Epistasis Constrains Mutational Pathways of Hemoglobin Adaptation in High-Altitude Pikas

Эпистаз ограничивает мутационные пути адаптации гемоглобина у высокогорных пищух
Danielle M. Tufts, Chandrasekhar Natarajan, Inge Grønvall Revsbech, Joana Projecto-Garcia, Federico G. Hoffmann, Roy E. Weber, Angela Fago, Hideaki Moriyama, Jay F. Storz
2014-11-18

ancestral protein resurrectionepistasishemoglobin-O2 affinityhigh-altitude pikasmutational pathways
A fundamental question in evolutionary genetics concerns the roles of mutational pleiotropy and epistasis in shaping trajectories of protein evolution. This question can be addressed most directly by using site-directed mutagenesis to explore the mutational landscape of protein function in experimentally defined regions of sequence space. Here, we evaluate how pleiotropic trade-offs and epistatic interactions influence the accessibility of alternative mutational pathways during the adaptive evolution of hemoglobin (Hb) function in high-altitude pikas (Mammalia: Lagomorpha). By combining ancestral protein resurrection with a combinatorial protein-engineering approach, we examined the functional effects of sequential mutational steps in all possible pathways that produced an increased Hb-O2 affinity. These experiments revealed that the effects of mutations on Hb-O2 affinity are highly dependent on the temporal order in which they occur: Each of three β-chain substitutions produced a significant increase in Hb-O2 affinity on the ancestral genetic background, but two of these substitutions produced opposite effects when they occurred as later steps in the pathway. The experiments revealed pervasive epistasis for Hb-O2 affinity, but affinity-altering mutations produced no significant pleiotropic trade-offs. These results provide insights into the properties of adaptive substitutions in naturally evolved proteins and suggest that the accessibility of alternative mutational pathways may be more strongly constrained by sign epistasis for positively selected biochemical phenotypes than by antagonistic pleiotropy.
1
Affinity-altering substitutions showed no significant pleiotropic trade-offs, indicating that antagonistic pleiotropy did not substantially constrain these pathways.
2
Alternative mutational pathways were likely constrained more strongly by sign epistasis affecting the selected biochemical phenotype than by pleiotropic trade-offs.
3
Each of three β-chain substitutions significantly increased hemoglobin oxygen affinity on the ancestral background, but two had opposite effects when introduced later.
4
Hemoglobin oxygen-affinity effects were strongly dependent on mutation order, revealing pervasive sign epistasis across adaptive pathways.
5
The study reconstructs ancestral hemoglobin and tests every sequential mutational pathway leading to increased oxygen affinity in high-altitude pikas.

hemoglobin (Hb) function in high-altitude pikas, including ancestral and engineered Hb variants

the effects of sequential β-chain substitutions, including epistatic interactions, mutational-pathway accessibility, and pleiotropic trade-offs, on Hb-O2 affinity

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2014-11-18
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Danielle M. Tufts
Chandrasekhar Natarajan
Inge Grønvall Revsbech
Joana Projecto-Garcia
Federico G. Hoffmann
Roy E. Weber
Angela Fago
Hideaki Moriyama
Jay F. Storz
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