SYMDEKO Tezacaftor and Ivacaftor Kit
🆔 Identity & classification
Where does this data come from?
🏷️ RxNorm drug class
This medicine belongs to the Cystic Fibrosis Transmembrane Conductance Regulator Potentiator class.
Where does this data come from?
🏭 Manufacturer & labeler
Where does this data come from?
🩺 Clinical
Ivacaftor is used to treat certain types of cystic fibrosis (CF; an inherited condition that affects the lungs and other parts of the body). Ivacaftor is in a class of medications called cystic fibrosis transmembrane conductance regulator (CFTR) potentiators. It works by improving the function of a protein in the body to decrease the build-up of thick mucus in the lungs and improve other symptoms of cystic fibrosis.
Read the full MedlinePlus article ↗- SYMDEKO doesn't just treat symptoms — it targets the underlying problem with the CFTR protein that causes CF. One ingredient, tezacaftor, helps your faulty CFTR protein get built a...
- What exactly is SYMDEKO doing for my cystic fibrosis?
- Yes — this one really matters. You should take SYMDEKO with fat-containing food every time. Fat helps your body absorb ivacaftor much better; without it, you get significantly less...
- Do I need to take it with food? Does it matter what I eat?
Patient education
Supplement & herbal interactions
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Ask a licensed pharmacist directly — free, answered by our team.
💊 What it looks like
Where does this data come from?
🧪 Inactive Ingredients / Excipients
Inactive ingredients, also called excipients, are components of the drug product other than the active ingredient. They may include fillers, dyes, coatings, preservatives, flavors, or other formulation ingredients.
Where does this data come from?
IACT rows and label-wide narrative are kept separate; availability and product-level specificity depend on the submitted label.Inactive ingredient FAQ
Are inactive ingredients the same for every manufacturer?
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💲 Pricing
A drug doesn't have one price. Each row is a different public payment system, and none is what you'd pay at the counter — that depends on your insurance. The ⓘ on each row explains what it measures.
| Price system | Per each | Per package |
|---|---|---|
| Retail pharmacies payNADAC · weekly | Not in the retail survey — common for institutional, discontinued, or low-volume packs. | |
| Medicaid paysCMS SDUD · 12 mo | $535.60 | — |
| Medicare drug plans payPart D · Q2 2026 | $445.17 | — |
Where does this data come from?
🔁 Therapeutic equivalents
| Product | Labeler | Pack | NADAC/unit | TE | Status | Price vs. this |
|---|---|---|---|---|---|---|
| Symdeko 51167-0113-01 | Vertex | 7 tablets | — | — | FDA listed | — |
| Symdekothis 51167-0661-01 | Vertex | 7 tablets | — | — | FDA listed | — |
Where does this data come from?
⏳ Availability & generic status
We did not find an FDA-approved generic match for this exact strength, form and route. Patent/protection dates below may affect future generic timing.
Why the date isn’t exact: Generic timing can change because patents may be challenged, settled, licensed, added, removed, or worked around with a narrower label — and FDA approval does not always mean a pharmacy can get the generic today.
🛈 What do these terms mean?
- Patent
- Legal protection listed in the Orange Book that may delay generic approval or launch. Issued by the U.S. Patent & Trademark Office.
- Substance patent
- Covers the active drug molecule itself — the hardest to design around. A generic generally can’t launch until it expires.
- Formulation (product) patent
- Covers a specific formulation or dosage form. A generic can sometimes work around it with a different formulation.
- Method-of-use patent
- A patent covering one specific approved use of the drug — not necessarily the whole molecule. A generic can sometimes launch with a “skinny label” that carves out the protected use and keeps the others.
- Skinny label
- A generic label that omits a still-patented use when the FDA allows it — letting a generic reach the market for the unprotected uses.
- Exclusivity
- FDA-granted marketing protection, separate from patents — e.g. 5-yr new chemical entity, 7-yr orphan drug, or a +6-month pediatric extension.
- Paragraph IV
- A generic applicant’s formal challenge to a listed patent. It can potentially lead to earlier generic entry, but often involves litigation or a settlement.
- RLD / RS
- Reference Listed Drug — the brand product the FDA uses as the reference for generic applications. Reference Standard — the product the FDA expects generics to compare against in bioequivalence testing.
- TE / AB rating
- FDA therapeutic-equivalence rating. An AB rating generally means the FDA considers a generic therapeutically equivalent to — and substitutable for — the brand.
- LOE (loss of exclusivity)
- The latest patent or exclusivity currently listed — the loss-of-exclusivity / latest-listed-protection date shown on this page. Paragraph-IV challenges and settlements can move the real date earlier; FDA approval and a manufacturer’s decision to market can move it later.
Built from the FDA Orange Book. The bars above are scaled to each protection’s expiry; the red LOE marker is the last one to lapse.
| Patent | Type | Use code | Expires |
|---|---|---|---|
| US 9670163 ↗ | Method of use | U-2246 | Dec 28, 2026 |
| US 10239867 ↗ | Drug substance | U-2569 | Apr 9, 2027 |
| US 10022352 ↗ | Method of use | U-2573 | Apr 9, 2027 |
| US 10022352 ↗ | Method of use | U-2343 | Apr 9, 2027 |
| US 9974781 ↗ | Method of use | U-2318 | Apr 9, 2027 |
| US 8598181 ↗ | Method of use | U-2246 | May 1, 2027 |
| US 8324242 ↗ | Method of use | U-2246 | Aug 5, 2027 |
| US 9670163 ↗ | Method of use | U-2246 | Dec 28, 2026 |
| US 8415387 ↗ | Method of use | U-2246 | Nov 12, 2027 |
| US 9931334 ↗ | Method of use | U-2575 | Dec 28, 2026 |
| US 9931334 ↗ | Method of use | U-2275 | Dec 28, 2026 |
| US 9931334 ↗ | Method of use | U-2575 | Dec 28, 2026 |
| US 9931334 ↗ | Method of use | U-2275 | Dec 28, 2026 |
| US 10239867 ↗ | Drug substance | U-2512 | Apr 9, 2027 |
| US 10022352 ↗ | Method of use | U-2343 | Apr 9, 2027 |
| US 8415387 ↗ | Method of use | U-2246 | Nov 12, 2027 |
| US 8598181 ↗ | Method of use | U-2246 | May 1, 2027 |
| US 8324242 ↗ | Method of use | U-2246 | Aug 5, 2027 |
| US 9012496 ↗ | Method of use | U-2248 | Jul 15, 2033 |
| US 12458635 ↗ | Method of use | U-4336 | Aug 13, 2029 |
| US 12458635 ↗ | Method of use | U-4336 | Aug 13, 2029 |
| US 11578062 ↗ | Method of use | U-3545 | Mar 25, 2031 |
| US 11578062 ↗ | Method of use | U-3545 | Mar 25, 2031 |
| US 11639347 ↗ | Drug substance | U-2569 | Apr 9, 2027 |
| US 11639347 ↗ | Drug substance | U-2569 | Apr 9, 2027 |
| US 8354427 ↗ | Method of use | U-3021 | Jul 6, 2026 |
| US 8354427 ↗ | Method of use | U-3021 | Jul 6, 2026 |
| US 10081621 ↗ | Method of use | U-3024 | Mar 25, 2031 |
| US 10081621 ↗ | Method of use | U-3025 | Mar 25, 2031 |
| US 10081621 ↗ | Method of use | U-3024 | Mar 25, 2031 |
| US 10081621 ↗ | Method of use | U-3025 | Mar 25, 2031 |
| US 10206877 ↗ | Method of use | U-3027 | Apr 14, 2035 |
| US 10206877 ↗ | Method of use | U-3026 | Apr 14, 2035 |
| US 10206877 ↗ | Method of use | U-3026 | Apr 14, 2035 |
| US 10206877 ↗ | Method of use | U-3027 | Apr 14, 2035 |
| US 10058546 ↗ | Method of use | U-3023 | Jul 15, 2033 |
| US 10058546 ↗ | Method of use | U-3022 | Jul 15, 2033 |
| US 10058546 ↗ | Method of use | U-3022 | Jul 15, 2033 |
| US 10058546 ↗ | Method of use | U-3023 | Jul 15, 2033 |
| US 11564916 ↗ | Method of use | U-3527 | Aug 13, 2029 |
| US 11564916 ↗ | Method of use | U-3527 | Aug 13, 2029 |
| US 11951212 ↗ | Method of use | U-3894 | Apr 14, 2035 |
| US 9974781 ↗ | Method of use | U-2574 | Apr 9, 2027 |
| US 10239867 ↗ | Drug substance | U-2569 | Apr 9, 2027 |
| US 10239867 ↗ | Drug substance | U-2512 | Apr 9, 2027 |
| US 9974781 ↗ | Method of use | U-2574 | Apr 9, 2027 |
| US 10022352 ↗ | Method of use | U-2573 | Apr 9, 2027 |
| US 9012496 ↗ | Method of use | U-2248 | Jul 15, 2033 |
| US 9974781 ↗ | Method of use | U-2318 | Apr 9, 2027 |
| US 8410274 ↗ | Drug product | — | Dec 28, 2026 |
| US 7776905 ↗ | Drug substance | — | Jun 3, 2027 |
| US 7495103 ↗ | Drug substance | — | May 20, 2027 |
| US 7645789 ↗ | Drug substance | — | May 1, 2027 |
| US 7645789 ↗ | Drug substance | — | May 1, 2027 |
| US 8623905 ↗ | Drug substance | — | May 1, 2027 |
| US 8410274 ↗ | Drug product | — | Dec 28, 2026 |
| US 8754224 ↗ | Drug substance | — | Dec 28, 2026 |
| US 7776905 ↗ | Drug substance | — | Jun 3, 2027 |
| US RE50453 ↗ | Drug substance | — | Jul 10, 2031 |
| US 10646481 ↗ | Drug product | — | Aug 13, 2029 |
| US 8623905 ↗ | Drug substance | — | May 1, 2027 |
| US RE50453 ↗ | Drug substance | — | Jul 10, 2031 |
| US 8754224 ↗ | Drug substance | — | Dec 28, 2026 |
| US 10646481 ↗ | Drug product | — | Aug 13, 2029 |
| US 7495103 ↗ | Drug substance | — | May 20, 2027 |
| Code | What it grants | Expires |
|---|---|---|
| ODE-247 | Orphan Drug Exclusivity (7-year) | Jun 21, 2026 |
| ODE-335 | Orphan Drug Exclusivity (7-year) | Dec 21, 2027 |
| ODE-247 | Orphan Drug Exclusivity (7-year) | Jun 21, 2026 |
| ODE-335 | Orphan Drug Exclusivity (7-year) | Dec 21, 2027 |
Is there a generic version of SYMDEKO 100/150 MG-150 MG TABS?
The FDA approved a generic — why can’t I get it at my pharmacy yet?
Why do different websites show different generic release dates?
What does “FDA listed” mean?
What does a patent or protection date mean here?
What does “current Orange Book estimate” mean?
Can a generic come out before the last patent expires?
Can a generic come out after the listed dates?
What is the difference between patents and exclusivity?
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Where does this data come from?
🗺️ Medicaid utilization & spend
📊 Medicare Part D spend CMS · PART D · 2026 (Q1)
📦 Packaging — all sizes for this product
| Package NDC | Description | Marketing start | Status |
|---|---|---|---|
| 51167-0661-01 You're viewing this | 1 KIT in 1 CARTON (51167-661-01) * 7 TABLET, FILM COATED in 1 BLISTER PACK * 7 TABLET, FILM COATED in 1 BLISTER PACK | 2018-02-12 | Active |
🧭 About this NDC listing & data coverage
Kit / multi-component package
This NDC identifies a kit — a package containing more than one component. Structured data (pricing, ingredients, equivalents) is often reported per component rather than for the kit NDC itself, which can make this page look thinner than the components' own pages.
What data is (and isn’t) available for this NDC — tap to expand
| NDC identity (package / product / labeler codes) | ✓ Available |
| Labeler | ✓ Available |
| Product & package description | ✓ Available |
| Marketing category & status | ✓ Available |
| Active ingredient / dosage form / route | ✓ Available |
| FDA label (SPL via DailyMed) | ✓ Available |
| Package photos | ✓ Available |
| Inactive ingredients (structured) | — Not published for this NDC The labeler did not submit a structured excipient list, or no SPL is available. |
| NADAC pharmacy acquisition price (CMS) | — Not published for this NDC CMS publishes NADAC only for NDCs reported in its retail-pharmacy survey. |
| Orange Book / therapeutic-equivalence data | ✓ Available |
| HCPCS J-code billing crosswalk | — Not published for this NDC Most self-administered / retail products have no J-code — that is normal. |
| Medicaid utilization (CMS SDUD) | ✓ Available |
Questions about this listing
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📄 Full prescribing information FDA SPL
🎯 Indications and Usage ▾
1 INDICATIONS AND USAGE SYMDEKO is indicated for the treatment of cystic fibrosis (CF) in patients aged 6 years and older who are homozygous for the F508del mutation or who have at least one mutation in the cystic fibrosis transmembrane conductance regulator ( CFTR ) gene that is responsive to tezacaftor/ivacaftor based on in vitro data and/or clinical evidence [see Clinical Pharmacology (12.1) and Clinical Studies (14) ] . If the patient's genotype is unknown, an FDA-cleared CF mutation test should be used to detect the presence of a CFTR mutation followed by verification with bi-directional sequencing when recommended by the mutation test instructions for use.
SYMDEKO is a combination of tezacaftor and ivacaftor, indicated for the treatment of cystic fibrosis (CF) in patients aged 6 years and older who are homozygous for the F508del mutation or who have at least one mutation in the cystic fibrosis transmembrane conductance regulator ( CFTR ) gene that is responsive to tezacaftor/ivacaftor based on in vitro data and/or clinical evidence. ( 12.1 , 14 ) If the patient's genotype is unknown, an FDA-cleared CF mutation test should be used to detect the presence of a CFTR mutation followed by verification with bi-directional sequencing when recommended by the mutation test instructions for use.
( 1 )
⏱️ Dosage and Administration ▾
2 DOSAGE AND ADMINISTRATION Pediatric patients aged 6 to less than 12 years weighing less than 30 kg: one tablet (containing tezacaftor 50 mg/ivacaftor 75 mg) in the morning and one tablet (containing ivacaftor 75 mg) in the evening, approximately 12 hours apart. SYMDEKO should be taken with fat-containing food. ( 2.1 , 2.2 , 12.3 ) Adults and pediatric patients aged 12 years and older or pediatric patients aged 6 to less than 12 years weighing 30 kg or more: one tablet (containing tezacaftor 100 mg/ivacaftor 150 mg) in the morning and one tablet (containing ivacaftor 150 mg) in the evening, approximately 12 hours apart.
SYMDEKO should be taken with fat-containing food. ( 2.1 , 2.2 , 12.3 ) Reduce dosage in patients with moderate and severe hepatic impairment. ( 2.3 , 8.6 , 12.3 ) See full prescribing information for dosage modifications due to drug interactions with SYMDEKO.
( 2.4 , 7.2 , 12.3 )
2.1General Dosage Information Swallow the tablets whole. SYMDEKO should be taken with fat-containing food, such as food recommended in standard nutritional guidelines. Examples of meals or snacks that contain fat are those prepared with butter or oils or those containing eggs, cheeses, nuts, whole milk, or meats, etc. [see Clinical Pharmacology (12.3) ] .
2.2Recommended Dosage in Adults, Adolescents, and Children Aged 6 Years and Older Adults, adolescents, and children aged 6 years and older should be dosed according to Table 1. The morning and the evening doses should be taken approximately 12 hours apart. Table 1: Recommended Dosage for Patients Aged 6 Years and Older Age Morning (one tablet) Evening (one tablet) 6 to <12 years weighing <30 kg tezacaftor 50 mg/ivacaftor 75 mg ivacaftor 75 mg 6 to <12 years weighing ≥30 kg tezacaftor 100 mg/ivacaftor 150 mg ivacaftor 150 mg ≥12 years tezacaftor 100 mg/ivacaftor 150 mg ivacaftor 150 mg Information for Missed Doses: If 6 hours or less have passed since the missed morning or evening dose, the patient should take the missed dose as soon as possible and continue on the original schedule.
If more than 6 hours have passed since the missed morning or evening dose, the patient should not take the missed dose. The next scheduled dose can be taken at the usual time. More than one dose should not be taken at the same time.
2.3Recommended Dosage for Patients with Hepatic Impairment For dosage adjustment for patients with hepatic impairment, refer to Table 2. Studies have not been conducted in patients with severe hepatic impairment (Child-Pugh Class C), but exposure of tezacaftor and ivacaftor is expected to be higher than in patients with moderate hepatic impairment. Therefore, SYMDEKO should be used with caution at an adjusted dosage after weighing the risks and benefits of treatment in these patients [see Use in Specific Populations (8.6) , Clinical Pharmacology (12.3) , and Patient Counseling Information (17) ].
Table 2: Recommended Dosage for Patients with Hepatic Impairment Hepatic Impairment Morning Evening Patients Aged 6 to <12 Years Weighing <30 kg Patients Aged 6 to <12 Years Weighing ≥30 kg and Patients Age ≥12 Years All Patients Mild (Child-Pugh Class A) No dose adjustment No dose adjustment No dose adjustment Moderate (Child-Pugh Class B) One tablet of tezacaftor 50 mg/ivacaftor 75 mg once daily One tablet of tezacaftor 100 mg/ivacaftor 150 mg once daily No ivacaftor dose Severe (Child-Pugh Class C) One tablet of tezacaftor 50 mg/ivacaftor 75 mg once daily (or less frequently) One tablet of tezacaftor 100 mg/ivacaftor 150 mg once daily (or less frequently)
2.4Dosage Adjustment for Patients Taking Drugs that are CYP3A Inhibitors The dosing regimen of SYMDEKO should be adjusted when co-administered with moderate and strong CYP3A inhibitors. Moderate CYP3A inhibitors: When co-administered with moderate CYP3A inhibitors (e.g., fluconazole, erythromycin), the dosing regimen should be adjusted as in Table 3 [see Drug Interactions (7.2) , Clinical Pharmacology (12.3) , and Patient Coun…
💊 Dosage Forms and Strengths ▾
3 DOSAGE FORMS AND STRENGTHS Tablets: Tezacaftor 50 mg/ivacaftor 75 mg fixed-dose combination tablets co-packaged with ivacaftor 75 mg tablets Tezacaftor 50 mg/ivacaftor 75 mg tablets are white, oblong-shaped, and debossed with "V50" on one side and plain on the other. Ivacaftor 75 mg tablets are light blue, oblong-shaped, and printed with "V 75" in black ink on one side and plain on the other. Tablets: Tezacaftor 100 mg/ivacaftor 150 mg fixed-dose combination tablets co-packaged with ivacaftor 150 mg tablets Tezacaftor 100 mg/ivacaftor 150 mg tablets are yellow, oblong-shaped, and debossed with "V100" on one side and plain on the other.
Ivacaftor 150 mg tablets are light blue, oblong-shaped, and printed with "V 150" in black ink on one side and plain on the other. Tablets: tezacaftor 50 mg/ivacaftor 75 mg fixed-dose combination tablets co-packaged with ivacaftor 75 mg tablets. ( 3 ) Tablets: tezacaftor 100 mg/ivacaftor 150 mg fixed-dose combination tablets co-packaged with ivacaftor 150 mg tablets.
( 3 )
⛔ Contraindications ▾
4 CONTRAINDICATIONS None. None. ( 4 )
⚠️ Warnings and Cautions ▾
5 WARNINGS AND PRECAUTIONS Elevated transaminases (ALT or AST): Transaminases (ALT and AST) should be assessed prior to initiating SYMDEKO, every 3 months during the first year of treatment, and annually thereafter. In patients with a history of transaminase elevations, more frequent monitoring should be considered. Dosing should be interrupted in patients with significant elevations of transaminases, e.g., patients with ALT or AST >5 × upper limit of normal (ULN), or ALT or AST >3 × ULN with bilirubin >2 × ULN.
Following resolution of transaminase elevations, consider the benefits and risks of resuming treatment. ( 5.1 , 6 ) Hypersensitivity reactions: Anaphylaxis has been reported with SYMDEKO in the postmarketing setting. Initiate appropriate therapy in the event of a hypersensitivity reaction.
( 5.2 ) Intracranial hypertension : Intracranial hypertension (IH) has been reported in the postmarketing setting with the use of drugs containing the same or similar active ingredients as SYMDEKO. If an unusual headache or visual disturbances occur during treatment, and IH is suspected, interrupt SYMDEKO and refer for prompt medical evaluation. ( 5.3 ) Neuropsychiatric events, including suicidal thoughts and behaviors : Serious neuropsychiatric events, including symptoms of anxiety, depression, suicidal ideation and behavior, and sleep disturbances, have been reported in the postmarketing setting for SYMDEKO or drugs containing the same or similar active ingredients.
Monitor patients closely for new or worsening symptoms. Consider the risks and benefits for the individual patient to determine if therapy with SYMDEKO should be interrupted at the occurrence of neuropsychiatric symptoms. ( 5.4 ) Use with CYP3A inducers: Concomitant use with strong CYP3A inducers (e.g., rifampin, St.
John's wort) substantially decrease exposure of ivacaftor and may decrease the exposure of tezacaftor, which may reduce therapeutic effectiveness. Therefore, co-administration is not recommended. ( 5.5 , 7.1 , 12.3 ) Cataracts: Non-congenital lens opacities/cataracts have been reported in pediatric patients treated with SYMDEKO.
Baseline and follow-up examinations are recommended in pediatric patients initiating SYMDEKO treatment. ( 5.6 , 8.4 )
5.1Transaminase (AST/ALT) Elevations Elevated transaminases have been observed in patients with CF treated with SYMDEKO, as well as with ivacaftor monotherapy. Assessments of transaminases (ALT and AST) are recommended for all patients prior to initiating SYMDEKO, every 3 months during the first year of treatment, and annually thereafter. For patients with a history of transaminase elevations more frequent monitoring should be considered.
In the event of significant elevations of transaminases, e.g., patients with ALT or AST >5 × upper limit of normal (ULN), or ALT or AST >3 × ULN with bilirubin >2 × ULN, dosing should be interrupted and laboratory tests closely followed until the abnormalities resolve. Following the resolution of transaminase elevations consider the benefits and risks of resuming treatment [see Adverse Reactions (6) ] .
5.2Hypersensitivity Reactions, Including Anaphylaxis Hypersensitivity reactions, including cases of anaphylaxis, have been reported in the postmarketing setting [see Adverse Reactions (6.2) ] . If signs or symptoms of serious hypersensitivity reactions develop during treatment, discontinue SYMDEKO and institute appropriate therapy. Consider the benefits and risks for the individual patient to determine whether to resume treatment with SYMDEKO.
5.3Intracranial Hypertension Cases of intracranial hypertension (IH) have been reported in the postmarketing setting with the use of drugs containing the same or similar active ingredients as SYMDEKO [see Adverse Reactions (6.2) ] . Clinical manifestations of IH include headache, blurred vision, diplopia, and potential vision loss; papilledema can be found on fundoscopy. If an unusual headache or visual disturbances occur during treatment, a…
🤒 Adverse Reactions ▾
6 ADVERSE REACTIONS The following adverse reactions are discussed in greater detail in other sections of the label: Transaminase Elevations [see Warnings and Precautions (5.1) ] Hypersensitivity Reactions, Including Anaphylaxis [see Warnings and Precautions (5.2) ] Intracranial Hypertension [see Warnings and Precautions (5.3) ] Neuropsychiatric Events, Including Suicidal Thoughts and Behaviors [see Warnings and Precautions (5.4) ] Cataracts [see Warnings and Precautions (5.6) ] The most common adverse drug reactions to SYMDEKO (occurring in ≥3% of patients) were headache, nausea, sinus congestion, and dizziness.
( 6.1 ) To report SUSPECTED ADVERSE REACTIONS, contact Vertex Pharmaceuticals Incorporated at 1-877-634-8789 or FDA at 1-800-FDA-1088 or www.fda.gov/medwatch .
6.1Clinical Trials Experience Because clinical trials are conducted under widely varying conditions, adverse reaction rates observed in the clinical trials of a drug cannot be directly compared to rates in the clinical trials of another drug and may not reflect the rates observed in clinical practice. The overall safety profile of SYMDEKO is based on data from 1001 patients in three double-blind, placebo-controlled, clinical trials: two parallel-group trials of 12 and 24-week duration and one cross-over design trial of 8 weeks duration.
Eligible patients were also able to participate in an open-label extension safety study (up to 96 weeks of SYMDEKO). In the three placebo-controlled trials (Trials 1, 2, and 3), a total of 496 patients with CF aged 12 years and older received at least one dose of SYMDEKO. The proportion of patients who discontinued study drug prematurely due to adverse reactions was 1.6% for SYMDEKO-treated patients and 2.0% for placebo-treated patients.
Serious adverse reactions, whether considered drug-related or not by the investigators, that occurred more frequently in SYMDEKO-treated patients compared to placebo included distal intestinal obstruction syndrome, 3 (0.6%) SYMDEKO-treated patients vs. 0 placebo. There were no deaths in the placebo-controlled trials, and one death in the open-label extension study due to respiratory failure and influenza infection in a patient who had discontinued SYMDEKO seven weeks prior.
The safety profile of SYMDEKO was generally similar across all subgroups of patients, including analysis by age, sex, baseline percent predicted FEV 1 (ppFEV 1 ), and geographic regions. Table 5 shows adverse reactions occurring in ≥3% of SYMDEKO-treated patients that also occurred at a higher rate than in the placebo-treated patients in the 12- and 24-week placebo-controlled, parallel-group trials (Trials 1 and 3). Table 5: Incidence of Adverse Drug Reactions in ≥3% of SYMDEKO-Treated Patients and Greater than Placebo Adverse Reactions (Preferred Term) SYMDEKO N=334 n (%) Placebo N=343 n (%) Headache 49 (15) 44 (13) Nausea 29 (9) 24 (7) Sinus congestion 13 (4) 6 (2) Dizziness 12 (4) 8 (2) The safety data from the following trials are similar to that observed in Trials 1 and 3: an 8-week randomized, double-blind, placebo-controlled crossover study in 244 patients with CF aged 12 years and older who were heterozygous for the F508del mutation and a second mutation predicted to be responsive to tezacaftor/ivacaftor (Trial 2). a 24-week open-label study in 70 patients with CF aged 6 to less than 12 years who were either homozygous for the F508del mutation or heterozygous for the F508del mutation and a second mutation predicted to be responsive to tezacaftor/ivacaftor (Trial 4).
Laboratory Abnormalities Transaminase elevations During the placebo-controlled trials in patients aged 12 years and older, the incidence of maximum transaminase (ALT or AST) >8, >5, and >3 × the upper limit of normal (ULN) was similar between SYMDEKO-treated patients and placebo-treated patients; 0.2%, 1.0%, and 3.4% in SYMDEKO-treated patients, and 0.4%, 1.0%, and 3.4% in placebo-treated patients. One patient (0.2%) on SYMDEKO and 2 patients (0.4%) on pla…
🔄 Drug Interactions ▾
7 DRUG INTERACTIONS Potential for other drugs to affect tezacaftor/ivacaftor CYP3A inhibitors: Reduce SYMDEKO dosage when co-administered with strong (e.g., ketoconazole) or moderate (e.g., fluconazole) CYP3A inhibitors. Avoid food containing grapefruit. ( 2.4 , 7.2 , 12.3 )
7.1Inducers of CYP3A Tezacaftor and ivacaftor are substrates of CYP3A (ivacaftor is a sensitive substrate of CYP3A). Concomitant use of CYP3A inducers may result in reduced exposures and thus reduced SYMDEKO efficacy. Co-administration of ivacaftor with rifampin, a strong CYP3A inducer, significantly decreased ivacaftor exposure (area under the curve [AUC]) by 89%.
Tezacaftor exposures can also be expected to decrease significantly during co-administration with strong CYP3A inducers. Therefore, co-administration of SYMDEKO with strong CYP3A inducers is not recommended [see Warnings and Precautions (5.5) , Clinical Pharmacology (12.3) , and Patient Counseling Information (17) ] . Examples of strong CYP3A inducers include: rifampin, rifabutin, phenobarbital, carbamazepine, phenytoin, and St.
John's wort (Hypericum perforatum)
7.2Inhibitors of CYP3A Co-administration with itraconazole, a strong CYP3A inhibitor, increased tezacaftor exposure (AUC) by 4.0-fold and ivacaftor by 15.6-fold. When co-administered with strong CYP3A inhibitors, the dosing regimen of SYMDEKO should be adjusted [see Dosage and Administration (2.4) , Clinical Pharmacology (12.3) , and Patient Counseling Information (17) ] . Examples of strong CYP3A inhibitors include: ketoconazole, itraconazole, posaconazole, and voriconazole telithromycin and clarithromycin Co-administration of fluconazole increased ivacaftor exposure (AUC) by 3.0-fold.
Simulation suggested co-administration with fluconazole, a moderate CYP3A inhibitor, may increase tezacaftor exposure (AUC) by approximately 2.0-fold. When co-administered with moderate CYP3A inhibitors, the dosing regimen of SYMDEKO should be adjusted [see Dosage and Administration (2.4) , Clinical Pharmacology (12.3) , and Patient Counseling Information (17) ] . Examples of moderate CYP3A inhibitors include: fluconazole erythromycin Co-administration of SYMDEKO with grapefruit juice, which contains one or more components that moderately inhibit CYP3A, may increase exposure of tezacaftor and ivacaftor; therefore, food or drink containing grapefruit should be avoided during treatment with SYMDEKO [see Dosage and Administration (2.4) , Clinical Pharmacology (12.3) , and Patient Counseling Information (17) ] .
7.3Ciprofloxacin Co-administration of SYMDEKO with ciprofloxacin had no significant effect on the exposure of tezacaftor or ivacaftor. Therefore, no dosage adjustment is necessary during concomitant administration of SYMDEKO with ciprofloxacin [see Clinical Pharmacology (12.3) ] . Potential for tezacaftor/ivacaftor to affect other drugs
7.4CYP3A Substrates Co-administration of SYMDEKO with midazolam (oral), a sensitive CYP3A substrate, did not affect midazolam exposure. No dosage adjustment of CYP3A substrates is required when co-administered with SYMDEKO [see Clinical Pharmacology (12.3) ] .
7.5CYP2C9 Substrates Ivacaftor may inhibit CYP2C9; therefore, monitoring of the international normalized ratio (INR) during co-administration of SYMDEKO with warfarin is recommended. Other medicinal products for which exposure may be increased by SYMDEKO include glimepiride and glipizide; these medicinal products should be used with caution [see Clinical Pharmacology (12.3) ] .
7.6Digoxin and Other P-gp Substrates Co-administration of SYMDEKO with digoxin, a sensitive P-gp substrate, increased digoxin exposure by 1.3-fold consistent with weak inhibition of P-gp by ivacaftor. Administration of SYMDEKO may increase systemic exposure of medicinal products that are sensitive substrates of P-gp, which may increase or prolong their therapeutic effect and adverse reactions. When used concomitantly with digoxin or other substrates of P-gp with a narrow therapeutic…
👥 Use in Specific Populations ▾
8 USE IN SPECIFIC POPULATIONS
8.1Pregnancy Risk Summary There are limited and incomplete human data from clinical trials and postmarketing reports on the use of SYMDEKO or its individual components, tezacaftor and ivacaftor, in pregnant women to inform a drug-associated risk. Although there are no animal reproduction studies with the concomitant administration of tezacaftor and ivacaftor, separate reproductive and developmental studies were conducted with tezacaftor and ivacaftor in pregnant rats and rabbits. In animal reproduction studies, oral administration of tezacaftor to pregnant rats and rabbits during organogenesis demonstrated no teratogenicity or adverse developmental effects at doses that produced maternal exposures up to approximately 3 times the exposure at the maximum recommended human dose (MRHD) in rats and 0.2 times the MRHD in rabbits (based on summed AUCs for tezacaftor and M1 metabolite).
Oral administration of ivacaftor to pregnant rats and rabbits during organogenesis demonstrated no teratogenicity or adverse developmental effects at doses that produced maternal exposures up to approximately 6 and 16 times the exposure at the MRHD, respectively. No adverse developmental effects were observed after oral administration of either tezacaftor or ivacaftor to pregnant rats from the period of organogenesis through lactation at doses that produced maternal exposures approximately 1 and 4 times the exposures at the MRHD, respectively ( see Data ).
The background risk of major birth defects and miscarriage for the indicated population is unknown. In the U.S. general population, the estimated background risk of major birth defects and miscarriage in clinically recognized pregnancies is 2% to 4% and 15% to 20%, respectively. Data Animal Data Tezacaftor In an embryo-fetal development study in pregnant rats dosed during the period of organogenesis from gestation Days 6-17, tezacaftor was not teratogenic and did not affect fetal development or survival at exposures up to 3 times the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at maternal oral doses up to 100 mg/kg/day).
In an embryo-fetal development study in pregnant rabbits dosed during the period of organogenesis from gestation Days 7-20, tezacaftor was not teratogenic and did not affect fetal development or survival at exposures up to 0.2 times the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at maternal oral doses up to 25 mg/kg/day). Lower fetal body weights were observed in rabbits at a maternally toxic dose that produced exposures approximately 1 times the MRHD (at a maternal dose of 50 mg/kg/day). In a pre- and postnatal development (PPND) study in pregnant rats dosed from gestation Day 6 through lactation Day 18, tezacaftor had no adverse developmental effects on pups at an exposure of approximately 1 times the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at a maternal dose of 25 mg/kg/day).
Decreased fetal body weights and early developmental delays in pinna detachment, eye opening, and righting reflex occurred at a maternally toxic dose (based on maternal weight loss) that produced exposures approximately 2 times the exposure at the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at a maternal oral dose of 50 mg/kg/day). Placental transfer of tezacaftor was observed in pregnant rats. Ivacaftor In an embryo-fetal development study in pregnant rats dosed during the period of organogenesis from gestation Days 7-17, ivacaftor was not teratogenic and did not affect fetal survival at exposures up to 6 times the MRHD (based on summed AUCs for ivacaftor and its metabolites at a maternal oral dose of 200 mg/kg/day).
In an embryo-fetal development study in pregnant rabbits dosed during the period of organogenesis from gestation Days 7-19, ivacaftor was not teratogenic and did not affect fetal development or survival at exposures up to 16 times the MRHD (on an ivacaftor AUC basis at maternal oral doses up to 10…
🤰 Pregnancy ▾
8.1Pregnancy Risk Summary There are limited and incomplete human data from clinical trials and postmarketing reports on the use of SYMDEKO or its individual components, tezacaftor and ivacaftor, in pregnant women to inform a drug-associated risk. Although there are no animal reproduction studies with the concomitant administration of tezacaftor and ivacaftor, separate reproductive and developmental studies were conducted with tezacaftor and ivacaftor in pregnant rats and rabbits. In animal reproduction studies, oral administration of tezacaftor to pregnant rats and rabbits during organogenesis demonstrated no teratogenicity or adverse developmental effects at doses that produced maternal exposures up to approximately 3 times the exposure at the maximum recommended human dose (MRHD) in rats and 0.2 times the MRHD in rabbits (based on summed AUCs for tezacaftor and M1 metabolite).
Oral administration of ivacaftor to pregnant rats and rabbits during organogenesis demonstrated no teratogenicity or adverse developmental effects at doses that produced maternal exposures up to approximately 6 and 16 times the exposure at the MRHD, respectively. No adverse developmental effects were observed after oral administration of either tezacaftor or ivacaftor to pregnant rats from the period of organogenesis through lactation at doses that produced maternal exposures approximately 1 and 4 times the exposures at the MRHD, respectively ( see Data ).
The background risk of major birth defects and miscarriage for the indicated population is unknown. In the U.S. general population, the estimated background risk of major birth defects and miscarriage in clinically recognized pregnancies is 2% to 4% and 15% to 20%, respectively. Data Animal Data Tezacaftor In an embryo-fetal development study in pregnant rats dosed during the period of organogenesis from gestation Days 6-17, tezacaftor was not teratogenic and did not affect fetal development or survival at exposures up to 3 times the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at maternal oral doses up to 100 mg/kg/day).
In an embryo-fetal development study in pregnant rabbits dosed during the period of organogenesis from gestation Days 7-20, tezacaftor was not teratogenic and did not affect fetal development or survival at exposures up to 0.2 times the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at maternal oral doses up to 25 mg/kg/day). Lower fetal body weights were observed in rabbits at a maternally toxic dose that produced exposures approximately 1 times the MRHD (at a maternal dose of 50 mg/kg/day). In a pre- and postnatal development (PPND) study in pregnant rats dosed from gestation Day 6 through lactation Day 18, tezacaftor had no adverse developmental effects on pups at an exposure of approximately 1 times the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at a maternal dose of 25 mg/kg/day).
Decreased fetal body weights and early developmental delays in pinna detachment, eye opening, and righting reflex occurred at a maternally toxic dose (based on maternal weight loss) that produced exposures approximately 2 times the exposure at the MRHD (based on summed AUCs for tezacaftor and M1 metabolite at a maternal oral dose of 50 mg/kg/day). Placental transfer of tezacaftor was observed in pregnant rats. Ivacaftor In an embryo-fetal development study in pregnant rats dosed during the period of organogenesis from gestation Days 7-17, ivacaftor was not teratogenic and did not affect fetal survival at exposures up to 6 times the MRHD (based on summed AUCs for ivacaftor and its metabolites at a maternal oral dose of 200 mg/kg/day).
In an embryo-fetal development study in pregnant rabbits dosed during the period of organogenesis from gestation Days 7-19, ivacaftor was not teratogenic and did not affect fetal development or survival at exposures up to 16 times the MRHD (on an ivacaftor AUC basis at maternal oral doses up to 100 mg/kg/day). In a PPND study…
🧒 Pediatric Use ▾
8.4Pediatric Use The safety and effectiveness of SYMDEKO for the treatment of CF have been established in pediatric patients aged 6 to less than 18 years who are homozygous for the F508del mutation or who have at least one mutation in the CFTR gene that is responsive to tezacaftor/ivacaftor based on in vitro data and/or clinical evidence [see Clinical Pharmacology (12.1) and Clinical Studies (14) ]. Clinical trials included the following patients with CF: 12 to less than 18 years of age who are homozygous for the F508del mutation [see Adverse Reactions (6) and Clinical Studies (14) ] .
12 to less than 18 years of age who are heterozygous for the F508del mutation and a second mutation predicted to be responsive to tezacaftor/ivacaftor [see Adverse Reactions (6) and Clinical Studies (14) ] . 6 to less than 12 years of age who are either homozygous for the F508del mutation or heterozygous for the F508del mutation and a second mutation predicted to be responsive to tezacaftor/ivacaftor [see Adverse Reactions (6) and Clinical Pharmacology (12) ]. The effectiveness of SYMDEKO in patients aged 6 to less than 12 years was extrapolated from patients aged 12 years and older with support from population pharmacokinetic analyses showing similar tezacaftor and ivacaftor exposure levels in patients aged 6 to less than 12 years and in patients aged 12 years and older [see Clinical Pharmacology (12.3) ] .
Safety of SYMDEKO in this population was derived from a 24-week, open-label, clinical trial in 70 patients aged 6 to less than 12 years (mean age at screening 8.1 years) administered either tezacaftor 50 mg/ivacaftor 75 mg and ivacaftor 75 mg or tezacaftor 100 mg/ivacaftor 150 mg and ivacaftor 150 mg, 12 hours apart (Trial 4). The safety profile for patients in this trial was similar to that observed in Trials 1 and 3 [see Adverse Reactions (6.1) ]. The safety and effectiveness of SYMDEKO in patients with CF younger than 6 years of age have not been studied.
Juvenile Animal Toxicity Data Findings of cataracts were observed in juvenile rats dosed from postnatal Day 7 through 35 with ivacaftor dose levels of 10 mg/kg/day and higher (0.25 times the MRHD based on systemic exposure of ivacaftor and its metabolites). This finding has not been observed in older animals.
🧓 Geriatric Use ▾
8.5Geriatric Use Clinical trials of SYMDEKO did not include sufficient numbers of patients 65 years of age and over to determine whether they respond differently from younger patients.
🆘 Overdosage ▾
10 OVERDOSAGE No specific antidote is available for overdose with SYMDEKO. Treatment of overdosage consists of general supportive measures including monitoring of vital signs and observation of the clinical status of the patient.
🧬 Clinical Pharmacology ▾
12 CLINICAL PHARMACOLOGY
12.1Mechanism of Action Tezacaftor facilitates the cellular processing and trafficking of select mutant forms of CFTR (including F508del-CFTR) to increase the amount of mature CFTR protein delivered to the cell surface. Ivacaftor is a CFTR potentiator that facilitates increased chloride transport by potentiating the channel-open probability (or gating) of the CFTR protein at the cell surface. For ivacaftor to function CFTR protein must be present at the cell surface.
Ivacaftor can potentiate the CFTR protein delivered to the cell surface by tezacaftor, leading to a further enhancement of chloride transport than either agent alone. The combined effect of tezacaftor and ivacaftor is increased quantity and function of CFTR at the cell surface, resulting in increases in chloride transport. CFTR Chloride Transport Assay in Fischer Rat Thyroid (FRT) cells expressing mutant CFTR The chloride transport response of mutant CFTR protein to tezacaftor/ivacaftor was determined in Ussing chamber electrophysiology studies using a panel of FRT cell lines transfected with individual CFTR mutations.
Tezacaftor/ivacaftor increased chloride transport in FRT cells expressing CFTR mutations that result in CFTR protein being delivered to the cell surface. The in vitro chloride transport response threshold was designated as a net increase of at least 10% of normal over baseline because it is predictive or reasonably expected to predict clinical benefit. For individual mutations, the magnitude of the net change over baseline in CFTR-mediated chloride transport in vitro is not correlated with the magnitude of clinical response.
Note that splice site mutations cannot be studied in the FRT assay. Table 6 lists responsive CFTR mutations based on (1) a clinical FEV 1 response and/or (2) in vitro data in FRT cells, indicating that tezacaftor/ivacaftor increases chloride transport to at least 10% of normal over baseline. CFTR gene mutations that are not responsive to ivacaftor alone are not expected to respond to SYMDEKO except for F508del homozygotes.
Table 6: List of CFTR Gene Mutations that Produce CFTR Protein and are Responsive to SYMDEKO 546insCTA E92K G576A L346P R117G S589N 711+3A→G Clinical data for these mutations in Clinical Studies [see Clinical Studies (14.1 and 14.2) ] . E116K G576A;R668C Complex/compound mutations where a single allele of the CFTR gene has multiple mutations; these exist independent of the presence of mutations on the other allele. L967S R117H S737F 2789+5G→A E193K G622D L997F R117L S912L 3272-26A→G E403D G970D L1324P R117P S945L 3849+10kbC→T E588V G1069R L1335P R170H S977F A120T E822K G1244E L1480P R258G S1159F A234D E831X G1249R M152V R334L S1159P A349V F191V G1349D M265R R334Q S1251N A455E F311del H939R M952I R347H S1255P A554E F311L H1054D M952T R347L T338I A1006E F508C H1375P P5L R347P T1036N A1067T F508C;S1251N I148T P67L R352Q T1053I D110E F508del A patient must have two copies of the F508del mutation or at least one copy of a responsive mutation presented in Table 6 to be indicated.
I175V P205S R352W V201M D110H F575Y I336K Q98R R553Q V232D D192G F1016S I601F Q237E R668C V562I D443Y F1052V I618T Q237H R751L V754M D443Y;G576A;R668C F1074L I807M Q359R R792G V1153E D579G F1099L I980K Q1291R R933G V1240G D614G G126D I1027T R31L R1066H V1293G D836Y G178E I1139V R74Q R1070Q W1282R D924N G178R I1269N R74W R1070W Y109N D979V G194R I1366N R74W;D1270N R1162L Y161S D1152H G194V K1060T R74W;V201M R1283M Y1014C D1270N G314E L15P R74W;V201M;D1270N R1283S Y1032C E56K G551D L206W R75Q S549N E60K G551S L320V R117C S549R
12.2Pharmacodynamics Effects on Sweat Chloride In Trial 1 (patients aged 12 years and older who were homozygous for the F508del mutation), the treatment difference between SYMDEKO and placebo in mean absolute change from baseline in sweat chloride through Week 24 was -10.1 mmol/L (95% CI: -11.4, -8.8). In Trial 2 (patients aged 12 years and older who were heterozygous for the F508del mutation…
🧬 Mechanism of Action ▾
12.1Mechanism of Action Tezacaftor facilitates the cellular processing and trafficking of select mutant forms of CFTR (including F508del-CFTR) to increase the amount of mature CFTR protein delivered to the cell surface. Ivacaftor is a CFTR potentiator that facilitates increased chloride transport by potentiating the channel-open probability (or gating) of the CFTR protein at the cell surface. For ivacaftor to function CFTR protein must be present at the cell surface.
Ivacaftor can potentiate the CFTR protein delivered to the cell surface by tezacaftor, leading to a further enhancement of chloride transport than either agent alone. The combined effect of tezacaftor and ivacaftor is increased quantity and function of CFTR at the cell surface, resulting in increases in chloride transport. CFTR Chloride Transport Assay in Fischer Rat Thyroid (FRT) cells expressing mutant CFTR The chloride transport response of mutant CFTR protein to tezacaftor/ivacaftor was determined in Ussing chamber electrophysiology studies using a panel of FRT cell lines transfected with individual CFTR mutations.
Tezacaftor/ivacaftor increased chloride transport in FRT cells expressing CFTR mutations that result in CFTR protein being delivered to the cell surface. The in vitro chloride transport response threshold was designated as a net increase of at least 10% of normal over baseline because it is predictive or reasonably expected to predict clinical benefit. For individual mutations, the magnitude of the net change over baseline in CFTR-mediated chloride transport in vitro is not correlated with the magnitude of clinical response.
Note that splice site mutations cannot be studied in the FRT assay. Table 6 lists responsive CFTR mutations based on (1) a clinical FEV 1 response and/or (2) in vitro data in FRT cells, indicating that tezacaftor/ivacaftor increases chloride transport to at least 10% of normal over baseline. CFTR gene mutations that are not responsive to ivacaftor alone are not expected to respond to SYMDEKO except for F508del homozygotes.
Table 6: List of CFTR Gene Mutations that Produce CFTR Protein and are Responsive to SYMDEKO 546insCTA E92K G576A L346P R117G S589N 711+3A→G Clinical data for these mutations in Clinical Studies [see Clinical Studies (14.1 and 14.2) ] . E116K G576A;R668C Complex/compound mutations where a single allele of the CFTR gene has multiple mutations; these exist independent of the presence of mutations on the other allele. L967S R117H S737F 2789+5G→A E193K G622D L997F R117L S912L 3272-26A→G E403D G970D L1324P R117P S945L 3849+10kbC→T E588V G1069R L1335P R170H S977F A120T E822K G1244E L1480P R258G S1159F A234D E831X G1249R M152V R334L S1159P A349V F191V G1349D M265R R334Q S1251N A455E F311del H939R M952I R347H S1255P A554E F311L H1054D M952T R347L T338I A1006E F508C H1375P P5L R347P T1036N A1067T F508C;S1251N I148T P67L R352Q T1053I D110E F508del A patient must have two copies of the F508del mutation or at least one copy of a responsive mutation presented in Table 6 to be indicated.
I175V P205S R352W V201M D110H F575Y I336K Q98R R553Q V232D D192G F1016S I601F Q237E R668C V562I D443Y F1052V I618T Q237H R751L V754M D443Y;G576A;R668C F1074L I807M Q359R R792G V1153E D579G F1099L I980K Q1291R R933G V1240G D614G G126D I1027T R31L R1066H V1293G D836Y G178E I1139V R74Q R1070Q W1282R D924N G178R I1269N R74W R1070W Y109N D979V G194R I1366N R74W;D1270N R1162L Y161S D1152H G194V K1060T R74W;V201M R1283M Y1014C D1270N G314E L15P R74W;V201M;D1270N R1283S Y1032C E56K G551D L206W R75Q S549N E60K G551S L320V R117C S549R
📦 How Supplied / Storage and Handling ▾
16 HOW SUPPLIED/STORAGE AND HANDLING SYMDEKO (tezacaftor 50 mg/ivacaftor 75 mg fixed-dose combination tablets co-packaged with ivacaftor 75 mg tablet): Tezacaftor 50 mg/ivacaftor 75 mg fixed-dose combination tablets are supplied as white, oblong-shaped tablets containing 50 mg of tezacaftor and 75 mg of ivacaftor. Each tablet is debossed with "V50" on one side and plain on the other. Ivacaftor 75 mg tablets are supplied as light blue, film-coated, oblong-shaped tablets containing 75 mg of ivacaftor.
Each tablet is printed with the characters "V 75" on one side and plain on the other. 56-count tablet carton containing a 4-week supply (4 weekly wallets, each with 14 tablets) NDC 51167-113-01 SYMDEKO (tezacaftor 100 mg/ivacaftor 150 mg fixed-dose combination tablets co-packaged with ivacaftor 150 mg tablet): Tezacaftor 100 mg/ivacaftor 150 mg fixed-dose combination tablets are supplied as yellow, oblong-shaped tablets containing 100 mg of tezacaftor and 150 mg of ivacaftor. Each tablet is debossed with "V100" on one side and plain on the other.
Ivacaftor 150 mg tablets are supplied as light blue, film-coated, oblong-shaped tablets containing 150 mg of ivacaftor. Each tablet is printed with the characters "V 150" on one side and plain on the other. 56-count tablet carton containing a 4-week supply (4 weekly wallets, each with 14 tablets) NDC 51167-661-01 Store at 68°F to 77°F (20°C to 25°C); excursions permitted to 59°F to 86°F (15°C to 30°C) [see USP Controlled Room Temperature].
📦 Storage and Handling ▾
Store at 68°F to 77°F (20°C to 25°C); excursions permitted to 59°F to 86°F (15°C to 30°C) [see USP Controlled Room Temperature].
📋 Description ▾
11 DESCRIPTION SYMDEKO is co-packaged as a tezacaftor/ivacaftor fixed-dose combination tablet and an ivacaftor tablet. Both tablets are for oral administration. Tezacaftor 50 mg/ivacaftor 75 mg fixed-dose combination tablets and ivacaftor 75 mg tablets : The tezacaftor/ivacaftor fixed-dose combination tablet is available as a white, oblong-shaped, film-coated tablet containing 50 mg of tezacaftor, 75 mg of ivacaftor, and the following inactive ingredients: croscarmellose sodium, hypromellose, hypromellose acetate succinate, magnesium stearate, microcrystalline cellulose and sodium lauryl sulfate.
The tablet film coat contains HPMC/hypromellose 2910, hydroxypropyl cellulose, talc and titanium dioxide. The ivacaftor tablet is available as a light blue, oblong-shaped, film-coated tablet containing 75 mg of ivacaftor and the following inactive ingredients: colloidal silicon dioxide, croscarmellose sodium, hypromellose acetate succinate, lactose monohydrate, magnesium stearate, microcrystalline cellulose, and sodium lauryl sulfate. The tablet film coat contains carnauba wax, FD&C Blue #2, PEG 3350, polyvinyl alcohol, talc, and titanium dioxide.
The printing ink contains ammonium hydroxide, iron oxide black, propylene glycol, and shellac. Tezacaftor 100 mg/ivacaftor 150 mg fixed-dose combination tablets and ivacaftor 150 mg tablets : The tezacaftor/ivacaftor fixed-dose combination tablet is available as a yellow, oblong-shaped, film-coated tablet containing 100 mg of tezacaftor, 150 mg of ivacaftor, and the following inactive ingredients: croscarmellose sodium, hypromellose, hypromellose acetate succinate, magnesium stearate, microcrystalline cellulose and sodium lauryl sulfate.
The tablet film coat contains HPMC/hypromellose 2910, hydroxypropyl cellulose, iron oxide yellow, talc and titanium dioxide. The ivacaftor tablet is available as a light blue, oblong-shaped, film-coated tablet containing 150 mg of ivacaftor and the following inactive ingredients: colloidal silicon dioxide, croscarmellose sodium, hypromellose acetate succinate, lactose monohydrate, magnesium stearate, microcrystalline cellulose, and sodium lauryl sulfate. The tablet film coat contains carnauba wax, FD&C Blue #2, PEG 3350, polyvinyl alcohol, talc, and titanium dioxide.
The printing ink contains ammonium hydroxide, iron oxide black, propylene glycol, and shellac. The active ingredients of SYMDEKO are described below. Tezacaftor Tezacaftor is a white to off-white powder that is practically insoluble in water (<5 microgram/mL).
Its chemical name of tezacaftor is 1-(2,2-difluoro-2H-1,3-benzodioxol-5-yl)-N-{1-[(2R)-2,3-dihydroxypropyl]-6-fluoro-2-(1-hydroxy-2-methylpropan-2-yl)-1Hindol-5-yl}cyclopropane-1-carboxamide. Its molecular formula is C 26 H 27 N 2 F 3 O 6 and its molecular weight is 520.50. Tezacaftor has the following structural formula: Chemical Structure Ivacaftor Ivacaftor is a white to off-white powder that is practically insoluble in water (<0.05 microgram/mL).
Pharmacologically it is a CFTR potentiator. Its chemical name is N -(2,4-di-tert-butyl-5-hydroxyphenyl)-1,4-dihydro-4-oxoquinoline-3-carboxamide. Its molecular formula is C 24 H 28 N 2 O 3 and its molecular weight is 392.49.
Ivacaftor has the following structural formula: Chemical Structure
💬 Information for Patients ▾
17 PATIENT COUNSELING INFORMATION Advise the patient to read the FDA-approved patient labeling (Patient Information). Transaminase (ALT or AST) Elevations and Monitoring Inform patients that elevation in liver tests has occurred in patients treated with SYMDEKO or with ivacaftor alone. Transaminases (ALT and AST) should be assessed prior to initiating SYMDEKO, every 3 months during the first year of treatment, and annually thereafter.
More frequent monitoring should be considered in patients with a history of transaminase elevations [see Warnings and Precautions (5.1) ] . Hypersensitivity Reactions, Including Anaphylaxis Hypersensitivity reactions including anaphylaxis are possible with use of SYMDEKO. Inform patients of the early signs of hypersensitivity reactions including rash, hives, itching, facial swelling, tightness of the chest and wheezing.
Advise patients to discontinue use of SYMDEKO immediately and contact their physician or go to the emergency department if these symptoms occur. Intracranial Hypertension Inform patients that intracranial hypertension has occurred in patients who received drugs containing the same or similar active ingredients as SYMDEKO. Instruct patients to notify their healthcare provider right away if they experience signs and symptoms of intracranial hypertension, including headache, blurred vision, diplopia, and vision loss [see Warnings and Precautions (5.3) ] .
Neuropsychiatric Events, Including Suicidal Thoughts and Behaviors Inform patients that neuropsychiatric symptoms, including anxiety, depression, suicidal thoughts and behaviors, and sleep disturbances (e.g., insomnia), have been reported with the use of SYMDEKO or drugs containing the same or similar active ingredients as SYMDEKO. The symptoms have been observed in patients with and without a history of similar symptoms and may occur within three months of SYMDEKO initiation. Instruct patients to contact their healthcare provider immediately if changes in behavior or thinking that are not typical for the patient occur, or if the patient develops suicidal ideation or behavior [see Warnings and Precautions (5.4) ] .
Drug Interactions with CYP3A Inducers and Inhibitors Ask patients to tell you all the medications they are taking including any herbal supplements or vitamins. Co-administration of SYMDEKO with strong CYP3A inducers (e.g., rifampin, St. John's wort) is not recommended, as they may reduce the therapeutic effectiveness of SYMDEKO.
Adjustment of the dosage to one tablet of tezacaftor/ivacaftor twice a week, taken approximately 3 to 4 days apart is recommended when co-administered with strong CYP3A inhibitors, such as ketoconazole. Advise the patient not to take the evening dose of ivacaftor. Dosage reduction to one tablet of tezacaftor/ivacaftor or ivacaftor, taken on alternate days in the morning is recommended when co-administered with moderate CYP3A inhibitors, such as fluconazole.
Advise the patient not to take the evening dose of ivacaftor. Food or drink containing grapefruit should be avoided [see Warnings and Precautions (5.5) , Drug Interactions (7) , and Clinical Pharmacology (12.3) ] . Cataracts Inform patients that abnormality of the eye lens (cataract) has been noted in some children and adolescents receiving SYMDEKO or with ivacaftor alone.
Baseline and follow-up ophthalmological examinations should be performed in pediatric patients initiating treatment with SYMDEKO [see Warnings and Precautions (5.6) ] . Use in Patients with Hepatic Impairment Inquire and/or assess whether patients have liver impairment. Adjust the dosage in patients with moderately impaired hepatic function (Child-Pugh Class B, score 7-9) to one tablet of tezacaftor/ivacaftor once daily in the morning and advise the patient not to take the evening dose of ivacaftor.
SYMDEKO has not been studied in patients with severe hepatic impairment (Child-Pugh Class C, score 10-15); however, exposure is expected to be substantially higher than that obser…