Research Areas

Drug Discovery and Development

Challenges in Drug Discovery and Development

Despite modern assay technologies and data analysis tools drug discovery and development remains a lengthy, challenging, and costly process with a 90% failure rate1. Drug candidates typically fail in clinical trials because they lack clinical efficacy, provoke unmanageable toxicity, or have poor bioavailability1-3 (Figure 1).

Frequently, these issues remain undetected until late in the drug development pipeline because preclinical testing has limited ability to 1) characterize off-target effects that cause systemic toxicity, 2) identify erroneous selection of disease targets, 3) reveal comprehensive insight into the drug’s mechanisms of action, and 4) indicate heterogeneity in drug-target interaction between individuals4-8. Clinical trial failure rates could be improved if the functional readout of drug candidate properties, including target relevance, mechanism of action, and toxicity could be characterized better and earlier.

durg discovery and development process failure rates chart

Figure 1. The process of drug discovery and development, and the failure rate at each step. Image taken from Sun et.al. Acta Pharm Sin B. 2022 Jul; 12(7):3049-3062.

applications of metabolomics in drug discovery and development

Figure 2. The drug development process and application of metabolomics analysis. The drug development process includes basic research to evaluation of a drug after its release to market. Each step includes unique goals to describe pharmacodynamics, pharmacokinetics, toxicology, clinical efficacy, and side effects. Given its high sensitivity and specificity, metabolomics has become an integral part of this process. Image taken from Alarcon-Barrera et.al. Drug Discov Today. 2022 Jun; 27(6):1763-73.

The Role of Metabolomics

In recent years, metabolomics has grown to a place of prominence in drug discovery and development as investigators attempt to address these issues. The metabolic profile (i.e., the metabolome) is determined by the biological activity of cells, which reflects the genomic variation of the individual, and by environmental factors including diet and lifestyle. Alterations in metabolite levels are intricately tied to many diseases, which reveal insights into disease etiology, status, and therapeutic response9. By capturing the complex landscape of the metabolome and tracking changes in metabolite levels, metabolomics can reveal distinct molecular phenotypes that reflect the health status of an organism10, 11.

By revealing comprehensive phenotypic information global and targeted metabolomics can better characterize a drug candidate’s MoA, toxicity, pharmacokinetics, and evaluate adverse events associated with the drug (Figure 2)7, 12-14.

Case Studies

Saving a Failed Drug

6-diazo-5-oxo-L-norleucine (DON) is a glutamine antagonist with promising anti-tumor activity, but it was pulled from clinical trials because of severe gastrointestinal (GI) toxicity. In this study, investigators attempted to optimize the drug to preferentially deliver it to tumors while being inactivated in GI tissues15.

Untargeted metabolomics was used to evaluate metabolic changes caused by the optimized compound, DRP-104. Metabolomics analysis showed that DRP-104, was preferentially bioactivated to DON in tumors (via serine) while simultaneously bio-inactivated to an inert metabolite in GI tissues (via carboxylesterases). This dual pathway activation/inactivation exposed tumors to 11-fold higher amounts of DON than GI tissues, effectively reducing systemic toxicity. Furthermore, DRP-104 demonstrated similar efficacy to DON against tumor growth while significantly reducing GI toxicity. Due to DRP-104 demonstrating differential metabolism in target compared to toxicity-prone tissue, the drug has been put back into clinical trials under the FDA Fast Track designation.

Scientist works with a mass spectrometer

Why Metabolon?

Once you see the full value of metabolomics, the only remaining question is: who does it best? While many laboratories have metabolite profiling or analytical chemistry capabilities, comprehensive metabolomics technologies are extremely rare.

Accurate, unbiased metabolite identification across the entire metabolome introduces signal-to-noise challenges that very few labs are equipped to handle. Also, translating massive quantities of data into actionable information is slow, if not impossible, for most because proper interpretation takes two things that are in short supply: experience and a comprehensive database.

Partner with Metabolon to access:

  • A library of 5,400+ known metabolites, 2,000 in human plasma, all referenced in the context of biochemical pathways. That’s 5x the metabolites of the closest competitor.
  • Unparalleled depth and breadth of experience analyzing and interpreting metabolomics data to find meaningful results
    • 10,000+ projects with hundreds of clients
    • 3,500+ publications covering 500 diseases, including numerous peer-reviewed journals such as Cell, Nature and Science
    • Nearly 40 PhDs in data science, molecular biology, and biochemistry

Using our robust platform and visualization tools, our experts are uniquely able to tell you more about your molecule and develop assay panels to help you zero in on the results you need.

Only Metabolon has all four core metabolomics capabilities:

Metabolon’s Latest Publications

Talk with an expert

For over 20 years Metabolon has been helping scientists use, understand, and integrate metabolomics into their studies to drive discovery and innovation. To see how Metabolon’s industry-leading metabolomics platform and software, and scientific experts can help you take advantage of metabolomics in your studies, speak with one of our experts here.

Contact Metabolon

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References

1. Dowden, H. and J. Munro, Trends in clinical success rates and therapeutic focus. Nat Rev Drug Discov, 2019. 18(7): p. 495-496.

2. Harrison, R.K., Phase II and phase III failures: 2013-2015. Nat Rev Drug Discov, 2016. 15(12): p. 817-818.

3. Takebe, T., R. Imai, and S. Ono, The Current Status of Drug Discovery and Development as Originated in United States Academia: The Influence of Industrial and Academic Collaboration on Drug Discovery and Development. Clin Transl Sci, 2018. 11(6): p. 597-606.

4. Larsson, P., et al., Optimization of cell viability assays to improve replicability and reproducibility of cancer drug sensitivity screens. Sci Rep, 2020. 10(1): p. 5798.

5. Emmerich, C.H., et al., Improving target assessment in biomedical research: the GOT-IT recommendations. Nat Rev Drug Discov, 2021. 20(1): p. 64-81.

6. Davis, K.D., et al., Discovery and validation of biomarkers to aid the development of safe and effective pain therapeutics: Challenges and opportunities. Nat Rev Neurol, 2020. 16(7): p. 381-400.

7. Moffat, J.G., et al., Opportunities and challenges in phenotypic drug discovery: An industry perspective. Nat Rev Drug Discov, 2017. 16(8): p. 531-543.

8. Lin, A., et al., Off-target toxicity is a common mechanism of action of cancer drugs undergoing clinical trials. Sci Transl Med, 2019. 11(509).

9. Beger, R.D., et al., Metabolomics enables precision medicine: “A White Paper, Community Perspective”. Metabolomics, 2016. 12(10): p. 149.

10. Fiehn, O., Metabolomics – The link between genotypes and phenotypes. Plant Mol Biol, 2002. 48(1-2): p. 155-71.

11. Nicholson, J.K. and I.D. Wilson, Opinion: Understanding ‘global’ systems biology: Metabonomics and the continuum of metabolism. Nat Rev Drug Discov, 2003. 2(8): p. 668-76.

12. Luukkonen, P.K., et al., Hydroxysteroid 17-beta dehydrogenase 13 variant increases phospholipids and protects against fibrosis in nonalcoholic fatty liver disease. JCI Insight, 2020. 5(5).

13. Schenone, M., et al., Target identification and mechanism of action in chemical biology and drug discovery. Nat Chem Biol, 2013. 9(4): p. 232-40.

14. Fox, J.T. and K. Myung, Cell-based high-throughput screens for the discovery of chemotherapeutic agents. Oncotarget, 2012. 3(5): p. 581-5.

15. Rais, R., et al., Discovery of DRP-104, a tumor-targeted metabolic inhibitor prodrug. Sci Adv, 2022. 8(46): p. eabq5925.

16. Kepchia, D., et al., The Alzheimer’s disease drug candidate J147 decreases blood plasma fatty acid levels via modulation of AMPK/ACC1 signaling in the liver. Biomed Pharmacother, 2022. 147: p. 112648.

17. Altmaier, E., et al., Metabolomics approach reveals effects of antihypertensives and lipid-lowering drugs on the human metabolism. Eur J Epidemiol, 2014. 29(5): p. 325-36.

18. Chao, C., et al., Cystathionine-beta-synthase inhibition for colon cancer: Enhancement of the efficacy of aminooxyacetic acid via the prodrug approach. Mol Med, 2016. 22: p. 361-379.