The Influence of Higher-Order Epistasis on Biological Fitness Landscape Topography

Влияние эпистаза высших порядков на топографию биологических ландшафтов приспособленности
Daniel Weinreich, Yinghong Lan, Jacob D. Jaffe, Robert B. Heckendorn
2018-02-07

biological fitness landscapesfitness landscape topographyhigher-order epistasismutational interactionsnatural selection
The effect of a mutation on the organism often depends on what other mutations are already present in its genome. Geneticists refer to such mutational interactions as epistasis. Pairwise epistatic effects have been recognized for over a century, and their evolutionary implications have received theoretical attention for nearly as long. However, pairwise epistatic interactions themselves can vary with genomic background. This is called higher-order epistasis, and its consequences for evolution are much less well understood. Here, we assess the influence that higher-order epistasis has on the topography of 16 published, biological fitness landscapes. We find that on average, their effects on fitness landscape declines with order, and suggest that notable exceptions to this trend may deserve experimental scrutiny. We conclude by highlighting opportunities for further theoretical and experimental work dissecting the influence that epistasis of all orders has on fitness landscape topography and on the efficiency of evolution by natural selection.
1
Across the analyzed landscapes, the average influence of epistasis on fitness landscape structure declines as interaction order increases.
2
Landscapes that substantially deviate from the declining higher-order epistasis trend may warrant targeted experimental investigation.
3
The authors identify opportunities for theoretical and experimental research on how epistasis across all orders affects landscape topography and evolutionary efficiency.
4
The study evaluates how higher-order epistasis shapes the topography of 16 published biological fitness landscapes.

16 published biological fitness landscapes

The influence of higher-order epistasis on fitness landscape topography and its effects on fitness across interaction orders

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2018-02-07
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Daniel Weinreich
Yinghong Lan
Jacob D. Jaffe
Robert B. Heckendorn
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