1.1. Introduction
1.1.A. Phases in drug discovery and development
Molecule → drug
There are several types of molecules that can be used as therapeutics:
❥ Chemicals = small molecules
❥ Natural products (derived from plants) = complex molecules
❥ Biologicals = large (complex) molecules
1.2. Some facts & figures
1.2.A. R&D spending in different industry sectors
Producing biologicals compared to chemicals is very
expensive
1.2.B. R&D spending & therapeutic areas
① R&D spending of international pharmaceutical companies
❥ R&D expenditure are increasing: the general trend shows that R&D
costs are increasing because the simpler molecules have already been
developed and brought to market
❥ As a result, the new molecules being created today are more complex
and harder to produce
❥ BUT less FDA approvals (because health authorities are more critical)
❣ FDA = food and drugs administration
❣ Approvals are decreasing because FDA won’t approve drugs that are similar to those that already
exist → they must add something
The USA has higher expenditure than Japan, since it’s a bigger
country (duh)
② Major disease areas
❥ When developing a new drug, you should consider the
market for the drug
❥ Cardiovascular system, cancer, respiratory system, digestive
system are important areas for new drugs
❥ For asthma there are already a lot of drugs so new drugs
don’t get easily approved
,③ Preclinical/non-clinical and clinical phases
❥ For the non-clinical trials we need a defined set of studies
❥ When the results are fine, the first clinical trial (phase 1) may start ① here you
asses the pharmacokinetics of the drug → this is done in young men
❣ During spermatogenesis, every 2 months there are new sperm cells produced
❣ If something goes wrong, there won’t be sperm produced in the next 2 months
❣ We don’t use young women in this phase for 2 reasons (expect when they’re the only population):
⤷ Women are born with a pool of primordial follicles, and when a toxic drug attacks these follicles,
the women will go in menopause and they won’t be able to reproduce
⤷ Women can be pregnant and when a drug has influence on the foetus, it can cause malformations
❥ When the pharmacokinetics data are fine, you can go to phase 2 of the clinical trials
❣ Here you asses the efficacy of a drug in a small population
❣ Before starting phase 2, non-clinical trials are once again performed first
❥ Non-clinical (preclinical) and clinical trials alternate each other
❥ Non-clinical trials are not so expensive (20%) <> clinical trials are
expensive (60%)
❥ Every step, the costs increase
❥ Fail fast fail cheap principle: it’s better to kill the compound early on,
then to have it killed when it’s just marketed
1.2.C. Annual population growth rates
❥ A lot of big pharma industries are interested in China → wealthy
people, huge population
❥ Regions are only relevant if the disease is present in that region
❥ The 80+ population is also an interesting market
1.2.D. Healthcare spending in relation to age
❥ There are a lot of age-related diseases (CV, cancer…)
❥ Several patients have multiple of those diseases
,1.2.E. Development costs and revenue cycle
❥ Discovery is not that expensive
❥ The preclinical development cost a little
❥ The clinical development are very expensive
❥ Once on the market, we get a peak for the sales
❥ Once the patent expires, the cash flow lowers because of
generic competition
No investment in neglected diseases or orphan diseases BUT now with gene therapy, you don’t need a lot
of patients to make a lot of money + often the development for orphan diseases are funded via
foundations
1.2.F. Pharmaceutical sales by region
Overall, there is an increase in sales
1.2.G. Blockbuster drugs
= a drug that gives a revenue of >1B USD/year
❥ 70% of industry’s profits come from 20% of drugs marketed →
Driving force behind recent mergers
❥ Pharmaceutical industry is a core sector for Europe (600 000
employees) but competitiveness is declining!!
1.2.H. Top drug launches 2019
❥ Biopharmaceuticals are becoming more and more important compared to small molecules
❥ Small molecules have been around for a long time → difficult to still find a very specific drug
1.2.I. Timelines of drug development
❥ Developing a drug can take at least 10 years, and sometimes even longer
❥ After the drug is on the market, money will be made from it
❥ Even after approval, the drug must be continuously monitored = pharmacovigilance
❣ In a phase 3 clinical trial, usually around 5,000 subjects are included
❣ Once the drug is on the market, it may be taken by hundreds of thousands of people
❣ As a result, side effects can appear that were not detected during clinical trials
❥ Adverse effects: liver toxicity
❣ The liver detoxifies drugs while the kidney eliminates them from the body
❣ Because of these roles, both organs are common targets of drug toxicity
❣ Some types of liver toxicity only become apparent when large populations use the drug =
Idiosyncratic DILI (drug-induced liver injury)
, 1.2.J. Competition in pharmaceutical market
❥ Exclusivity of first drug in a therapeutic class
❥ It has become very difficult to be the only drug
for a certain disease
1.2.K. Challenges for pharma industry
❥ Generic competition → as soon as the patent is
over, generic drugs are made
❥ Price containment → national government has
their own negotiation with pharma companies to
set the price
❥ Poor product differentiation and “me-too”
→companies struggle to show that their product is
better than competitors
❥ Counterfeiting of drugs = production and sale of
fake medicines that are deliberately mislabelled in terms
of identity or source
1.2.L. Product positioning
❥ High (sales) volume of your drug can be profitable,
but from generics we know that it’s also highly
competitive
❥ The targeted therapeutics give low sales volumes, so
it needs to be expensive and we also know that the
differentiation is very high → we need something
very specific
❥ Mega-blockbusters have a medical differentiation
but it doesn’t need to be very exclusive, it needs to
have a certain value and it’s also not highly
competitive
1.2.M. Failure rates in drug development
❥ Only 10% from all the compounds we start with end
up being approved
❥ Majority of compounds are failing in the preclinical
development (fail fast fail cheap)
❥ The reason why a lot of drugs are failing is because of
pharmacokinetics (animal models aren’t always that
good in predicting the pharmacokinetics) and lack of
efficacy