热点追踪

脊椎动物从水生到陆生演化过程中的遗传创新

展开
  • 西北工业大学生态环境学院,西安 710072
王堃,博士,副教授,研究方向:脊椎动物演化。E-mail: wangkun@nwpu.edu.cn;|任彦栋,博士,博士后,研究方向:进化基因组学。E-mail: renyandong90@126.com;

收稿日期: 2021-02-04

  修回日期: 2021-02-10

  网络出版日期: 2021-02-23

本文引用格式

王堃, 任彦栋, 邱强 . 脊椎动物从水生到陆生演化过程中的遗传创新[J]. 遗传, 2021 , 43(4) : 291 -294 . DOI: 10.16288/j.yczz.21-063

参考文献

[1] Hinchliffe JR. Evolutionary developmental biology of the tetrapod limb. Dev, 1994,( Suppl.):163-168.
[2] Long JA, Gordon MS. The greatest step in vertebrate history: A paleobiological review of the fish-tetrapod transition. Physiol Biochem Zool, 2004, 77(5):700-701.
[3] Bi XP, Wang K, Yang LD, Pan HL, Jiang HF, Wei QW, Fang MQ, Yu H, Zhu CL, Cai YR, He YM, Gan XN, Zeng HH, Yu DQ, Zhu YA, Jiang HF, Qiu Q, Yang HM, Zhang YE, Wang W, Zhu M, He SP, Zhang GJ. Tracing the genetic footprints of vertebrate landing in non-teleost ray- finned fishes. Cell, 2021, 184(5): 1377- 1391.e14.
[4] Wang K, Wang J, Zhu CL, Yang LD, Ren YD, Ruan J, Fan GY, Hu J, Xu WJ, Bi XP, Zhu YA, Song Y, Chen HT, Ma TT, Zhao RP, Jiang HF, Zhang B, Feng CG, Yuan Y, Gan XN, Li YX, Zeng HH, Liu Q, Zhang YL, Shao F, Hao SJ, Zhang H, Xu X, Liu X, Wang DP, Zhu M, Zhang GJ, Zhao WM, Qiu Q, He SP, Wang W. African lungfish genome sheds light on the vertebrate water-to-land transition. Cell, 2021, 184(5): 1362-1376.e18.
[5] Davis MC, Shubin NH, Force A. Pectoral fin and girdle development in the basal actinopterygians Polyodon spathula and Acipenser transmontanus. J Morphol, 2004,262(2):608-628.
[6] Tanaka M. Fins into limbs: Autopod acquisition and anterior elements reduction by modifying gene networks involving 5'Hox, Gli3, and Shh. Dev Biol, 2016,413(1):1-7.
[7] Wagner GP, Chiu CH. The tetrapod limb: a hypothesis on its origin. J Exp Zool, 2001,291(3):226-240.
[8] Woltering JM, Irisarri I, Ericsson R, Joss JMP, Sordino P, Meyer A. Sarcopterygian fin ontogeny elucidates the origin of hands with digits. Sci Adv, 2020,6(34): eabc3510.
[9] Metcalfe CJ, Filée J, Germon I, Joss J, Casane D. Evolution of the Australian lungfish (Neoceratodus forsteri) genome: a major role for CR1 and L2 LINE elements. Mol Biol Evol, 2012,29(11):3529-3539.
[10] Grohme MA, Schloissnig S, Rozanski A, Pippel M, Young GRY, Winkler S, Brandl H, Henry I, Dahl A, Powell S, Hiller M, Myers E, Rink JC. The genome of Schmidtea mediterranea and the evolution of core cellular mechanisms. Nature, 2018,554(7690):56-61.
[11] Meyer A, Schloissnig S, Franchini P, Du K, Woltering J, Irisarri I, Wong WY, Nowoshilow S, Kneitz S, Kawaguchi A, Fabrizius A, Xiong PW, Dechaud C, Spaink HP, Volff JN, Simakov O, Burmester T, Tanaka EM, Schartl M. Giant lungfish genome elucidates the conquest of land by vertebrates. Nature, 2021,590(7845):284-289.
[12] Gómez-Gil L, Schürch D, Goormaghtigh E, Pérez-Gil J. Pulmonary surfactant protein SP-C counteracts the deleterious effects of cholesterol on the activity of surfactant films under physiologically relevant compression-expansion dynamics. Biophys J, 2009,97(10):2736-2745.
[13] Roldan N, Nyholm TKM, Slotte JP, Pérez-Gil J, García- álvarez B. Effect of lung surfactant protein SP-C and SP-C-promoted membrane fragmentation on cholesterol dynamics. Biophys J, 2016,111(8):1703-1713.
[14] Haagsman HP, Diemel RV. Surfactant-associated proteins: functions and structural variation. Comp Biochem Physiol A Mol Integr Physiol, 2001,129(1):91-108.
[15] Chen P, Tang Q, Wang CF. Characterizing and evaluating the expression of the type IIb sodium-dependent phosphate cotransporter (slc34a2) gene and its potential influence on phosphorus utilization efficiency in yellow catfish (Pelteobagrus fulvidraco). Fish Physiol Biochem, 2016,42(1):51-64.
[16] Chen P, Huang Y, Bayir A, Wang C. Characterization of the isoforms of type IIb sodium-dependent phosphate cotransporter (Slc34a2) in yellow catfish, Pelteobagrus fulvidraco, and their vitamin D3-regulated expression under low-phosphate conditions. Fish Physiol Biochem, 2017,43(1):229-244.
[17] Bruce LL, Neary TJ. The limbic system of tetrapods: a comparative analysis of cortical and amygdalar populations. Brain Behav Evol, 1995,46(4-5):224-234.
[18] Northcutt R G. Telencephalic organization in the spotted African Lungfish, Protopterus dolloi: a new cytological model. Brain Behav Evol, 2009,73(1):59-80.
[19] González A, Northcutt RG. An immunohistochemical approach to lungfish telencephalic organization. Brain Behav Evol, 2009,74(1):43-55.
文章导航

/