Related Experiment Video
Updated: Mar 27, 2026

The Submerged Printing of Cells onto a Modified Surface Using a Continuous Flow Microspotter
Published on: April 22, 2014
Click chemistry, 3D-printing, and omics: the future of drug development
Razelle Kurzrock1, David J Stewart2
1Center for Personalized Cancer Therapy and Division of Hematology and Oncology, University of California San Diego Moores Cancer Center, San Diego, CA, USA.
Abstract:
Genomics is a disruptive technology, having revealed that cancers are tremendously complex and differ from patient to patient. Therefore, conventional treatment approaches fit poorly with genomic reality. Furthermore, it is likely that this type of complexity will also be observed in other illnesses. Precision medicine has been posited as a way to better target disease-related aberrations, but developing drugs and tailoring therapy to each patient's complicated problem is a major challenge. One solution would be to match patients to existing compounds based on in silico modeling. However, optimization of complex therapy will eventually require designing compounds for patients using computer modeling and just-in-time production, perhaps achievable in the future by three-dimensional (3D) printing. Indeed, 3D printing is potentially transformative by virtue of its ability to rapidly generate almost limitless numbers of objects that previously required manufacturing facilities. Companies are already endeavoring to develop affordable 3D printers for home use. An attractive, but as yet scantily explored, application is to place chemical design and production under digital control. This could be accomplished by utilizing a 3D printer to initiate chemical reactions, and print the reagents and/or the final compounds directly. Of interest, the Food and Drug Administration (FDA) has recently approved a 3D printed drug-levetiracetam-indicated for seizures. Further, it is now increasingly clear that biologic materials-tissues, and eventually organs-can also be "printed." In the near future, it is plausible that high-throughput computing may be deployed to design customized drugs, which will reshape medicine.
Insights
Genomics reveals complex diseases, necessitating personalized treatments. Three-dimensional (3D) printing and computational modeling offer future solutions for custom drug design and production, revolutionizing precision medicine.
Area of Science:
- Genomics and personalized medicine
- Biotechnology and advanced manufacturing
Background:
- Genomics highlights the complexity and patient-specific nature of diseases like cancer.
- Conventional treatments are often inadequate for these complex, individualized conditions.
- Precision medicine aims to target disease aberrations but faces challenges in drug development and therapy tailoring.
Purpose of the Study:
- To explore the potential of in silico modeling and 3D printing for personalized drug development.
- To discuss the integration of digital control in chemical design and production.
- To examine the future of customized medicine through advanced computational and manufacturing technologies.
Main Methods:
- In silico modeling for matching patients to existing compounds.
- Exploration of 3D printing for chemical synthesis and reagent production.
- Review of emerging technologies in high-throughput computing for drug design.
Main Results:
- The complexity of diseases necessitates novel therapeutic strategies beyond conventional approaches.
- Three-dimensional (3D) printing offers a transformative platform for on-demand manufacturing of objects, including drugs.
- The FDA approval of a 3D printed drug (levetiracetam) demonstrates the viability of this technology.
- Biologic materials, tissues, and organs are also potential candidates for 3D printing.
Conclusions:
- Personalized medicine requires innovative approaches to drug design and delivery.
- Three-dimensional (3D) printing and computational modeling are poised to revolutionize pharmaceutical production and patient care.
- The future of medicine may involve digitally controlled, on-demand custom drug synthesis and printing.

