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Drug Products: Biologics, Biosimilars and Interchangeables01:28

Drug Products: Biologics, Biosimilars and Interchangeables

348
Biologics, derived from living sources such as humans, animals, or microorganisms, represent a significant category of pharmaceuticals. These complex molecules, developed through advanced biotechnological methods or purified from natural sources, include essential medical treatments like insulin and growth hormones. The complexity of biologics arises from their large molecular structures and the intricate processes required for their production, making them distinct from conventional...
348
Bioequivalence: Overview01:16

Bioequivalence: Overview

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Pharmaceutical equivalents, by definition, are drug products with the same active ingredient in the same quantities, encapsulated in identical dosage forms, and intended for the same administration routes. These pharmaceutical equivalents are deemed bioequivalent if the bioavailability of the active entity in the drug preparations is similar. Moreover, pharmaceutical equivalents demonstrating bioequivalence are also regarded as therapeutically equivalent. This means that when used as directed,...
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Bioequivalence studies: Biowaivers01:13

Bioequivalence studies: Biowaivers

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In certain scenarios, in vitro dissolution tests can replace in vivo bioequivalence studies. This is particularly true when a drug product, though available in varying strengths, maintains proportional similarity in its active and inactive ingredients. In such cases, the need for in vivo bioequivalence studies for lower strength variants may be waived, provided dissolution tests and in vivo studies on the highest strength yield satisfactory results.Bioequivalence can be indicated through...
382
Preclinical Development: Overview01:28

Preclinical Development: Overview

6.4K
Preclinical development consists of a series of tests that ensure the safety and efficacy of a new therapeutic compound before it is tested in humans. There are four main phases to this process. First, safety pharmacology tests are conducted to ensure the drug does not produce any acutely harmful effects. These tests examine parameters such as bronchoconstriction, cardiac dysrhythmias, blood pressure changes, and ataxia. Next, preliminary toxicological testing is performed to determine the...
6.4K
Bioequivalence of Drugs: Drugs with Multiple Indications01:09

Bioequivalence of Drugs: Drugs with Multiple Indications

207
The concept of therapeutic equivalence (TE) in drugs with multiple indications is complex. A generic drug may be therapeutically equivalent to a brand-name product for one specific indication, but this doesn't necessarily mean it's equivalent for all other indications. Evidence of TE in one patient group and bioequivalence shown in healthy volunteers can support—but not confirm—TE for other indications. However, definitive proof requires individual clinical studies for each...
207
Pharmaceutical Alternatives: Polymorphic Form-Related and Particle Size-Related Therapeutic Nonequivalence01:27

Pharmaceutical Alternatives: Polymorphic Form-Related and Particle Size-Related Therapeutic Nonequivalence

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Changes in polymorphic forms can significantly influence the bioavailability of poorly soluble drugs. Although the FDA defines pharmaceutical equivalence based on having the same active ingredient, dosage form, and route of administration, it does not automatically disqualify products with different polymorphic forms. This means two products with different polymorphs can still be deemed pharmaceutically equivalent. However, polymorphic differences can affect properties like wettability,...
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Related Experiment Video

Updated: Mar 24, 2026

In Vitro Methods for Comparing Target Binding and CDC Induction Between Therapeutic Antibodies: Applications in Biosimilarity Analysis
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In Vitro Methods for Comparing Target Binding and CDC Induction Between Therapeutic Antibodies: Applications in Biosimilarity Analysis

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Development of biosimilars.

Ahmad Al-Sabbagh1, Ewa Olech2, Joseph E McClellan3

  • 1Development Group, Pfizer Global Established Pharma Medicines, New York, NY.

Seminars in Arthritis and Rheumatism
|March 8, 2016
PubMed
Summary

Developing biosimilar products requires rigorous scientific principles and regulatory standards. Comprehensive comparability studies ensure biosimilars match reference products in quality, safety, and efficacy.

Keywords:
BiologicBiosimilarBiosimilarityCharacterizationChronic inflammatory diseasesClinicalComparabilityDevelopmentFunctionalImmunogenicityInnovatorManufacturingPharmacodynamicsPharmacokineticsPreclinicalQualityReference productRegulatory requirementsSafetyStructural

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Area of Science:

  • Biotechnology and Pharmaceutical Sciences
  • Regulatory Science

Background:

  • Biosimilars are complex biologic products requiring intricate manufacturing processes.
  • Development involves extensive pre-clinical and clinical assessments to ensure similarity to reference products.

Purpose of the Study:

  • To outline the scientific principles and standards for biosimilar product development.
  • To review regulatory guidelines for biosimilar manufacturing and assessment.

Main Methods:

  • Literature search of biosimilar manufacturing and development information.
  • Review of regulatory guidelines from agencies like the European Medicines Agency (EMA) and US Food and Drug Administration (FDA).

Main Results:

  • Biosimilar development necessitates a step-wise comparability exercise at all stages.
  • Demonstrating high structural, functional, and biological similarity is crucial.
  • Clinical data on pharmacokinetics, pharmacodynamics, efficacy, and safety are required.

Conclusions:

  • Rigorous, regulated processes are essential for biosimilar development.
  • The goal is to establish a high degree of similarity in structural, functional, biological, and clinical attributes.