• Natural selection and its analogues (sexual selection, kin selection etc) produce the
evolutionary change we observe
– Keeping in mind the possibility of ‘neutrality’
• Here we will explore some major concepts in natural selection to understand the
process of evolution by natural selection
– Focus on adaptive evolution
DARWINIAN FITNESS:
Fitness is the key/fundamental concept
• Generally equated with the number of offspring an individual contributes to the next
generation – survival can be a major player, but only when it alters the number of
offspring produced by an individual
RELATIVE FITNESS:
What really matters is relative fitness – fitness of an individual measured relative to
everyone else
High fitness means higher than the average for that population – individual fitness
divided by average fitness
Why? – It measures differential success – are individuals more/less successful than the
average for the population
wi
wi ( R )
w
Fitness of an individual = (absolute fitness) / (average fitness of population)
FITNESS AND DEMOGRAPHY:
The correct measure of fitness can be complicated…
- Demography can matter (a lot) – timing at which individuals have offspring
- e.g. in a growing population with overlapping generations, the timing of reproduction can
be a critical determinant of true fitness
- ‘Malthusian fitness’ – fitness that is weighted by when individuals have offspring
Why?
- individual that reproduces early leaves genes to offspring that are already maturing
and having their own offspring while the late-producing individual is still waiting to have
their own offspring
MALTHUSIAN PARAMETER:
Logistic growth – different lineages increase at some rate (r)
Doubling time of a lineage is directly proportional to this rate (Td ~ 70/r)
r = Malthusian parameter, predicts rate of increase of a lineage, which impacts on
fitness
,
The small advantage in growth rate gets compounded over lineages
IMPLICATIONS:
With overlapping generations, early reproduction is worth more than late:
- Offspring start having offspring = faster growth of lineage
- Difference can be evolutionarily important
- e.g. might help explain senescence (physiological ageing) – selection stronger earlier in
life (selection shaping individuals to reproduce early, even if that shortens their
lifespan)
FECUNDITY VS. LONGEVITY?
Trade off: produce lots of offspring early but die young, vs. produce fewer offspring
early, but survive longer
- Same total number of offspring
- BUT early reproduction can be ‘more valuable’ than later reproduction. So selection can
favour alleles conferring higher early reproduction
SELECTION VS. EVOLUTION
Darwin described ‘evolution by means of natural selection’ as a process
Today we tend to separate ‘selection’ from the response to selection (i.e. evolution)
Selection = the processes where differential fitness is associated with some trait
differences (so there is selection on that trait)
Evolution = the cross generational change in traits or allele frequencies in response to
selection
ADAPTATION
The outcomes of the process of natural selection can be viewed as ‘adaptations’
- Some inherited trait increases fitness
- Arises from natural selection for its primary function
‘Exaptation’ – appear as adaptations now, but evolved for some other reason originally
EXAPTATION
A trait may be adaptive as it is currently ‘used’, but many traits did not originally evolve
for their current use
They have been co-opted by natural selection to play a role that differs from why they
originally evolved
E.g. Skull sutures (plates in the skull which don’t fuse fully until after birth – allow
subsequent brain growth not constrained by live birth) in mammals, feathers in birds