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  1. 1.   Telomere length and epigenetic clocks as markers of cellular aging: a comparative study
  2. Pearce, Emily E; Alsaggaf, Rotana; Katta,Shilpa; Dagnall,Casey; Aubert, Geraldine; Hicks,Belynda; Spellman, Stephen R; Savage, Sharon A; Horvath, Steve; Gadalla, Shahinaz M
  3. GeroScience. 2022, May 18;
  1. 2.   A plant lipocalin promotes retinal-mediated oscillatory lateral root initiation
  2. Dickinson, Alexandra J.; Zhang, Jingyuan; Luciano,Michael; Wachsman, Guy; Sandoval, Evan; Schnermann,Martin; Dinneny, Jose R.; Benfey, Philip N.
  3. SCIENCE. 2021, Sep 24; 373(6562): 1532-1536.
  1. 3.   Translating Embryogenesis to Generate Organoids: Novel Approaches to Personalized Medicine
  2. Sahu,Sounak; Sharan,Shyam
  3. iScience. 2020, SEP 25; 23(9):
  1. 4.   FGF4 and FGF8 comprise the wavefront activity that controls somitogenesis
  2. Naiche, L. A.; Holder, N.; Lewandoski, M.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2011, Mar; 108(10): 4018-4023.
  1. 5.   Wnt3a/beta-catenin signaling controls posterior body development by coordinating mesoderm formation and segmentation
  2. Dunty, W. C.; Biris, K. K.; Chalamalasetty, R. B.; Taketo, M. M.; Lewandoski, M.; Yamaguchi, T. P.
  3. Development. 2008 135(1): 85-94.
  1. 6.   Mitochondrial genomes reveal an explosive radiation of extinct and extant bears near the Miocene-Pliocene boundary
  2. Krause, J.; Unger, T.; Nocon, A.; Malaspinas, A. S.; Kolokotronis, S. O.; Stiller, M.; Soibelzon, L.; Spriggs, H.; Dear, P. H.; Briggs, A. W.; Bray, S.; O'Brien, S. J.; Rabeder, G.; Matheus, P.; Cooper, A.; Slatkin, M.; Paabo, S.; Hofreiter, M.
  3. Bmc Evolutionary Biology. 2008 8 AR 220 DI 10.1186/: 220-220.
  1. 7.   FGF signaling acts upstream of the NOTCH and WNT signaling pathways to control segmentation clock oscillations in mouse somitogenesis
  2. Wahl, M. B.; Deng, C.; Lewandoski, M.; Pourquie, O.
  3. Development. 2007, Nov; 134(22): 4033-4041.
  1. 8.   Deamidation of peptides in aerobic nitric oxide solution by a nitrosative pathway
  2. Kong, L.; Saavedra, J. E.; Buzard, G. S.; Xu, X.; Hood, B. L.; Conrads, T. P.; Veenstra, T. D.; Keefer, L. K.
  3. Nitric Oxide-Biology and Chemistry. 2006, Mar; 14(2): 144-151.
  1. 9.   Placental mammal diversification and the Cretaceous-Tertiary boundary
  2. Springer, M. S.; Murphy, W. J.; Eizirik, E.; O'Brien, S. J.
  3. Proceedings of the National Academy of Sciences of the United States of America. 2003 100(3): 1056-1061.
  1. 10.   Phylogenetics, genome diversity and origin of modern leopard, Panthera pardus
  2. Uphyrkina, O.; Johnson, W. E.; Quigley, H.; Miquelle, D.; Marker, L.; Bush, M.; O'Brien, S. J.
  3. Molecular Ecology. 2001 10(11): 2617-2633.
  1. 11.   Rapid radiation events in the family Ursidae indicated by likelihood phylogenetic estimation from multiple fragments of mtDNA
  2. Waits, L. P.; Sullivan, J.; O'Brien, S. J.; Ward, R. H.
  3. Molecular Phylogenetics and Evolution. 1999 13(1): 82-92.
  1. 12.   Rates of Nuclear and Cytoplasmic Mitochondrial Dna Sequence Divergence in Mammals
  2. Lopez, J. V.; Culver, M.; Stephens, J. C.; Johnson, W. E.; Obrien, S. J.
  3. Molecular Biology and Evolution. 1997 14(3): 277-286.
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