Genetics and intelligence differences: five special findings

Генетика и различия в интеллекте: пять особых результатов
Robert Plomin, Ian J. Deary
2014-09-16

Genome-wide Complex Trait Analysisassortative matingbehavioral geneticsheritabilityintelligence differences
Intelligence is a core construct in differential psychology and behavioural genetics, and should be so in cognitive neuroscience. It is one of the best predictors of important life outcomes such as education, occupation, mental and physical health and illness, and mortality. Intelligence is one of the most heritable behavioural traits. Here, we highlight five genetic findings that are special to intelligence differences and that have important implications for its genetic architecture and for gene-hunting expeditions. (i) The heritability of intelligence increases from about 20% in infancy to perhaps 80% in later adulthood. (ii) Intelligence captures genetic effects on diverse cognitive and learning abilities, which correlate phenotypically about 0.30 on average but correlate genetically about 0.60 or higher. (iii) Assortative mating is greater for intelligence (spouse correlations ~0.40) than for other behavioural traits such as personality and psychopathology (~0.10) or physical traits such as height and weight (~0.20). Assortative mating pumps additive genetic variance into the population every generation, contributing to the high narrow heritability (additive genetic variance) of intelligence. (iv) Unlike psychiatric disorders, intelligence is normally distributed with a positive end of exceptional performance that is a model for 'positive genetics'. (v) Intelligence is associated with education and social class and broadens the causal perspectives on how these three inter-correlated variables contribute to social mobility, and health, illness and mortality differences. These five findings arose primarily from twin studies. They are being confirmed by the first new quantitative genetic technique in a century-Genome-wide Complex Trait Analysis (GCTA)-which estimates genetic influence using genome-wide genotypes in large samples of unrelated individuals. Comparing GCTA results to the results of twin studies reveals important insights into the genetic architecture of intelligence that are relevant to attempts to narrow the 'missing heritability' gap.
1
Assortative mating is especially strong for intelligence, with spouse correlations around 0.40, increasing additive genetic variance across generations and contributing to high narrow-sense heritability.
2
General intelligence captures genetic influences across diverse cognitive and learning abilities, whose genetic correlations average about 0.60 or higher despite phenotypic correlations near 0.30.
3
Genetic findings from twin studies are being supported by Genome-wide Complex Trait Analysis, which estimates genetic influence from genome-wide genotypes in unrelated individuals.
4
Intelligence heritability rises substantially across development, from approximately 20% in infancy to potentially 80% in later adulthood.
5
Intelligence is normally distributed and includes a positive extreme of exceptional performance, providing a model for studying positive genetics unlike psychiatric disorders.

human intelligence differences

genetic architecture and genetic influences underlying intelligence differences, including heritability, genetic correlations, assortative mating, and their implications for cognitive abilities and life outcomes

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2014-09-16
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Robert Plomin
Ian J. Deary
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