Oral solids · Contract manufacturing in India

Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules

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Discuss third-party manufacturing of Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules with Walter Healthcare, India. Share your target market, required capsule count and finished-pack count, packaging and launch timeline for a product-specific quotation.

Catalogue reference
WH-4769
Composition and strength
Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg
Dosage form
Hard-gelatin capsules
Indicative administration route
Oral
Therapeutic navigation area
Neurology & psychiatry
Pharmacological class
Gabapentinoid + Vitamin / mineral supplement
Manufacturing stream
Non-beta-lactam

Catalogue details support an initial B2B discussion. Walter confirms the applicable unit, current licence scope, formula, target market and commercial feasibility before making a commitment.

Clinical reference

Mechanism and pharmacokinetics.

Explore the published evidence for the ingredients in Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules. Each reference identifies its source formulation and study context. Ingredient studies describe the named reference product; they do not establish the pharmacokinetics, clinical suitability or bioequivalence of this finished formulation.

How to read our product information and sources ↗

Additional ingredient references still to be verified: Vitamin B. The references below cover only the named ingredients.

Prescribing-label excerpts

Pregabalin

Reference for: Pregabalin. Source presentation: capsule. Source route: oral.

Mechanism of action

Pregabalin binds with high affinity to the alpha 2-delta site (an auxiliary subunit of voltage-gated calcium channels) in central nervous system tissues. Although the mechanism of action of pregabalin has not been fully elucidated, results with genetically modified mice and with compounds structurally related to pregabalin (such as gabapentin) suggest that binding to the alpha 2-delta subunit may be involved in pregabalin’s anti-nociceptive and antiseizure effects in animals. In animal models of nerve damage, pregabalin has been shown to reduce calcium-dependent release of pro-nociceptive neurotransmitters in the spinal cord, possibly by disrupting alpha 2-delta containing-calcium channel trafficking and/or reducing calcium currents. Evidence from other animal models of nerve damage and persistent pain suggest the anti-nociceptive activities of pregabalin may also be mediated through interactions with descending noradrenergic and serotonergic pathways originating from the brainstem that modulate pain transmission in the spinal cord.

While pregabalin is a structural derivative of the inhibitory neurotransmitter gamma-aminobutyric acid (GABA), it does not bind directly to GABA A, GABA B, or benzodiazepine receptors, does not augment GABA Aresponses in cultured neurons, does not alter rat brain GABA concentration or have acute effects on GABA uptake or degradation. However, in cultured neurons prolonged application of pregabalin increases the density of GABA transporter protein and increases the rate of functional GABA transport. Pregabalin does not block sodium channels, is not active at opiate receptors, and does not alter cyclooxygenase enzyme activity. It is inactive at serotonin and dopamine receptors and does not inhibit dopamine, serotonin, or noradrenaline reuptake.

Pharmacokinetics

Pregabalin is well absorbed after oral administration, is eliminated largely by renal excretion, and has an elimination half-life of about 6 hours.

Absorption and Distribution — Following oral administration of pregabalin capsules under fasting conditions, peak plasma concentrations occur within 1.5 hours. Pregabalin oral bioavailability is greater than or equal to 90% and is independent of dose. Following single-(25 to 300 mg) and multiple-dose (75 to 900 mg/day) administration, maximum plasma concentrations (C max) and area under the plasma concentration-time curve (AUC) values increase linearly. Following repeated administration, steady state is achieved within 24 to 48 hours. Multiple-dose pharmacokinetics can be predicted from single-dose data.

The rate of pregabalin absorption is decreased when given with food, resulting in a decrease in C maxof approximately 25% to 30% and an increase in T maxto approximately 3 hours. However, administration of pregabalin with food has no clinically relevant effect on the total absorption of pregabalin. Therefore, pregabalin can be taken with or without food.

Pregabalin does not bind to plasma proteins. The apparent volume of distribution of pregabalin following oral administration is approximately 0.5 L/kg. Pregabalin is a substrate for system L transporter which is responsible for the transport of large amino acids across the blood brain barrier. Although there are no data in humans, pregabalin has been shown to cross the blood brain barrier in mice, rats, and monkeys. In addition, pregabalin has been shown to cross the placenta in rats and is present in the milk of lactating rats.

Metabolism and Elimination — Pregabalin undergoes negligible metabolism in humans. Following a dose of radiolabeled pregabalin, approximately 90% of the administered dose was recovered in the urine as unchanged pregabalin. The N-methylated derivative of pregabalin, the major metabolite of pregabalin found in urine, accounted for 0.9% of the dose. In preclinical studies, pregabalin

(S-enantiomer) did not undergo racemization to the R-enantiomer in mice, rats, rabbits, or monkeys.

Pregabalin is eliminated from the systemic circulation primarily by renal excretion as unchanged drug with a mean elimination half-life of 6.3 hours in subjects with normal renal function. Mean renal clearance was estimated to be 67.0 to 80.9 mL/min in young healthy subjects. Because pregabalin is not bound to plasma proteins this clearance rate indicates that renal tubular reabsorption is involved. Pregabalin elimination is nearly proportional to creatinine clearance (CLcr) [see Dosage and Administration ( 2.7)].

Race — In population pharmacokinetic analyses of the clinical studies in various populations, the pharmacokinetics of pregabalin were not significantly affected by race (Caucasians, Blacks, and Hispanics).

Gender — Population pharmacokinetic analyses of the clinical studies showed that the relationship between daily dose and pregabalin drug exposure is similar between genders.

Renal Impairment and Hemodialysis — Pregabalin clearance is nearly proportional to creatinine clearance (CLcr). Dosage reduction in patients with renal dysfunction is necessary. Pregabalin is effectively removed from plasma by hemodialysis. Following a 4-hour hemodialysis treatment, plasma pregabalin concentrations are reduced by approximately 50%. For patients on hemodialysis, dosing must be modified [ see Dosage and Administration( 2.7)].

Elderly — Pregabalin oral clearance tended to decrease with increasing age. This decrease in pregabalin oral clearance is consistent with age-related decreases in CLcr. Reduction of pregabalin dose may be required in patients who have age-related compromised renal function [ see Dosage and Administration ( 2.7)].

Selected passages from the cited U.S. prescribing label. The studies concern the source product and populations named in each passage; they do not establish Walter-product bioequivalence, an approved indication, or the kinetics of another fixed combination. Tables and the full prescribing information remain available in the source.

Source: DailyMed: Pregabalin — capsule

Reference accessed . Label revision: 2026-09-11.

Prescribing-label excerpts

Folic Acid

Reference for: Folic Acid. Source presentation: solution. Source route: oral.

Mechanism of action

Folic acid acts on megaloblastic bone marrow to produce a normoblastic marrow.

In man, an exogenous source of folate is required for nucleoprotein synthesis and the maintenance of normal erythropoiesis. Folic acid is the precursor of tetrahydrofolic acid, which is involved as a cofactor for transformylation reactions in the biosynthesis of purines and thymidylates of nucleic acids. Impairment of thymidylate synthesis in patients with folic acid deficiency is thought to account for the defective deoxyribonucleic acid (DNA) synthesis that leads to megaloblast formation and megaloblastic and macrocytic anemias.

Pharmacokinetics

Absorption — Folic acid is absorbed from the small intestine, primarily from the proximal portion. Folic acid appears in the plasma approximately 15 to 30 minutes after an oral dose; peak levels are generally reached within 1 hour.

Distribution — Folic acid as well as its physiologically active metabolite, L-5-methyl tetrahydro folate (L-5-MTHF), can be bound to plasma proteins when entering the systemic circulation. The fraction of folic acid bound to plasma proteins, particularly albumin, ranges between ~50% to 64%. The volume of distribution of L-5-MTHF is estimated to be 32.0 L. Tetrahydrofolic acid derivatives are distributed to all body tissues but are stored primarily in the liver. Cerebrospinal fluid levels of folic acid are several times greater than serum levels of the drug.

Metabolism — The first step in the metabolism of folic acid is its reduction to dihydrofolate via dihydrofolate reductase. Subsequently, dihydrofolate is further reduced to tetrahydrofolate (THF). THF is further converted to methylene-THF by serine-hydroxymethyltransferase and reduced to physiologically active L-5-MTHF via methylenetetrahydrofolate reductase (MTHFR).

Elimination — After intravenous administration, folic acid is rapidly cleared from the plasma. Following oral administration, majority of the dose was recovered in the urine. A majority of the metabolic products appeared in the urine after 6 hours; excretion was generally complete within 24 hours. Small amounts of orally administered folic acid have also been recovered in the feces.

Selected passages from the cited U.S. prescribing label. The studies concern the source product and populations named in each passage; they do not establish Walter-product bioequivalence, an approved indication, or the kinetics of another fixed combination. Tables and the full prescribing information remain available in the source.

Source: DailyMed: Folic Acid — solution

Reference accessed . Label revision: 2026-02-11.

Nutrient reference

Vitamin B12

Reference for: Methylcobalamin. Source presentation: oral nutrient reference. Source route: oral.

Biological role

Vitamin B12 supplies cofactors for methionine synthase and methylmalonyl-CoA mutase. These reactions support methionine formation and conversion of methylmalonyl-CoA to succinyl-CoA. B12 is involved in DNA synthesis, red-cell formation and nervous-system function.

Absorption and disposition

Free B12 combines with intrinsic factor and is taken up in the distal ileum. Absorption becomes less efficient as the dose exceeds intrinsic-factor capacity; the NIH review reports about 2% absorption at 500 micrograms and 1.3% at 1,000 micrograms. Cyanocobalamin and hydroxocobalamin are converted into active cobalamin forms. These are oral nutrient data, not injectable-product pharmacokinetics.

Nutrient-level summary from NIH. Absorption and disposition describe general oral nutritional physiology, not a pharmacokinetic or bioequivalence study of this finished product.

Source: NIH Office of Dietary Supplements: Vitamin B12

Reference accessed .

Ingredient-level reference

Benfotiamine

Reference for: Benfotiamine. Source presentation: TABLET. Source route: oral.

Mechanism of action

Benfotiamine is a thiamine precursor. After conversion to thiamine and thiamine diphosphate, it supports coenzyme functions in carbohydrate, amino-acid and other metabolic pathways. These biochemical roles do not establish benefit for every condition or combination.

Pharmacokinetics

The tablet reference describes intestinal dephosphorylation to S-benzoylthiamine, passive absorption and subsequent conversion to thiamine. The cited median peak time is 1.6 hours. Thiamine and its phosphorylated forms enter blood cells and tissues; thiamine-related metabolites are eliminated through urine. Published thiamine half-lives after oral benfotiamine in this label range from 1.6 to 3.6 hours; they are not a measured half-life of unchanged benfotiamine.

Ingredient-level summary of the cited reference product. Study formulation, route, strength and population govern interpretation; these data do not establish pharmacokinetics or bioequivalence for Walter's formulation or fixed combination.

Source: AEMPS: Melgama 300 mg tablets, sections 5.1–5.2

Reference accessed .

Editorial development perspective

What deserves attention in this formulation.

These notes use the catalogue composition and presentation to frame a technical discussion. They are planning considerations, not tested properties or clinical findings for this product.

The clinical references on this page cover only their named ingredients. These development notes do not resolve the remaining clinical-reference gaps.

About these development notes and source limitations ↗

Develop the fill and capsule shell together

Listed presentation: Hard-gelatin capsules.

Review the proposed fill density and flow alongside capsule size, fill-weight consistency and shell compatibility. If granules or pellets are proposed, define their role before choosing the filling process. A capsule size selected from fill weight alone can overlook the behaviour of the actual blend and its storage requirements.

Resolve the amount-per-container or concentration basis

Strength expressions in this entry include “7.5 mg”, “0.75 mg”, “750 mcg”, “150 mg”, “61.5 mg”.

Clarify whether each stated amount applies to a complete container, a defined volume or a defined weight. Put the agreed denominator beside the ingredient quantity before comparing formula costs or designing a label. Keep the finished fill size as a separate field so that changing the pack does not silently change the intended specification.

Suggested starting point

A practical starting point is to resolve the amount-per-container or concentration basis. For this hard-gelatin capsules brief, agree the target characteristics and a short set of measurable development questions before comparing prototypes or supplier proposals. Keep unresolved clinical claims outside the product specification until supporting evidence is available.

Discuss this product brief

Manufacturing & packaging brief

Plan the hard-capsule presentation.

Use this preparation guide for Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules. These are the decisions to resolve with the technical team before a site, process and commercial scope are confirmed.

Presentation & formulation

Confirm the fill type, shell material, capsule size and printing requirements. Distinguish powder, granule and pellet fills where relevant to the proposed formulation.

Quality & technical transfer

Request review of the fill specification, shell compatibility, analytical methods and applicable release testing. Identify any established formula or transfer package.

Review the technical documents

Packaging configuration

Specify capsules per blister or bottle, the proposed barrier material and carton configuration. Include shell and print requirements in the quotation scope.

Explore packaging options

Details to confirm for this record

Full composition
Keep all named components and their individual amounts together in the specification. Ingredient substitutions, omissions and changed ratios require a separate formula and permission review.
Concentration and pack size
The record does not state a complete concentration basis. Confirm the amount per volume or weight before a specification, label or quotation is finalised; no denominator has been assumed here.

Quantities, MOQ & lead time

For Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules (WH-4769), state the capsule count and finished-pack count, target market and reorder forecast. MOQ and lead time depend on the assessed formula, process, components, testing and project readiness; request those terms in writing.

Discuss this manufacturing brief

Explore the context

Build the right manufacturing brief.

Common questions

Before you request a quotation.

Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules

What is listed in the catalogue?

The catalogue lists Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg as hard-gelatin capsules in its neurology & psychiatry navigation area and non-beta-lactam manufacturing stream.

How do you confirm manufacturing availability?

Send Walter your requirement for Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules. The team reviews the applicable product permission and unit, formulation and equipment fit, testing, packaging and production schedule before confirming the manufacturing scope in writing. Request the relevant product and facility documents with your enquiry.

What do I need for a quotation?

Share the exact composition and strength, hard-gelatin capsules presentation, target market, initial quantity, preferred pack and timing. Identify whether this is a new product, development brief or transfer.

The quotation must confirm MOQ, inclusions, prerequisites and lead time for the proposed product and site.

What is needed for Indian and export markets?

For India, share the intended brand or institutional supply requirement, pack sizes, initial order quantity and artwork needs for Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules. Confirm the applicable product permission, manufacturing unit and labelling requirements with the team.

For export, identify each destination country, proposed pack, language and registration or dossier requirements. Ask which product-specific quality and stability documents are available. Container compatibility and destination-market requirements need review; a catalogue record does not establish export registration or a shelf-life commitment.

How do I submit my enquiry?

Use the product-specific enquiry button to carry this composition and dosage form into the form. After a successful submission, a receipt reference confirms that your brief has been saved for review. Use the RFQ checklist to prepare the remaining details.

Technical document review

Which documents can I ask Walter to review?

Ask about manufacturing and packing records, specifications, analytical methods, Certificates of Analysis (COA), stability evidence, the Process Validation Protocol (PVP) and Process Validation Report (PVR). The wider checklist below covers supplier qualification, technical transfer and ongoing supply.

View the full document checklist 14 review areas
Site, licence and audit scope
Manufacturing licence, applicable product permissions, GMP certificates, Site Master File, supplier-qualification questionnaire and relevant audit responses.
Manufacturing, packing and batch release
Master Formula Record (MFR), master packing instructions, Batch Manufacturing Record (BMR), Batch Packing Record (BPR), reconciliation and authorised release records.
Process validation and continued verification
Process Validation Protocol (PVP), Process Validation Report (PVR), process performance qualification documents and continued process verification trends.
Equipment, facilities and utilities
Validation Master Plan (VMP), user requirements, DQ/IQ/OQ/PQ records, calibration and maintenance evidence for relevant equipment and utilities.
Cleaning, carryover and hold times
Cleaning Validation Protocol (CVP), Cleaning Validation Report (CVR), residue limits, recovery studies and applicable clean, dirty and process hold-time studies.
Specifications and analytical evidence
Specifications, Method of Analysis (MOA), Standard Testing Procedure (STP), Certificates of Analysis (COA), analytical validation, verification and method-transfer records.
Stability, packaging and transport
Stability protocols/reports, ongoing stability commitments, pack specifications, approved artwork, compatibility and applicable packaging or transport studies.
Development and technology transfer
Development report, technology-transfer protocol/report, gap assessment, control strategy, critical quality attributes and critical process parameters.
Quality reviews, investigations and changes
Product Quality Review (PQR) / Annual Product Review (APR), deviations, CAPA, change control, OOS/OOT trends, complaints, recalls and relevant SOP/training records.
Material suppliers and impurity risks
API/excipient supplier qualification, traceability, material COAs, relevant origin declarations and impurity risk assessments with supporting tests.
Sterile-product evidence, where applicable
Contamination Control Strategy (CCS), media-fill/aseptic simulation reports, sterilisation and filtration validation, environmental monitoring, sterility/endotoxin and container-closure integrity evidence.
Computerised systems and data integrity
Computerised-system validation, access controls, audit-trail review, backup/restore checks and relevant data-integrity procedures.
Market-specific regulatory support
Applicable dossier sections, API master-file/CEP support, bioequivalence or biowaiver evidence and Certificate of a Pharmaceutical Product (CPP/CoPP), where required and available.
Quality agreement and access arrangements
Quality/technical agreement covering responsibilities, release, changes, subcontracting, investigations, complaints, recalls, audits and document access.

Agree the list for the exact product, site, process, pack, market and project stage. QA confirms what exists, applies and may be shared; some records may require an NDA, redaction or controlled review. See document definitions and review guidance.

Important qualification

This B2B catalogue record is not proof of current approval or confirmation that Benfotiamine 7.5 mg, Folic Acid 0.75 mg, Methylcobalamin 750 mcg, Pregabalin 150 mg, Vitamin B 61.5 mg Hard-gelatin capsules is available for sale. It is not prescribing information or patient advice. Any Drugs Rules status, current approval, exemption, applicable unit, licence scope, formulation, claims, brand use, destination-market registration and commercial feasibility require documentary verification and Walter's written confirmation. Read the full regulatory disclaimer.

Composition and classification are taken from Walter's product catalogue. The manufacturing guide helps buyers prepare a technical brief. Clinical references, where shown, describe the cited product and study. Manufacturing guide updated .