Molecular determinants for cold adaptation in an Antarctic Na+/K+-ATPase

被引:0
|
作者
Galarza-Munoz, Gaddiel [1 ,3 ]
Soto-Morales, Sonia I. [1 ]
Jiao, Song [2 ]
Holmgren, Miguel [2 ]
Rosenthal, Joshua J. C. [1 ,4 ]
机构
[1] Univ Puerto Rico, Inst Neurobiol, Med Sci Campus, San Juan, PR 00901 USA
[2] NINDS, NIH, Bethesda, MD 20892 USA
[3] Autoimmunity BioSolut Inc, Galveston, TX 77554 USA
[4] Eugene Bell Ctr, Marine Biol Lab, Woods Hole, MA 77554 USA
关键词
Na+/K+-ATPase; temperature adaptation; Antarctica; octopus; ion homeostasis; HOMEOVISCOUS ADAPTATION; TEMPERATURE ADAPTATION; PSYCHROPHILIC ENZYMES; LIPID-COMPOSITION; STRUCTURAL BASIS; DEHYDROGENASE; STABILITY; EPISTASIS; MECHANISM; VISCOSITY;
D O I
10.1073/pnas.2301207120
中图分类号
O [数理科学和化学]; P [天文学、地球科学]; Q [生物科学]; N [自然科学总论];
学科分类号
07 ; 0710 ; 09 ;
摘要
Enzymes from ectotherms living in chronically cold environments have evolved structural innovations to overcome the effects of temperature on catalysis. Cold adaptation of soluble enzymes is driven by changes within their primary structure or the aqueous milieu. For membrane-embedded enzymes, like the Na+/K+-ATPase, the situation is different because changes to the lipid bilayer in which they operate may also be relevant. Although much attention has been focused on thermal adaptation within lipid bilayers, relatively little is known about the contribution of structural changes within membrane-bound enzymes themselves. The identification of specific mutations that confer temperature compensation is complicated by the presence of neutral mutations, which can be more numerous. In the present study, we identified specific amino acids in a Na+/K+-ATPase from an Antarctic octopus that underlie cold resistance. Our approach was to generate chimeras between an Antarctic clone and a temperate ortholog and then study their temperature sensitivities in Xenopus oocytes using an electrophysiological approach. We identified 12 positions in the Antarctic Na+/K+-ATPase that, when transferred to the temperate ortholog, were sufficient to confer cold tolerance. Furthermore, although all 12 Antarctic mutations were required for the full phenotype, a single leucine in the third transmembrane segment (M3) imparted most of it. Mutations that confer cold resistance are mostly in transmembrane segments, at positions that face the lipid bilayer. We propose that the interface between a transmembrane enzyme and the lipid bilayer is a critical determinant of temperature sensitivity and, accordingly, has been a prime evolutionary target for thermal adaptation.
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页数:8
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