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Adaptation of bird hemoglobins to high altitudes: demonstration of molecular mechanism by protein engineering.鸟类血红蛋白对高海拔的适应性:通过蛋白质工程揭示分子机制
Proc Natl Acad Sci U S A. 1991 Aug 1;88(15):6519-22. doi: 10.1073/pnas.88.15.6519.
2
Phylogenetic and structural analysis of the HbA (alphaA/betaA) and HbD (alphaD/betaA) hemoglobin genes in two high-altitude waterfowl from the Himalayas and the Andes: Bar-headed goose (Anser indicus) and Andean goose (Chloephaga melanoptera).对喜马拉雅山脉和安第斯山脉的两种高海拔水禽中的 HbA(alphaA/betaA)和 HbD(alphaD/betaA)血红蛋白基因进行系统发生和结构分析:白头鹤(Anser indicus)和安第斯鹅(Chloephaga melanoptera)。
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3
The primary structures of the major and minor hemoglobin-components of adult Andean goose (Chloephaga melanoptera, Anatidae): the mutation Leu----Ser in position 55 of the beta-chains.成年安第斯鹅(黑翅栖鸭,鸭科)主要和次要血红蛋白成分的一级结构:β链第55位的亮氨酸突变为丝氨酸。
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Allosteric mechanisms underlying the adaptive increase in hemoglobin-oxygen affinity of the bar-headed goose.高原鵟头雁血红蛋白氧亲和力适应性增加的变构机制。
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Crystal Structure Analysis of Great Cormorant (Phalacrocorax carbo) Hemoglobin to Understand its High Oxygen Affinity Characteristics by Special Structural Features.通过特殊结构特征解析普通鸬鹚血红蛋白晶体结构以理解其高氧亲和力特性
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[Hemoglobins, XLVII. Hemoglobins of the bar-headed goose (Anser indicus): primary structure and physiology of respiration, systematic and evolution].[血红蛋白,XLVII。斑头雁(Anser indicus)的血红蛋白:呼吸的一级结构与生理学、系统学及进化]
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Allosteric mechanisms underlying the adaptive increase in hemoglobin-oxygen affinity of the bar-headed goose.高原鵟头雁血红蛋白氧亲和力适应性增加的变构机制。
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Whole-genome de novo sequencing reveals unique genes that contributed to the adaptive evolution of the Mikado pheasant.全基因组从头测序揭示了导致日本雉鸡适应性进化的独特基因。
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本文引用的文献

1
[The sequence of the hemoglobin of barheaded goose (Anser indicus) and ostrich (Struthio camelus). Inositol pentaphosphate as a modulator of the evolution rate: the surprising sequence alpha 63 (E12) valine (author's transl)].斑头雁(Anser indicus)和鸵鸟(Struthio camelus)血红蛋白的序列。肌醇五磷酸作为进化速率的调节剂:令人惊讶的α63(E12)缬氨酸序列(作者译)
Hoppe Seylers Z Physiol Chem. 1980;361(6):969-75.
2
Oxygen transport during progressive hypoxia in high-altitude and sea-level waterfowl.高海拔和海平面水鸟在渐进性缺氧过程中的氧气运输。
Respir Physiol. 1980 Feb;39(2):217-39. doi: 10.1016/0034-5687(80)90046-8.
3
The amino acid sequence of Canada goose (Branta canadensis) and mute swan (Cygnus olor) hemoglobins. Two different species with identical beta-chains.加拿大鹅(黑额黑雁)和疣鼻天鹅血红蛋白的氨基酸序列。两种不同物种具有相同的β链。
Hoppe Seylers Z Physiol Chem. 1982 Aug;363(8):777-87. doi: 10.1515/bchm2.1982.363.2.777.
4
The crystal structure of human deoxyhaemoglobin at 1.74 A resolution.分辨率为1.74埃的人脱氧血红蛋白晶体结构。
J Mol Biol. 1984 May 15;175(2):159-74. doi: 10.1016/0022-2836(84)90472-8.
5
Species adaptation in a protein molecule.蛋白质分子中的物种适应性。
Mol Biol Evol. 1983 Dec;1(1):1-28. doi: 10.1093/oxfordjournals.molbev.a040299.
6
The gapped duplex DNA approach to oligonucleotide-directed mutation construction.用于寡核苷酸定向突变构建的缺口双链DNA方法。
Nucleic Acids Res. 1984 Dec 21;12(24):9441-56. doi: 10.1093/nar/12.24.9441.
7
Survival at extreme altitude: protective effect of increased hemoglobin-oxygen affinity.极端海拔环境下的生存:血红蛋白与氧亲和力增加的保护作用。
Science. 1974 Feb 22;183(4126):743-4. doi: 10.1126/science.183.4126.743.
8
Blood flow distribution during hypocapnic hypoxia in Pekin ducks and bar-headed geese.北京鸭和斑头雁低碳酸血症性缺氧期间的血流分布
Respir Physiol. 1985 Jul;61(1):21-30. doi: 10.1016/0034-5687(85)90025-8.
9
Oxygen binding properties of human mutant hemoglobins synthesized in Escherichia coli.在大肠杆菌中合成的人类突变血红蛋白的氧结合特性。
Proc Natl Acad Sci U S A. 1985 Nov;82(21):7252-5. doi: 10.1073/pnas.82.21.7252.
10
The relation between the divergence of sequence and structure in proteins.蛋白质中序列与结构的差异关系。
EMBO J. 1986 Apr;5(4):823-6. doi: 10.1002/j.1460-2075.1986.tb04288.x.

鸟类血红蛋白对高海拔的适应性:通过蛋白质工程揭示分子机制

Adaptation of bird hemoglobins to high altitudes: demonstration of molecular mechanism by protein engineering.

作者信息

Jessen T H, Weber R E, Fermi G, Tame J, Braunitzer G

机构信息

Max-Planck-Institut für Biochemie, Abteilung Proteinchemie, Martinsried, Federal Republic of Germany.

出版信息

Proc Natl Acad Sci U S A. 1991 Aug 1;88(15):6519-22. doi: 10.1073/pnas.88.15.6519.

DOI:10.1073/pnas.88.15.6519
PMID:1862080
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC52117/
Abstract

Of two closely related species of geese, one, the greylag goose, lives in the Indian plains all year round, while the other, the bar-headed goose, lives at the Tibetan lakes and migrates across the Himalayas to winter in India. Another species, the Andean goose, lives in the High Andes all year round. Possession of a Hb with high oxygen affinity helps to adapt bar-headed and Andean geese to high altitudes. The Hb amino acid sequences of the bar-headed and the greylag geese differ by four substitutions, of which only one is unique among bird sequences: Pro-119 alpha (H2)----Ala. Perutz proposed that the two-carbon gap left by this substitution at the alpha 1 beta 1 contact raises the oxygen affinity, because it relaxes the tension in the deoxy or T structure [Perutz, M. F. (1983) Mol. Biol. Evol. 1, 1-28]. It was later found that the Hb of the Andean goose has a gap in the same position, due to the complementary substitution Leu-55 beta (D6)----Ser. We have tested Perutz's hypothesis by introducing each of these substitutions into human globin synthesized in Escherichia coli. The reconstituted Hbs combine cooperatively with oxygen. Their oxygen affinities exceed that of normal human Hb by an even larger factor than that found between the high-flying geese and the greylag goose. The mutant Hb Met-55 beta (D6)----Ser was crystallized. Its structure is the same as that of HbA, except in the immediate environment of the gap left by the substitution of the serine for the methionine side chain, which evidently causes the increased oxygen affinity of this Hb.

摘要

在两种亲缘关系密切的鹅中,一种是灰雁,终年生活在印度平原;另一种是斑头雁,生活在西藏湖泊地区,会飞越喜马拉雅山脉到印度过冬。还有一种安第斯雁,终年生活在安第斯山脉高处。拥有高氧亲和力的血红蛋白有助于斑头雁和安第斯雁适应高海拔环境。斑头雁和灰雁的血红蛋白氨基酸序列有四处替换差异,其中只有一处在鸟类序列中是独特的:α链第119位脯氨酸(H2)替换为丙氨酸。佩鲁茨提出,α1β1接触处因这一替换留下的两个碳原子间隙提高了氧亲和力,因为它缓解了脱氧或T结构中的张力[佩鲁茨,M. F.(1983年)《分子生物学与进化》1,1 - 28]。后来发现,安第斯雁的血红蛋白在同一位置也有一个间隙,这是由于互补替换β链第55位亮氨酸(D6)替换为丝氨酸。我们通过将这些替换分别引入在大肠杆菌中合成的人球蛋白来检验佩鲁茨的假设。重组后的血红蛋白与氧协同结合。它们的氧亲和力比正常人类血红蛋白高出的倍数,甚至比高飞的斑头雁和灰雁之间的差异还要大。突变型血红蛋白β链第55位甲硫氨酸(D6)替换为丝氨酸的晶体已形成。其结构与血红蛋白A相同,只是在丝氨酸取代甲硫氨酸侧链留下的间隙的紧邻环境中有所不同,这显然导致了这种血红蛋白氧亲和力的增加。