Evolution and developmental plasticity of lung structure in high-altitude deer mice
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[1] G. Scott,et al. Life-long exposure to hypoxia affects metabolism and respiratory physiology across life stages in high-altitude deer mice (Peromyscus maniculatus) , 2020, Journal of Experimental Biology.
[2] J. F. Storz,et al. Coordinated changes across the O2 transport pathway underlie adaptive increases in thermogenic capacity in high-altitude deer mice , 2020, Proceedings of the Royal Society B.
[3] W. Burggren. Phenotypic Switching Resulting From Developmental Plasticity: Fixed or Reversible? , 2020, Frontiers in Physiology.
[4] Chandrasekhar Natarajan,et al. Ontogenesis of evolved changes in respiratory physiology in deer mice native to high altitude. , 2020, The Journal of experimental biology.
[5] J. F. Storz,et al. Life Ascending: Mechanism and Process in Physiological Adaptation to High-Altitude Hypoxia. , 2019, Annual review of ecology, evolution, and systematics.
[6] G. McClelland,et al. Developmental delay in shivering limits thermogenic capacity in juvenile high-altitude deer mice (Peromyscus maniculatus) , 2019, Journal of Experimental Biology.
[7] G. Scott,et al. Evolved Mechanisms of Aerobic Performance and Hypoxia Resistance in High-Altitude Natives. , 2019, Annual review of physiology.
[8] C. Hsia,et al. Acclimatization of low altitude-bred deer mice ( Peromyscus maniculatus) to high altitude. , 2018, Journal of applied physiology.
[9] L. Moore. Measuring high-altitude adaptation. , 2017, Journal of applied physiology.
[10] J. F. Storz,et al. Circulatory mechanisms underlying adaptive increases in thermogenic capacity in high-altitude deer mice , 2017, Journal of Experimental Biology.
[11] N. G. Elliott,et al. Developmental Hypoxia Has Negligible Effects on Long-Term Hypoxia Tolerance and Aerobic Metabolism of Atlantic Salmon (Salmo salar) , 2017, Physiological and Biochemical Zoology.
[12] K. McCracken,et al. Morphological and morphometric specializations of the lung of the Andean goose, Chloephaga melanoptera: A lifelong high-altitude resident , 2017, PloS one.
[13] H. Hoekstra,et al. Peromyscus mice as a model for studying natural variation , 2015, eLife.
[14] Alex D. Connaty,et al. High-altitude ancestry and hypoxia acclimation have distinct effects on exercise capacity and muscle phenotype in deer mice. , 2015, American journal of physiology. Regulatory, integrative and comparative physiology.
[15] F. Hoffmann,et al. Intraspecific Polymorphism, Interspecific Divergence, and the Origins of Function-Altering Mutations in Deer Mouse Hemoglobin , 2015, Molecular biology and evolution.
[16] C. Moritz,et al. Spatially heterogeneous impact of climate change on small mammals of montane California , 2015, Proceedings of the Royal Society B: Biological Sciences.
[17] D. Bates,et al. Fitting Linear Mixed-Effects Models Using lme4 , 2014, 1406.5823.
[18] K. McCracken,et al. The validity of ecogeographical rules is context-dependent: testing for Bergmann's and Allen's rules by latitude and elevation in a widespread Andean duck , 2014 .
[19] G. Bachman,et al. Contributions of phenotypic plasticity to differences in thermogenic performance between highland and lowland deer mice , 2013, Journal of Experimental Biology.
[20] Alex D. Connaty,et al. Regulatory changes contribute to the adaptive enhancement of thermogenic capacity in high-altitude deer mice , 2012, Proceedings of the National Academy of Sciences.
[21] S. Sultan,et al. The role of developmental plasticity in evolutionary innovation , 2011, Proceedings of the Royal Society B: Biological Sciences.
[22] W. Burggren,et al. Developmental trajectories, critical windows and phenotypic alteration during cardio-respiratory development , 2011, Respiratory Physiology & Neurobiology.
[23] J. L. Parra,et al. Impact of a Century of Climate Change on Small-Mammal Communities in Yosemite National Park, USA , 2008, Science.
[24] S. Oparil,et al. Transforming growth factor-β signaling mediates hypoxia-induced pulmonary arterial remodeling and inhibition of alveolar development in newborn mouse lung , 2008 .
[25] Ophir D. Klein,et al. The branching programme of mouse lung development , 2008, Nature.
[26] F. Léon-Velarde,et al. Oxygen transport at high altitude—An integrated perspective , 2007, Respiratory Physiology & Neurobiology.
[27] S. Perry,et al. Developmental plasticity of ventilatory control in zebrafish, Danio rerio , 2006, Respiratory Physiology & Neurobiology.
[28] P. MacFarlane,et al. Development of the respiratory system in marsupials , 2006, Respiratory Physiology & Neurobiology.
[29] R. W. Bavis,et al. Developmental plasticity of the hypoxic ventilatory response after perinatal hyperoxia and hypoxia , 2005, Respiratory Physiology & Neurobiology.
[30] C. Hsia,et al. Enhanced alveolar growth and remodeling in Guinea pigs raised at high altitude , 2005, Respiratory Physiology & Neurobiology.
[31] T. Brutsaert,et al. Effects of birthplace and individual genetic admixture on lung volume and exercise phenotypes of Peruvian Quechua. , 2004, American journal of physical anthropology.
[32] K. Hofmann,et al. Comparative full-band Monte Carlo study of Si and Ge with screened pseudopotential-based phonon scattering rates , 2003 .
[33] D. Massaro,et al. Invited Review: pulmonary alveoli: formation, the "call for oxygen," and other regulators. , 2002, American journal of physiology. Lung cellular and molecular physiology.
[34] J. P. Hayes,et al. NATURAL SELECTION ON THERMOGENIC CAPACITY OF HIGH‐ALTITUDE DEER MICE , 1999, Evolution; international journal of organic evolution.
[35] N. Loder,et al. Geographic gradients in body size: a clarification of Bergmann's rule , 1999 .
[36] P. W. Hochachka,et al. Carbohydrate utilization during exercise after high-altitude acclimation: a new perspective. , 1998, Proceedings of the National Academy of Sciences of the United States of America.
[37] P. Frappell,et al. Hamsters vs. rats: metabolic and ventilatory response to development in chronic hypoxia. , 1994, Journal of applied physiology.
[38] P. Frappell,et al. Ventilation and gaseous metabolism in infants born at high altitude, and their responses to hyperoxia. , 1992, The American review of respiratory disease.
[39] L. N. Blanco,et al. Alveolar size, number, and surface area: developmentally dependent response to 13% O2. , 1991, The American journal of physiology.
[40] J. P. Hayes. Field and Maximal Metabolic Rates of Deer Mice (Peromyscus maniculatus) at Low and High Altitudes , 1989, Physiological Zoology.
[41] A. Lechner,et al. Blood oxygen affinity in high- and low-altitude populations of the deer mouse. , 1982, Respiration physiology.
[42] A. Lechner. Metabolic performance during hypoxia in native and acclimated pocket gophers. , 1977, Journal of applied physiology: respiratory, environmental and exercise physiology.
[43] O. Pearson,et al. A stereological analysis of the ultrastructure of the lungs of wild mice living at low and high altitude , 1976, Journal of morphology.
[44] J. Remmers,et al. Effects of high altitude exposure on the lungs of young rats. , 1971, Respiration physiology.
[45] W. Scherle,et al. A simple method for volumetry of organs in quantitative stereology. , 1970, Mikroskopie.
[46] J. Remmers,et al. Alveolar dimensions in the lungs of animals raised at high altitude. , 1966, Journal of applied physiology.
[47] T. Brutsaert. Why Are High Altitude Natives So Strong at High Altitude? Nature vs. Nurture: Genetic Factors vs. Growth and Development. , 2016, Advances in experimental medicine and biology.
[48] R Core Team,et al. R: A language and environment for statistical computing. , 2014 .
[49] Matthias Ochs,et al. Stereology and morphometry of lung tissue. , 2013, Methods in molecular biology.
[50] J. P. Hayes. Altitudinal and seasonal effects on aerobic metabolism of deer mice , 2004, Journal of Comparative Physiology B.
[51] J. Carroll. Developmental plasticity in respiratory control. , 2003, Journal of applied physiology.
[52] J. Carroll. Invited Review: Developmental plasticity in respiratory control , 2003 .
[53] T. Brutsaert,et al. Effect of developmental and ancestral high altitude exposure on chest morphology and pulmonary function in Andean and European/North American natives , 1999, American journal of human biology : the official journal of the Human Biology Council.
[54] J. Layne,et al. Advances in the study of Peromyscus (Rodentia) , 1989 .
[55] P. Burri. Fetal and postnatal development of the lung. , 1984, Annual review of physiology.
[56] E. Weibel,et al. Morphometric estimation of pulmonary diffusion capacity. II. Effect of Po2 on the growing lung, adaption of the growing rat lung to hypoxia and hyperoxia. , 1971, Respiration physiology.