Submitted:
15 July 2026
Posted:
16 July 2026
You are already at the latest version
Abstract
Keywords:
1. Introduction
2. Sources, Extraction, and Purification of Betulin
2.1. Natural Sources and Localization in Birch Bark
2.2. Conventional Extraction Methods
2.3. Purification and Crystallization of Betulin
3. Analytical Characterization of Betulin and Betulin Diacetate
3.1. General Considerations
3.2. Spectroscopic Characterization
3.3. Chromatographic Characterization and Separation Methods
3.4. Mass Spectrometry and Hyphenated Analytical Techniques
3.5. Purity Assessment and Analytical Challenges
3.6. Integrated Analytical Strategies and Quality Control
4. Laboratory-Scale Synthesis of Betulin 3,28-Diacetate
4.1. Overview of Acetylation Logic
4.2. Classical Acetylation Using Acetic Anhydride and Mineral Acid Catalysts
4.3. Organic Catalysts and Promoter-Assisted Acetylation
4.4. Base-Mediated Acetylation Systems

4.5. Low-Solvent, Solvent-Free, and Mechanochemical Approaches
4.6. Comparative Assessment of Laboratory Acetylation Methods
5. Process Chemistry and Industrial Approaches
5.1. Transition from Laboratory Synthesis to Process Chemistry
5.2. Reaction Engineering and Scale-Up Considerations
5.3. Optimization of Reaction Parameters for Large-Scale Production
5.4. Product Isolation, Workup, and Downstream Processing
5.5. Green Chemistry and Sustainability Considerations
5.6. Economic and Industrial Feasibility
5.7. Current Challenges and Future Industrial Perspectives
6. Betulin Diacetate as a Protecting-Group Scaffold
6.1. Strategic Value of the Diacetate
6.2. Access to Monoacetates by Controlled Hydrolysis
6.3. Oxidation and Diversification Pathways
7. Functionalization Enabled by Acetylated Intermediates
7.1. Beyond C-3 and C-28 Functionalization
7.2. Synthetic and Biological Implications
8. Solubility and Translational Considerations
8.1. Physicochemical Consequences of Acetylation
8.2. Synthetic Implications for Future Development
9. Conclusion
Author Contributions
Funding
Data Availability Statement
Acknowledgments
Conflicts of Interest
Abbreviations
| FTIR | Fourier-transform infrared spectroscopy |
| NMR | Nuclear magnetic resonance |
| TLC | Thin-layer chromatography |
| HPLC | High-performance liquid chromatography |
| UV | Ultraviolet |
| ELSD | Evaporative light scattering detection |
| CAD | Charged aerosol detection |
| GC | Gas chromatography |
| MS | Mass spectrometry |
| COSY | Correlation spectroscopy |
| HSQC | Heteronuclear single quantum coherence |
| HMBC | Heteronuclear multiple bond correlation |
| DEPT | Distortionless enhancement by polarization transfer |
| UAE | Ultrasound-assisted extraction |
| PLE | Pressurized liquid extraction |
| EtOH | Ethanol |
| iPrOH | Isopropanol |
| EtOAc | Ethyl acetate |
| CO2 | Carbon dioxide |
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