Biopharmaceuticals-The Future of Therapeutics
DOI:
https://doi.org/10.55938/wlp.v1i1.88Keywords:
Biopharmaceutical Drugs, Biobetters, Spray Drying, Supercritical Fluid, Drying Biologicalization, Bio-Processing 4.0, DigitalizationAbstract
The biopharmaceutical business, which began in the early twentieth century, has experienced substantial innovation in the past 50 years. The first wave witnessed the advent of 'rational drug discovery' approach in the 1970s, followed by the creation of recombinant protein-based therapeutic agents in the 1980s, and the emergence of multi-specific pharmaceuticals in the upcoming fourth wave. Biopharmaceutical drugs, which were first launched in 1982, have contributed to the treatment of various ailments and are now widely employed in a variety of medical sectors. The biopharmaceutical market has expanded rapidly, outpacing the entire medical sector. Biobetters, impacted active pharmaceutical components, are projected to have a substantial influence on biopharmaceutical development. Biopharmaceutical products have seen substantial clinical application in recently due to their superiority over small-molecule medications in terms of specificity, potency, targeting abilities, and adverse effects. However, their macromolecular nature and instability make preparation and administration difficult, therefore parenteral distribution is the only practical approach. Nanocarriers are critical for effective delivery since they protect against degradation, increase plasma life span, enable location-specific distribution, and improve intracellular target access. Technology in the bio-economy offers technical, organizational, and economic barriers, yet it is critical for effective implementation and attaining sustainability development goals. The constant demand for bioproducts necessitates information exchange, digitization, automation, and adaptable facility footprints.
References
Lin-Gibson, S., & Srinivasan, V. (2019). Recent industrial roadmaps to enable smart manufacturing of biopharmaceuticals. IEEE Transactions on Automation Science and Engineering, 18(1), 176-183.
Kesik‐Brodacka, M. (2018). Progress in biopharmaceutical development. Biotechnology and applied biochemistry, 65(3), 306-322.
Aldosary, N. M., Alsaleh, F. M., Alghammas, A. J., Binkhider, A. M., Aljashaam, N. A., Alassaf, A. A., ... & Alsaleh, A. N. (2022). THE EFFICACY OF BIOPHARMACEUTICALS IN DISEASE MANAGEMENT. Chelonian Research Foundation, 17(2), 1333-1340.
Mehta, A. (2019). Downstream processing for biopharmaceuticals recovery. Pharmaceuticals from Microbes: The Bioengineering Perspective, 163-190.
Pandey, K., Pandey, M., Kumar, V., Aggarwal, U., & Singhal, B. (2024). Bioprocessing 4.0 in biomanufacturing: paving the way for sustainable bioeconomy. Systems Microbiology and Biomanufacturing, 4(2), 407-424.
Evans, S. E., Harrington, T., Rivero, M. C. R., Rognin, E., Tuladhar, T., & Daly, R. (2021). 2D and 3D inkjet printing of biopharmaceuticals–A review of trends and future perspectives in research and manufacturing. International journal of pharmaceutics, 599, 120443.
Jana, S., Gupta, B. D., Kar, A., Ghosh, A., Pervin, M., Bala, A., ... & Haldar, P. K. (2024). Production of Biopharmaceuticals on Genetically Modified Organisms. In Concepts in Pharmaceutical Biotechnology and Drug Development (pp. 91-101). Singapore: Springer Nature Singapore.
Costa, C., Casimiro, T., Corvo, M. L., & Aguiar-Ricardo, A. (2021). Solid dosage forms of biopharmaceuticals in drug delivery systems using sustainable strategies. Molecules, 26(24), 7653.
Kunde, S. S., Ghosh, R., & Wairkar, S. (2022). Emerging trends in pulmonary delivery of biopharmaceuticals. Drug Discovery Today, 27(5), 1474-1482.
Deshaies, R. J. (2020). Multispecific drugs herald a new era of biopharmaceutical innovation. Nature, 580(7803), 329-338.
Emami, F., Keihan Shokooh, M., & Mostafavi Yazdi, S. J. (2023). Recent progress in drying technologies for improving the stability and delivery efficiency of biopharmaceuticals. Journal of Pharmaceutical Investigation, 53(1), 35-57.
Khetan, R., Curtis, R., Deane, C. M., Hadsund, J. T., Kar, U., Krawczyk, K., ... & Martin, A. C. (2022, December). Current advances in biopharmaceutical informatics: guidelines, impact and challenges in the computational developability assessment of antibody therapeutics. In MAbs (Vol. 14, No. 1, p. 2020082). Taylor & Francis.
Kaur, H., Beckman, J., Zhang, Y., Li, Z. J., Szigeti, M., & Guttman, A. (2021). Capillary electrophoresis and the biopharmaceutical industry: Therapeutic protein analysis and characterization. TrAC Trends in Analytical Chemistry, 144, 116407.
Kumar, R., Guttman, A., & Rathore, A. S. (2022). Applications of capillary electrophoresis for biopharmaceutical product characterization. Electrophoresis, 43(1-2), 143-166.
Veríssimo, N. V. P., Mussagy, C. U., Bento, H. B. S., Pereira, J. F. B., & de Carvalho Santos-Ebinuma, V. (2024). Ionic liquids and deep eutectic solvents for the stabilization of biopharmaceuticals: A review. Biotechnology Advances, 108316.
Prasad, S., & Roy, I. (2023). Innovation in Stabilization of Biopharmaceuticals. In Recent Advances in Pharmaceutical Innovation and Research (pp. 3-40). Singapore: Springer Nature Singapore.
Roesch, A., Zölls, S., Stadler, D., Helbig, C., Wuchner, K., Kersten, G., ... & Menzen, T. (2022). Particles in biopharmaceutical formulations, part 2: an update on analytical techniques and applications for therapeutic proteins, viruses, vaccines and cells. Journal of pharmaceutical sciences, 111(4), 933-950.
YUSA, K., YUSA, Y., & UCHIDA, K. (2020). Viral safety testing for biopharmaceuticals: Current and future prospects. Translational and Regulatory Sciences, 2(3), 94-99.
Sharma, A., Khamar, D., Cullen, S., Hayden, A., & Hughes, H. (2021). Innovative drying technologies for biopharmaceuticals. International Journal of Pharmaceutics, 609, 121115.
Published
How to Cite
Issue
Section
License
Copyright (c) 2024 Wisdom Leaf Press
This work is licensed under a Creative Commons Attribution 4.0 International License.