Therapeutic Applications of Natural Products in Biomedicine and Pharmacotherapy
Abstract
1. Introduction
2. Classification of Natural Products: Chemical and Biosynthetic Perspectives
2.1. Alkaloids
- Origin of biosynthesis: Amino acids like tryptophan, tyrosine, ornithine, and lysine are the main sources of alkaloids [26].
- Chemical scaffold core: Nitrogen-containing heterocyclic frameworks, such as indole, isoquinoline, tropane, and purine systems, are what define them [27].
- Advantageous pharmacophore characteristics: Strong ionic contacts and π–π stacking with biological targets, including receptors and enzymes, are made possible by the presence of protonatable nitrogen atoms, aromatic π systems, and specified stereochemistry [28].
- Relevance to therapy: Alkaloids have various pharmacological properties, such as analgesic (morphine), antimalarial (quinine), and anticancer (vinblastine) effects [29].
- Principal restrictions: Toxicity, a restricted therapeutic index, and difficulties with synthesis or extraction often restrict their clinical application.
2.2. Isoprenoids
- Origin of biosynthesis: The mevalonate (MVA) or methylerythritol phosphate (MEP) routes are used to biosynthesize terpenoids from isoprene (C5) units [30].
- Chemical scaffold core: They are made up of repeated isoprene units that form linear or polycyclic hydrocarbon frameworks [31].
- Advantageous pharmacophore characteristics: Their action is mostly dependent on hydrophobic polycyclic cores, epoxide groups, and oxygenated functions like alcohols and peroxides.
- Relevance to therapy: Terpenoids with strong biological action, such as paclitaxel (anticancer) and artemisinin (antimalarial), are clinically significant [32].
- Principal restrictions: They often have restricted bioavailability, poor water solubility, and formulation difficulties.
2.3. Phenolics and Polyphenols
- Origin of biosynthesis: The phenylpropanoid and shikimate pathways are the primary sources of these chemicals [33].
- Chemical scaffold core: They often have conjugated systems of aromatic rings with one or more hydroxyl groups [34].
- Advantageous pharmacophore characteristics: Metal chelation, radical scavenging, and hydrogen bonding are all made easier by phenolic hydroxyl groups.
- Relevance to therapy: Resveratrol and other phenolic compounds have anti-inflammatory, antioxidant, and epigenetic modulatory properties [35].
- Principal restrictions: Low bioavailability, quick metabolism, and restricted membrane permeability limit their use.
2.4. Flavonoids
- Origin of biosynthesis: Derived from the production of phenylpropanoids [36].
- Chemical scaffold core: Their structure is C6–C3–C6, with a heterocyclic pyran ring connecting two aromatic rings.
- Planar aromatic systems and numerous hydroxyl groups enable interaction with enzymes, receptors, and nucleic acids, providing advantageous pharmacophore characteristics [37].
- Relevance to therapy: Quercetin and other flavonoids have anti-inflammatory, antioxidant, and enzyme-inhibiting qualities [38].
- Principal restrictions: They are often constrained by low systemic availability, quick metabolic breakdown, and inadequate absorption [39].
2.5. Glycosides
- Origin of biosynthesis: Made by combining sugar parts with different aglycone structures, such as terpenoids, phenolics, and steroids.
- Chemical scaffold core: Made up of an aglycone (non-sugar moiety) connected to a glycone (sugar) [40].
- The glycosidic bond influences solubility, stability, and receptor engagement, which are all advantageous pharmacophore characteristics [41].
- Relevance to therapy: Digoxin, a cardiotonic, and salicin, an anti-inflammatory, are two examples.
- Principal restrictions: They often have varied pharmacokinetics, a limited therapeutic index, and hydrolytic instability.
2.6. Polyketides and Macrolides
- Origin of biosynthesis: Produced by polyketide synthases by the condensation of acetate and propionate molecules.
- Chemical scaffold core: Characterized by aromatic polyketide structures and macrocyclic lactones [42].
- Advantageous pharmacophore characteristics: Activity depends on lactone rings, ketone groups, and glycosidic substitutions.
- Relevance to therapy: Add essential medications like doxorubicin (anticancer) and erythromycin (antibiotic) [43].
- Principal restrictions: Toxicity, the development of resistance, and metabolic instability are among the limitations.
2.7. Peptides and Depsipeptides
- Origin of biosynthesis: Derived from both non-ribosomal and ribosomal routes of peptide synthesis.
- Chemical scaffold core: Consists of amino acid pieces connected by ester or amide bonds to form circular or straight structures [44].
- Advantageous pharmacophore characteristics: High amphiphilic qualities, structural stiffness, and hydrogen bonding capability [45].
- Relevance to therapy: It is used in immunosuppressive and antibacterial treatments, such as cyclosporine and vancomycin [46].
- Principal restrictions: They have significant manufacturing costs, limited oral bioavailability, and enzymatic breakdown.
2.8. Steroids and Saponins
- Origin of biosynthesis: Derived from the mevalonate pathway through triterpenoid biosynthetic intermediates.
- Chemical scaffold core: Characterized by a nucleus of cyclopentanoperhydrophenanthrene [48].
- Advantageous pharmacophore characteristics: Hydrophobic core with functional alterations like glycosylation and hydroxylation.
- Relevance to therapy: They play a role in membrane contacts, anti-inflammatory activities, and hormone control [49].
- Principal restrictions: Linked to toxicity, metabolic instability, and off-target hormonal effects.
3. Natural Products in Major Therapeutic Areas
3.1. Anticancer Agents
3.2. Antimicrobial and Antiviral Agents
3.3. Anti-Inflammatory Agents and Immunomodulatory Agents
3.4. Cardiovascular Therapeutics
3.5. Neuroprotective and CNS-Active Natural Product
3.6. Antidiabetic Agents and Metabolic Disorder Agents
4. Structure–Activity Relationships (SAR) of Bioactive Natural Products
4.1. Functional Groups That Determine Bioactivity
- Hydroxyl Groups (-OH): Often found in polyphenols like quercetin and epigallocatechin gallate, they positively affect hydrogen bond formation and enhance antioxidant activity through free radical scavenging and metal chelation, while also effectively chelating metals. The increase in hydroxylation can be associated with an increase in antioxidant capacity but a decrease in membrane permeability.
- Carbonyl and Lactones Moieties: In the case of camptothecin, the α-hydroxy-δ-lactone ring is involved in the stabilization of the drug–enzyme–DNA tertiary complex. Hydrolysis or ring opening has an appreciable negative effect on activity.
- Amine Functionalities: Alkaloids such as morphine are based on the fact that the key of their action is that they contain protonatable tertiary amines, which in turn interact ionically with receptor residues.
- Epoxide and Peroxide Bridges: The endoperoxide linkage in artemisinin is important in the generation of active oxygen species in the parasitic cell.
- Substituent Mapping Insight: Usually electron donating groups (-OH, -OCH3) will enhance the radical scavenging and enzyme inhibitory actions, whereas electronegative groups may increase the metabolic stability of the drug and drastically increase the target selectivity of the drug molecule.
4.2. Stereochemistry and Conformational Effect
- In paclitaxel, the arrangement of atoms in the C13 side chain is important for how it connects to tubulin and helps stabilize microtubules.
- For vincristine, the dimeric indole–indoline structure and its specific arrangement are what allow it to interact with β-tubulin.
- Flavonoids exhibit planar conformations facilitating p–p stacking interactions with nutrient nucleic acids and proteins; flexible glycosides have conformational adaptability of membrane permeability.
- Conformational rigidity vs. flexibility: Rigid scaffolds will be more exclusive to binding sites while the flexible substituents will be more adaptable/increase pharmacokinetics.
4.3. Pharmacophore Mapping of Natural Products
4.4. Optimization of SAR
4.4.1. Taxane Derivatives
4.4.2. Podophyllotoxin Analogs
4.4.3. Curcumin Analogs
4.4.4. Statin Optimization
4.5. SAR Trends and Design Principles
- The hydrogen-bond donors/acceptors improve the binding with the target.
- For a compound to be permeable by membranes, lipophilicity balance (logP) is crucial.
- Rigid core + flexible side chain— a combination of both often produces best activity.
- Glycosylation, which is the process of adding sugar molecules to proteins or lipids, will increase solubility and may decrease permeability.
- Bio-isosteric replacement can be used to increase metabolic stability without loss of activity.
5. Chemical Modification Semisynthetic Derivatives
5.1. Strategies for Structural Optimization
5.2. Prodrug Design from Natural Scaffolds
5.3. Synthetic Analogs Inspired by Natural Products
5.4. Improving Potency, Selectivity, and Stability
6. Mechanisms of Action at Molecular and Cellular Levels
6.1. Enzyme Inhibition
6.2. Receptor Modulation
6.3. Modulation of Signal Transduction Pathways
6.4. Interaction with Nucleic Acids and the Epigenetic Targets
7. Pharmacokinetics and ADMET Considerations
7.1. Absorption and Bioavailability
7.2. Distribution and Plasma Protein Binding
7.3. Metabolism: Phase I and Phase II Biotransformation
7.4. Toxicity and Safety Profiles
7.5. Drug–Herb Interactions
8. Advanced Drug Delivery Systems for Natural Products
8.1. Nanoparticle-Based Delivery Systems
8.2. Liposomes and Phytosomes
8.3. Polymeric and Targeted Delivery Systems
8.4. Strategies for Enhancing Solubility and Stability
9. Analytical Techniques and Structure Elucidation
9.1. Chromatographic Techniques for Isolation and Purification
9.1.1. Thin-Layer Chromatography (TLC) and High-Performance Thin-Layer Chromatography (HPTLC)
9.1.2. High-Performance Liquid Chromatography (HPLC) and UHPLC
9.1.3. Gas Chromatography (GC) and GC–MS
9.2. Spectroscopic Techniques for Structural Elucidation
9.2.1. Nuclear Magnetic Resonance (NMR) Spectroscopy
- 1D NMR (one-dimensional nuclear magnetic resonance) for both 1H (proton) and 13C (carbon-13) shows the chemical environments, multiplicity, and coupling constants.
- 2D NMR techniques (COSY, HSQC, HMBC, NOESY/ROESY) prove the proton–proton and proton–carbon correlations and fully solve the structure, even for very complex molecules [181]. For example, the determination of the complete stereochemistry in polycyclic molecules like artemisinin and paclitaxel has been made with the help of advanced multidimensional NMR technique.
9.2.2. Mass Spectrometry (MS) and Tandem MS (MS/MS)
9.2.3. Infrared (IR) and UV–Visible Spectroscopy
9.3. Hyphenated and Advanced Analytical Techniques
9.3.1. LC-MS/MS and LC-HRMS
9.3.2. X-Ray Crystallography
9.3.3. Techniques Manuscript CD, ORD, VCD (Chiroptical)
9.4. Quantitative Analysis and Standardization of Natural Products
- Epigallocatechin gallate in botanical extracts.
- Ginsenosides in the Panax species.
- Withaniferin A in Withania somnifera.
9.5. Dereplication, Metabolomics, and Chemo-Informatics Approaches
10. Challenges and Barriers in Natural Product-Based Drug Development
10.1. Scientific and Chemical Challenges in Natural Product Research
10.2. Pharmacokinetic and Pharmacodynamic Limitations
10.3. Standardization, Quality Control, and Regulatory Barriers
10.4. Sustainability, Biodiversity, and Ethical Considerations
10.5. Emerging Technologies and Future Directions
10.6. Supply and Sustainability Issues
10.7. Structural Complexity and Synthesis Barriers
10.8. Standardization and Quality Control
10.9. Regulatory Challenges
11. Future Perspectives and Emerging Trends
11.1. Marine and Microbial Natural Products
11.2. Genome Mining and Synthetic Biology
11.3. Multi-Target and Network Pharmacology Approaches
11.4. Personalized Medicine and Natural Products
12. Future Outlook
13. Conclusions
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| ADMET | Absorption, Distribution, Metabolism, Excretion, and Toxicity |
| BGC | Biosynthetic Gene Cluster |
| CD | Circular Dichroism |
| CNS | Central Nervous System |
| GC-MS | Gas Chromatography-Mass Spectroscopy |
| HPLC | High- Performance Liquid Chromatography |
| HRMS | High-Resolution Mass Spectrometry |
| ICH | International Council for Harmonization |
| LC-MS/MS | Liquid Chromatography-tandem Mass Spectrometry |
| NMR | Nuclear Magnetic Resonance |
| ORD | Optical Rotatory Dispersion |
| PK | Pharmacokinetics |
| PD | Pharmacodynamics |
| PCA | Principal Component Analysis |
| PLS-DA | Partial Least Squares Discriminant Analysis |
| QSAR | Quantitative Structure–Activity Relationship |
| RP-HPLC | Reversed-Phase High Performance Liquid Chromatography |
| SAR | Structure–Activity Relationship |
| VCD | Vibrational Circular Dichroism |
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| Major Class of Natural Products | Biosynthetic Origin | Representative Compounds | Major Therapeutic Applications |
|---|---|---|---|
| Alkaloids | Amino acid-derived pathways | morphine, quinine, berberine | analgesic, antimalarial, antimicrobial, anticancer |
| Isoprenoids (Terpenoids) | Mevalonate (MVA) and methylerythritol phosphate (MEP) pathways | artemisinin, menthol, paclitaxel | antimalarial, anti-inflammatory, anticancer |
| Phenolics and Polyphenols | Shikimate and phenylpropanoid pathways | quercetin, resveratrol, curcumin | antioxidant, cardioprotective, anticancer |
| Flavonoids (Subclass of Polyphenols) | Combined shikimate and malonate pathways | catechin, kaempferol, luteolin | antioxidant, anti-inflammatory, neuroprotective |
| Steroids | Mevalonate pathway via triterpenoid intermediates | diosgenin, corticosteroids | anti-inflammatory, hormonal regulation |
| Glycosidic Derivatives of Natural Products | Formed by glycosylation of terpenoids, phenolics, steroids, and other aglycones | digoxin, sennosides, salicin | cardiotonic, laxative, anti-inflammatory |
| Polyketides | Acetate/malonate pathway | erythromycin, tetracycline | antibacterial, antifungal |
| Peptides and Non-ribosomal Peptides | Ribosomal and non-ribosomal peptide synthesis | cyclosporine, vancomycin | immunosuppressive, antimicrobial |
| Therapeutic Area | Natural Product | Mechanism/Target | Clinical Status | Key Advantages | Major Limitations |
|---|---|---|---|---|---|
| Anticancer | Paclitaxel | Microtubule stabilization | Approved | High efficacy | Poor solubility, resistance |
| Anticancer | Doxorubicin | DNA intercalation, Topo II inhibition | Approved | Broad activity | Cardiotoxicity |
| Antimalarial | Artemisinin | ROS via endoperoxide cleavage | Approved | Rapid action | Short half-life, resistance |
| Antibacterial | Vancomycin | Cell wall synthesis inhibition | Approved | Effective vs. Gram+ | Nephrotoxicity, resistance |
| Anti-inflammatory | Curcumin | NF-κB inhibition | Clinical trials | Multi-target | Low bioavailability |
| Cardiovascular | Digoxin | Na+/K+/ATPase inhibition | Approved | Strong efficacy | Narrow therapeutic index |
| Lipid-lowering | Lovastatin | HMG-CoA reductase inhibition | Approved | Proven benefit | Muscle toxicity risk |
| Neuroprotective | Galantamine | AChE inhibition | Approved | CNS activity | Moderate efficacy |
| Antidiabetic | Berberine | AMPK activation | Clinical/preclinical | Metabolic regulation | Variable bioavailability |
| Class | Key Pharmacophore Features | Representative Insight |
|---|---|---|
| Alkaloids | Protonatable nitrogen + aromatic ring | Enables receptor binding |
| Flavonoids | Phenolic OH + planar ring system | Antioxidant and enzyme interaction |
| Terpenoids | Hydrophobic core + oxygenated groups | Membrane interaction and target binding |
| Glycosides | Sugar moiety + active aglycone | Modulates solubility and PK (Pharmacokinetics) |
| Polyketides | Macrocycle + carbonyl groups | Enzyme inhibition and binding |
| Parent Compound | Derivative | Modification Strategy | Pharmacokinetic Impact | Therapeutic Impact |
|---|---|---|---|---|
| Paclitaxel | Docetaxel | Side-chain modification | ↑ Solubility, stability | ↑ Anticancer efficacy |
| Artemisinin | Artesunate | Esterification | ↑ Bioavailability | ↑ Antimalarial activity |
| Morphine | Codeine | Methylation | ↑ Oral absorption | ↓ Potency, altered safety |
| Camptothecin | Irinotecan | Prodrug formation | ↑ Stability | ↑ Clinical usability |
| Lovastatin | Simvastatin | Side-chain modification | ↑ Potency | Improved lipid lowering |
| Compound | Oral Bioavailability | Metabolism | Half-Life (Approx.) | Toxicity Concern |
|---|---|---|---|---|
| Curcumin | Low | Rapid glucuronidation | Short | Minimal |
| Resveratrol | Low | Extensive metabolism | Short | Minimal |
| Doxorubicin | Moderate | Hepatic metabolism | ~20–48 h | Cardiotoxicity |
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© 2026 by the authors. Licensee MDPI, Basel, Switzerland. This article is an open access article distributed under the terms and conditions of the Creative Commons Attribution (CC BY) license.
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Sah, A.K.; Patel, S.; Kumar, R.; Mishra, P.S.; Mishra, R.; Umarovich, A.I.; Elshaikh, R.H.; Agarwal, S.; Bhardwaj, A.; Choudhary, R.K.; et al. Therapeutic Applications of Natural Products in Biomedicine and Pharmacotherapy. Life 2026, 16, 873. https://doi.org/10.3390/life16060873
Sah AK, Patel S, Kumar R, Mishra PS, Mishra R, Umarovich AI, Elshaikh RH, Agarwal S, Bhardwaj A, Choudhary RK, et al. Therapeutic Applications of Natural Products in Biomedicine and Pharmacotherapy. Life. 2026; 16(6):873. https://doi.org/10.3390/life16060873
Chicago/Turabian StyleSah, Ashok Kumar, Sakshi Patel, Rahul Kumar, Prem Shankar Mishra, Rakhi Mishra, Abdulkhakov Ikhtiyor Umarovich, Rabab H. Elshaikh, Shagun Agarwal, Ashwani Bhardwaj, Ranjay Kumar Choudhary, and et al. 2026. "Therapeutic Applications of Natural Products in Biomedicine and Pharmacotherapy" Life 16, no. 6: 873. https://doi.org/10.3390/life16060873
APA StyleSah, A. K., Patel, S., Kumar, R., Mishra, P. S., Mishra, R., Umarovich, A. I., Elshaikh, R. H., Agarwal, S., Bhardwaj, A., Choudhary, R. K., & Alfeel, A. H. (2026). Therapeutic Applications of Natural Products in Biomedicine and Pharmacotherapy. Life, 16(6), 873. https://doi.org/10.3390/life16060873

