed into a cell lysate. In some embodiments, the sample is processed into DNA or RNA. In certain embodiments, the sample is obtained by resection, core needle biopsy (CNB), fine needle aspiration (FNA), urine collection, or hair follicle collection. In some embodiments, liquid cytology using whole blood or cerebrospinal fluid can be used to assess the mutation status.
[0080] In various embodiments, a patient is diagnosed with a mutation, e.g., KRAS, using a test approved by a regulatory agency, such as the U.S. Food and Drug Administration (FDA). G12CIt is determined whether a patient has a mutated cancer or whether a tumor or tissue sample obtained from such a patient contains cells with a mutation. In some embodiments, the test for KRAS mutation used is therascreen® KRAS RGQ PCR kit (Qiagen). Therascreen® KRAS RGQ PCR kit is a real-time qualitative PCR assay for the detection of seven somatic mutations (G12A, G12D, G12R, G12C, G12S, G12V, and G13D) in codons 12 and 13 of the human KRAS oncogene using a Rotor-Gene Q MDx 5plex HRM instrument. The kit is intended for use with DNA extracted from FFPE samples of NSCLC samples obtained by resection, CNB, or FNA. Mutation testing for STK11, KEAP1, EGFR, ALK, and / or ROS1 can be performed with commercially available tests such as the Resolution Bioscience Resolution ctDx Lung™ Assay, which includes 24 genes (including those therapeutic in NSCLC). Tissue samples can be tested using the Tempus xT 648 panel.
[0081] In some embodiments, the cancer is identified as having a KRAS G12C mutation. In some embodiments, the cancer is identified as having a STK11 mutation, e.g., a loss-of-function mutation. In some embodiments, the cancer is identified as having a KEAP1 mutation, e.g., a loss-of-function mutation. In some embodiments, the cancer is identified as having wild-type STK11. In some embodiments, the cancer is identified as having wild-type KEAP1.
[0082] In various embodiments, the cancer has been identified as having a loss-of-function mutation in STK11 and a wild-type KEAP1. In some embodiments, the cancer has been identified as having a loss-of-function mutation in STK11 and a loss-of-function mutation in KEAP1. In some embodiments, the cancer has been identified as having a wild-type STK11 and a wild-type KEAP1. In some embodiments, the cancer has been identified as having a wild-type STK11 and a loss-of-function mutation in KEAP1.
[0083] The term "loss-of-function mutation" as used herein refers to a mutation (e.g., substitution, deletion, truncation, or frameshift mutation) that results in the expression of a mutant protein that no longer exhibits wild-type activity (e.g., wild-type biological or enzymatic activity is reduced or eliminated), or that results in the expression of only a fragment of a protein that no longer exhibits wild-type activity, or that does not result in the expression of a wild-type protein. For example, a loss-of-function mutation affecting the STK11 gene in a cell can result in the expression of a reduced STK11 protein, only a fragment of the STK11 protein, or an STK11 protein that exhibits reduced or no enzymatic activity (e.g., no serine / threonine kinase enzymatic activity) in a cancerous cell. Similarly, a loss-of-function mutation affecting the KEAP1 gene in a cell can result in the expression of a reduced KEAP1 protein, only a fragment of the KEAP1 protein, or an KEAP1 protein that exhibits reduced or no activity (e.g., unable to interact with or activate erythroid transcription factor 2-related transcription factor 2 (NRF2)) in a cell.
[0084] Methods for detecting PD-L1 protein expression PD-L1 expression can be determined by methods known in the art. For example, PD-L1 expression can be detected using PD-L1 IHC 22C3 pharmDx, an FDA-approved in vitro diagnostic immunohistochemistry (IHC) test developed by Dako and Merck as a companion test for treatment with pembrolizumab. This is a qualitative assay that uses a monoclonal mouse anti-PD-L1, clone 22C3 PD-L1, and the EnVision FLEX visualization system on an Autostainer Lin 48 to detect PD-L1 in FFPE samples such as human non-small cell lung cancer tissue. Expression levels can be measured using the tumor proportion score (TPS), which measures the percentage of viable tumor cells that show partial or complete membrane staining at any intensity. Staining can indicate PD-L1 expression from 0% to 100%.
[0085] PD-L1 expression can also be detected using PD-L1 IHC 28-8 pharmDx, an FDA-approved in vitro diagnostic immunohistochemistry (IHC) test developed by Dako and Bristol-Myers Squibb as a companion test for treatment with nivolumab. This qualitative assay uses monoclonal rabbit anti-PD-L1, clone 28-8, and the EnVision FLEX visualization system on an Autostainer Lin 48 to detect PD-L1 in formalin-fixed, paraffin-embedded (FFPE) human cancer tissues.
[0086] Other commercially available tests for the detection of PD-L1 include the Ventana SP263 assay (developed by Ventana in collaboration with AstraZeneca), which utilises the monoclonal rabbit anti-PD-L1 clone SP263, and the Ventana SP142 assay (developed by Ventana in collaboration with Genentech / Roche), which uses the rabbit monoclonal anti-PD-L1 clone SP142.
[0087] In some embodiments, a test approved by a regulatory agency, such as the U.S. Food and Drug Administration (FDA), is used to determine the PD-L1 TPS of the cancers disclosed herein. In various embodiments, the PD-L1 TPS is determined using an immunohistochemistry (IHC) test. In some embodiments, the IHC test is the PD-L1 IHC 22C3 pharmDx test. In various embodiments, the IHC test is performed using a sample obtained, for example, by resection, CNB, or FNA.
[0088] In various embodiments, the patient has a PD-L1 TPS of less than 100%, 95%, 90%, 85%, 80%, 75%, 70%, 65%, 60%, 50%, 55%, 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, or 1%. In various embodiments, the patient has a PD-L1 TPS of less than 50% or less than 1%. In various embodiments, patients have a PD-L1 TPS of 95%, 90%, 85%, 80%, 75%, 70%, 65%, 60%, 50%, 55%, 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, or 1% or greater. In various embodiments, patients have a PD-L1 TPS of 100%, 95%, 90%, 85%, 80%, 75%, 70%, 65%, 60%, 50%, 55%, 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, or 1% or less. In various embodiments, the patient has a PD-L1 TPS of 50% or less, or 1% or less. In various embodiments, the patient has a PD-L1 TPS of 95%, 90%, 85%, 80%, 75%, 70%, 65%, 60%, 50%, 55%, 50%, 45%, 40%, 35%, 30%, 25%, 20%, 15%, 10%, 9%, 8%, 7%, 6%, 5%, 4%, 3%, 2%, or more than 1%. In various embodiments, the patient has a PD-L1 TPS score in a range bounded by any of the values recited in the preceding embodiments. For example, the patient has a PD-L1 TPS score in a range of less than 50% and 1% or more, less than 50% and more than 1%, less than 50% and more than 1%, less than 50% and more than 1%, or less than 50% and more than 1%.
[0089] In various embodiments, the patient has a PD-L1 TPS score ranging from less than 50% and greater than or equal to 1%. In some embodiments, the patient has a PD-L1 TPS score ranging from greater than or equal to 0% and less than 1%. In some embodiments, the patient has a PD-L1 TPS score ranging from greater than or equal to 50% and less than or equal to 100%. In some embodiments, the patient has a PD-L1 TPS score less than 1%. In some embodiments, the patient has a PD-L1 TPS score between 1-49%. In some embodiments, the patient has a PD-L1 TPS score greater than or equal to 50% (i.e., between 50% and 100%).
[0090] Embodiment 1. A method of treating a cancer containing a KRAS G12C mutation in a patient with active brain metastases, comprising administering to the patient sotorasib in an amount effective to treat the cancer. 2. The method of embodiment 1, comprising administering 960 mg of sotorasib to the patient once daily. 3. The method of embodiment 1, comprising administering 480 mg of sotorasib to the patient once daily. 4. The method of embodiment 1, comprising administering 240 mg of sotorasib once daily to the patient. 5. The method of embodiment 1, comprising administering 480 mg of sotorasib twice daily to the patient. 6. The method of embodiment 1, comprising administering 240 mg of sotorasib twice daily to the patient. 7. The method of any one of embodiments 1-6, wherein the patient has an intracranial lesion larger than 5 mm. 8. The method of embodiment 7, wherein the patient has an intracranial lesion larger than 10 mm. 9. The method of any one of embodiments 1 to 4, wherein the cancer is non-small cell lung cancer, small intestine cancer, appendix cancer, colorectal cancer, cancer of unknown primary, endometrial cancer, mixed cancer type, pancreatic cancer, hepatobiliary cancer, small cell lung cancer, cervical cancer, germ cell cancer, ovarian cancer, gastrointestinal neuroendocrine cancer, bladder cancer, myelodysplastic / myeloproliferative neoplasm, head and neck cancer, esophagogastric cancer, soft tissue sarcoma, mesothelioma, thyroid cancer, leukemia, or melanoma. 10. The method of any one of embodiments 1-8, wherein the cancer is non-small cell lung cancer or colorectal cancer. 11. The method of any one of embodiments 1-10, wherein the patient further requires treatment with an antacid. 12. The method of embodiment 11, wherein the antacid is a proton pump inhibitor (PPI), an H2 receptor antagonist (H2RA), or a locally acting antacid. 13. The method of embodiment 11 or embodiment 12, wherein the antacid is a locally acting antacid and sotorasib is administered about 4 hours before or about 10 hours after the locally acting antacid. 14. The method of embodiment 12 or embodiment 13, wherein the locally acting antacid is sodium bicarbonate, calcium carbonate, aluminum hydroxide, or magnesium hydroxide. 15. The method according to any one of the preceding embodiments, wherein the patient further requires treatment with a proton pump inhibitor (PPI) or an H2 receptor antagonist (H2RA). 16. The method of embodiment 15, wherein the patient is not administered a PPI or H2RA in combination with sotorasib. 17. The method of any one of embodiments 12, 15, and 16, wherein the PPI is omeprazole, pantoprazole, esomeprazole, lansoprazole, rabeprazole, or dexlansoprazole. 18. The method of any one of embodiments 12, 15, and 16, wherein the H2RA is famotidine, ranitidine, cimetidine, nizatidine, roxatidine, or lafutidine. 19. The method of any one of embodiments 1-18, wherein the patient further requires treatment with a CYP3A4 inducer. 20. The method of embodiment 19, wherein the patient is not administered a CYP3A4 inducer in combination with sotorasib. 21. The method of embodiment 19 or 20, wherein the CYP3A4 inducer is a barbiturate, brigatinib, carbamazepine, clobazam, dabrafenib, efavirenz, elagolix, enzalutamide, eslicarbazepine, glucocorticoid, letermovir, lorlatinib, modafinil, nevirapine, oritavancin, oxcarbazepine, perampanel, phenobarbital, phenytoin, pioglitazone, rifabutin, rifampin, telotristat, or troglitazone. 22. The method of embodiment 19 or embodiment 20, wherein the patient is not administered a strong CYP3A4 inducer in combination with sotorasib. 23. The method of embodiment 22, wherein the strong CYP3A4 inducer is phenytoin or rifampin. 24. The method of any one of embodiments 1-23, wherein the patient further requires treatment with a CYP3A4 substrate. 25. The method of embodiment 24, wherein the patient is not administered a CYP3A4 substrate in combination with sotorasib. 26. CYP3A4 substrates include: Abemaciclib, Abiraterone, Acalabrutinib, Alectinib, Alfentanil, Alprazolam, Amitriptyline, Amlodipine, Apixaban, Aprepitant, Aripiprazole, Astemizole, Atorvastatin, Avanafil, Axitinib, Boceprevir, Bosutinib, Brexpiprazole, Brigatinib, Buspirone, Calfergot, Caffeine, Carbamazepine, Cariprazine, Ceritinib, Cerivastatin, Chlorpheniramine, Cilostazol, Cisapride, Citalopram, Clarithrombin, isin, clobazam, clopidogrel, cobimetinib, cocaine, codeine, colchicine, copanlisib, crizotinib, cyclosporine, dabrafenib, daclatasvir, dapsone, deflazacort, dexamethasone, dextromethorphan, diazepam, diltiazem, docetaxel, dolutegravir, domperidone, doxepin, elagolix, elbasvir / grazoprevir, eliglustat, enzalutamide, eplerenone, erythromycin, escitalopram, esomeprazole, estradiol, felodipine, fentanyl, fentanyl, Finasteride, Flibanserin, Gleevec, Haloperidol, Hydrocortisone, Ibrutinib, Idelalisib, Indacaterol, Indinavir, Irinotecan, Isavuconazonium, Ivabradine, Ivacaftor, Lansoprazole, Lenvatinib, Lercanidipine, Lidocaine, Linagliptin, Lovastatin, Macitentan, Methadone, Midazolam, Naldemedine, Naloxegol, Nateglinide, Nelfinavir, Neratinib, Netupitant / Palonosetron, Nevirapine, Nifedipine, Nisoldipine, Nitrendipine, Olaparib, Omeprazole, Ondansetron, Osimertinib, Ospemifene, Palbociclib, Panobinostat, Pantoprazole, Perampanel, Pimavanserin, Pimozide, Pomalidomide, Ponatinib, Progesterone, Propranolol, Quetiapine, Quinidine, Quinine, Regorafenib, Ribociclib, Rilpivirine, Risperidone, Ritonavir, Rivaroxaban, Roflumilast, Rolapitant, Romidepsin, Ruxolitinib, Salmeterol, Saquinavir, Selexipag, Sildenafil, Simeprevir, Simvastatin, Sirolimus,The method of embodiment 24 or embodiment 25, wherein the agent is sonidegib, sorafenib, sunitinib, suvorexant, tacrolimus (fk506), tamoxifen, tasimelteon, taxol, telaprevir, telithromycin, terfenadine, testosterone, ticagrelor, tofacitinib, tolvaptan, torisel, tramadol, trazodone, valbenazine, vandetanib, velpatasvir, vemurafenib, venetoclax, venlafaxine, verapamil, vilazodone, vincristine, vorapaxar, voriconazole, zaleplon, or ziprasidone. 27. The method of any one of embodiments 1-26, wherein the patient further requires treatment with a P-glycoprotein (P-gp) substrate. 28. The method of embodiment 27, wherein the patient is not administered a P-gp substrate in combination with sotorasib. 29. The method according to embodiment 27 or embodiment 28, wherein the P-gp substrate is etexilate, digoxin, or fexofenadine. 30. The method of any one of embodiments 1-29, wherein the patient has received at least one other systemic cancer therapy prior to the initiation of sotorasib therapy. 31. The method of embodiment 30, wherein the patient has received at least two other systemic cancer therapies. 32. The method of embodiment 30 or 31, wherein at least one systemic cancer therapy is selected from anti-PD-1 immunotherapy, anti-PD-L1 immunotherapy, and platinum-based chemotherapy. 33. The method of embodiment 30, wherein the patient has previously received (i) anti-PD1 therapy or anti-PD-L1 therapy (unless contraindicated), or (ii) platinum-based chemotherapy, and (iii) EGFR, ALK, or ROS1 targeted therapy (if the cancer also exhibits mutations in EGFR, ALK, or ROS1). 34. The method of embodiment 31, wherein the patient has previously received (i) anti-PD1 therapy or anti-PD-L1 therapy (unless contraindicated), and (ii) platinum-based chemotherapy, and (iii) EGFR, ALK, or ROS1 targeted therapy (if the cancer also exhibits mutations in EGFR, ALK, or ROS1). 35. The method of any one of embodiments 1-34, wherein the patient exhibits an Eastern Cooperative Oncology Group (ECOG) performance status of 0 or 1. 36. The method of any one of embodiments 1-35, wherein the patient is administered sotorasib for at least one month. 37. The method of any one of embodiments 1-35, wherein the patient is administered sotorasib for at least 3 months. 38. The method of any one of embodiments 1-35, wherein the patient is administered sotorasib for at least 6 months. 39. The method of any one of embodiments 36-38, wherein the patient exhibits at least stable disease (SD) after 1, 3, or 6 months of sotorasib therapy as measured by RECIST 1.1 protocol. 40. The method of embodiment 39, wherein stable disease has not shrunk sufficiently to qualify as a partial response (PR) or has not increased sufficiently to qualify as progressive disease (PD). 41. The method of any one of embodiments 36-38, wherein the patient exhibits at least a partial response (PR) after 1, 3, or 6 months of sotorasib therapy as measured by RECIST 1.1 protocol. 42. The method of embodiment 41, wherein the partial response is at least a 30% decrease in the sum of the diameters of the target lesions. 43. The method of any one of embodiments 1-42, wherein the patient exhibits a progression-free survival (PFS) of at least 3 months. 44. The method of embodiment 43, wherein the patient exhibits a PFS of at least 6 months. 45. The method of any one of embodiments 1-42, wherein the patient exhibits an intracranial progression-free survival (PFS) of at least 3 months. 46. The method of embodiment 45, wherein the patient exhibits an intracranial PFS of at least 6 months. 47. The method of any one of embodiments 1-46, wherein the patient shows an intracranial objective response as assessed by RANO-BM. 48. The method of any one of embodiments 1 to 47, wherein the cancer exhibits a PD-L1 Tumor Proportion Score (TPS) of 1 to 49%. 49. The method of any one of embodiments 1-47, wherein the cancer exhibits a PD-L1 Tumor Proportion Score (TPS) of less than 1%. 50. The method of any one of embodiments 1 to 47, wherein the cancer exhibits a PD-L1 Tumor Proportion Score (TPS) of 50 to 100%. 51. The method of any one of embodiments 1 to 50, wherein the cancer further comprises an STK11 mutation. 52. The method of any one of embodiments 1 to 50, wherein the cancer further comprises a KEAP1 mutation. 53. The method of any one of embodiments 1-50 and 52, wherein the cancer further comprises STK11 wild type. 54. The method of any one of embodiments 1 to 51, wherein the cancer further comprises KEAP1 wild type. EXAMPLES
[0091] Example 1 - Sotorasib monotherapy in patients with KRAS p.G12C mutated NSCLC with brain metastases Without wishing to be bound by any particular theory, it is noted that: 960 mg QD sotorasib was shown to be safe and effective under the test conditions under study 20170543 (CodeBreak100). Brain metastases are common in patients with non-small cell lung cancer (NSCLC), occurring in 20%-50% of patients (Offin et al., 2019; Villano et al., 2015). Nevertheless, patients with brain metastases are often excluded from clinical trials due to concerns regarding poor functional status, increased risk of toxicity, relatively poor prognosis, and relatively short life expectancy. Patients with active brain metastases were not included in study 20170543. However, treatment with sotorasib may induce an antitumor immune response through activation of T cells that recognize tumor antigens (Canon et al., 2019). Infiltration of activated T cells from the circulation to the brain may result in intracranial antitumor activity. Based on these data, sotorasib may induce intracranial responses through a mechanism similar to that of systemic disease control.
[0092] A multicenter, randomized, open-label study will be configured to evaluate the safety and efficacy of sotorasib as monotherapy in subjects with KRAS p.G12C mutant advanced NSCLC and active brain metastases. Sotorasib will be monitored as monotherapy administered either once daily (QD, Cohort A) or twice daily (BID, Cohort B). Approximately 70 subjects will be enrolled and randomized to receive sotorasib either once daily (Cohort A) or twice daily (Cohort B). Part 1 will enroll up to 30 subjects. Part 2 will enroll approximately 40 subjects.
[0093] Cohort A will evaluate the safety of sotorasib at up to 960 mg QD dosing schedule. Cohort B will evaluate the safety of sotorasib at up to 480 mg BID dosing schedule.
[0094] Dose levels for Cohort A are as follows: Dose level A1: Sotorasib 960 mg QD Dose level A-1: Sotorasib 480 mg QD Dose level A-2: Sotorasib 240 mg QD
[0095] Dose levels for Cohort B are as follows: Dose level B1: Sotorasib 480 mg BID Dose level B-1: Sotorasib 240 mg BID Dose level B-2: Sotorasib 240 mg QD NOTE: Dose level B-2 will only be explored if dose level A-2 has not yet begun enrollment.
[0096] Cohorts A and B will be enrolled simultaneously. Dose exploration in Part 1 will begin with 3-6 subjects treated at Cohort A dose level A1 and 3-6 subjects treated at Cohort B dose level B1. The dose-limiting toxicity (DLT) period of the study will be 21 days. Depending on observed safety data, the following may occur: (1) dose tapers within each cohort, or (2) enrollment of up to 10 additional evaluable subjects at a given dose level.
[0097] [Table 6]
[0098] [Table 7]
[0099] Subject inclusion criteria included the following: Male or female, at least 18 years of age.
[0100] Metastatic NSCLC with pathologically proven KRAS p.G12C mutation identified by molecular testing (performed according to national requirements) with active brain metastases. Subjects must have received anti-PD-1 or anti-programmed cell death ligand 1 (PD L1) immunotherapy (unless contraindicated) and / or platinum-based combination chemotherapy and targeted therapy (if curative oncogenic driver mutations (e.g., EGFR, ALK, and ROS1) are identified) or if the subject refuses standard treatment. KRAS p.G12C mutation must be identified by a diagnostic device approved for detection of KRAS p.G12C in NSCLC or performed in a Clinical Laboratory Improvement Act (CLIA)-certified laboratory.
[0101] Metastatic brain disease meeting the following criteria: - At least one measurable intracranial lesion >10 mm; - Subjects with largest measurable intracranial lesion >5mm <10mm may be allowed to enroll upon agreement with the investigator and medical monitor; - CNS disease is asymptomatic for at least 7 days, either on a stable dose of corticosteroids or without corticosteroids (except non-physiological doses) and without or on a stable dose of non-enzyme-inducing antiepileptic drugs. The dose of corticosteroids or antiepileptic drugs must be discussed and agreed upon by the investigator; - Lesions that grow after whole-brain radiotherapy or resection may be allowed as target lesions upon agreement with the investigator; - Lesions that grow after stereotactic radiosurgery may only be allowed as target lesions if they are deemed unlikely to cause radiation necrosis and pseudoprogression in agreement with the investigator.
[0102] Subjects willing to provide an archived tumor tissue specimen (formalin-fixed, paraffin-embedded [FFPE] specimen collected within the last 5 years) or willing to undergo a pre-treatment tumor biopsy. Subjects who do not have archived tissue available may be permitted to enroll without a tumor biopsy if a tumor biopsy is not possible, upon agreement with the investigator and medical monitor.
[0103] Eastern Cooperative Oncology Group (ECOG) performance status ≤1.
[0104] Life expectancy greater than 3 months as determined by the investigator.
[0105] Ability to take oral medications and willingness to document daily adherence to the study drug.
[0106] Corrected QT interval (QTc) ≤470 msec for women and ≤450 msec for men (based on the average of triplicate screening).
[0107] Appropriate hematological laboratory evaluation as follows: - Absolute neutrophil count (ANC) 1.5 x 10 9 / L or more - Platelet count is 100 x 10 9 / L or more - Hemoglobin level 9g / dL or higher
[0108] Adequate renal laboratory evaluation as follows: estimated glomerular filtration rate of 60 ml / min / 1.73 m based on Modification of Diet in Renal Disease (MDRD) calculations 2 End
[0109] Appropriate liver laboratory evaluation, including: - AST <2.5x ULN (≤5x ULN if liver metastases are present) - ALT <2.5x ULN (<5x ULN if liver metastases are present) - Total bilirubin (BIL) <1.5x the ULN (<2.0x the ULN for subjects with documented Gilbert syndrome or <3.0x the ULN for subjects with indirect BIL levels suggesting elevation due to extrahepatic causes)
[0110] Adequate coagulation laboratory evaluation as follows: prothrombin time (PT) or (activated) partial thromboplastin time (PTT or aPTT) less than 1.5 times the ULN, or international normalized ratio (INR) less than 1.5 or within target range if receiving prophylactic anticoagulation therapy.
[0111] Exclusion criteria included the following: Spinal cord compression.
[0112] Patients with metastatic CNS disease other than brain metastases as defined by the inclusion criteria.
[0113] Subjects with known leptomeningeal disease.
[0114] History or presence of hematologic malignancy (unless cured by treatment and free of evidence of disease for 2 years or more).
[0115] History of other malignancies within the past 2 years, with the following exceptions: - Malignant tumors treated with curative intent, free of known active disease for at least 2 years prior to enrollment, and considered by the treating physician to be at low risk of recurrence - Adequately treated non-melanoma skin cancer or lentigo maligna with no evidence of disease - Appropriately treated cervical intraepithelial neoplasia with no evidence of disease - Adequately treated ductal carcinoma in situ with no evidence of disease - Prostatic intraepithelial neoplasia without evidence of prostate cancer - Adequately treated urothelial papillary non-invasive carcinoma or carcinoma in situ
[0116] Myocardial infarction, symptomatic congestive heart failure (New York Heart Association class greater than II), unstable angina, or cardiac arrhythmia requiring medical therapy within 6 months prior to Study Day 1.
[0117] Gastrointestinal (GI) tract disease preventing the inability to take oral medications, malabsorption syndromes, need for intravenous nutritional support, uncontrolled inflammatory GI disease (e.g., Crohn's disease, ulcerative colitis).
[0118] Use of known cytochrome P450 (CYP) 3A4 sensitive substrates (narrow therapeutic window) or P-gp substrates within 14 days prior to study day 1 or within 5 half-lives of the drug or its major active metabolite, whichever is longer, that have not been reviewed and approved by the Chief Investigator and Medical Monitor.
[0119] Use of strong inducers of CYP3A4 (including herbal supplements such as Hypericum perforatum) within 14 days or 5 half-lives (whichever is longer) prior to Study Day 1 without review and approval by the Lead Investigator and Amgen's medical monitor.
[0120] Active infection requiring IV antibiotics within 1 week of study enrollment (Day 1).
[0121] Evidence of hepatitis infection based on the following results and / or criteria: Hepatitis B surface antigen (HepBsAg) positive (indicating chronic hepatitis B or recent acute hepatitis B); HepBsAg negative, positive for hepatitis B core antibody (hepatitis B core antibody test is not required for screening, but if it is done and positive, hepatitis B surface antibody [anti-HBs] test is required. Undetectable anti-HBs in this situation suggests possible uncertain infection and must be excluded); Hepatitis C virus antibody positive: Hepatitis C virus RNA by PCR is required. Detectable hepatitis C virus RNA suggests chronic hepatitis C.
[0122] Known to have tested positive for HIV.
[0123] Unresolved toxicities from previous antineoplastic therapy, except for alopecia, defined as not resolved to Common Terminology Criteria for Adverse Events (CTCAE) version 5.0 grade 0 or 1 or to the level specified in the eligibility criteria (grade 2 or 3 toxicities from previous antineoplastic therapy that are considered irreversible [defined as present for >6 months and stable], e.g., ifosfamide-associated proteinuria, may be allowed if they are not listed in the exclusion criteria and consent by both the investigator and sponsor is obtained).
[0124] Subjects who cannot undergo a magnetic resonance imaging (MRI) scan with gadolinium contrast. If MRI is contraindicated, computed tomography (CT) with or without contrast is acceptable.
[0125] Antitumor therapy (chemotherapy, antibody therapy, molecular targeted therapy, retinoid therapy, hormonal therapy [excluding subjects with breast cancer], or investigational agent) within 15 days of Study Day 1. Exception: Subjects who have received prior tyrosine kinase inhibitor monotherapy or conventional chemotherapy within 14-28 days of Study Day 1 are eligible.
[0126] Curative or palliative radiation therapy within 2 weeks of Study Day 1. Subjects must have recovered from all radiation therapy-related toxicities.
[0127] Currently enrolled in another investigational device or drug trial, or is less than 28 days from completing another investigational device or drug trial, or receiving any other investigational agent.
[0128] Prior treatment with a KRAS p.G12C inhibitor.
[0129] Major surgical procedure within 28 days prior to Cycle 1, Day 1, or minor non-study related procedure within 7 days prior to Cycle 1, Day 1. In either case, subjects must be adequately recovered and stable before receiving treatment.
[0130] Currently receiving treatment in another investigational device or drug study, or less than 28 days after completing treatment in another investigational device or drug study. Other investigational treatments concurrent with participation in this study are excluded.
[0131] The female subject is pregnant, breastfeeding, or planning to become pregnant or breastfeeding during treatment and for an additional 7 days after the last dose of sotorasib.
[0132] Female subjects of childbearing potential who are unwilling to use one highly effective method of contraception during treatment and for an additional 7 days after the last dose of sotorasib.
[0133] Female subjects of childbearing potential with a positive pregnancy test at screening as determined by serum pregnancy test.
[0134] Male subjects with a female partner of fertile potential who practice abstinence (abstaining from heterosexual intercourse) or are unwilling to use contraception during treatment and for an additional 7 days after the last dose of sotorasib.
[0135] Male subjects with a pregnant partner who practice abstinence or are not willing to use contraception during treatment and for an additional 7 days after the last dose of sotorasib.
[0136] Male subjects who are willing to abstain from sperm donation during treatment with sotorasib and for an additional 7 days after the last dose of sotorasib.
[0137] The subject has a known sensitivity to any of the products that will be administered during dosing.
[0138] To the best of the subject's and the investigator's knowledge, the subject will be unable to participate in study visits or procedures required by the protocol.
[0139] The subject has any impairment that, in the opinion of the Investigator, may impair the subject's ability to give written informed consent and / or to comply with all required study procedures.
[0140] Treatments excluded during the study Treatments / procedures excluded from this study include:
[0141] Antitumor therapies, including chemotherapy, antibody therapy, and molecular targeted therapy
[0142] Known CYP3A4 sensitive or P-gp substrates with narrow therapeutic index that have not been reviewed and approved by the Chief Investigator.
[0143] A strong CYP3A4 inducer that has not been reviewed and approved by the Chief Investigator.
[0144] Systemic corticosteroids (≥ 10 mg prednisone or equivalent) for reasons other than management of toxicity (e.g., immune-mediated adverse events), management of CNS disease symptoms, and nonphysiologic doses of steroids in subjects previously treated with steroids.
[0145] Combination treatment Breast cancer resistance protein (BCRP) substrates, when administered concomitantly with sotorasib, may increase circulating concentrations of BCRP substrates and should be used with caution.
[0146] Concomitant administration of sotrasib with proton pump inhibitors (e.g., omeprazole, pantoprazole) or H2 receptor antagonists (e.g., famotidine, ranitidine) is not recommended. If treatment with antacids is required, sotrasib should be taken 4 hours before or 10 hours after administration of a topical antacid.
[0147] Dosage and Administration Sotorasib is administered orally every day (QD or BID) for a 21-day treatment cycle with no scheduled treatment holidays. Sotorasib may be administered with or without food. Subjects should take their dose of sotorasib (all tablets at the same time) at approximately the same time each day. Also, sotorasib doses should not be taken more than 2 hours earlier than the target time based on the previous day's dose. Sotorasib doses should not be taken more than 6 hours after the dosing time. For BID dosing (every 12 hours), subjects should skip the missed dose of sotorasib if 3 hours have passed since the scheduled dosing time based on the previous day's dose, and instead wait and take the next dose as prescribed. If subjects vomit after taking sotorasib, they should not take an additional dose, but instead wait and take the next dose as prescribed.
[0148] Administration for patients who have difficulty swallowing solids: Disperse tablet, without crushing, in 120 mL (4 oz) of room temperature non-carbonated water. No other liquid should be used. Stir until tablet disperses into small pieces (tablets will not completely dissolve) and drink immediately or within 2 hours. The mixture may range from pale yellow to bright yellow in appearance. Swallow the tablet dispersion. Do not chew tablet pieces. Rinse container with another 120 mL (4 oz) of water and drink. If mixture is not ingested immediately, agitate mixture again to ensure tablet dispersion.
[0149] Dose-limiting toxicity The DLT window (i.e., DLT-evaluable period) will be the first 21 days of sotorasib. Grading of adverse events will be based on the guidelines provided in CTCAE version 5.0. Subjects will be DLT-evaluable if they complete the DLT window above and receive 80% or more of the planned dose of sotorasib, or if they experience a DLT at any time during the DLT window. Subjects will not be DLT-evaluable if they drop out prior to completion of the DLT-evaluable period for reasons other than a DLT.
[0150] A DLT was defined as any adverse event occurring during the DLT evaluation window and related to sotorasib that met the criteria listed below: - Adverse events leading to permanent discontinuation of any study drug - Grade 3 or higher febrile neutropenia - Grade 4 neutropenia of any duration - Grade 3 neutropenia lasting more than 7 days - Grade 3 thrombocytopenia for >7 days - Grade 3 thrombocytopenia with grade 2 or greater bleeding - Grade 4 thrombocytopenia - Grade 4 anemia - Grade 4 or greater vomiting or diarrhea - Grade 3 vomiting or grade 3 diarrhea lasting more than 3 days despite optimal medical support - Grade 3 or greater nausea lasting 3 days or more despite optimal medical support - Grade 3 elevations in ALT or AST lasting more than 5 days and Grade 4 or greater elevations in ALT or AST of any duration despite optimal medical management - Grade 3 or higher BIL elevation - Any other adverse event >Grade 3 with the following exceptions: - DLT Exclusion: Fatigue - DLT Exclusion: Asymptomatic grade 3 electrolyte abnormalities that last less than 72 hours, are clinically uncomplicated, and resolve spontaneously or respond to medical intervention. - DLT exclusion: Grade 3 amylase or lipase without symptoms or clinical signs of pancreatitis - DLT Exemptions: Other selected laboratory abnormalities that are not considered clinically relevant or harmful to the patient and / or that can be corrected by supplementation or modification (e.g., grade 3 lymphopenia, grade 3 hypoalbuminemia)
[0151] Subjects who meet the criteria for Hy's Law cases (i.e., severe drug-induced liver injury [DILI]) will be considered DLT. Hy's Law cases are defined as AST or ALT values ≥3x ULN and serum TBL >2x ULN without signs of cholestasis and without other obvious alternative reasons to explain the observed liver-related laboratory abnormalities.
[0152] Recommendations for tapering to lower dose cohorts will be made only by unanimous consensus of voting DLRT members based on available study data through Study Day 28 for all subjects at a dose level.
[0153] The dose reduction levels of sotorasib for toxicity management are shown in the table below.
[0154] [Table 8]
[0155] [Table 9]
[0156] Sotorasib will be discontinued or the dose reduced if toxicity occurs that, in the opinion of the investigator, requires discontinuation or dose reduction as shown in the table below. Dose reductions below 240 mg are not permitted. Subjects experiencing adverse events requiring a dose reduction below 240 mg should permanently discontinue sotorasib treatment.
[0157] [Table 10]
[0158] Hepatotoxicity Guidelines for Sotorasib: Guidelines for management and monitoring of subjects with elevated AST, ALT, or alkaline phosphatase (ALP) are provided in the table below.
[0159] [Table 11]
[0160] Stopping Rules for Hepatotoxicity: Subjects with abnormal liver laboratory values (i.e., alkaline phosphatase (ALP), aspartate aminotransferase (AST), alanine aminotransferase (ALT), total bilirubin (TBL)) and / or International Normalized Ratio (INR) and / or signs / symptoms of hepatitis (as described below) may meet the criteria for withholding or permanently discontinuing sotorasib.
[0161] The following discontinuation and / or withholding rules apply to subjects in whom an alternative cause for changes in liver biomarkers (TBL, INR, and transaminases) has not been identified. Important additional causes of elevated AST / ALT and / or TBL values include, but are not limited to, hepatobiliary disease; viral hepatitis (e.g., Hepatitis A / B / C / D / E, Epstein-Barr virus, cytomegalovirus, herpes simplex virus, chickenpox, toxoplasmosis, and parvovirus); any cause of right heart failure, low blood pressure, or hypoxia to the liver (leading to ischemia); exposure to hepatotoxic agents / drugs or hepatotoxins, including herbal and dietary supplements, plants, and mushrooms; genetic disorders causing impaired glucuronidation (e.g., Gilbert syndrome, Crigler-Najjar syndrome) and drugs that inhibit bilirubin glucuronidation (e.g., indinavir, atazanavir); alpha 1-antitrypsin deficiency; alcoholic hepatitis; autoimmune hepatitis; Wilson's disease and hemochromatosis; nonalcoholic fatty liver disease, including steatohepatitis; and / or extrahepatic causes (e.g., rhabdomyolysis, hemolysis).
[0162] As described in Table 10 below, rechallenge may be considered if another cause for liver test abnormalities (ALT, AST, ALP) and / or elevated TBL is discovered and / or laboratory abnormalities return to normal or baseline.
[0163] [Table 12]
[0164] biopsy All subjects must have mandatory tumor biopsies (core needle / fine needle aspiration for NSCLC) of any systemic lesions, if medically feasible, obtained prior to treatment with sotorasib and once between weeks 2 and 5 after initiating treatment. If a new biopsy is not medically feasible at screening, an FFPE block or unstained slide of archived tumor tissue (collected within 5 years of enrollment) will suffice.
[0165] Optional tumor biopsy of any systemic lesions should be performed at the end of treatment, if medically feasible, only if the subject has signed an additional consent and has not begun another anti-cancer therapy.
[0166] Efficacy evaluation / radiographic imaging diagnostic evaluation Disease extent will be assessed by contrast-enhanced MRI / CT per RECIST 1.1 (as described below) and RANO-BM. To reduce subject radiation exposure, the lowest possible dose should be utilized whenever possible.
[0167] A screening scan must be performed within 28 days prior to enrollment and will be used as the baseline. All subsequent scans will be performed in the same format as at screening, preferably on the same scanner, with the same contrast agent. Radiological evaluation should include MRI / CT of the chest, abdomen, and pelvis, as well as evaluation of all other known sites of disease.
[0168] The same imaging modality, MRI field strength, and intravenous and oral contrast agents that should be used at screening should be used for all subsequent evaluations. Liver-specific MRI contrast agents should not be used. To mitigate potential safety concerns, macrocyclic gadolinium contrast agents are recommended to follow National Health Institute guidelines or local standards if more stringent.
[0169] During treatment and follow-up, radiological imaging of the chest, abdomen, pelvis, and all other known sites of disease will be performed every 6 ± 1 weeks for the first 4 response assessments, regardless of treatment cycle. After the 4 (every 6 weeks) response assessments, radiological imaging and tumor evaluations will be performed every 12 ± 1 weeks. Brain imaging will be performed at 6-week intervals (± 1 week) throughout the study period. Radiological imaging and tumor evaluations will be performed until disease progression, initiation of new anticancer treatment, death, withdrawal of consent, or end of study. If clinically indicated, imaging may be performed more frequently at the discretion of the managing physician. Radiological response (complete response [CR], PR) requires confirmation by repeat serial scans at least 4 weeks after initial documentation of response and may be delayed until the next scheduled scan to avoid unnecessary procedures.
[0170] All subjects must have a brain MRI with contrast within 28 days prior to their first dose of sotorasib. Brain scans may be performed at any time thereafter if clinically indicated at the discretion of the managing physician. All brain scans per protocol must be MRI unless MRI is contraindicated, followed by CT with or without contrast is acceptable.
[0171] Radiologic imaging evaluation during the end of treatment (EOT) visit should only be performed for subjects who discontinue treatment for reasons other than disease progression per RECIST 1.1 and / or RANO-BM guidelines.
[0172] Determination of disease response for clinical management of subjects will be assessed at the clinical site according to RECIST 1.1 and RANO-BM criteria. Scans will be submitted to a central imaging core laboratory for archiving and independent response assessment utilizing RECIST 1.1 and RANO-BM criteria. Exploratory imaging analyses may be performed centrally and may include tumor volume measurements, viable tumor measurements, tissue necrosis percentage, and lesion texture analysis (radiomics).
[0173] Efficacy Analysis The proportion of subjects with intracranial objective response (per RANO-BM) and 95% CI will be tabulated by planned dose level. Disease control rates will be similarly tabulated.
[0174] The proportion of subjects with an objective response (per RECIST 1.1) and 95% CI will be tabulated by planned dose level. Disease control rates will be similarly summarized.
[0175] For all subjects treated at the MTD and / or RP2D, the Kaplan-Meier method will be used to estimate time-to-event curves, median times to events, and percentiles with 95% CI for: 1) duration of response; 2) time to intracranial radiotherapy; 3) intracranial progression-free survival (PFS); 4) non-intracranial PFS; 5) overall PFS; 6) stable disease; and 7) OS defined as the time from start of study treatment to death from any cause event (e.g., 1-year OS). Times to response will be summarized by non-missing sample size of responders (n), mean, standard deviation, median, minimum, and maximum.
[0176] For subjects who continue treatment after progression, the first progression will be used for ORR / DOR and PFS analyses, and the subject's response after the first progression will not be used to evaluate objective response endpoints.
[0177] Response Evaluation Criteria in Solid Tumors version 1.1 (RECIST 1.1) definition Measurable lesions Measurable tumor lesion - a well-defined non-lymph node lesion that can be accurately measured in at least one dimension and has a longest dimension of 10 mm or greater on a CT / MRI scan with a slice thickness of 5 mm or less. When the slice thickness is greater than 5 mm, the minimum size of a measurable lesion should be twice the slice thickness.
[0178] Nodal involvement - Lymph nodes are considered pathologically enlarged and measurable; lymph nodes must have a minor axis of 15 mm or greater as assessed by CT / MRI (scan slice thickness 5 mm or less recommended). Only the minor axis is measured and tracked at baseline and follow-up. Node size is usually reported in two directions in the axial plane; the smaller of these measurements is the minor axis (perpendicular to the longest diameter).
[0179] Irradiated Lesions - Tumor lesions located in areas previously irradiated or subjected to other locoregional therapy will not be measurable unless disease progression has been documented prior to enrollment.
[0180] Non-measurable lesions: All other lesions, including small lesions (CT scan slice thickness ≤5 mm and longest dimension <10 mm, or pathologic lymph nodes with shortest dimension ≥10 mm but <15 mm), are considered non-measurable and characterized as non-target lesions.
[0181] Other examples of non-measurable lesions include: Previously locally treated lesions: Tumor lesions located in areas previously irradiated or subjected to other locoregional therapy should not be considered measurable unless progression of the disease has been documented; biopsied lesions; categorically, clusters of small lesions, bone lesions, and inflammatory breast disease are non-measurable.
[0182] How to measure Lesion Measurements - The longest diameter of selected lesions should be measured in the plane in which the image was acquired (axial plane). All measurements should be taken and recorded in metric units. All baseline evaluations should be performed as close to the start of treatment as possible and no later than 4 weeks prior to Study Day 1.
[0183] Methods of Assessment - The same methods of assessment and the same procedures should be used throughout the study to characterize each lesion identified and reported.
[0184] CT / MRI- All lesions should be evaluated using contrast-enhanced CT or MRI. Optimal visualization and measurement of metastases in solid tumors requires consistent IV contrast administration (dose and rate) and timing of scans. CT and MRI should be performed with contiguous slices ≤5 mm thick.
[0185] Baseline documentation of "target" and "non-target" lesions Target Lesions - All measurable lesions, representing all involved organs, up to a maximum of two lesions per organ and up to five lesions total, should be identified, recorded, and measured as target lesions at baseline.
[0186] Target lesions should be selected based on their size (lesions with the longest diameter) and suitability for accurate repeated measurements.
[0187] Pathologic lymph nodes (those with a short diameter of 15 mm or greater) can be identified as target lesions. All other pathologic lymph nodes (those with a short diameter of 10 mm or greater but less than 15 mm) should be considered non-target lesions.
[0188] The sum of diameters (longest diameter for non-nodal disease and shortest diameter for nodal disease) for all target lesions will be calculated and reported as the baseline sum of diameters, which will be used as the criterion for characterizing objective tumor response.
[0189] Non-target Lesions - All other lesions (or sites of disease), including pathological lymph nodes, should be identified as non-target lesions and recorded at baseline. Measurement of these lesions is not required, and they should be tracked throughout the study as "present," "absent," or "definite progression." In addition, multiple non-target lesions affecting the same organ may be recorded as a single item on the case report form (e.g., "multiple enlarged pelvic lymph nodes" or "multiple liver metastases").
[0190] [Table 13]
[0191] [Table 14]
[0192] Response Assessment in Neuro-Oncology Brain Metastases (RANO-BM) Criteria The study will utilize the Response Assessment in Neuro-Oncology Brain Metastases (RANO-BM) (Lin et al., 2015), a criterion for evaluating intracranial response, which is an extension of Response Evaluation Criteria in Solid Tumors (RECIST) 1.1 (Eisenhauer et al., 2009) and the Response Assessment in Neuro-Oncology (RANO) (Wen et al., 2010), a criterion for evaluating response in high-grade gliomas.
[0193] Definition: Measurable central nervous system (CNS) disease is defined as a contrast-enhancing CNS lesion that can be accurately measured in at least one dimension, has a minimum size of 10 mm, and is visible on two or more axial slices, preferably with 0 mm skip and 5 mm or less spacing (ideally 1.5 mm or less spacing with 0 mm skip). - To be considered measurable, a CNS lesion should measure at least 5 mm in diameter perpendicular to the longest dimension of the measurement surface. - If multiple measurable CNS lesions are present at baseline, all CNS lesions (up to a maximum of 5) should be recorded and measured at baseline. - If CNS lesions ≥ 5 mm but < 10 mm are considered measurable disease, CNS lesions should be measured by magnetic resonance imaging (MRI) with a slice thickness of ≤ 1.5 mm. Any CNS lesions < 10 mm in their longest dimension should be considered unchanged from baseline unless there is a minimum change of 3 mm in the longest measured dimension.
[0194] Non-measurable CNS lesions include all other CNS lesions, including lesions <10 mm in their longest dimension, lesions with borders that cannot be reproducibly measured, dural metastases, skull metastases, and lesions that are cysts only.
[0195] How to measure Lesion Measurements: The longest diameter of the selected lesion should be measured at the location where the image was obtained.
[0196] Methods of Assessment: The same assessment methods and the same procedures should be used to characterize each identified and reported lesion at baseline and throughout the study.
[0197] MRI: Gadolinium-enhanced MRI should be used to evaluate all CNS lesions. If MRI is contraindicated, computed tomography (CT) with or without contrast can be performed.
[0198] Response assessment for CNS target lesions
[0199] [Table 15]
[0200] For fused lesions, a plane between them may be maintained, which serves to obtain the maximum longest diameter of each individual lesion. If lesions are fused and no longer separable, the longest diameter vector in this case should be the maximum longest diameter of the fused lesion.
[0201] New CNS lesions not present on previous scans should be evident and not due to technical or slice variability.
[0202] Nontarget lesions should be assessed at least qualitatively with each radiographic evaluation.
[0203] [Table 16]
[0204] The CNS and non-CNS compartments are evaluated separately as follows.
[0205] [Table 17]
[0206] For assessment of overall progression-free survival, progression in either or both compartments will meet the progression-free survival criteria. Subjects who develop isolated CNS progression may be eligible to continue on study after local therapy (e.g., whole-brain radiation therapy, stereotactic radiosurgery, or surgery).
[0207] Evaluation of overall effectiveness Best overall response was the best response recorded from the start of study treatment until the end of treatment or disease progression / relapse (the criterion for PD was the smallest measured value recorded since the start of treatment).
[0208] In general, the determination of a subject's best response will depend on the manifestations of both target and non-target disease, and will take into account the emergence of new lesions.
[0209] [Table 18]
[0210] [Table 19]
[0211] [Table 20]
[0212] Special notes for response evaluation Lymph node lesions - Lymph nodes identified as target lesions should always have the actual measurement of their short diameter recorded, even if the lymph node regresses to less than 10 mm during the study. To qualify as a CR, each lymph node must achieve a short diameter of less than 10 mm rather than complete disappearance. The short diameter measurement of the lymph node target lesion is summed with the longest diameter measurement of the target lesion to create the sum of the target lesion diameters for a particular assessment (time point).
[0213] Target Lesions that Become "Too Small to Measurable" - During the study, all lesions (lymph node and non-lymph node) recorded at baseline should have their measurements recorded at each subsequent evaluation. When lesions become smaller than 5 mm, the precision of the measurements is reduced. Therefore, lesions smaller than 5 mm are considered "too small to measurable" and are not measured. With this instruction, they are assigned a default measurement of 5 mm. Lesions measurements smaller than 5 mm should not be recorded unless the lesion has completely resolved and the measurement can be recorded as "0".
[0214] New Lesions - The term "new lesion" always refers to the presence of a new finding that is clearly a neoplasm. New findings that may only be neoplastic and may be benign (infection, inflammation, etc.) will not be selected as new lesions until review has confirmed that they are neoplastic.
[0215] If the new lesion is uncertain (e.g., because of small size), continued therapy and follow-up evaluations will clarify whether it actually represents new disease. If a repeat scan establishes that a new lesion is clearly present, progression should be declared using the date of the first scan.
[0216] Lesions identified on follow-up examination in an anatomical location not scanned at baseline will be considered new lesions and will indicate disease progression notwithstanding any responses that may have been seen in target or non-target lesions present from baseline.
[0217] Subjects with a global deterioration in health status necessitating discontinuation of treatment without objective evidence of disease progression at that time should be classified as having "disease deterioration." Every effort should be made to document objective progression by additional imaging evaluations, even after cessation of treatment.
[0218] In some circumstances, it may be difficult to distinguish residual disease from scar or normal tissue. When assessment of complete response (CR) relies on this determination, it is recommended that residual disease be further investigated by fluorodeoxyglucose-positron emission tomography (FDG-PET) or PET / computed tomography (PET / CT), or possibly fine needle aspiration / biopsy, to confirm CR status.
[0219] Confirmed measurement / duration of response Confirmed Response - In nonrandomized trials where response is the primary endpoint, confirmation of PR and CR is required to ensure that the responses identified are not the result of measurement error.
[0220] Duration of Overall Response - Duration of overall response is measured from the first fulfillment of the CR / PR criteria (whichever is first documented) to the first date of objectively documented recurrence or progression or death, whichever occurs first.
[0221] Duration of stable disease-SD is measured from the start of treatment until criteria for disease progression are met, based on the smallest measurement recorded since the start of treatment or death, whichever occurs first.
[0222] ECOG Performance and NYHA Classification
[0223] [Table 21]
[0224] New York Heart Association Functional Classification Class I No limitation of physical activity. Ordinary physical activity does not cause undue fatigue, palpitations, or dyspnea.
[0225] Class II - Mild limitation of physical activity. No discomfort at rest, but ordinary physical activity causes fatigue, palpitations, or dyspnea.
[0226] Class III: Significant limitation of physical activity. No discomfort at rest, but less than ordinary activity causes fatigue, palpitations, or dyspnea.
[0227] Class IV Any physical activity causes discomfort. Symptoms of heart failure may occur even at rest. Any physical activity causes discomfort.
[0228] Preliminary data: As of May 2, 2022 (the "cut-off date"), six subjects with non-small cell lung cancer and active brain metastases were enrolled in Cohort A (960 mg QD). Subjects were treated for up to 36 weeks. The treatment was well tolerated, with one subject having a grade 3 event related to sotorasib, including dose-limiting toxicity of grade 3 hypokalemia. As of the cut-off date, efficacy of the 960 mg QD dose was evaluable in six subjects, with all subjects off treatment. Preliminary results (best objective response) are shown in the table below. Tumor shrinkage in intracranial lesions is shown by subject in Figure 1. These preliminary results indicate that the 960 mg QD dose resulted in shrinkage of intracranial lesions in four of six subjects, while extracranial responses indicate that five of six subjects showed SD or PR responses to their primary cancer (i.e., non-small cell lung cancer).
[0229] [Table 22]
[0230] Example 2 - Pharmacokinetic Analysis of Sotorasib at 960 mg, 360 mg, 180 mg, and 240 mg Preliminary pharmacokinetic (PK) data were available for subjects with advanced solid tumors harboring a specific KRAS p.G12C mutation using sotorasib (AMG 510) doses ranging from 180 to 960 mg PO QD. A dose-related increase in exposure was observed on day 1 with 180 to 960 mg PO QD. On day 1, the increase in exposure was less than dose proportional. There was no accumulation with multiple PO QD doses over 8 days. On day 8, the change in exposure was less than dose proportional with 180 to 960 mg PO QD. Rapid absorption was observed, with t max was between 1 and 2 hours after PO administration. Figure 2 shows the mean plasma concentration time profiles after oral administration of 180, 360, 720, or 960 mg sotorasib on Day 1. Figure 3 shows the concentrations after 8 days of once daily dosing (Day 8). The following table shows the pharmacokinetic parameters, AUC 0~24h is the area under the concentration-time curve from 0 to 24 hours after administration; C max is the maximum blood concentration during the dosing interval; t 1 / 2,z is the terminal elimination half-life; t max is C max Data are reported as median (range) and arithmetic mean (SD), respectively. max and t 1 / 2 Values are reported to 0 and 2 significant digits, respectively, for CV% and t max Report to three significant digits, except for .
[0231] [Table 23]
[0232] Example 3 - Contraindications for coadministration of sotorasib with antacids under fasting conditions Fourteen healthy subjects were enrolled in this phase 1, open-label, fixed-sequence study. Subjects received 960 mg sotorasib on day 1, 40 mg omeprazole once daily on days 4-8, and 40 mg omeprazole followed by 960 mg sotorasib on day 9. All doses were administered under fasting conditions. Blood samples for sotorasib PK were collected predose and up to 48 hours after sotorasib administration. Plasma PK parameters of sotorasib were estimated using noncompartmental methods.
[0233] Coadministration of sotrasib and omeprazole reduced the time to maximum plasma concentration of sotrasib (t max ) was delayed by 0.75 hours. 1 / 2 ) were similar after coadministration of sotrasib and omeprazole compared with sotrasib alone. Geometric mean sotrasib AUC after coadministration of sotrasib and omeprazole inf (area under the curve from zero to infinity) and C max The maximum plasma concentrations (17000 h*ng / mL and 3100 ng / mL, respectively) were lower compared with sotorasib administered alone (29300 h*ng / mL and 7200 ng / mL, respectively). Sotorasib was safe and well tolerated when coadministered with 40 mg omeprazole or administered alone in healthy subjects.
[0234] Results showed that coadministration of sotrasib and omeprazole in the fasting state significantly increased the AUC inf 42% and C max It was shown to reduce cerebral infarction by 57%.
[0235] Example 4 - Contraindications with co-administration of sotorasib and antacids after meals This was a phase 1, open-label, fixed-sequence, crossover, single-center study to explore mitigation strategies to limit the effect of antacids on sotorasib exposure. The study evaluated the PK of sotorasib administered alone and in combination with famotidine or omeprazole after meals in healthy men and women (14 subjects in total). Subjects received a single dose of sotorasib on day 1, an evening dose of famotidine (10 hours before sotorasib administration) on day 3, a single dose of sotorasib on day 4 followed by a further dose of famotidine 2 hours later, daily doses of omeprazole on days 6 through 10, and a single dose of both omeprazole and sotorasib on day 11. All sotorasib doses were administered after consumption of a standard calorie, moderate-fat meal. Blood was collected at predefined time points to characterize sotorasib plasma concentrations. Safety and tolerability monitoring was performed throughout the study.
[0236] A total of 15 healthy subjects (1 female and 13 males) were enrolled in the study. Thirteen of the 14 subjects received all treatments and completed the study.
[0237] AUC of sotorasib inf and C max The geometric least squares mean ratios of AUC1, AUC2, and AUC3, AUC4, and AUC5, were 0.622 and 0.654, respectively, when comparing sotorasib coadministered with famotidine after a meal with sotorasib alone. inf and C max The geometric least squares mean ratios of sotorasib coadministered with omeprazole and sotorasib alone were 0.430 and 0.349, respectively. A dose of 960 mg sotorasib was safe and well tolerated after coadministration with a single dose of 40 mg famotidine and repeated daily doses of 40 mg omeprazole after meals in healthy subjects.
[0238] In summary, the concomitant administration of a single dose of famotidine (an H2 receptor antagonist) 10 hours before and 2 hours after a single dose of sotoraxine after a meal significantly increased the C maxIn addition, coadministration of a single dose of sotrasilib with repeated doses of omeprazole (PPI) after a meal reduced the C max reduced the RR-100 by 65% and the AUC by 57%.
[0239] Example 5 - Contraindications for coadministration of sotorasib with strong CYP34A4 inducers Fourteen healthy subjects were enrolled in this phase 1, open-label, fixed-sequence study. Each subject received 960 mg sotorasib on days 1, 3, and 18, and 600 mg rifampin on days 3 and 5-19. Blood samples for sotorasib PK were collected predose and up to 48 hours after sotorasib administration. Plasma PK parameters of sotorasib were estimated using noncompartmental methods.
[0240] result: Geometric Mean Sotorasib AUC Following Coadministration of Single Doses of Sotorasib and Rifampin inf (area under the curve from zero to infinity) and C max The maximum plasma concentrations (19600 h*ng / mL and 5340 ng / mL, respectively) were similar to those of sotorasib alone (25600 h*ng / mL and 6350 ng / mL, respectively). Geometric mean sotorasib AUC after coadministration of multiple doses of rifampin with sotorasib inf and C max (12400 h*ng / mL and 4110 ng / mL, respectively) were lower compared with sotorasib alone (25600 h*ng / mL and 6350 ng / mL, respectively).
[0241] Sotorasib was safe and well tolerated when coadministered with 600 mg rifampin or administered alone in healthy subjects. Single doses of rifampin had no clinically meaningful effect on the PK of sotorasib, indicating that sotorasib is not a substrate of OATP1B1. Multiple doses of rifampin reduced the AUC inf 51%, C maxby 35%, indicating that sotorasib is a CYP3A4 substrate, consistent with in vitro data.
[0242] Example 6 - Contraindications for coadministration of sotorasib with CYP34A substrates This phase 1, open-label, fixed-sequence study enrolled X subjects with previously untreated NSCLC who received a single oral dose of 2 mg midazolam alone on day -1, 960 mg oral sotorasib on days 1 through 14, and a single oral dose of 2 mg midazolam at approximately the same time as the 960 mg oral sotorasib on day 15. Blood samples for sotorasib PK were collected predose and up to 48 hours after sotorasib administration. Plasma PK parameters of sotorasib were estimated using noncompartmental methods.
[0243] Plasma PK data for a single dose of midazolam were obtained from five subjects who received midazolam alone and repeated daily doses of sotorasib for 14 days followed by coadministration of midazolam with sotorasib. Results showed that exposure to midazolam was decreased when coadministered with sotorasib after repeated daily doses of sotorasib. Coadministration of sotorasib with midazolam (a sensitive CYP3A4 substrate) increased the C max by 48% and AUVs by 53%.
[0244] Example 7 - Contraindications for co-administration of sotorasib with P-gp substrates Fourteen healthy subjects were enrolled in this phase 1, open-label, fixed-sequence study. Each subject received 0.5 mg digoxin on day 1 and 960 mg sotorasib followed by 0.5 mg digoxin on day 7. Blood samples for digoxin PK were collected pre-dose and up to 144 hours after digoxin administration. Samples were measured using a validated high-performance liquid chromatography tandem mass spectrometry method. Plasma PK parameters were estimated using noncompartmental methods. Safety and tolerability were monitored throughout the study.
[0245] Time to maximum plasma concentration of digoxin (t max) and mean terminal half-life (t 1 / 2 ) were similar after coadministration of digoxin and sotrasib compared with digoxin alone. Geometric mean digoxin AUC after coadministration of digoxin and sotrasib inf The area under the curve from zero to infinity (40.3 h*ng / mL) was similar to that of digoxin alone (33.2 h*ng / mL). max The maximum plasma concentration (3.64 ng / mL) was higher than that of digoxin alone (1.90 ng / mL). A single dose of 0.5 mg digoxin was safe and well tolerated when administered alone or coadministered with 960 mg sotorasib.
[0246] Results showed that coadministration of digoxin with a single dose of sotorasib significantly increased the digoxin AUC inf and C max These results showed that the IL-101 and IL-102 receptors increased IL-1 expression by approximately 21% and 91%, respectively.
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Claims
1. 1. A pharmaceutical composition for use in a method of treating a cancer comprising a KRAS G12C mutation in a patient with active brain metastases, said pharmaceutical composition comprising sotorasib, said method comprising administering to said patient sotorasib in an amount effective to treat said cancer.
2. The pharmaceutical composition of claim 1, wherein the method comprises administering 960 mg of sotorasib to the patient once daily.
3. The pharmaceutical composition of claim 1, wherein the method comprises administering 480 mg of sotorasib to the patient once daily.
4. The pharmaceutical composition of claim 1, wherein the method comprises administering 240 mg of sotorasib to the patient once daily.
5. The pharmaceutical composition of claim 1, wherein the method comprises administering 480 mg of sotorasib to the patient twice daily.
6. The pharmaceutical composition of claim 1, wherein the method comprises administering 240 mg of sotorasib to the patient twice daily.
7. 2. The pharmaceutical composition of claim 1, wherein the patient has an intracranial lesion greater than 5 mm.
8. 8. The pharmaceutical composition of claim 7, wherein the patient has an intracranial lesion greater than 10 mm.
9. 2. The pharmaceutical composition of claim 1, wherein the cancer is non-small cell lung cancer, small intestine cancer, appendix cancer, colorectal cancer, cancer of unknown primary site, endometrial cancer, mixed cancer type, pancreatic cancer, hepatobiliary cancer, small cell lung cancer, cervical cancer, germ cell cancer, ovarian cancer, gastrointestinal neuroendocrine cancer, bladder cancer, myelodysplastic / myeloproliferative neoplasm, head and neck cancer, esophagogastric cancer, soft tissue sarcoma, mesothelioma, thyroid cancer, leukemia, or melanoma.
10. The pharmaceutical composition of claim 1 , wherein the cancer is non-small cell lung cancer or colorectal cancer.
11. The pharmaceutical composition of claim 1 , wherein the patient further requires treatment with an antacid.
12. 12. The pharmaceutical composition of claim 11, wherein the antacid is a proton pump inhibitor (PPI), an H2 receptor antagonist (H2RA), or a locally acting antacid.
13. 12. The pharmaceutical composition of claim 11, wherein the antacid is a locally acting antacid and sotorasib is administered about 4 hours before or about 10 hours after the locally acting antacid.
14. 13. The pharmaceutical composition of claim 12, wherein the locally acting antacid is sodium bicarbonate, calcium carbonate, aluminum hydroxide, or magnesium hydroxide.
15. 2. The pharmaceutical composition of claim 1, wherein the patient further requires treatment with a proton pump inhibitor (PPI) or an H2 receptor antagonist (H2RA).
16. 16. The pharmaceutical composition of claim 15, wherein the patient is not administered a PPI or an H2RA in combination with sotorasib.
17. 13. The pharmaceutical composition of claim 12, wherein the PPI is omeprazole, pantoprazole, esomeprazole, lansoprazole, rabeprazole, or dexlansoprazole.
18. 13. The pharmaceutical composition of claim 12, wherein the H2RA is famotidine, ranitidine, cimetidine, nizatidine, roxatidine, or lafutidine.
19. The pharmaceutical composition of claim 1 , wherein the patient further requires treatment with a CYP3A4 inducer.
20. 20. The pharmaceutical composition of claim 19, wherein the patient is not administered a CYP3A4 inducer in combination with sotorasib.
21. 20. The pharmaceutical composition of claim 19, wherein the CYP3A4 inducer is a barbiturate, brigatinib, carbamazepine, clobazam, dabrafenib, efavirenz, elagolix, enzalutamide, eslicarbazepine, glucocorticoid, letermovir, lorlatinib, modafinil, nevirapine, oritavancin, oxcarbazepine, perampanel, phenobarbital, phenytoin, pioglitazone, rifabutin, rifampin, telotristat, or troglitazone.
22. 20. The pharmaceutical composition of claim 19, wherein the patient is not administered a strong CYP3A4 inducer in combination with sotorasib.
23. 23. The pharmaceutical composition of claim 22, wherein the strong CYP3A4 inducer is phenytoin or rifampin.
24. The method of claim 1 , wherein the patient further requires treatment with a CYP3A4 substrate.
25. 25. The pharmaceutical composition of claim 24, wherein the patient is not administered a CYP3A4 substrate in combination with sotorasib.
26. The CYP3A4 substrate is abemaciclib, abiraterone, acalabrutinib, alectinib, alfentanil, alprazolam, amitriptyline, amlodipine, apixaban, aprepitant, aripiprazole, astemizole, atorvastatin, avanafil, axitinib, boceprevir, bosutinib, brexpiprazole, brigatinib, buspirone, cafergot, caffeine, carbamazepine, cariprazine, ceritinib, cerivastatin, chlorpheniramine, cilostazol, cisapride, citalopram, clarithromycin, cyclosporine ... sirolimus, clobazam, clopidogrel, cobimetinib, cocaine, codeine, colchicine, copanlisib, crizotinib, cyclosporine, dabrafenib, daclatasvir, dapsone, deflazacort, dexamethasone, dextromethorphan, diazepam, diltiazem, docetaxel, dolutegravir, domperidone, doxepin, elagolix, elbasvir / grazoprevir, eliglustat, enzalutamide, eplerenone, erythromycin, escitalopram, esomeprazole, estradiol, felodipine, fentanyl, fentanyl, Finasteride, flibanserin, Gleevec, haloperidol, hydrocortisone, ibrutinib, idelalisib, indacaterol, indinavir, irinotecan, isavuconazonium, ivabradine, ivacaftor, lansoprazole, lenvatinib, lercanidipine, lidocaine, linagliptin, lovastatin, macitentan, methadone, midazolam, naldemedine, naloxegol, nateglinide, nelfinavir, neratinib, netupitant / palonosetron, nevirapine, nifedipine, nisoldipine, nitrendipine, olaparib, Omeprazole, Ondansetron, Osimertinib, Ospemifene, Palbociclib, Panobinostat, Pantoprazole, Perampanel, Pimavanserin, Pimozide, Pomalidomide, Ponatinib, Progesterone, Propranolol, Quetiapine, Quinidine, Quinine, Regorafenib, Ribociclib, Rilpivirine, Risperidone, Ritonavir, Rivaroxaban, Roflumilast, Rolapitant, Romidepsin, Ruxolitinib, Salmeterol, Saquinavir, Selexipag, Sildenafil, Simeprevir, Simvastatin, Sirolimus,25. The pharmaceutical composition of claim 24, which is selected from the group consisting of sonidegib, sorafenib, sunitinib, suvorexant, tacrolimus (fk506), tamoxifen, tasimelteon, taxol, telaprevir, telithromycin, terfenadine, testosterone, ticagrelor, tofacitinib, tolvaptan, torisel, tramadol, trazodone, valbenazine, vandetanib, velpatasvir, vemurafenib, venetoclax, venlafaxine, verapamil, vilazodone, vincristine, vorapaxar, voriconazole, zaleplon, and ziprasidone.
27. The pharmaceutical composition of claim 1, wherein the patient further requires treatment with a P-glycoprotein (P-gp) substrate.
28. 28. The pharmaceutical composition of claim 27, wherein the patient is not administered a P-gp substrate in combination with sotorasib.
29. The pharmaceutical composition according to claim 27, wherein the P-gp substrate is etexilate, digoxin, or fexofenadine.
30. The pharmaceutical composition according to claim 1, wherein the patient has received at least one other systemic cancer therapy prior to the initiation of sotrasib therapy.
31. The pharmaceutical composition according to claim 30, wherein the patient has received at least two other systemic cancer therapies.
32. The pharmaceutical composition according to claim 30, wherein at least one systemic cancer therapy is selected from anti-PD-1 immunotherapy, anti-PD-L1 immunotherapy, and platinum-based chemotherapy.
33. The pharmaceutical composition according to claim 30, wherein the patient has previously received (i) anti-PD1 therapy or anti-PD-L1 therapy (if not contraindicated), or (ii) platinum-based chemotherapy, and (iii) EGFR, ALK, or ROS1 targeted therapy (if the cancer also shows mutations in EGFR, ALK, or ROS1).
34. The pharmaceutical composition according to claim 31, wherein the patient has previously received (i) anti-PD1 therapy or anti-PD-L1 therapy (if not contraindicated), and (ii) platinum-based chemotherapy, and (iii) EGFR, ALK, or ROS1 targeted therapy (if the cancer also shows mutations in EGFR, ALK, or ROS1).
35. The pharmaceutical composition according to claim 1, wherein the patient shows a 0 or 1 Eastern Cooperative Oncology Group (ECOG) performance status.
36. The pharmaceutical composition according to claim 1, wherein the patient is administered sotrasib for at least one month.
37. The pharmaceutical composition according to claim 1, wherein the patient is administered sotrasib for at least three months.
38. The pharmaceutical composition according to claim 1, wherein the patient is administered sotrasib for at least six months.
39. The pharmaceutical composition according to claim 36, wherein the patient shows at least stable disease (SD) 1, 3, or 6 months after sotrasib therapy as measured by the RECIST 1.1 protocol.
40. The pharmaceutical composition according to claim 39, wherein the stability is not sufficiently reduced to be recognized as a partial response (PR) and not sufficiently increased to be recognized as progressive disease (PD).
41. 37. The pharmaceutical composition of claim 36, wherein the patient exhibits at least a partial response (PR) after 1, 3, or 6 months of sotorasib therapy as measured by a RECIST 1.1 protocol.
42. 42. The pharmaceutical composition of claim 41, wherein the partial response is at least a 30% decrease in the sum of diameters of target lesions.
43. The pharmaceutical composition of claim 1, wherein the patient exhibits a progression-free survival (PFS) of at least 3 months.
44. 44. The pharmaceutical composition of claim 43, wherein the patient exhibits a PFS of at least 6 months.
45. The pharmaceutical composition of claim 1, wherein the patient exhibits an intracranial progression-free survival (PFS) of at least 3 months.
46. 46. The pharmaceutical composition of claim 45, wherein the patient exhibits an intracranial PFS of at least 6 months.
47. The pharmaceutical composition of claim 1, wherein the patient shows an intracranial objective response as assessed by RANO-BM.
48. 2. The pharmaceutical composition of claim 1, wherein the cancer exhibits a PD-L1 Tumor Percentage Score (TPS) of 1-49%.
49. 2. The pharmaceutical composition of claim 1, wherein the cancer exhibits a PD-L1 Tumor Percentage Score (TPS) of less than 1%.
50. 2. The pharmaceutical composition of claim 1, wherein the cancer exhibits a PD-L1 Tumor Percentage Score (TPS) of 50-100%.
51. The pharmaceutical composition of claim 1 , wherein the cancer further comprises an STK11 mutation.
52. The pharmaceutical composition of claim 1 , wherein the cancer further comprises a KEAP1 mutation.
53. The pharmaceutical composition of claim 1 , wherein the cancer further comprises STK11 wild type.
54. The pharmaceutical composition of claim 1 , wherein the cancer further comprises wild-type KEAP1.