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Zoe McCrossan

Title
InstitutionUniversity of Chicago
AddressChicago IL 60637
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    Publications listed below are automatically derived from MEDLINE/PubMed and other sources, which might result in incorrect or missing publications. Faculty can login to make corrections and additions.
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    PMC Citations indicate the number of times the publication was cited by articles in PubMed Central, and the Altmetric score represents citations in news articles and social media. (Note that publications are often cited in additional ways that are not shown here.) Fields are based on how the National Library of Medicine (NLM) classifies the publication's journal and might not represent the specific topic of the publication. Translation tags are based on the publication type and the MeSH terms NLM assigns to the publication. Some publications (especially newer ones and publications not in PubMed) might not yet be assigned Field or Translation tags.) Click a Field or Translation tag to filter the publications.
    1. Lewis A, McCrossan ZA, Popa MO, Cuello LG, Goldstein SAN, Manville RW. TOK channels use the two gates in classical K+ channels to achieve outward rectification. FASEB J. 2020 07; 34(7):8902-8919. PMID: 32519783; PMCID: PMC7501187.
      Citations:    Fields:    Translation:AnimalsCells
    2. McCrossan ZA, Roepke TK, Lewis A, Panaghie G, Abbott GW. Regulation of the Kv2.1 potassium channel by MinK and MiRP1. J Membr Biol. 2009 Mar; 228(1):1-14. PMID: 19219384; PMCID: PMC2849987.
      Citations: 29     Fields:    Translation:HumansAnimalsCells
    3. Dementieva IS, Tereshko V, McCrossan ZA, Solomaha E, Araki D, Xu C, Grigorieff N, Goldstein SA. Pentameric assembly of potassium channel tetramerization domain-containing protein 5. J Mol Biol. 2009 Mar 20; 387(1):175-91. PMID: 19361449; PMCID: PMC2670943.
      Citations: 38     Fields:    Translation:HumansCells
    4. Thomas D, Plant LD, Wilkens CM, McCrossan ZA, Goldstein SA. Alternative translation initiation in rat brain yields K2P2.1 potassium channels permeable to sodium. Neuron. 2008 Jun 26; 58(6):859-70. PMID: 18579077; PMCID: PMC2529466.
      Citations: 74     Fields:    Translation:HumansAnimalsCells
    5. McCrossan ZA, Abbott GW. The MinK-related peptides. Neuropharmacology. 2004 Nov; 47(6):787-821. PMID: 15527815.
      Citations: 147     Fields:    Translation:HumansAnimalsCells
    6. McCrossan ZA, Billeter R, White E. Transmural changes in size, contractile and electrical properties of SHR left ventricular myocytes during compensated hypertrophy. Cardiovasc Res. 2004 Aug 01; 63(2):283-92. PMID: 15249186.
      Citations: 32     Fields:    Translation:AnimalsCells
    7. Lewis A, McCrossan ZA, Abbott GW. MinK, MiRP1, and MiRP2 diversify Kv3.1 and Kv3.2 potassium channel gating. J Biol Chem. 2004 Feb 27; 279(9):7884-92. PMID: 14679187.
      Citations: 41     Fields:    Translation:HumansAnimalsCells
    8. McCrossan ZA, Lewis A, Panaghie G, Jordan PN, Christini DJ, Lerner DJ, Abbott GW. MinK-related peptide 2 modulates Kv2.1 and Kv3.1 potassium channels in mammalian brain. J Neurosci. 2003 Sep 03; 23(22):8077-91. PMID: 12954870; PMCID: PMC6740484.
      Citations: 37     Fields:    Translation:HumansAnimalsCells
    9. Tai KK, McCrossan ZA, Abbott GW. Activation of mitochondrial ATP-sensitive potassium channels increases cell viability against rotenone-induced cell death. J Neurochem. 2003 Mar; 84(5):1193-200. PMID: 12603842.
      Citations: 15     Fields:    Translation:AnimalsCells
    10. Anantharam A, Lewis A, Panaghie G, Gordon E, McCrossan ZA, Lerner DJ, Abbott GW. RNA interference reveals that endogenous Xenopus MinK-related peptides govern mammalian K+ channel function in oocyte expression studies. J Biol Chem. 2003 Apr 04; 278(14):11739-45. PMID: 12529362.
      Citations: 25     Fields:    Translation:HumansAnimalsCells
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