NAROPIN ropivacaine hydrochloride 5 mg/mL Injection, Solution
Other active recalls for Ropivacaine Hydrochloride (different manufacturers) — 2 · tap to view
🆔 Identity & classification
Where does this data come from?
🏷️ RxNorm drug class
This medicine belongs to the Amide Local Anesthetic class.
Where does this data come from?
🏭 Manufacturer & labeler
Where does this data come from?
🩺 Clinical
- Ropivacaine is a local anesthetic — it temporarily blocks pain signals in a specific part of your body. You might be receiving it to keep you comfortable and pain-free during surge...
- What is ropivacaine actually used for? Why am I getting it?
- It depends on the dose and concentration used. Ropivacaine blocks pain first, then temperature, then touch, and at higher concentrations it can reduce muscle movement too. For labo...
- Will I be completely numb — can I move at all?
Patient education
Supplement & herbal interactions
Where does this data come from?
Ask a licensed pharmacist directly — free, answered by our team.
🧪 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.
💡 Tap an ingredient (hover on desktop) to see what it is and why it’s used.
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UNII QTT17582CB
A strong acid used to adjust and maintain the proper pH level in liquid medicines, ensuring stability and preventing breakdown of active ingredients.
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8 mg / 1 mL
UNII 451W47IQ8X
Sodium chloride is common table salt. It's used in medicines as a buffer to maintain proper pH, as a filler to add bulk, or to adjust the osmotic balance in liquid formulations.
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UNII 55X04QC32I
A strong alkaline chemical used to adjust and maintain the pH balance of liquid medicines. It helps keep the medicine stable and ensures it stays effective during storage.
3 inactive ingredients listed in the exact product block matched to this NDC.
Where does this data come from?
ingredient classCode="IACT" elements from the exact product block matched by this NDC. Label-section narrative from DailyMed / the openFDA label index is shown separately when available.Inactive ingredient FAQ
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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 mL | Per package |
|---|---|---|
| Retail pharmacies payNADAC · weekly | Not in the retail survey — common for institutional, discontinued, or low-volume packs. | |
| 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 · quarterly | No Part D plan price is available for this NDC in our data. | |
| Medicare Part B allowsASP · J2795 | $0.039 / J2795 unit | — |
Where does this data come from?
🧾 Billing & reimbursement
Where does this data come from?
🔁 Therapeutic equivalents
| Product | Labeler | Pack | NADAC/unit | TE | Status | Price vs. this |
|---|---|---|---|---|---|---|
| Ropivacaine Hydrochloride 5 mg/mL 00143-9264-10 | Hikma | 10 vials | — | AP | FDA listed | — |
| Naropin 5 mg/mLthis 00404-9924-30 | Henry | 1 vial | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 43066-0023-10 | Baxter | 10 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 55150-0198-30 | Eugia | 25 vials | — | AP | FDA listed | — |
| Naropin 5 mg/mL 63323-0286-27 | Fresenius | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 65145-0109-10 | Caplin | 10 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 68462-0794-62 | Glenmark | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 70069-0064-01 | Somerset | 1 vial | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 71288-0735-31 | Meitheal | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 150 mg/30mL 72485-0519-10 | Armas | 10 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 72572-0707-10 | Civica, | 10 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 72603-0218-25 | NorthStar | 25 vials | — | AP | Discontinued | — |
| Ropivacaine Hydrochloride 5 mg/mL 83854-0014-05 | Anthea | 5 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 84549-0164-25 | ProPharma | 30 ml | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 85766-0097-30 | Sportpharm | 1 vial | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 85766-0098-01 | Sportpharm | 1 vial | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 65145-0108-10 | Caplin | 10 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 71288-0734-21 | Meitheal | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 70069-0063-25 | Somerset | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 55150-0197-20 | Eugia | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 70121-1734-07 | Amneal | 10 pouches | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 70121-1735-07 | Amneal | 10 pouches | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 00143-9197-24 | Hikma | 100 ml | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 43066-0019-10 | Baxter | 10 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 68462-0778-55 | Glenmark | 25 vials | — | AP | FDA listed | — |
| Ropivacaine Hydrochloride 5 mg/mL 72603-0217-25 | NorthStar | 25 vials | — | AP | Discontinued | — |
Where does this data come from?
⏳ Availability & generic status
The FDA lists approved generic versions of this medicine, but that does not always mean a pharmacy can get one today. Patent rules, launch agreements, supply and pricing can affect when generics actually arrive.
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 7857802 ↗ | Drug product | — | Nov 28, 2026 |
| US 7857802 ↗ | Drug product | — | Nov 28, 2026 |
Is there a generic version of this drug?
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🔬 Reported adverse events (FAERS)
Top reported reactions
Age at onset
Reporter sex
Serious outcomes
Where does this data come from?
📦 Packaging — all sizes for this product
| Package NDC | Description | Marketing start | Status |
|---|---|---|---|
| 00404-9924-30 You're viewing this | 1 VIAL, SINGLE-DOSE in 1 BAG (0404-9924-30) / 30 mL in 1 VIAL, SINGLE-DOSE | 2022-01-13 | Active |
🧭 About this NDC listing & data coverage
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 | — Not published for this NDC No photo available yet for this listing. |
| Inactive ingredients (structured) | ✓ 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 | ✓ Available |
| Medicaid utilization (CMS SDUD) | — Not published for this NDC CMS reports utilization only for NDCs with Medicaid claims above its privacy threshold. |
Questions about this listing
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📄 Full prescribing information FDA SPL
🎯 Indications and Usage ▾
1 Indications and Usage NAROPIN is indicated for the production of local or regional anesthesia for surgery and for acute pain management. Surgical Anesthesia : epidural block for surgery including cesarean section; major nerve block; local infiltration Acute Pain Management : epidural continuous infusion or intermittent bolus, e.g., postoperative or labor; local infiltration NAROPIN is an amide local anesthetic indicated in adults for the production of local or regional anesthesia for surgery and for acute pain management.
(1) Surgical Anesthesia : epidural block for surgery including cesarean section; major nerve block; local infiltration Acute Pain Management : epidural continuous infusion or intermittent bolus, e.g., postoperative or labor; local infiltration
⏱️ Dosage and Administration ▾
2 Dosage and Administration
2.1Important Administration Instructions There have been adverse event reports of chondrolysis in patients receiving intra-articular infusions of local anesthetics following arthroscopic and other surgical procedures. NAROPIN is not approved for this use [see Warnings and Precautions (5.3)]. The rapid injection of a large volume of local anesthetic solution should be avoided and fractional (incremental) doses should always be used.
The smallest dose and concentration required to produce the desired result should be administered. The dose of any local anesthetic administered varies with the anesthetic procedure, the area to be anesthetized, the vascularity of the tissues, the number of neuronal segments to be blocked, the depth of anesthesia and degree of muscle relaxation required, the duration of anesthesia desired, individual tolerance, and the physical condition of the patient. Patients in poor general condition due to aging or other compromising factors such as partial or complete heart conduction block, advanced liver disease or severe renal dysfunction require special attention although regional anesthesia is frequently indicated in these patients.
To reduce the risk of potentially serious adverse reactions, attempts should be made to optimize the patient's condition before major blocks are performed, and the dosage should be adjusted accordingly. Use an adequate test dose (3 to 5 mL of a short acting local anesthetic solution containing epinephrine) prior to induction of complete block. This test dose should be repeated if the patient is moved in such a fashion as to have displaced the epidural catheter.
Allow adequate time for onset of anesthesia following administration of each test dose. These products are intended for single dose and are free from preservatives. Any solution remaining from an opened container should be discarded promptly.
In addition, continuous infusion bottles should not be left in place for more than 24 hours.
2.2Dosage Recommendations * = Not Applicable † = The dose for a major nerve block must be adjusted according to site of administration and patient status. Supraclavicular brachial plexus blocks may be associated with a higher frequency of serious adverse reactions, regardless of the local anesthetic used [see Warnings and Precautions (5.7)]. ‡ = Median dose of 21 mg per hour was administered by continuous infusion or by incremental injections (top-ups) over a median delivery time of 5.5 hours. § = Cumulative doses up to 770 mg of NAROPIN over 24 hours (intraoperative block plus postoperative infusion); Continuous epidural infusion at rates up to 28 mg per hour for 72 hours have been well tolerated in adults, i.e., 2016 mg plus surgical dose of approximately 100 to 150 mg as top-up.
The doses in the table are those considered to be necessary to produce a successful block and should be regarded as guidelines for use in adults. Individual variations in onset and duration occur. The figures reflect the expected average dose range needed.
For other local anesthetic techniques standard current textbooks should be consulted. When prolonged blocks are used, either through continuous infusion or through repeated bolus administration, the risks of reaching a toxic plasma concentration or inducing local neural injury must be considered. Experience to date indicates that a cumulative dose of up to 770 mg NAROPIN administered over 24 hours is well tolerated in adults when used for postoperative pain management: i.e., 2016 mg.
Caution should be exercised when administering NAROPIN for prolonged periods of time, e.g., >70 hours in debilitated patients. For treatment of postoperative pain, the following technique can be recommended: If regional anesthesia was not used intraoperatively, then an initial epidural block with 5 to 7 mL NAROPIN is induced via an epidural catheter. Analgesia is maintained with an infusion of NAROPIN, 2 mg/mL (0.2%).
Clinical studies have demonstrated…
💊 Dosage Forms and Strengths ▾
3 Dosage Forms and Strengths NAROPIN® (ropivacaine hydrochloride) injection is a clear, colorless, preservative-free solution available as: NAROPIN® Single Dose Vials 0.2%, 20 mg per 10 mL (2 mg/mL), in 10 mL single-dose vial 0.2%, 40 mg per 20 mL (2 mg/mL), in 20 mL single-dose vial 0.5%, 100 mg per 20 mL (5 mg/mL), 20 mL single-dose vial 0.5%, 150 mg per 30 mL (5 mg/mL), 30 mL single-dose vial 0.75%, 150 mg per 20 mL (7.5 mg/mL), 20 mL single-dose vial 1%, 100 mg per 10 mL (10 mg/mL), 10 mL single-dose vial 1%, 200 mg per 20 mL (10 mg/mL), 20 mL single-dose vial NAROPIN® Single Dose Infusion Bottles 0.2%, 200 mg per 100 mL (2 mg/mL), 100 mL single-dose infusion bottle 0.2%, 400 mg per 200 mL (2 mg/mL ), 200 mL single-dose infusion bottle 0.5%, 500 mg per 100 mL (5 mg/mL), 100 mL single-dose infusion bottle 0.5%, 1,000 mg per 200 mL (5 mg/mL ), 200 mL single-dose infusion bottle Injection: 2 mg/mL (0.2%), 5 mg/mL (0.5%), 7.5 mg/mL (0.75%) or 10 mg/mL (1%) in single-dose vials (3) Injection: 2 mg/mL (0.2%) or 5 mg/mL (0.5%) in single-dose infusion bottles (3)
⛔ Contraindications ▾
4 Contraindications NAROPIN is contraindicated in patients with a known hypersensitivity to ropivacaine or to any local anesthetic agent of the amide type. History of hypersensitivity to local anesthetics of the amide type. (4)
⚠️ Warnings and Cautions ▾
5 Warnings and Precautions
5.1General Warnings and Precautions Prior to receiving major blocks the general condition of the patient should be optimized and the patient should have an IV line inserted. All necessary precautions should be taken to avoid intravascular injection. Local anesthetics should only be administered by clinicians who are well versed in the diagnosis and management of dose-related toxicity and other acute emergencies which might arise from the block to be employed, and then only after insuring the immediate (without delay) availability of oxygen, other resuscitative drugs, cardiopulmonary resuscitative equipment, and the personnel resources needed for proper management of toxic reactions and related emergencies [see Adverse Reactions (6) and Overdosage (10.1)].
Delay in proper management of dose-related toxicity, underventilation from any cause, and/or altered sensitivity may lead to the development of acidosis, cardiac arrest and, possibly, death. The safe and effective use of local anesthetics depends on proper dosage, correct technique, adequate precautions and readiness for emergencies. Resuscitative equipment, oxygen and other resuscitative drugs should be available for immediate use [see Adverse Reactions (6)].
The lowest dosage that results in effective anesthesia should be used to avoid high plasma levels and serious adverse events. Injections should be made slowly and incrementally, with frequent aspirations before and during the injection to avoid intravascular injection. When a continuous catheter technique is used, syringe aspirations should also be performed before and during each supplemental injection.
During the administration of epidural anesthesia, it is recommended that a test dose of a local anesthetic with a fast onset be administered initially and that the patient be monitored for central nervous system and cardiovascular toxicity, as well as for signs of unintended intrathecal administration before proceeding. When clinical conditions permit, consideration should be given to employing local anesthetic solutions, which contain epinephrine for the test dose because circulatory changes compatible with epinephrine may also serve as a warning sign of unintended intravascular injection.
An intravascular injection is still possible even if aspirations for blood are negative. Administration of higher than recommended doses of NAROPIN to achieve greater motor blockade or increased duration of sensory blockade may result in cardiovascular depression, particularly in the event of inadvertent intravascular injection. Tolerance to elevated blood levels varies with the physical condition of the patient.
Debilitated, elderly patients and acutely ill patients should be given reduced doses commensurate with their age and physical condition. Local anesthetics should also be used with caution in patients with hypotension, hypovolemia or heart block. Solutions of NAROPIN should not be used for the production of obstetrical paracervical block anesthesia, retrobulbar block, or spinal anesthesia (subarachnoid block) due to insufficient data to support such use.
Intravenous regional anesthesia (bier block) should not be performed due to a lack of clinical experience and the risk of attaining toxic blood levels of ropivacaine. It is essential that aspiration for blood, or cerebrospinal fluid (where applicable), be done prior to injecting any local anesthetic, both the original dose and all subsequent doses, to avoid intravascular or subarachnoid injection. However, a negative aspiration does not ensure against an intravascular or subarachnoid injection.
5.2Unintended Intravenous Injection In performing NAROPIN blocks, unintended intravenous injection is possible and may result in cardiac arrhythmia or cardiac arrest. The potential for successful resuscitation has not been studied in humans. There have been rare reports of cardiac arrest during the use of NAROPIN for epidural anesthesia or peripheral nerve…
🤒 Adverse Reactions ▾
6 Adverse Reactions Reactions to ropivacaine are characteristic of those associated with other amide-type local anesthetics. A major cause of adverse reactions to this group of drugs may be associated with excessive plasma levels, which may be due to overdosage, unintentional intravascular injection or slow metabolic degradation. The reported adverse events are derived from clinical studies conducted in the U.S. and other countries.
The reference drug was usually bupivacaine. The studies used a variety of premedications, sedatives, and surgical procedures of varying length. A total of 3,988 patients have been exposed to NAROPIN at concentrations up to 1% in clinical trials.
Each patient was counted once for each type of adverse event. Because clinical trials are conducted under widely conditions, adverse reactions 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. Incidence ≥ 5% For the indications of epidural administration in surgery, cesarean section, postoperative pain management, peripheral nerve block, and local infiltration, the following treatment-emergent adverse events were reported with an incidence of ≥ 5% in all clinical studies (N=3988): hypotension (37%), nausea (24.8%), vomiting (11.6%), bradycardia (9.3%), fever (9.2%), pain (8%), postoperative complications (7.1%), anemia (6.1%), paresthesia (5.6%), headache (5.1%), pruritus (5.1%), and back pain (5%).
Incidence 1 to 5% Urinary retention, dizziness, rigors, hypertension, tachycardia, anxiety, oliguria, hypoesthesia, chest pain, hypokalemia, dyspnea, cramps, and urinary tract infection. Incidence in Controlled Clinical Trials The reported adverse events are derived from controlled clinical studies with NAROPIN (concentrations ranged from 0.125% to 1% for NAROPIN and 0.25% to 0.75% for bupivacaine) in the U.S. and other countries involving 3,094 patients. Table 2 and Table 3 list adverse events (number and percentage) that occurred in at least 1% of NAROPIN-treated patients in these studies.
The majority of patients receiving concentrations higher than 5 mg/mL (0.5%) were treated with NAROPIN. Incidence <1% The following adverse events were reported during the NAROPIN clinical program in more than one patient (N=3988), occurred at an overall incidence of <1%, and were considered relevant: Application Site Reactions - injection site pain Cardiovascular System - vasovagal reaction, syncope, postural hypotension, non-specific ECG abnormalities Female Reproductive - poor progression of labor, uterine atony Gastrointestinal System - fecal incontinence, tenesmus, neonatal vomiting General and Other Disorders - hypothermia, malaise, asthenia, accident and/or injury Hearing and Vestibular - tinnitus, hearing abnormalities Heart Rate and Rhythm - extrasystoles, non-specific arrhythmias, atrial fibrillation Liver and Biliary System - jaundice Metabolic Disorders - hypomagnesemia Musculoskeletal System - myalgia Myo/Endo/Pericardium - ST segment changes, myocardial infarction Nervous System - tremor, Horner's syndrome, paresis, dyskinesia, neuropathy, vertigo, coma, convulsion, hypokinesia, hypotonia, ptosis, stupor Psychiatric Disorders - agitation, confusion, somnolence, nervousness, amnesia, hallucination, emotional lability, insomnia, nightmares Respiratory System - bronchospasm, coughing Skin Disorders - rash, urticaria Urinary System Disorders - urinary incontinence, micturition disorder Vascular - deep vein thrombosis, phlebitis, pulmonary embolism Vision - vision abnormalities For the indication epidural anesthesia for surgery, the 15 most common adverse events were compared between different concentrations of NAROPIN and bupivacaine.
Table 4 is based on data from trials in the U.S. and other countries where NAROPIN was administered as an epidural anesthetic for surgery. Using data from the same studies, the number (%) of patients experienci…
🔄 Drug Interactions ▾
7 Drug Interactions Patients who are administered local anesthetics are at increased risk of developing methemoglobinemia when concurrently exposed to the following drugs, which could include other local anesthetics [see Warnings and Precautions (5.4)]: NAROPIN should be used with caution in patients receiving other local anesthetics or agents structurally related to amide- type local anesthetics, since the toxic effects of these drugs are additive. Cytochrome P4501A2 is involved in the formation of 3-hydroxy ropivacaine, the major metabolite.
In vivo, the plasma clearance of ropivacaine was reduced by 70% during coadministration of fluvoxamine (25 mg bid for 2 days), a selective and potent CYP1A2 inhibitor. Thus strong inhibitors of cytochrome P4501A2, such as fluvoxamine, given concomitantly during administration of NAROPIN, can interact with NAROPIN leading to increased ropivacaine plasma levels. Caution should be exercised when CYP1A2 inhibitors are coadministered.
Possible interactions with drugs known to be metabolized by CYP1A2 via competitive inhibition such as theophylline and imipramine may also occur. Coadministration of a selective and potent inhibitor of CYP3A4, ketoconazole (100 mg bid for 2 days with ropivacaine infusion administered 1 hour after ketoconazole) caused a 15% reduction in in vivo plasma clearance of ropivacaine. Specific trials studying the interaction between ropivacaine and class III antiarrhythmic drugs (e.g., amiodarone) have not been performed, but caution is advised [see Warnings and Precautions (5.13)].
Agents structurally related to amide-type local anesthetics: Concurrent use may cause additive effects. (7) See 17 for PATIENT COUNSELING INFORMATION. Revised: 3/2024 Image8.jpg
👥 Use in Specific Populations ▾
8 Use in Specific Populations
8.1Pregnancy Risk Summary There are no available human data on use of Naropin (ropivacaine) Injection in pregnant women to evaluate a drug-associated risk of major birth defects, miscarriage, or other adverse maternal or fetal outcomes. Local anesthetics may cause varying degrees of toxicity to the mother and fetus and adverse reactions include alterations of the central nervous system, peripheral vascular tone, and cardiac function (see Clinical Considerations). No teratogenicity was observed at doses up to 0.3 times the maximum recommended human dose of 770 mg/24 hours for epidural use, and equal to the MRHD of 250 mg for nerve block use, based on body surface area (BSA) comparisons and a 60 kg human weight (see Animal data).
The estimated background risk of major birth defects and miscarriage for the indicated population is unknown. All pregnancies have a background risk of birth defect, loss, or other adverse outcomes. 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. Clinical Considerations Labor or Delivery Local anesthetics, including ropivacaine, rapidly cross the placenta, and when used for epidural block can cause varying degrees of maternal, fetal, and neonatal toxicity [see Clinical Pharmacology (12)]. The incidence and degree of toxicity depend upon the procedure performed, the type and amount of drug used, and the technique of drug administration.
Adverse reactions in the parturient, fetus and neonate involve alterations of the central nervous system, peripheral vascular tone and cardiac function. Maternal Adverse reactions Maternal hypotension has resulted from regional anesthesia. Local anesthetics produce vasodilation by blocking sympathetic nerves.
Therefore, during treatment of systemic toxicity, maternal hypotension or fetal bradycardia following regional block, the parturient should be maintained in the left lateral decubitus position if possible, or manual displacement of the uterus off the great vessels be accomplished. Elevating the patient's legs will also help prevent decreases in blood pressure. The fetal heart rate also should be monitored continuously, and electronic fetal monitoring is highly advisable.
Data Animal data No malformations were reported in embryo-fetal development toxicity studies conducted in pregnant New Zealand white rabbits and Sprague-Dawley rats. During gestation days 6 to 18, rabbits received daily subcutaneous doses of ropivacaine at 1.3, 4.2, or 13 mg/kg/day (equivalent to 0.03, 0.10, and 0.33 times the maximum recommended human dose (MRHD) of 770 mg/24 hours, respectively, and 0.10, 0.32, and 1.0 times the MRHD of 250 mg for nerve block use, respectively based on body surface area (BSA) comparisons and a 60 kg human weight).
Rats received daily subcutaneous doses of 5.3, 11, and 26 mg/kg/day (equivalent to 0.07, 0.14, and 0.33 times the MRHD for epidural use, respectively, and 0.21, 0.43, and 1.0 times the MRHD for nerve block use, respectively, based on BSA comparisons) during GD 6 to 15. No treatment-related effects on late fetal development, parturition, litter size, lactation, neonatal viability, or growth of the offspring were reported in a prenatal and postnatal reproductive and development toxicity study; however functional endpoints were not evaluated.
Female rats were dosed daily subcutaneously from GD 15 to Lactation Day 20 at doses of 5.3, 11,and 26 mg/kg/day (equivalent to 0.07, 0.1, and 0.3 times the MRHD for epidural use, respectively, and 0.21, 0.43, and 1.0 times the MRHD for nerve block use, respectively), with maternal toxicity exhibited at the high dose. No adverse effects in physical developmental milestones or in behavioral tests were reported in a 2-generational reproduction study, in which rats received daily subcutaneous doses of 6.3, 12, and 23 mg/kg/day (equivalent to 0.08, 0.15, and 0.29…
🆘 Overdosage ▾
10 Overdosage Acute emergencies from local anesthetics are generally related to high plasma levels encountered, or large doses administered, during therapeutic use of local anesthetics or to unintended subarachnoid or intravascular injection of local anesthetic solution [see Adverse Reactions (6) and Warnings and Precautions (5.1, 5.2, 5.6)].
10.1Treatment Therapy with NAROPIN should be discontinued at the first sign of toxicity. No specific information is available for the treatment of toxicity with NAROPIN; therefore, treatment should be symptomatic and supportive. The first consideration is prevention, best accomplished by incremental injection of NAROPIN, careful and constant monitoring of cardiovascular and respiratory vital signs and the patient's state of consciousness after each local anesthetic and during continuous infusion.
At the first sign of change in mental status, oxygen should be administered. The first step in the management of systemic toxic reactions, as well as underventilation or apnea due to unintentional subarachnoid injection of drug solution, consists of immediate attention to the establishment and maintenance of a patent airway and effective assisted or controlled ventilation with 100% oxygen with a delivery system capable of permitting immediate positive airway pressure by mask. Circulation should be assisted as necessary.
This may prevent convulsions if they have not already occurred. If necessary, use drugs to control convulsions. Intravenous barbiturates, anticonvulsant agents, or muscle relaxants should only be administered by those familiar with their use.
Immediately after the institution of these ventilatory measures, the adequacy of the circulation should be evaluated. Supportive treatment of circulatory depression may require administration of intravenous fluids, and, when appropriate, a vasopressor dictated by the clinical situation (such as ephedrine or epinephrine to enhance myocardial contractile force). Should cardiac arrest occur, prolonged resuscitative efforts may be required to improve the probability of a successful outcome.
The mean dosages of ropivacaine producing seizures, after intravenous infusion in dogs, nonpregnant and pregnant sheep were 4.9, 6.1 and 5.9 mg/kg, respectively. These doses were associated with peak arterial total plasma concentrations of 11.4, 4.3 and 5 mcg/mL, respectively. In human volunteers given intravenous NAROPIN, the mean (min-max) maximum tolerated total and free arterial plasma concentrations were 4.3 (3.4 to 5.3) and 0.6 (0.3 to 0.9) mcg/mL respectively, at which time moderate CNS symptoms (muscle twitching) were noted.
Clinical data from patients experiencing local anesthetic induced convulsions demonstrated rapid development of hypoxia, hypercarbia and acidosis within a minute of the onset of convulsions. These observations suggest that oxygen consumption and carbon dioxide production are greatly increased during local anesthetic convulsions and emphasize the importance of immediate and effective ventilation with oxygen which may avoid cardiac arrest. If difficulty is encountered in the maintenance of a patent airway or if prolonged ventilatory support (assisted or controlled) is indicated, endotracheal intubation, employing drugs and techniques familiar to the clinician, may be indicated after initial administration of oxygen by mask.
The supine position is dangerous in pregnant women at term because of aortocaval compression by the gravid uterus. Therefore, during treatment of systemic toxicity, maternal hypotension or fetal bradycardia following regional block, the parturient should be maintained in the left lateral decubitus position if possible, or manual displacement of the uterus off the great vessels should be accomplished. Resuscitation of obstetrical patients may take longer than resuscitation of non- pregnant patients and closed-chest cardiac compression may be ineffective.
Rapid delivery of the fetus may improve the response to resu…
🧬 Clinical Pharmacology ▾
12 Clinical Pharmacology
12.1Mechanism of Action Ropivacaine is a member of the amino amide class of local anesthetics and is supplied as the pure S-(-)-enantiomer. Local anesthetics block the generation and the conduction of nerve impulses, presumably by increasing the threshold for electrical excitation in the nerve, by slowing the propagation of the nerve impulse, and by reducing the rate of rise of the action potential. In general, the progression of anesthesia is related to the diameter, myelination and conduction velocity of affected nerve fibers.
Clinically, the order of loss of nerve function is as follows: (1) pain, (2) temperature, (3) touch, (4) proprioception, and (5) skeletal muscle tone.
12.2Pharmacodynamics Studies in humans have demonstrated that, unlike most other local anesthetics, the presence of epinephrine has no major effect on either the time of onset or the duration of action of ropivacaine. Likewise, addition of epinephrine to ropivacaine has no effect on limiting systemic absorption of ropivacaine. Systemic absorption of local anesthetics can produce effects on the central nervous and cardiovascular systems.
At blood concentrations achieved with therapeutic doses, changes in cardiac conduction, excitability, refractoriness, contractility, and peripheral vascular resistance have been reported. Toxic blood concentrations depress cardiac conduction and excitability, which may lead to atrioventricular block, ventricular arrhythmias and to cardiac arrest, sometimes resulting in fatalities. In addition, myocardial contractility is depressed and peripheral vasodilation occurs, leading to decreased cardiac output and arterial blood pressure.
Following systemic absorption, local anesthetics can produce central nervous system stimulation, depression or both. Apparent central stimulation is usually manifested as restlessness, tremors and shivering, progressing to convulsions, followed by depression and coma, progressing ultimately to respiratory arrest. However, the local anesthetics have a primary depressant effect on the medulla and on higher centers.
The depressed stage may occur without a prior excited stage. In 2 clinical pharmacology studies (total n=24) ropivacaine and bupivacaine were infused (10 mg/min) in human volunteers until the appearance of CNS symptoms, e.g., visual or hearing disturbances, perioral numbness, tingling and others. Similar symptoms were seen with both drugs.
In 1 study, the mean ± SD maximum tolerated intravenous dose of ropivacaine infused (124 ± 38 mg) was significantly higher than that of bupivacaine (99 ± 30 mg) while in the other study the doses were not different (115 ± 29 mg of ropivacaine and 103 ± 30 mg of bupivacaine). In the latter study, the number of subjects reporting each symptom was similar for both drugs with the exception of muscle twitching which was reported by more subjects with bupivacaine than ropivacaine at comparable intravenous doses. At the end of the infusion, ropivacaine in both studies caused significantly less depression of cardiac conductivity (less QRS widening) than bupivacaine.
Ropivacaine and bupivacaine caused evidence of depression of cardiac contractility, but there were no changes in cardiac output. Clinical data in one published article indicate that differences in various pharmacodynamic measures were observed with increasing age. In one study, the upper level of analgesia increased with age, the maximum decrease of mean arterial pressure (MAP) declined with age during the first hour after epidural administration, and the intensity of motor blockade increased with age.
However, no pharmacokinetic differences were observed between elderly and younger patients. In non-clinical pharmacology studies comparing ropivacaine and bupivacaine in several animal species, the cardiac toxicity of ropivacaine was less than that of bupivacaine, although both were considerably more toxic than lidocaine. Arrhythmogenic and cardio-depressant effects were se…
📦 How Supplied / Storage and Handling ▾
16 How Supplied/Storage and Handling NAROPIN (ropivacaine hydrochloride) Injection is a clear colorless, and preservative-free solution, available in single-dose containers in 2 mg/mL (0.2%), 5 mg/mL (0.5%), 7.5 mg/mL (0.75%) and 10 mg/mL (1%) concentrations. Storage Solutions should be stored at 20ºC to 25°C (68ºF to 77°F); excursions permitted to 15°C to 30°C (59°F to 86°F) [see USP Controlled Room Temperature]. Product repackaged by: Henry Schein, Inc., Bastian, VA 24314 From Original Manufacturer/Distributor's NDC and Unit of Sale To Henry Schein Repackaged Product NDC and Unit of Sale Total Strength/Total Volume (Concentration) per unit NDC 63323-286-35 Unit of 25 NDC 0404-9924-30 1 30 mL single dose vial in a bag (Vial bears NDC 63323-286-11) 0.5% 150 mg per 30 mL (5 mg per mL) For single dose vials: Discard unused portion.
NAROPIN container closure is not made with natural rubber latex. Image11.jpg Image12.jpg
📋 Description ▾
11 Description NAROPIN® Injection is a sterile, isotonic solution that contains ropivacaine hydrochloride as the active pharmaceutical ingredient. Ropivacaine hydrochloride is a member of the amino amide class of local anesthetics. NAROPIN® Injection is administered parenterally by for infiltration, epidural, and nerve block.
Ropivacaine hydrochloride is chemically described as S-(-)-1-propyl-2',6'-pipecoloxylidide hydrochloride monohydrate. The drug substance is a white crystalline powder, with the following structural formula: At 25 °C ropivacaine hydrochloride has a solubility of 53.8 mg/mL in water, a distribution ratio between n-octanol and phosphate buffer at pH 7.4 of 14:1 and a pKa of 8.07 in
0.1M KCl solution. The pKa of ropivacaine is approximately the same as bupivacaine (8.1) and is similar to that of mepivacaine (7.7). However, ropivacaine has an intermediate degree of lipid solubility compared to bupivacaine and mepivacaine.
NAROPIN (ropivacaine hydrochloride) injection is a clear, colorless, and preservative-free solution. Each mL contains 2.1 mg, 5.3 mg, 7.9 mg or 10.6 mg ropivacaine hydrochloride monohydrate (equivalent to 2.0 mg, 5.0 mg, 7.5 mg or 10 mg of ropivacaine hydrochloride anhydrous), and 8.6 mg, 8.0 mg, 7.5 mg or 7.1 mg of sodium chloride; respectively, and sodium hydroxide and hydrochloric acid as pH adjusters, in water for injection. The pH is adjusted between 4.0 to 6.0.
The specific gravity of NAROPIN Injection solutions range from 1.002 to 1.005 at 25°C. Formula1.jpg