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Differences in Hematological Traits between High- and Low-Altitude Lizards (Genus Phrynocephalus)

机译:高空和低空蜥蜴(Phrynocephalus属)之间血液学特征的差异

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摘要

Phrynocephalus erythrurus (Lacertilia: Agamidae) is considered to be the highest living reptile in the world (about 4500-5000 m above sea level), whereas Phrynocephalus przewalskii inhabits low altitudes (about 1000-1500 m above sea level). Here, we report the differences in hematological traits between these two different Phrynocephalus species. Compared with P. przewalskii, the results indicated that P. erythrurus own higher oxygen carrying capacity by increasing red blood cell count (RBC), hemoglobin concentration ([Hb]) and hematocrit (Hct) and these elevations could promote oxygen carrying capacity without disadvantage of high viscosity. The lower partial pressure of oxygen in arterial blood (PaO2) of P. erythrurus did not cause the secondary alkalosis, which may be attributed to an efficient pulmonary system for oxygen (O2) loading. The elevated blood-O2 affinity in P. erythrurus may be achieved by increasing intrinsic O2 affinity of isoHbs and balancing the independent effects of potential heterotropic ligands. We detected one α-globin gene and three β-globin genes with 1 and 33 amino acid substitutions between these two species, respectively. Molecular dynamics simulation results showed that amino acids substitutions in β-globin chains could lead to the elimination of hydrogen bonds in T-state Hb models of P. erythrurus. Based on the present data, we suggest that P. erythrurus have evolved an efficient oxygen transport system under the unremitting hypobaric hypoxia.
机译:Phrynocephalus erythrurus(Lacertilia:Agamidae)被认为是世界上最高的爬行动物(海拔约4500-5000 m),而Phrynocephalus przewalskii居住在低海拔(海拔约1000-1500 m)。在这里,我们报告这两种不同的Phrynocephalus物种之间血液学特征的差异。与P. przewalskii相比,结果表明,P。erythrurus通过增加红细胞计数(RBC),血红蛋白浓度([Hb])和血细胞比容(Hct)来具有较高的氧气吸收能力,这些升高可以促进氧气的吸收能力而无不利影响高粘度。红假单胞菌的动脉血中较低的氧气分压(PaO2)不会引起继发性碱中毒,这可能归因于有效的肺系统中氧气(O2)的负载。可以通过增加isoHbs的固有O2亲和力和平衡潜在的多向异性配体的独立作用来实现红假单胞菌中较高的血氧亲和力。我们检测到一个α-球蛋白基因和三个β-球蛋白基因,在这两个物种之间分别被1和33个氨基酸取代。分子动力学模拟结果表明,β-珠蛋白链中的氨基酸取代可导致红斑霉菌T型Hb模型中氢键的消除。根据目前的数据,我们建议在不间断的低压缺氧条件下,红假单胞菌已发展出一种有效的氧气转运系统。

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