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Tetrabenazine 12.5 mg Tablet, 112-count — NDC 68094-0905-10 package photo
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Tetrabenazine 12.5 mg Tablet, 112-count — NDC 68094-905-10 (Billing 68094-0905-10)

by Precision Dose Inc. · 112 TABLET in 1 BOTTLE, PLASTIC

This is a package of 112 tablets of Tetrabenazine 12.5 mg Tablet from Precision Dose Inc., marketed since Dec 2023 and currently FDA-listed; retail pharmacies pay about $0.7019 per tablet (NADAC). It is this product's only package size.

NDC 68094-0905-10
🏷️ FDA NDC (as labeled) 68094-905-10 billing pads the product segment with a zero
Rx only Generic On market Non-controlled ⇄ Compare with another NDC
🗂️ FDA directory synced Oct 1, 2026 · this listing last changed Jul 24, 2026 · sources: openFDA · FDA label (DailyMed) · FDA Orange & Purple Book · First Databank · CMS NADAC, ASP, Medicare & Medicaid · RxNorm
📋 All sources & update times →

NDC database record

One package, one record: these facts belong to NDC 68094-905-10 alone.

Record
FDA NDC Directory package listing · Human prescription drug
Code segments
68094 labeler · 905 product · 10 package
Package marketed since
Dec 1, 2023
Sample package
No — commercial package
Listing certified through
Dec 31, 2026
Billing quantity
112 EA per package
Barcode (UPC)
0368094805100, 0368094905107
FDA record last changed
Jul 24, 2026

Identity & classification

Regulatory identifiers FDA, NLM and CMS codes for this package

FDA NDC (as labeled) 68094-905-10
Product NDC 68094-905
11-digit billing NDC 68094090510
NCPDP billing unit EA — each (per item)
RxCUI 199592, 805464
UNII Z9O08YRN8O
UPC 0368094805100, 0368094905107
Application # ANDA207682
SPL Set ID aca55884-1eb4-4a76-8c7f-96c782849337
Established class (EPC) Vesicular Monoamine Transporter 2 Inhibitor
Mechanism of action Vesicular Monoamine Transporter 2 Inhibitors
DEA schedule Non-controlled
Marketing category ANDA
Marketing status On market
FDA listing status Listed (active directory)
Marketing start 2023-12-01
Route ORAL
Dosage form TABLET
Substance TETRABENAZINE
TE code (Orange Book) AB · RLD · RS

Drug-database identifiers Medi-Span GPI and First Databank GCN / HICL / AHFS classification

GPI-14 62380070000310
GCN Seq No 064582
GCN 15508
HICL code 007350
Ingredient (HICL) Tetrabenazine
HIC1 code H
Therapeutic class — broad (HIC1) Nervous System (Except Autonomic)
HIC2 code H6
Therapeutic class — intermediate (HIC2) Drugs Acting Principally On The Midbrain
HIC3 code H6L
Therapeutic class — specific (HIC3) Drugs To Treat Movement Disorders
AHFS code 28:56.00.00
AHFS class Vesicular Monoamine Transport2 Inhibitor
FDB label name TETRABENAZINE 12.5 MG TABLET
FDB brand name Tetrabenazine
Legend status F — Federal legend — prescription drug or device
Quick answers
  • GSN (GCN sequence number): 064582
  • GCN: 15508
  • GPI-14 (Medi-Span): 62380070000310
  • HICL (First Databank): 007350
  • AHFS class code: 28:56.00.00
  • RxCUI (RxNorm): 199592
Why two NDCs? The FDA registers this code as 68094-905-10 — a 5-3-2 layout, and that's what's printed on the package and shown on DailyMed. For insurance claims, every NDC is standardized to a uniform 11-digit 5-4-2 format by adding a zero to the product segment → 68094-0905-10. Same drug, same package — only the format differs.
Where does this data come from?
Identifiers from the FDA openFDA NDC Directory and Structured Product Labeling; RxCUI from RxNorm (NLM); GPI from Medi-Span; GCN / HIC / AHFS / legend from First Databank.

RxNorm drug class

This medicine belongs to the Vesicular Monoamine Transporter 2 Inhibitor class.

Pharmacologic class Vesicular Monoamine Transporter 2 Inhibitor
Drug family (ATC) Other nervous system drugs
How it works Vesicular Monoamine Transporter 2 Inhibitors
Where does this data come from?
Therapeutic classes from RxNorm RxClass (U.S. National Library of Medicine) — Established Pharmacologic Class (FDA), ATC drug family (WHO) and mechanism of action, matched by this product’s RxCUI.

Clinical

Label name TETRABENAZINE 12.5 MG TABLET Ingredient Tetrabenazine
📗 Our plain-language guide HelloPharmacist
  • It treats chorea, the jerky, uncontrolled movements, caused by Huntington’s disease. It helps control the movements but does not treat the disease itself.
  • You take it by mouth, with or without food. Your doctor starts you low and raises the dose slowly each week. Higher doses are split into three a day. Follow your label and don’t ch...
  • Sleepiness, tiredness, trouble sleeping, low mood, restlessness, anxiety and nausea are the most common. Sleepiness is the main reason doses get lowered, so tell your doctor if it...
  • Tetrabenazine can cause or worsen depression and suicidal thoughts. You and your family should watch for new sadness, anxiety, or unusual behavior changes. Call your doctor right a...
📖 Read our full Tetrabenazine guide →
Where does this data come from?
Plain-language summary from MedlinePlus (U.S. National Library of Medicine); supplement & herbal interactions and nutrient depletion data from the Natural Medicines database; our full guide is HelloPharmacist editorial content.

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 systemPer eaPer package
Retail pharmacies payNADAC · weekly $0.702 $78.61 / 112 tablets
Medicaid paysCMS SDUD · 12 mo No recent Medicaid claims on file for this NDC — rare and low-volume NDCs are suppressed in the public data.
Medicare drug plans payPart D · Q2 2026 $10.00 $1,119.94 / 112 tablets
NADAC price history (per ea) — tap or hover for the price & month
Dec 2025 Mar 2026 Jun 2026 Sep 2026 $0.807 $0.702
▼ Down 12% over the last 10 months.
Where does this data come from?
NADAC (National Average Drug Acquisition Cost) is the CMS weekly pharmacy-acquisition-cost survey — what pharmacies pay. ASP (Average Sales Price) is the CMS Medicare Part B drug-payment file, published quarterly. Medicaid pays is computed by us from CMS State Drug Utilization Data (total reimbursed ÷ units, trailing 12 months) — gross of rebates and inclusive of dispensing fees, so it reflects what Medicaid paid, not an acquisition cost. Medicare drug plans pay is the median negotiated point-of-sale unit cost across plans listing this NDC in the CMS quarterly Prescription Drug Plan pricing files, before rebates. The VA pays is the federal contract price (FSS, and the statutory Big 4 ceiling where listed) from the VA National Acquisition Center pharmaceutical price file. All are free public government data; each measures a different payer, so the figures are not directly comparable.

Packaging — all sizes for this product

Package NDCDescription Marketing startMarketing endStatus
68094-0905-10 You're viewing this Main listing 112 TABLET in 1 BOTTLE, PLASTIC 2023-12-01 — Active

Therapeutic equivalents

ProductLabelerPackNADAC/unitTEStatusPrice vs. this
Tetrabenazine 12.5 mg 23155-0938-63 Heritage 112 tablets $0.702 AB Availability likely —
Tetrabenazine 12.5 mg 31722-0821-11 Camber 112 tablets $0.702 AB Availability likely —
Tetrabenazine 12.5 mg 60505-3882-07 Apotex 112 tablets $0.702 AB Availability likely —
Tetrabenazine 12.5 mgthis 68094-0905-10 Precision 112 tablets $0.702 AB Availability likely —
Tetrabenazine 12.5 mg 69452-0117-21 Bionpharma 112 tablets $0.702 AB Availability likely —
Tetrabenazine 12.5 mg 47335-0277-23 Sun 112 tablets $0.768 — FDA listed +9%
tetrabenazine 12.5 mg 70436-0101-09 Slate 112 tablets $0.804 AB Availability likely +15%
tetrabenazine 12.5 mg 68682-0421-12 Oceanside 112 tablets $1.192 AB FDA listed +70%
Tetrabenazine 12.5 mg 27241-0176-13 Ajanta 112 tablets — — FDA listed —
Tetrabenazine 12.5 mg 43598-0394-05 Dr. 500 tablets — AB FDA listed —
Tetrabenazine 12.5 mg 51407-0480-12 Golden 112 tablets — AB FDA listed —
Xenazine 12.5 mg 67386-0421-01 Lundbeck 112 tablets — AB FDA listed —
About this product: this is a generic version of the medicine. FDA equivalence ratings are shown when available, and other versions are listed above, least expensive first.
Where does this data come from?
Equivalents are other NDCs of the same ingredient, form and route from the openFDA NDC Directory, ranked least-expensive-first by NADAC. Therapeutic-equivalence (AB) ratings come from the FDA Orange Book; biologics use the FDA Purple Book for biosimilar & interchangeable status.

Availability & generic status

🏛️
2023
On the market since
Dec 2023
📍
2026
Currently FDA-listed
3 years listed
🔓
·
Generic on the market
this product is a generic
✅This is a generic drug

This product is an FDA-approved generic. Other versions of the same drug are listed under Therapeutic equivalents, least expensive first.

Where does this data come from?
Patents and exclusivity from the FDA Orange Book (small-molecule drugs), refreshed from public FDA data. Generic launch timing is an estimate, not a guarantee.

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.

Loading inactive ingredients from the official FDA label in the background. No external source is being called by this page request.
Where does this data come from?
Source: official FDA Structured Product Labeling (SPL) via DailyMed and the openFDA label index. Structured 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?
No. Inactive ingredients can differ by manufacturer, dosage form, strength, and package / product version.
Why might an inactive ingredient be missing?
Some SPLs do not provide a complete structured inactive-ingredient list, and older or unusual labels may only include the information in narrative text.
Can inactive ingredients matter?
Yes. They can matter for allergies, intolerances, dyes, gluten / lactose concerns, preservatives, and formulation differences — but confirm with a pharmacist or the manufacturer when it’s clinically important.

Manufacturer & labeler

LabelerPrecision Dose Inc.
Application holderMYLAN PHARMACEUTICALS INC
FDA applicationANDA207682 (ANDA)
Labeler code68094
First marketedDec 2023
Product typeHuman Prescription Drug
Portfolio22 products on file
The labeler markets the product; the application holder owns the FDA approval. They’re often the same company but can differ (e.g. a repackager or an authorized generic). A mailing address / phone appears here when the manufacturer includes it in the product’s FDA label (not all do).
Where does this data come from?
Labeler, application holder and registered establishment from the FDA openFDA NDC Directory and Drugs@FDA; address/contact from the product’s FDA label.

Full prescribing information FDA SPL

The complete FDA label for this product — the official prescribing information, verbatim, section by section. Very long sections are excerpted here and marked; the full text is on DailyMed (linked in the sources below). Jump with a chip, search within the label, or expand everything.
🚨 Boxed Warning ~1 min read ▾

WARNING: DEPRESSION AND SUICIDALITY Tetrabenazine tablets can increase the risk of depression and suicidal thoughts and behavior (suicidality) in patients with Huntington’s disease. Anyone considering the use of tetrabenazine tablets must balance the risks of depression and suicidality with the clinical need for control of chorea. Close observation of patients for the emergence or worsening of depression, suicidality, or unusual changes in behavior should accompany therapy.

Patients, their caregivers, and families should be informed of the risk of depression and suicidality and should be instructed to report behaviors of concern promptly to the treating physician. Particular caution should be exercised in treating patients with a history of depression or prior suicide attempts or ideation, which are increased in frequency in Huntington’s disease. Tetrabenazine tablets are contraindicated in patients who are actively suicidal, and in patients with untreated or inadequately treated depression [see Contraindications (4) , Warnings and Precautions (5.1) ] .

WARNING: DEPRESSION AND SUICIDALITY See full prescribing information for complete boxed warning. • Increases the risk of depression and suicidal thoughts and behavior (suicidality) in patients with Huntington’s disease. ( 5.1 ) • Balance risks of depression and suicidality with the clinical need for control of chorea when considering the use of tetrabenazine tablets. ( 5.2 ) • Monitor patients for the emergence or worsening of depression, suicidality, or unusual changes in behavior.

( 5.1 ) • Inform patients, caregivers and families of the risk of depression and suicidality and instruct to report behaviors of concern promptly to the treating physician. ( 5.1 ) • Exercise caution when treating patients with a history of depression or prior suicide attempts or ideation. ( 5.1 ). • Tetrabenazine tablets are contraindicated in patients who are actively suicidal, and in patients with untreated or inadequately treated depression.

( 4 , 5.1 )

🎯 Indications and Usage 40 words ▾

1 INDICATIONS AND USAGE Tetrabenazine tablets are indicated for the treatment of chorea associated with Huntington’s disease. Tetrabenazine tablets are a vesicular monoamine transporter 2 (VMAT) inhibitor indicated for the treatment of chorea associated with Huntington’s disease. ( 1 )

⏱️ Dosage and Administration ~3 min read ▾

2 DOSAGE AND ADMINISTRATION • Individualization of dose with careful weekly titration is required. The 1st week’s starting dose is 12.5 mg daily; 2nd week, 25 mg (12.5 mg twice daily); then slowly titrate at weekly intervals by 12.5 mg to a tolerated dose that reduces chorea. ( 2.1 , 2.2 ) • Doses of 37.5 mg and up to 50 mg per day should be administered in three divided doses per day with a maximum recommended single dose not to exceed 25 mg.

( 2.2 ) • Patients requiring doses above 50 mg per day should be genotyped for the drug metabolizing enzyme CYP2D6 to determine if the patient is a poor metabolizer (PM) or an extensive metabolizer (EM). ( 2.2 , 5.3 ) • Maximum daily dose in PMs: 50 mg with a maximum single dose of 25 mg ( 2.2 ) • Maximum daily dose in EMs and intermediate metabolizers (IMs): 100 mg with a maximum single dose of 37.5 mg ( 2.2 ) • If serious adverse reactions occur, titration should be stopped and the dose should be reduced. If the adverse reaction(s) do not resolve, consider withdrawal of tetrabenazine tablets.

( 2.2 )

2.1General Dosing Considerations The chronic daily dose of tetrabenazine tablets used to treat chorea associated with Huntington’s disease (HD) is determined individually for each patient. When first prescribed, tetrabenazine tablets therapy should be titrated slowly over several weeks to identify a dose of tetrabenazine tablets that reduces chorea and is tolerated. Tetrabenazine tablets can be administered without regard to food [see Clinical Pharmacology (12.3) ] .

2.2Individualization of Dose The dose of tetrabenazine tablets should be individualized. Dosing Recommendations Up to 50 mg per day The starting dose should be 12.5 mg per day given once in the morning. After one week, the dose should be increased to 25 mg per day given as 12.5 mg twice a day.

Tetrabenazine tablets should be titrated up slowly at weekly intervals by 12.5 mg daily, to allow the identification of a tolerated dose that reduces chorea. If a dose of 37.5 to 50 mg per day is needed, it should be given in a three times a day regimen. The maximum recommended single dose is 25 mg.

If adverse reactions such as akathisia, restlessness, parkinsonism, depression, insomnia, anxiety or sedation occur, titration should be stopped and the dose should be reduced. If the adverse reaction does not resolve, consideration should be given to withdrawing tetrabenazine tablets treatment or initiating other specific treatment (e.g., antidepressants) [see Adverse Reactions (6.1) ] . Dosing Recommendations Above 50 mg per day Patients who require doses of tetrabenazine tablets greater than 50 mg per day should be first tested and genotyped to determine if they are poor metabolizers (PMs) or extensive metabolizers (EMs) by their ability to express the drug metabolizing enzyme, CYP2D6.

The dose of tetrabenazine tablets should then be individualized accordingly to their status as PMs or EMs [see Warnings and Precautions (5.3) , Use in Specific Populations (8.7) , Clinical Pharmacology (12.3) ] . Extensive and Intermediate CYP2D6 Metabolizers Genotyped patients who are identified as extensive (EMs) or intermediate metabolizers (IMs) of CYP2D6, who need doses of tetrabenazine tablets above 50 mg per day, should be titrated up slowly at weekly intervals by 12.5 mg daily, to allow the identification of a tolerated dose that reduces chorea.

Doses above 50 mg per day should be given in a three times a day regimen. The maximum recommended daily dose is 100 mg and the maximum recommended single dose is 37.5 mg. If adverse reactions such as akathisia, parkinsonism, depression, insomnia, anxiety or sedation occur, titration should be stopped and the dose should be reduced.

If the adverse reaction does not resolve, consideration should be given to withdrawing tetrabenazine tablets treatment or initiating other specific treatment (e.g., antidepressants) [see Warnings and Precautions (5.3) , Use in Specific Populations (8.7) , Clinical Pharmacology (1… [Excerpted — this section continues on DailyMed.]

💊 Dosage Forms and Strengths 74 words ▾

3 DOSAGE FORMS AND STRENGTHS Tetrabenazine tablets are available in the following strengths and packages: The 12.5 mg tetrabenazine tablets are white cylindrical, biplanar tablets with beveled edges, debossed ‘707’ on one side and plain on the other side. The 25 mg tetrabenazine tablets are yellowish-buff, cylindrical, biplanar tablets with beveled edges, debossed ‘708’ on one side and scored on the other side. Tablets: 12.5 mg non-scored and 25 mg scored ( 3 )

⛔ Contraindications 165 words ▾

4 CONTRAINDICATIONS Tetrabenazine tablets are contraindicated in patients: • Who are actively suicidal, or in patients with untreated or inadequately treated depression [see Warnings and Precautions (5.1) ] . • With hepatic impairment [see Use in Specific Populations (8.6) , Clinical Pharmacology (12.3) ] . • Taking monoamine oxidase inhibitors (MAOIs). Tetrabenazine tablets should not be used in combination with an MAOI, or within a minimum of 14 days of discontinuing therapy with an MAOI [see Drug Interactions (7.3) ] . • Taking reserpine.

At least 20 days should elapse after stopping reserpine before starting tetrabenazine tablets [see Drug Interactions (7.2) ] . • Taking deutetrabenazine or valbenazine [see Drug Interactions (7.7) ] . • Actively suicidal, or who have depression which is untreated or undertreated ( 4 , 5.1 ) • Hepatic impairment ( 4 , 8.6, 12.3 ) • Taking monoamine oxidase inhibitors (MAOIs) or reserpine ( 4 , 7.2 , 7.3 ) • Taking deutetrabenazine or valbenazine ( 4 , 7.7 )

⚠️ Warnings and Cautions ~3 min read ▾

5 WARNINGS AND PRECAUTIONS • Periodically reevaluate the benefit and potential for adverse effects such as worsening mood, cognition, rigidity, and functional capacity. ( 5.2 ) • Do not exceed 50 mg/day and the maximum single dose should not exceed 25 mg if administered in conjunction with a strong CYP2D6 inhibitor (e.g., fluoxetine, paroxetine). ( 5.3 , 7.1 ) • Neuroleptic Malignant Syndrome (NMS): Discontinue if this occurs.

( 5.4 , 7.6 ) • Restlessness, agitation, akathisia and parkinsonism: Reduce dose or discontinue if occurs. ( 5.5 , 5.6 ) • Sedation/Somnolence: May impair patient’s ability to drive or operate complex machinery ( 5.7 ) • QTc prolongation: Not recommended in combination with other drugs that prolong QTc ( 5.8 )

5.1Depression and Suicidality Patients with Huntington’s disease are at increased risk for depression, suicidal ideation or behaviors (suicidality). Tetrabenazine tablets increase the risk for suicidality in patients with HD. In a 12-week, double-blind, placebo-controlled study in patients with chorea associated with Huntington’s disease, 10 of 54 patients (19%) treated with tetrabenazine tablets were reported to have an adverse event of depression or worsening depression compared to none of the 30 placebo-treated patients.

In two open-label studies (in one study, 29 patients received tetrabenazine tablets for up to 48 weeks; in the second study, 75 patients received tetrabenazine tablets for up to 80 weeks), the rate of depression/worsening depression was 35%. In all of the HD chorea studies of tetrabenazine tablets (n=187), one patient committed suicide, one attempted suicide, and six had suicidal ideation. When considering the use of tetrabenazine tablets, the risk of suicidality should be balanced against the need for treatment of chorea.

All patients treated with tetrabenazine tablets, should be observed for new or worsening depression or suicidality. If depression or suicidality does not resolve, consider discontinuing treatment with tetrabenazine tablets. Patients, their caregivers, and families should be informed of the risks of depression, worsening depression, and suicidality associated with tetrabenazine tablets, and should be instructed to report behaviors of concern promptly to the treating physician.

Patients with HD who express suicidal ideation should be evaluated immediately.

5.2Clinical Worsening and Adverse Effects Huntington’s disease is a progressive disorder characterized by changes in mood, cognition, chorea, rigidity, and functional capacity over time. In a 12-week controlled trial, tetrabenazine tablets were also shown to cause slight worsening in mood, cognition, rigidity, and functional capacity. Whether these effects persist, resolve, or worsen with continued treatment is unknown.

Prescribers should periodically re-evaluate the need for tetrabenazine tablets in their patients by assessing the effect on chorea and possible adverse effects, including depression and suicidality, cognitive decline, parkinsonism, dysphagia, sedation/somnolence, akathisia, restlessness, and disability. It may be difficult to distinguish between adverse reactions and progression of the underlying disease; decreasing the dose or stopping the drug may help the clinician distinguish between the two possibilities. In some patients, underlying chorea itself may improve over time, decreasing the need for tetrabenazine tablets.

5.3Laboratory Tests Before prescribing a daily dose of tetrabenazine tablets that is greater than 50 mg per day, patients should be genotyped to determine if they express the drug metabolizing enzyme, CYP2D6. CYP2D6 testing is necessary to determine whether patients are poor metabolizers (PMs), extensive (EMs) or intermediate metabolizers (IMs) of tetrabenazine tablets. Patients who are PMs of tetrabenazine tablets will have substantially higher levels of the primary drug metabolites (about 3-fold for α-HTBZ and 9-fold for β-HTBZ) than patients who are EMs.

The dosage should… [Excerpted — this section continues on DailyMed.]

🤒 Adverse Reactions ~3 min read ▾

6 ADVERSE REACTIONS The following serious adverse reactions are described below and elsewhere in the labeling: • Depression and Suicidality [see Warnings and Precautions (5.1) ] • Neuroleptic Malignant Syndrome (NMS) [see Warnings and Precautions (5.4) ] • Akathisia, Restlessness, and Agitation [see Warnings and Precautions (5.5) ] • Parkinsonism [see Warnings and Precautions (5.6) ] • Sedation and Somnolence [see Warnings and Precautions (5.7) ] • QTc Prolongation [see Warnings and Precautions (5.8) ] • Hypotension and Orthostatic Hypotension [see Warnings and Precautions (5.9) ] • Hyperprolactinemia [see Warnings and Precautions (5.10) ] • Binding to Melanin-Containing Tissues [see Warnings and Precautions (5.11) ] Most common adverse reactions (>10% and at least 5% greater than placebo) were: Sedation/somnolence, fatigue, insomnia, depression, akathisia, anxiety/anxiety aggravated, nausea.

( 6.1 ) To report SUSPECTED ADVERSE REACTIONS, contact Precision Dose, Inc. at 1-844-668-3942 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 practice. During its development, tetrabenazine tablets were administered to 773 unique subjects and patients. The conditions and duration of exposure to tetrabenazine tablets varied greatly and included single-dose and multiple-dose clinical pharmacology studies in healthy volunteers (n=259) and open-label (n=529) and double-blind studies (n=84) in patients.

In a randomized, 12-week, placebo-controlled clinical trial of HD patients, adverse reactions were more common in the tetrabenazine tablets group than in the placebo group. Forty-nine of 54 (91%) patients who received tetrabenazine tablets experienced one or more adverse reactions at any time during the study. The most common adverse reactions (over 10%, and at least 5% greater than placebo) were sedation/somnolence, fatigue, insomnia, depression, akathisia, anxiety/anxiety aggravated, and nausea.

Adverse Reactions Occurring in ≥4% of Patients The number and percentage of the most common adverse reactions that occurred at any time during the study in ≥4% of tetrabenazine tablets-treated patients, and with a greater frequency than in placebo-treated patients, are presented in Table 1. Table 1. Adverse Reactions in a 12-Week, Double-Blind, Placebo-Controlled Trial in Patients with Huntington’s Disease Adverse Reaction Tetrabenazine Tablets n = 54 % Placebo n = 30 % Sedation/somnolence 31 3 Insomnia 22 0 Fatigue 22 13 Depression 19 0 Akathisia 19 0 Anxiety/anxiety aggravated 15 3 Fall 15 13 Nausea 13 7 Upper respiratory tract infection 11 7 Irritability 9 3 Balance difficulty 9 0 Parkinsonism/bradykinesia 9 0 Vomiting 6 3 Laceration (head) 6 0 Ecchymosis 6 0 Decreased appetite 4 0 Obsessive reaction 4 0 Dizziness 4 0 Dysarthria 4 0 Unsteady gait 4 0 Headache 4 3 Shortness of breath 4 0 Bronchitis 4 0 Dysuria 4 0 Dose escalation was discontinued or dosage of study drug was reduced because of one or more adverse reactions in 28 of 54 (52%) patients randomized to tetrabenazine tablets.

These adverse reactions consisted of sedation (15), akathisia (7), parkinsonism (4), depression (3), anxiety (2), fatigue (1) and diarrhea (1). Some patients had more than one AR and are, therefore, counted more than once. Adverse Reactions Due to Extrapyramidal Symptoms Table 2 describes the incidence of events considered to be extrapyramidal adverse reactions which occurred at a greater frequency in tetrabenazine tablets-treated patients compared to placebo-treated patients.

Table 2. Adverse Reactions Due to Extrapyramidal Symptoms in a 12-Week, Double-Blind, Placebo-Controlled in Patients with Huntington’s disease. Tetrabenazine Tablets n = 54 % Placebo n = 30 % Akathisia Patients wit… [Excerpted — this section continues on DailyMed.]

🔄 Drug Interactions ~3 min read ▾

7 DRUG INTERACTIONS

7.1Strong CYP2D6 Inhibitors In vitro studies indicate that α-HTBZ and β-HTBZ are substrates for CYP2D6. Strong CYP2D6 inhibitors (e.g., paroxetine, fluoxetine, quinidine) markedly increase exposure to these metabolites. A reduction in tetrabenazine tablets dose may be necessary when adding a strong CYP2D6 inhibitor (e.g., fluoxetine, paroxetine, quinidine) in patients maintained on a stable dose of tetrabenazine tablets.

The daily dose of tetrabenazine tablets should not exceed 50 mg per day and the maximum single dose of tetrabenazine tablets should not exceed 25 mg in patients taking strong CYP2D6 inhibitors [see Dosage and Administration (2.3) , Warnings and Precautions (5.3) , Use in Specific Populations (8.7) , Clinical Pharmacology (12.3) ] .

7.2Reserpine Reserpine binds irreversibly to VMAT2, and the duration of its effect is several days. Prescribers should wait for chorea to re-emerge before administering tetrabenazine tablets to avoid overdosage and major depletion of serotonin and norepinephrine in the CNS. At least 20 days should elapse after stopping reserpine before starting tetrabenazine tablets.

Tetrabenazine tablets and reserpine should not be used concomitantly [see Contraindications (4) ] .

7.3Monoamine Oxidase Inhibitors (MAOIs) Tetrabenazine tablets are contraindicated in patients taking MAOIs. Tetrabenazine tablets should not be used in combination with an MAOI, or within a minimum of 14 days of discontinuing therapy with an MAOI [see Contraindications (4) ] .

7.4Alcohol or Other Sedating Drugs Concomitant use of alcohol or other sedating drugs may have additive effects and worsen sedation and somnolence [see Warnings and Precautions (5.7) ] .

7.5Drugs That Cause QTc Prolongation Tetrabenazine tablets cause a small prolongation of QTc (about 8 msec), concomitant use with other drugs that are known to cause QTc prolongation should be avoided, these including antipsychotic medications (e.g., chlorpromazine, haloperidol, thioridazine, ziprasidone), antibiotics (e.g., moxifloxacin), Class 1A (e.g., quinidine, procainamide) and Class III (e.g., amiodarone, sotalol) antiarrhythmic medications or any other medications known to prolong the QTc interval. Tetrabenazine tablets should be avoided in patients with congenital long QT syndrome and in patients with a history of cardiac arrhythmias.

Certain conditions may increase the risk for torsade de pointes or sudden death such as (1) bradycardia; (2) hypokalemia or hypomagnesemia; (3) concomitant use of other drugs that prolong the QTc interval; and (4) presence of congenital prolongation of the QT interval [see Warnings and Precautions (5.8) , Clinical Pharmacology (12.2) ] .

7.6Neuroleptic Drugs The risk for Parkinsonism, NMS, and akathisia may be increased by concomitant use of tetrabenazine tablets and dopamine antagonists or antipsychotics (e.g., chlorpromazine, haloperidol, olanzapine, risperidone, thioridazine, ziprasidone) [see Warnings and Precautions (5.4 , 5.5 , 5.6) ] .

7.7Concomitant Deutetrabenazine or Valbenazine Tetrabenazine tablets are contraindicated in patients currently taking deutetrabenazine or valbenazine.

Drug Interactions CYP2D6 Inhibitors In vitro studies indicate that α-HTBZ and β-HTBZ are substrates for CYP2D6. The effect of CYP2D6 inhibition on the pharmacokinetics of tetrabenazine and its metabolites was studied in 25 healthy subjects following a single 50 mg dose of tetrabenazine given after 10 days of administration of the strong CYP2D6 inhibitor paroxetine 20 mg daily. There was an approximately 30% increase in C max and an approximately 3-fold increase in AUC for α-HTBZ in subjects given paroxetine prior to tetrabenazine compared to tetrabenazine given alone.

For β-HTBZ, the C max and AUC were increased 2.4- and 9-fold, respectively, in subjects given paroxetine prior to tetrabenazine given alone. The elimination half-life of α-HTBZ and β-HTBZ was approximately 14 hours when tetrabenazine was given with… [Excerpted — this section continues on DailyMed.]

👥 Use in Specific Populations ~3 min read ▾

8 USE IN SPECIFIC POPULATIONS Pregnancy: Based on animal data, may cause fetal harm. ( 8.1 )

8.1Pregnancy Risk Summary There are no adequate data on the developmental risk associated with the use of tetrabenazine tablets in pregnant women. Administration of tetrabenazine to rats throughout pregnancy and lactation resulted in an increase in stillbirths and postnatal offspring mortality. Administration of a major human metabolite of tetrabenazine to rats during pregnancy or during pregnancy and lactation produced adverse effects on the developing fetus and offspring (increased mortality, decreased growth, and neurobehavioral and reproductive impairment).

The adverse developmental effects of tetrabenazine and a major human metabolite of tetrabenazine in rats occurred at clinically relevant doses [see Data ] . 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. The background risk of major birth defects and miscarriage for the indicated population is unknown.

Data Animal Data Tetrabenazine had no clear effects on embryofetal development when administered to pregnant rats throughout the period of organogenesis at oral doses up to 30 mg/kg/day (or 3 times the maximum recommended human dose [MRHD] of 100 mg/day on a mg/m 2 basis). Tetrabenazine had no effects on embryofetal development when administered to pregnant rabbits during the period of organogenesis at oral doses up to 60 mg/kg/day (or 12 times the MRHD on a mg/m 2 basis). When tetrabenazine (5, 15, and 30 mg/kg/day) was orally administered to pregnant rats from the beginning of organogenesis through the lactation period, an increase in stillbirths and offspring postnatal mortality was observed at 15 and 30 mg/kg/day and delayed pup maturation was observed at all doses.

A no-effect dose for pre- and postnatal developmental toxicity in rats was not identified. The lowest dose tested (5 mg/kg/day) was less than the MRHD on a mg/m 2 basis. Because rats dosed orally with tetrabenazine do not produce 9-desmethyl-β-DHTBZ, a major human metabolite of tetrabenazine, the metabolite was directly administered to pregnant and lactating rats.

Oral administration of 9-desmethyl- β -DHTBZ (8, 15, and 40 mg/kg/day) throughout the period of organogenesis produced increases in embryofetal mortality at 15 and 40 mg/kg/day and reductions in fetal body weights at 40 mg/kg/day, which was also maternally toxic. When 9-desmethyl-β-DHTBZ (8, 15, and 40 mg/kg/day) was orally administered to pregnant rats from the beginning of organogenesis through the lactation period, increases in gestation duration, stillbirths, and offspring postnatal mortality (40 mg/kg/day); decreases in pup weights (40 mg/kg/day); and neurobehavioral (increased activity, learning and memory deficits) and reproductive (decreased litter size) impairment (15 and 40 mg/kg/day) were observed.

Maternal toxicity was seen at the highest dose. The no-effect dose for developmental toxicity in rats (8 mg/kg/day) was associated with plasma exposures (AUC) of 9-desmethyl-β-DHTBZ in pregnant rats lower than that in humans at the MRHD.

8.2Lactation Risk Summary There are no data on the presence of tetrabenazine or its metabolites in human milk, the effects on the breastfed infant, or the effects of the drug on milk production. The developmental and health benefits of breastfeeding should be considered along with the mother’s clinical need for tetrabenazine tablets and any potential adverse effects on the breastfed infant from tetrabenazine tablets or from the underlying maternal condition.

8.4Pediatric Use Safety and effectiveness in pediatric patients have not been established.

8.5Geriatric Use The pharmacokinetics of tetrabenazine tablets and its primary metabolites have not been formally studied in geriatric subjects.

8.6Hepatic Impairment Because the safety and efficacy of the increased exposure to tetrabenazin… [Excerpted — this section continues on DailyMed.]

🤰 Pregnancy ~2 min read ▾

8.1Pregnancy Risk Summary There are no adequate data on the developmental risk associated with the use of tetrabenazine tablets in pregnant women. Administration of tetrabenazine to rats throughout pregnancy and lactation resulted in an increase in stillbirths and postnatal offspring mortality. Administration of a major human metabolite of tetrabenazine to rats during pregnancy or during pregnancy and lactation produced adverse effects on the developing fetus and offspring (increased mortality, decreased growth, and neurobehavioral and reproductive impairment).

The adverse developmental effects of tetrabenazine and a major human metabolite of tetrabenazine in rats occurred at clinically relevant doses [see Data ] . 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. The background risk of major birth defects and miscarriage for the indicated population is unknown.

Data Animal Data Tetrabenazine had no clear effects on embryofetal development when administered to pregnant rats throughout the period of organogenesis at oral doses up to 30 mg/kg/day (or 3 times the maximum recommended human dose [MRHD] of 100 mg/day on a mg/m 2 basis). Tetrabenazine had no effects on embryofetal development when administered to pregnant rabbits during the period of organogenesis at oral doses up to 60 mg/kg/day (or 12 times the MRHD on a mg/m 2 basis). When tetrabenazine (5, 15, and 30 mg/kg/day) was orally administered to pregnant rats from the beginning of organogenesis through the lactation period, an increase in stillbirths and offspring postnatal mortality was observed at 15 and 30 mg/kg/day and delayed pup maturation was observed at all doses.

A no-effect dose for pre- and postnatal developmental toxicity in rats was not identified. The lowest dose tested (5 mg/kg/day) was less than the MRHD on a mg/m 2 basis. Because rats dosed orally with tetrabenazine do not produce 9-desmethyl-β-DHTBZ, a major human metabolite of tetrabenazine, the metabolite was directly administered to pregnant and lactating rats.

Oral administration of 9-desmethyl- β -DHTBZ (8, 15, and 40 mg/kg/day) throughout the period of organogenesis produced increases in embryofetal mortality at 15 and 40 mg/kg/day and reductions in fetal body weights at 40 mg/kg/day, which was also maternally toxic. When 9-desmethyl-β-DHTBZ (8, 15, and 40 mg/kg/day) was orally administered to pregnant rats from the beginning of organogenesis through the lactation period, increases in gestation duration, stillbirths, and offspring postnatal mortality (40 mg/kg/day); decreases in pup weights (40 mg/kg/day); and neurobehavioral (increased activity, learning and memory deficits) and reproductive (decreased litter size) impairment (15 and 40 mg/kg/day) were observed.

Maternal toxicity was seen at the highest dose. The no-effect dose for developmental toxicity in rats (8 mg/kg/day) was associated with plasma exposures (AUC) of 9-desmethyl-β-DHTBZ in pregnant rats lower than that in humans at the MRHD.

🧒 Pediatric Use 13 words ▾

8.4Pediatric Use Safety and effectiveness in pediatric patients have not been established.

🧓 Geriatric Use 20 words ▾

8.5Geriatric Use The pharmacokinetics of tetrabenazine tablets and its primary metabolites have not been formally studied in geriatric subjects.

🆘 Overdosage 128 words ▾

10 OVERDOSAGE Three episodes of overdose occurred in the open-label trials performed in support of registration. Eight cases of overdose with tetrabenazine tablets have been reported in the literature. The dose of tetrabenazine tablets in these patients ranged from 100 mg to 1 g.

Adverse reactions associated with tetrabenazine tablets overdose include acute dystonia, oculogyric crisis, nausea and vomiting, sweating, sedation, hypotension, confusion, diarrhea, hallucinations, rubor, and tremor. Treatment should consist of those general measures employed in the management of overdosage with any CNS-active drug. General supportive and symptomatic measures are recommended.

Cardiac rhythm and vital signs should be monitored. In managing overdosage, the possibility of multiple drug involvement should always be considered. The physician should consider contacting a poison control center on the treatment of any overdose.

🧬 Clinical Pharmacology ~3 min read ▾

12 CLINICAL PHARMACOLOGY

12.1Mechanism of Action The precise mechanism by which tetrabenazine exerts its anti-chorea effects is unknown but is believed to be related to its effect as a reversible depletor of monoamines (such as dopamine, serotonin, norepinephrine, and histamine) from nerve terminals. Tetrabenazine reversibly inhibits the human vesicular monoamine transporter type 2 (VMAT2) (Ki ≈ 100 nM), resulting in decreased uptake of monoamines into synaptic vesicles and depletion of monoamine stores. Human VMAT2 is also inhibited by dihydrotetrabenazine (HTBZ), a mixture of α-HTBZ and β-HTBZ. α- and β-HTBZ, major circulating metabolites in humans, exhibit high in vitro binding affinity to bovine VMAT2.

Tetrabenazine exhibits weak in vitro binding affinity at the dopamine D2 receptor (Ki = 2100 nM).

12.2Pharmacodynamics QTc Prolongation The effect of a single 25 or 50 mg dose of tetrabenazine tablets on the QT interval was studied in a randomized, double-blind, placebo-controlled crossover study in healthy male and female subjects with moxifloxacin as a positive control. At 50 mg, tetrabenazine tablets caused an approximately 8 msec mean increase in QTc (90% CI: 5.0, 10.4 msec). Additional data suggest that inhibition of CYP2D6 in healthy subjects given a single 50 mg dose of tetrabenazine tablets does not further increase the effect on the QTc interval.

Effects at higher exposures to either tetrabenazine tablets or its metabolites have not been evaluated [see Warnings and Precautions (5.8) , Drug Interactions (7.5) ] . Melanin Binding Tetrabenazine or its metabolites bind to melanin-containing tissues (i.e., eye, skin, fur) in pigmented rats. After a single oral dose of radiolabeled tetrabenazine, radioactivity was still detected in eye and fur at 21 days post dosing [see Warnings and Precautions (5.11) ] .

12.3Pharmacokinetics Absorption Following oral administration of tetrabenazine, the extent of absorption is at least 75%. After single oral doses ranging from 12.5 to 50 mg, plasma concentrations of tetrabenazine are generally below the limit of detection because of the rapid and extensive hepatic metabolism of tetrabenazine by carbonyl reductase to the active metabolites α-HTBZ and β-HTBZ. α-HTBZ and β-HTBZ are metabolized principally by CYP2D6. Peak plasma concentrations (C max ) of α-HTBZ and β-HTBZ are reached within 1 to 1½ hours post-dosing. α-HTBZ is subsequently metabolized to a minor metabolite, 9-desmethyl-α-DHTBZ. β-HTBZ is subsequently metabolized to another major circulating metabolite, 9-desmethyl-β-DHTBZ, for which C max is reached approximately 2 hours post-dosing.

Food Effects The effects of food on the bioavailability of tetrabenazine tablets were studied in subjects administered a single dose with and without food. Food had no effect on mean plasma concentrations, C max , or the area under the concentration time course (AUC) of α-HTBZ or β-HTBZ [see Dosage and Administration (2.1) ] . Distribution Results of PET-scan studies in humans show that radioactivity is rapidly distributed to the brain following intravenous injection of 11C-labeled tetrabenazine or α-HTBZ, with the highest binding in the striatum and lowest binding in the cortex.

The in vitro protein binding of tetrabenazine, α-HTBZ, and β-HTBZ was examined in human plasma for concentrations ranging from 50 to 200 ng/mL. Tetrabenazine binding ranged from 82% to 85%, α-HTBZ binding ranged from 60% to 68%, and β-HTBZ binding ranged from 59% to 63%. Metabolism After oral administration in humans, at least 19 metabolites of tetrabenazine have been identified. α-HTBZ, β-HTBZ and 9-desmethyl-β-DHTBZ are the major circulating metabolites and are subsequently metabolized to sulfate or glucuronide conjugates. α-HTBZ and β-HTBZ are formed by carbonyl reductase that occurs mainly in the liver. α-HTBZ is O-dealkylated by CYP450 enzymes, principally CYP2D6, with some contribution of CYP1A2 to form 9-desmethyl-α-DHTBZ, a minor metabolite. β-HTBZ is O-dea… [Excerpted — this section continues on DailyMed.]

🧬 Mechanism of Action 117 words ▾

12.1Mechanism of Action The precise mechanism by which tetrabenazine exerts its anti-chorea effects is unknown but is believed to be related to its effect as a reversible depletor of monoamines (such as dopamine, serotonin, norepinephrine, and histamine) from nerve terminals. Tetrabenazine reversibly inhibits the human vesicular monoamine transporter type 2 (VMAT2) (Ki ≈ 100 nM), resulting in decreased uptake of monoamines into synaptic vesicles and depletion of monoamine stores. Human VMAT2 is also inhibited by dihydrotetrabenazine (HTBZ), a mixture of α-HTBZ and β-HTBZ. α- and β-HTBZ, major circulating metabolites in humans, exhibit high in vitro binding affinity to bovine VMAT2.

Tetrabenazine exhibits weak in vitro binding affinity at the dopamine D2 receptor (Ki = 2100 nM).

📦 How Supplied / Storage and Handling 98 words ▾

16 HOW SUPPLIED/STORAGE AND HANDLING

16.1How Supplied Tetrabenazine tablets are available in the following strengths and packages: The 12.5 mg tetrabenazine tablets are white, cylindrical, biplanar tablets with beveled edges, debossed ‘707’ on one side and plain on the other side. Bottles of 112: NDC 68094-905-10 The 25 mg tetrabenazine tablets are yellowish-buff, cylindrical, biplanar tablets with beveled edges, debossed ‘708’ on one side and scored on the other side. Bottles of 112: NDC 68094-805-10

16.2Storage Store at 25º C (77º F); excursions permitted to 15º to 30ºC (59º to 86ºF) [see USP Controlled Room Temperature].

📋 Description 149 words ▾

11 DESCRIPTION Tetrabenazine tablets are a monoamine depletor for oral administration. The molecular weight of tetrabenazine is 317.43; the pKa is 6.51. Tetrabenazine is a hexahydro-dimethoxy-benzoquinolizine derivative and has the following chemical name: cis rac –1,3,4,6,7,11b-hexahydro-9,10-dimethoxy-3-(2-methylpropyl)-2H-benzo[a] quinolizin-2-one.

The empirical formula C 19 H 27 NO 3 is represented by the following structural formula: Tetrabenazine is a white to slightly yellow crystalline powder that is sparingly soluble in water and soluble in ethanol. Each tetrabenazine tablet contains either 12.5 or 25 mg of tetrabenazine as the active ingredient. Tetrabenazine tablets contain tetrabenazine as the active ingredient and the following inactive ingredients: lactose, magnesium stearate, maize starch, and talc.

The 25 mg strength tablets also contain yellow iron oxide as an inactive ingredient. Tetrabenazine tablets are supplied as a yellowish-buff, scored tablet containing 25 mg of tetrabenazine or as a white, non-scored tablet containing 12.5 mg of tetrabenazine. Tetrabenazine structural formula

💬 Information for Patients ~2 min read ▾

17 PATIENT COUNSELING INFORMATION Advise the patient to read the FDA-approved patient labeling (Medication Guide). Risk of Suicidality Inform patients and their families that tetrabenazine tablets may increase the risk of suicidal thinking and behaviors. Counsel patients and their families to remain alert to the emergence of suicidal ideation and to report it immediately to the patient’s physician [see Contraindications (4) , Warnings and Precautions (5.1) ] .

Risk of Depression Inform patients and their families that tetrabenazine tablets may cause depression or may worsen preexisting depression. Encourage patients and their families to be alert to the emergence of sadness, worsening of depression, withdrawal, insomnia, irritability, hostility (aggressiveness), akathisia (psychomotor restlessness), anxiety, agitation, or panic attacks and to report such symptoms promptly to the patient’s physician [see Contraindications (4) , Warnings and Precautions (5.1) ] . Dosing of Tetrabenazine Tablets Inform patients and their families that the dose of tetrabenazine tablets will be increased slowly to the dose that is best for each patient.

Sedation, akathisia, parkinsonism, depression, and difficulty swallowing may occur. Such symptoms should be promptly reported to the physician, and the tetrabenazine tablets dose may need to be reduced or discontinued [see Dosage and Administration (2.2) ] . Risk of Sedation and Somnolence Inform patients that tetrabenazine tablets may induce sedation and somnolence and may impair the ability to perform tasks that require complex motor and mental skills.

Advise patients that until they learn how they respond to tetrabenazine tablets, they should be careful doing activities that require them to be alert, such as driving a car or operating machinery [see Warnings and Precautions (5.7) ] . Interaction with Alcohol Advise patients and their families that alcohol may potentiate the sedation induced by tetrabenazine tablets [see Drug Interactions (7.4) ] . Usage in Pregnancy Advise patients and their families to notify the physician if the patient becomes pregnant or intends to become pregnant during tetrabenazine tablets therapy, or is breastfeeding or intending to breastfeed an infant during therapy [see Use in Specific Populations (8.1) ] .

Manufactured for: Precision Dose, Inc. 722 Progressive Lane South Beloit, IL 61080 552701 Revised: 08/2023

💬 Medication Guide ~3 min read ▾

Medication Guide Tetrabenazine (TET ra BEN a Zeen) Tablets Read the Medication Guide that comes with tetrabenazine tablets before you start taking it and each time you refill the prescription. There may be new information. This information does not take the place of talking with your doctor about your medical condition or your treatment.

You should share this information with your family members and caregivers. What is the most important information I should know about tetrabenazine tablets? • Tetrabenazine tablets can cause serious side effects, including: • Depression • suicidal thoughts • suicidal actions • You should not start taking tetrabenazine tablets if you are depressed (have untreated depression or depression that is not well controlled by medicine) or have suicidal thoughts. • Pay close attention to any changes, especially sudden changes, in mood, behaviors, thoughts or feelings.

This is especially important when tetrabenazine tablets are started and when the dose is changed. Call the doctor right away if you become depressed or have any of the following symptoms, especially if they are new, worse, or worry you: • feel sad or have crying spells • lose interest in seeing your friends or doing things you used to enjoy • sleep a lot more or a lot less than usual • feel unimportant • feel guilty • feel hopeless or helpless • more irritable, angry or aggressive than usual • more or less hungry than usual or notice a big change in your body weight • have trouble paying attention • feel tired or sleepy all the time • have thoughts about hurting yourself or ending your life What are tetrabenazine tablets?

Tetrabenazine tablets are a medicine that is used to treat the involuntary movements (chorea) of Huntington’s disease. Tetrabenazine tablets do not cure the cause of the involuntary movements, and it does not treat other symptoms of Huntington’s disease, such as problems with thinking or emotions. It is not known whether tetrabenazine tablets are safe and effective in children.

Who should not take tetrabenazine tablets? Do not take tetrabenazine tablets if you: • are depressed or have thoughts of suicide. See “What is the most important information I should know about tetrabenazine tablets?” • have liver problems. • are taking a monoamine oxidase inhibitor (MAOI) medicine.

Ask your doctor or pharmacist if you are not sure. • are taking reserpine. Do not take medicines that contain reserpine (such as Serpalan ® and Renese ® -R) with tetrabenazine tablets. If your doctor plans to switch you from taking reserpine to tetrabenazine tablets, you must wait at least 20 days after your last dose of reserpine before you start taking tetrabenazine tablets.

What should I tell my doctor before taking tetrabenazine tablets? Tell your doctor about all your medical conditions, including if you: • have emotional or mental problems (for example, depression, nervousness, anxiety, anger, agitation, psychosis, previous suicidal thoughts or suicide attempts). • have liver disease. • have any allergies. See the end of this Medication Guide for a complete list of the ingredients in tetrabenazine tablets. • have breast cancer or a history of breast cancer. • have heart disease that is not stable, have heart failure or recently had a heart attack. • have an irregular heartbeat (cardiac arrhythmia). • are pregnant or plan to become pregnant.

It is not known if tetrabenazine tablets can harm your unborn baby. • are breastfeeding. It is not known if tetrabenazine passes into breast milk. Tell your doctor about all the medicines you take, including prescription medicines and nonprescription medicines, vitamins and herbal products.

Using tetrabenazine tablets with certain other medicines may cause serious side effects. Do not start any new medicines while taking tetrabenazine tablets without talking to your doctor first. How should I take tetrabenazine tablets? • Tetrabenazine tablets are tablets that you take by mouth. • Take tetrabenazine tablets exa… [Excerpted — this section continues on DailyMed.]

🧬 Pharmacokinetics ~3 min read ▾

12.3Pharmacokinetics Absorption Following oral administration of tetrabenazine, the extent of absorption is at least 75%. After single oral doses ranging from 12.5 to 50 mg, plasma concentrations of tetrabenazine are generally below the limit of detection because of the rapid and extensive hepatic metabolism of tetrabenazine by carbonyl reductase to the active metabolites α-HTBZ and β-HTBZ. α-HTBZ and β-HTBZ are metabolized principally by CYP2D6. Peak plasma concentrations (C max ) of α-HTBZ and β-HTBZ are reached within 1 to 1½ hours post-dosing. α-HTBZ is subsequently metabolized to a minor metabolite, 9-desmethyl-α-DHTBZ. β-HTBZ is subsequently metabolized to another major circulating metabolite, 9-desmethyl-β-DHTBZ, for which C max is reached approximately 2 hours post-dosing.

Food Effects The effects of food on the bioavailability of tetrabenazine tablets were studied in subjects administered a single dose with and without food. Food had no effect on mean plasma concentrations, C max , or the area under the concentration time course (AUC) of α-HTBZ or β-HTBZ [see Dosage and Administration (2.1) ] . Distribution Results of PET-scan studies in humans show that radioactivity is rapidly distributed to the brain following intravenous injection of 11C-labeled tetrabenazine or α-HTBZ, with the highest binding in the striatum and lowest binding in the cortex.

The in vitro protein binding of tetrabenazine, α-HTBZ, and β-HTBZ was examined in human plasma for concentrations ranging from 50 to 200 ng/mL. Tetrabenazine binding ranged from 82% to 85%, α-HTBZ binding ranged from 60% to 68%, and β-HTBZ binding ranged from 59% to 63%. Metabolism After oral administration in humans, at least 19 metabolites of tetrabenazine have been identified. α-HTBZ, β-HTBZ and 9-desmethyl-β-DHTBZ are the major circulating metabolites and are subsequently metabolized to sulfate or glucuronide conjugates. α-HTBZ and β-HTBZ are formed by carbonyl reductase that occurs mainly in the liver. α-HTBZ is O-dealkylated by CYP450 enzymes, principally CYP2D6, with some contribution of CYP1A2 to form 9-desmethyl-α-DHTBZ, a minor metabolite. β-HTBZ is O-dealkylated principally by CYP2D6 to form 9-desmethyl-β-DHTBZ.

The results of in vitro studies do not suggest that tetrabenazine, α-HTBZ, or β-HTBZ or 9-desmethyl-β-DHTBZ are likely to result in clinically significant inhibition of CYP2D6, CYP1A2, CYP2B6, CYP2C8, CYP2C9, CYP2C19, CYP2E1, or CYP3A. In vitro studies suggest that neither tetrabenazine nor its α- or β-HTBZ or 9-desmethyl-α- DHTBZ metabolites are likely to result in clinically significant induction of CYP1A2, CYP3A4, CYP2B6, CYP2C8, CYP2C9, or CYP2C19. Neither tetrabenazine nor its α- or β-HTBZ or 9-desmethyl-β-DHTBZ metabolites are likely to be a substrates or inhibitors of P-glycoprotein at clinically relevant concentrations in vivo .

Elimination After oral administration, tetrabenazine is extensively hepatically metabolized, and the metabolites are primarily renally eliminated. α-HTBZ, β-HTBZ and 9-desmethyl-β-DHTBZ have half-lives of 7 hours, 5 hours and 12 hours respectively. In a mass balance study in 6 healthy volunteers, approximately 75% of the dose was excreted in the urine, and fecal recovery accounted for approximately 7 to 16% of the dose. Unchanged tetrabenazine has not been found in human urine.

Urinary excretion of α-HTBZ or β-HTBZ accounted for less than 10% of the administered dose. Circulating metabolites, including sulfate and glucuronide conjugates of HTBZ metabolites as well as products of oxidative metabolism, account for the majority of metabolites in the urine. Specific Populations Gender There is no apparent effect of gender on the pharmacokinetics of α-HTBZ or β-HTBZ.

Hepatic Impairment The disposition of tetrabenazine was compared in 12 patients with mild to moderate chronic liver impairment (Child-Pugh scores of 5-9) and 12 age- and gender-matched subjects with normal hepatic function who received a single 25 mg dose of tetrab… [Excerpted — this section continues on DailyMed.]

🧬 Pharmacodynamics 161 words ▾

12.2Pharmacodynamics QTc Prolongation The effect of a single 25 or 50 mg dose of tetrabenazine tablets on the QT interval was studied in a randomized, double-blind, placebo-controlled crossover study in healthy male and female subjects with moxifloxacin as a positive control. At 50 mg, tetrabenazine tablets caused an approximately 8 msec mean increase in QTc (90% CI: 5.0, 10.4 msec). Additional data suggest that inhibition of CYP2D6 in healthy subjects given a single 50 mg dose of tetrabenazine tablets does not further increase the effect on the QTc interval.

Effects at higher exposures to either tetrabenazine tablets or its metabolites have not been evaluated [see Warnings and Precautions (5.8) , Drug Interactions (7.5) ] . Melanin Binding Tetrabenazine or its metabolites bind to melanin-containing tissues (i.e., eye, skin, fur) in pigmented rats. After a single oral dose of radiolabeled tetrabenazine, radioactivity was still detected in eye and fur at 21 days post dosing [see Warnings and Precautions (5.11) ] .

🔬 Clinical Studies ~3 min read ▾

14 CLINICAL STUDIES Study 1 The efficacy of tetrabenazine tablets as a treatment for the chorea of Huntington’s disease was established primarily in a randomized, double-blind, placebo-controlled multi-center trial (Study 1) conducted in ambulatory patients with a diagnosis of HD. The diagnosis of HD was based on family history, neurological exam, and genetic testing. Treatment duration was 12 weeks, including a 7-week dose titration period and a 5-week maintenance period followed by a 1-week washout.

Tetrabenazine tablets were started at a dose of 12.5 mg per day, followed by upward titration at weekly intervals, in 12.5 mg increments until satisfactory control of chorea was achieved, intolerable side effects occurred, or until a maximal dose of 100 mg per day was reached. The primary efficacy endpoint was the Total Chorea Score, an item of the Unified Huntington’s Disease Rating Scale (UHDRS). On this scale, chorea is rated from 0 to 4 (with 0 representing no chorea) for 7 different parts of the body.

The total score ranges from 0 to 28. As shown in Figure 1, Total Chorea Scores for patients in the drug group declined by an estimated 5.0 units during maintenance therapy (average of Week 9 and Week 12 scores versus baseline), compared to an estimated 1.5 units in the placebo group. The treatment effect of 3.5 units was statistically significant.

At the Week 13 follow-up in Study 1 (1 week after discontinuation of the study medication), the Total Chorea Scores of patients receiving tetrabenazine tablets returned to baseline. Figure 1. Mean ± s.e.m.

Changes from Baseline in Total Chorea Score in 84 HD Patients Treated with Tetrabenazine (n=54) or Placebo (n=30) Figure 2 illustrates the cumulative percentages of patients from the tetrabenazine tablets and placebo treatment groups who achieved the level of reduction in the Total Chorea Score shown on the X axis. The left-ward shift of the curve (toward greater improvement) for the tetrabenazine tablets-treated patients indicates that these patients were more likely to have any given degree of improvement in chorea score.

For example, about 7% of placebo patients had a 6-point or greater improvement compared to 50% of tetrabenazine tablets-treated patients. The percentage of patients achieving reductions of at least 10, 6, and 3 points from baseline to Week 12 are shown in the inset table. Figure 2.

Cumulative Percentage of Patients with Specified Changes from Baseline in Total Chorea Score. The Percentages of Randomized Patients within each treatment group who completed Study 1 were: Placebo 97%, Tetrabenazine 91%. A Physician-rated Clinical Global Impression (CGI) favored tetrabenazine tablets statistically.

In general, measures of functional capacity and cognition showed no difference between tetrabenazine tablets and placebo. However, one functional measure (Part 4 of the UHDRS), a 25-item scale assessing the capacity for patients to perform certain activities of daily living, showed a decrement for patients treated with tetrabenazine tablets compared to placebo, a difference that was nominally statistically significant. A 3-item cognitive battery specifically developed to assess cognitive function in patients with HD (Part 2 of the UHDRS) also showed a decrement for patients treated with tetrabenazine tablets compared to placebo, but the difference was not statistically significant.

Study 2 A second controlled study was performed in patients who had been treated with open-label tetrabenazine tablets for at least 2 months (mean duration of treatment was 2 years). They were randomized to continuation of tetrabenazine tablets at the same dose (n=12) or to placebo (n=6) for three days, at which time their chorea scores were compared. Although the comparison did not reach statistical significance (p=0.1), the estimate of the treatment effect was similar to that seen in Study 1 (about 3.5 units).

Figure 1 Figure 2

🔒 Drug Abuse and Dependence 125 words ▾

9 DRUG ABUSE AND DEPENDENCE

9.1Controlled Substance Tetrabenazine tablets are not a controlled substance.

9.2Abuse Clinical trials did not reveal patients developed drug seeking behaviors, though these observations were not systematic. Abuse has not been reported from the postmarketing experience in countries where tetrabenazine tablets have been marketed. As with any CNS-active drug, prescribers should carefully evaluate patients for a history of drug abuse and follow such patients closely, observing them for signs of tetrabenazine tablets misuse or abuse (such as development of tolerance, increasing dose requirements, drug-seeking behavior).

Abrupt discontinuation of tetrabenazine tablets from patients did not produce symptoms of withdrawal or a discontinuation syndrome; only symptoms of the original disease were observed to re-emerge [see Dosage and Administration (2.4) ] .

🔒 Controlled Substance 10 words ▾

9.1Controlled Substance Tetrabenazine tablets are not a controlled substance.

🧪 Nonclinical Toxicology ~1 min read ▾

13 NONCLINICAL TOXICOLOGY

13.1Carcinogenesis, Mutagenesis, Impairment of Fertility Carcinogenesis No increase in tumors was observed in p53+/- transgenic mice treated orally with tetrabenazine (5, 15, and 30 mg/kg/day) for 26 weeks. No increase in tumors was observed in Tg.rasH2 transgenic mice treated orally with a major human metabolite, 9-desmethyl-β-DHTBZ (20, 100, and 200 mg/kg/day), for 26 weeks. Mutagenesis Tetrabenazine and metabolites α-HTBZ, β-HTBZ and 9-desmethyl-β-DHTBZ were negative in an in vitro bacterial reverse mutation assay.

Tetrabenazine was clastogenic in an in vitro chromosomal aberration assay in Chinese hamster ovary cells in the presence of metabolic activation. α-HTBZ and β-HTBZ were clastogenic in an in vitro chromosome aberration assay in Chinese hamster lung cells in the presence and absence of metabolic activation. 9-desmethyl-β-DHTBZ was not clastogenic in an in vitro chromosomal aberration assays in human peripheral blood mononuclear cells in the presence or absence of metabolic activation. In vivo micronucleus assay were conducted in male and female rats and male mice.

Tetrabenazine was negative in male mice and rats but produced an equivocal response in female rats. Impairment of Fertility Oral administration of tetrabenazine (5, 15, or 30 mg/kg/day) to female rats prior to and throughout mating, and continuing through day 7 of gestation resulted in disrupted estrous cyclicity at doses greater than 5 mg/kg/day (less than the MRHD on a mg/m 2 basis). No effects on mating and fertility indices or sperm parameters (motility, count, density) were observed when males were treated orally with tetrabenazine (5, 15, or 30 mg/kg/day; up to 3 times the MRHD on a mg/m 2 basis) prior to and throughout mating with untreated females.

Because rats dosed with tetrabenazine do not produce 9-desmethyl-beta-DHTBZ, a major human metabolite, these studies may not have adequately assessed the potential of tetrabenazine tablets to impair fertility in humans.

📄 Carcinogenesis, Mutagenesis, Impairment of Fertility ~1 min read ▾

13.1Carcinogenesis, Mutagenesis, Impairment of Fertility Carcinogenesis No increase in tumors was observed in p53+/- transgenic mice treated orally with tetrabenazine (5, 15, and 30 mg/kg/day) for 26 weeks. No increase in tumors was observed in Tg.rasH2 transgenic mice treated orally with a major human metabolite, 9-desmethyl-β-DHTBZ (20, 100, and 200 mg/kg/day), for 26 weeks. Mutagenesis Tetrabenazine and metabolites α-HTBZ, β-HTBZ and 9-desmethyl-β-DHTBZ were negative in an in vitro bacterial reverse mutation assay.

Tetrabenazine was clastogenic in an in vitro chromosomal aberration assay in Chinese hamster ovary cells in the presence of metabolic activation. α-HTBZ and β-HTBZ were clastogenic in an in vitro chromosome aberration assay in Chinese hamster lung cells in the presence and absence of metabolic activation. 9-desmethyl-β-DHTBZ was not clastogenic in an in vitro chromosomal aberration assays in human peripheral blood mononuclear cells in the presence or absence of metabolic activation. In vivo micronucleus assay were conducted in male and female rats and male mice.

Tetrabenazine was negative in male mice and rats but produced an equivocal response in female rats. Impairment of Fertility Oral administration of tetrabenazine (5, 15, or 30 mg/kg/day) to female rats prior to and throughout mating, and continuing through day 7 of gestation resulted in disrupted estrous cyclicity at doses greater than 5 mg/kg/day (less than the MRHD on a mg/m 2 basis). No effects on mating and fertility indices or sperm parameters (motility, count, density) were observed when males were treated orally with tetrabenazine (5, 15, or 30 mg/kg/day; up to 3 times the MRHD on a mg/m 2 basis) prior to and throughout mating with untreated females.

Because rats dosed with tetrabenazine do not produce 9-desmethyl-beta-DHTBZ, a major human metabolite, these studies may not have adequately assessed the potential of tetrabenazine tablets to impair fertility in humans.

📄 Package Label / Principal Display Panel 180 words ▾

PRINCIPAL DISPLAY PANEL – 12.5 mg NDC 68094- 905 -10 Tetrabenazine Tablets 12.5 mg Rx only MEDICATION GUIDE TO BE DISPENSED WITH EACH PRESCRIPTION 112 Tablets PrecisionDose™ Each tablet contains 12.5 mg tetrabenazine. USUAL DOSAGE: See Package Insert. Store at 25°C (77°F); excursions permitted to 15-30°C (59-86°F) [see USP Controlled Room Temperature].

Dispense in a USP tight, light-resistant container. Do not accept if seal over bottle opening is missing or broken. Manufactured for: Precision Dose, Inc.

722 Progressive Lane South Beloit, IL 61080 507501 Rev. 08/2023 12.5 mg Bottle Label

PRINCIPAL DISPLAY PANEL – 25 mg NDC 68094- 805 -10 Tetrabenazine Tablets 25 mg Rx only MEDICATION GUIDE TO BE DISPENSED WITH EACH PRESCRIPTION 112 Tablets PrecisionDose™ Each tablet contains 25 mg tetrabenazine. USUAL DOSAGE: See Package Insert. Store at 25°C (77°F); excursions permitted to 15-30°C (59-86°F) [see USP Controlled Room Temperature].

Dispense in a USP tight, light-resistant container. Do not accept if seal over bottle opening is missing or broken. Manufactured for: Precision Dose, Inc.

722 Progressive Lane South Beloit, IL 61080 507601 Rev. 08/2023 25 mg bottle label

Source: FDA Structured Product Labeling, mirrored from DailyMed / openFDA. Prefer the government’s original formatting? View this label on DailyMed ↗

Medicare Part D spend CMS · PART D · 2026 (Q1)

Medicare Part D (outpatient prescription) spending for Tetrabenazine — the program that covers self-administered drugs. 9 manufacturers.
⚠️ Drug-level data: CMS publishes Part D spending by drug, not by NDC — these figures combine every manufacturer, strength and package size sold under the name Tetrabenazine. That’s a different level of aggregation than the Medicaid card above, which is specific to this exact 11-digit NDC (pack size included), so the two aren’t directly comparable.
Period
Total Part D spend
$8.76M
Claims incl. refills
8.3K
Beneficiaries
3.2K
Spend / beneficiary
$2,706.93
Spend / claim
$1,056.14
Trend by period
💵 About the dollar figures: spending is what Part D plans paid before confidential manufacturer rebates, so the program’s real net cost is lower. A blank patient count means fewer than 11 people — CMS hides counts that small to protect privacy. Source: CMS Medicare Quarterly Part D Spending by Drug (data.cms.gov), updated quarterly.

Reported adverse events (FAERS)

Read carefully: FAERS reports are voluntary and unverified. Counts are not incidence, do not establish causation, are subject to reporting bias, and cannot be used to compare one drug to another. Shown for signal context only. Reports for TETRABENAZINE — the ingredient across all brands.

Top reported reactions

Death1,218
Depression475
Somnolence451
Fatigue361
Fall318
Hospitalisation299
Insomnia276

Age at onset

Child23
Adolescent11
Adult70
Elderly44

Reporter sex

7,301 reports
Male · 42%
Female · 58%
Unknown · 0%

Serious outcomes

Death1,531
Hospitalization1,498
Life-threatening138
Disabling115
Reports over time (by year) — tap or hover for the count & year
2019 2021 2023 2026 162 0
Most recent year is provisional (FAERS lags ~3 months).
Where does this data come from?
Adverse-event reports from the FDA Adverse Event Reporting System (FAERS) via openFDA. FAERS reports are voluntary and unverified — counts are not incidence and don’t establish causation.
For educational and professional reference only — not medical advice. Pricing reflects published NADAC and CMS ASP (free public data) and may differ from your acquisition cost; always verify before billing or dispensing.