Convergent Genomic Signatures of High-Altitude Adaptation among Six Independently Evolved Mammals
暂无分享,去创建一个
Jiaohui Fang | Honghai Zhang | Yuehuan Dong | Shengyang Zhou | Lupeng Shi | Tianshu Lyu | Lidong Wang
[1] Zhifang Fan,et al. Genomics and morphometrics reveal the adaptive evolution of pikas , 2022, Zoological research.
[2] M. Cubeta,et al. Comparative genomic analysis reveals contraction of gene families with putative roles in pathogenesis in the fungal boxwood pathogens Calonectria henricotiae and C. pseudonaviculata , 2022, BMC ecology and evolution.
[3] H. Dou,et al. High-quality chromosome-level genome assembly of Tibetan fox (Vulpes ferrilata) , 2022, Zoological research.
[4] Xiaofeng Zheng,et al. Characterization of olfactory receptor repertoires provides insights into the high-altitude adaptation of the yak based on the chromosome-level genome. , 2022, International journal of biological macromolecules.
[5] J. A. Nyakatura,et al. Integrative Approach Uncovers New Patterns of Ecomorphological Convergence in Slow Arboreal Xenarthrans , 2021, Journal of Mammalian Evolution.
[6] S. Kubota,et al. Loss of FYCO1 leads to cataract formation , 2021, Scientific Reports.
[7] S. Pan,et al. A single mutation underlying phenotypic convergence for hypoxia adaptation on the Qinghai-Tibetan Plateau , 2021, Cell Research.
[8] Xianglong Li,et al. Chromosome‐level genome assembly of the Arctic fox (Vulpes lagopus) using PacBio sequencing and Hi‐C technology , 2021, Molecular ecology resources.
[9] M. Huret,et al. Spatio-temporal drivers of microphytoplankton community in the Bay of Biscay: Do species ecological niches matter? , 2021, Progress in Oceanography.
[10] Jinzhong Fu,et al. Molecular convergent and parallel evolution among four high-elevation anuran species from the Tibetan region , 2020, BMC genomics.
[11] Yao Liu,et al. The circular RNA circ-ERBIN promotes growth and metastasis of colorectal cancer by miR-125a-5p and miR-138-5p/4EBP-1 mediated cap-independent HIF-1α translation , 2020, Molecular Cancer.
[12] M. Nery,et al. Expansions and contractions in gene families of independently-evolved blood-feeding insects , 2020, BMC Evolutionary Biology.
[13] Wen Wang,et al. Convergent genomic signatures of high-altitude adaptation among domestic mammals , 2019, National science review.
[14] Xiangjian Zhang,et al. Ginsenoside Rg1 promotes cerebral angiogenesis via the PI3K/Akt/mTOR signaling pathway in ischemic mice. , 2019, European journal of pharmacology.
[15] Dongyuan Liu,et al. Hypoxic and Cold Adaptation Insights from the Himalayan Marmot Genome , 2018, iScience.
[16] S. Kelly,et al. OrthoFinder: phylogenetic orthology inference for comparative genomics , 2019, Genome Biology.
[17] L. Kang,et al. Genetic variation in PTPN1 contributes to metabolic adaptation to high-altitude hypoxia in Tibetan migratory locusts , 2018, Nature Communications.
[18] D. Hillis,et al. Comparative genomic investigation of high-elevation adaptation in ectothermic snakes , 2018, Proceedings of the National Academy of Sciences.
[19] B. Melbourne,et al. Rapid adaptive evolution in novel environments acts as an architect of population range expansion , 2017, Proceedings of the National Academy of Sciences.
[20] V. Gladyshev,et al. Comparative transcriptomics of 5 high-altitude vertebrates and their low-altitude relatives , 2017, GigaScience.
[21] Z. Ning,et al. Comparative genomics reveals convergent evolution between the bamboo-eating giant and red pandas , 2017, Proceedings of the National Academy of Sciences.
[22] Baoguo Li,et al. Genomic analysis of snub-nosed monkeys (Rhinopithecus) identifies genes and processes related to high-altitude adaptation , 2016, Nature Genetics.
[23] Kyu-Sang Park,et al. Hypoxia/ischemia promotes CXCL10 expression in cardiac microvascular endothelial cells by NFkB activation. , 2016, Cytokine.
[24] C. Cañestro,et al. Evolution by gene loss , 2016, Nature Reviews Genetics.
[25] Sudhir Kumar,et al. MEGA7: Molecular Evolutionary Genetics Analysis Version 7.0 for Bigger Datasets. , 2016, Molecular biology and evolution.
[26] R. Mage,et al. The Immune System of Lagomorphs , 2016 .
[27] Sean J. Humphrey,et al. Protein Phosphorylation: A Major Switch Mechanism for Metabolic Regulation , 2015, Trends in Endocrinology & Metabolism.
[28] Matthew W. Hahn,et al. Convergent evolution of the genomes of marine mammals , 2015, Nature Genetics.
[29] Chung-I Wu,et al. Genetic Convergence in the Adaptation of Dogs and Humans to the High-Altitude Environment of the Tibetan Plateau , 2014, Genome biology and evolution.
[30] A. Zieseniss. Hypoxia and the modulation of the actin cytoskeleton – emerging interrelations , 2014, Hypoxia.
[31] Alexandros Stamatakis,et al. RAxML version 8: a tool for phylogenetic analysis and post-analysis of large phylogenies , 2014, Bioinform..
[32] Daniel J. Kvitek,et al. Whole Genome, Whole Population Sequencing Reveals That Loss of Signaling Networks Is the Major Adaptive Strategy in a Constant Environment , 2013, PLoS genetics.
[33] David L. Stern,et al. The genetic causes of convergent evolution , 2013, Nature Reviews Genetics.
[34] Peter L. Freddolino,et al. Bacterial Adaptation through Loss of Function , 2013, PLoS genetics.
[35] Xu-yang Lu,et al. Potential short-term effects of yak and Tibetan sheep dung on greenhouse gas emissions in two alpine grassland soils under laboratory conditions , 2013, Biology and Fertility of Soils.
[36] Loretta Auvil,et al. Draft genome sequence of the Tibetan antelope , 2013, Nature Communications.
[37] K. Lee,et al. Inhibition of SCAMP1 suppresses cell migration and invasion in human pancreatic and gallbladder cancer cells , 2013, Tumor Biology.
[38] A. Couloux,et al. Combining multiple autosomal introns for studying shallow phylogeny and taxonomy of Laurasiatherian mammals: Application to the tribe Bovini (Cetartiodactyla, Bovidae). , 2013, Molecular phylogenetics and evolution.
[39] Wei Li 李 伟,et al. Role of voltage-gated potassium channels in pathogenesis of chronic pulmonary heart disease , 2013, Journal of Huazhong University of Science and Technology. Medical Sciences.
[40] Jun Wang,et al. Genome sequence of ground tit Pseudopodoces humilis and its adaptation to high altitude , 2013, Genome Biology.
[41] Loretta Auvil,et al. The yak genome and adaptation to life at high altitude , 2012, Nature Genetics.
[42] R. Murphy,et al. Parallel Evolution of Auditory Genes for Echolocation in Bats and Toothed Whales , 2012, PLoS genetics.
[43] K. Jha. High Altitude and the Eye , 2012, Asia-Pacific journal of ophthalmology.
[44] S. Komatsu,et al. Ubiquitin/proteasome-mediated proteolysis is involved in the response to flooding stress in soybean roots, independent of oxygen limitation. , 2012, Plant science : an international journal of experimental plant biology.
[45] D. Hardie,et al. AMPK: a nutrient and energy sensor that maintains energy homeostasis , 2012, Nature Reviews Molecular Cell Biology.
[46] Yiping Shen,et al. A genome-wide search for signals of high-altitude adaptation in Tibetans. , 2011, Molecular biology and evolution.
[47] F. Olmo,et al. [Melanoma, altitude, and UV-B radiation]. , 2011, Actas dermo-sifiliograficas.
[48] K. Nakayama. Cellular signal transduction of the hypoxia response. , 2009, Journal of biochemistry.
[49] Jeffery P. Demuth,et al. The life and death of gene families , 2009, BioEssays : news and reviews in molecular, cellular and developmental biology.
[50] V. Singh,et al. Glutathione metabolism under high-altitude stress and effect of antioxidant supplementation. , 2008, Aviation, space, and environmental medicine.
[51] Ziheng Yang. PAML 4: phylogenetic analysis by maximum likelihood. , 2007, Molecular biology and evolution.
[52] Nello Cristianini,et al. CAFE: a computational tool for the study of gene family evolution , 2006, Bioinform..
[53] A. Bauer,et al. The FASEB Journal • Research Communication Calcium signaling stimulates translation of ��F-� during hypoxia , 2022 .
[54] G. Giaccone,et al. Epidermal growth factor receptor and angiogenesis: Opportunities for combined anticancer strategies , 2005, International journal of cancer.
[55] M. Delivoria-Papadopoulos,et al. Effect of hypoxia on protein tyrosine kinase activity in cortical membranes of newborn piglets—the role of nitric oxide , 2004, Neuroscience Letters.
[56] Robert C. Edgar,et al. MUSCLE: a multiple sequence alignment method with reduced time and space complexity , 2004, BMC Bioinformatics.
[57] E. Voest,et al. Stimulation of angiogenesis by Ras proteins. , 2004, Biochimica et biophysica acta.
[58] N. Sang,et al. MAPK Signaling Up-regulates the Activity of Hypoxia-inducible Factors by Its Effects on p300* , 2003, The Journal of Biological Chemistry.
[59] L. de Meis,et al. Uncoupled ATP Hydrolysis and Thermogenic Activity of the Sarcoplasmic Reticulum Ca2+-ATPase , 2002, Journal of Biological Chemistry.
[60] Richard E. Lenski,et al. Mechanisms Causing Rapid and Parallel Losses of Ribose Catabolism in Evolving Populations of Escherichia coli B , 2001, Journal of bacteriology.
[61] J. Pouysségur,et al. Angiogenesis and G-protein-coupled receptors: signals that bridge the gap , 2001, Oncogene.
[62] Goberdhan P Dimri,et al. Effect of time exposure to high altitude on zinc and copper concentrations in human plasma. , 1999, Aviation Space and Environmental Medicine.
[63] Sudhir Kumar,et al. Detection of convergent and parallel evolution at the amino acid sequence level. , 1997, Molecular biology and evolution.
[64] N. Voelkel,et al. Calcium augments hypoxic vasoconstriction in lungs from high-altitude rats. , 1980, Journal of applied physiology: respiratory, environmental and exercise physiology.
[65] Eric R. Pianka,et al. Convergent evolution. , 1969, Journal of neurophysiology.